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METHOD FOR TREATING EXHAUST GAS CONTAINING ELEMENTAL FLUORINE

Реферат: A method for treating a fluorine element-containing exhaust gas including a first step of contacting the fluorine element-containing exhaust gas with water and a second step of contacting a gas component discharged from the first step with a basic aqueous solution including a reducing agent.

Заявка: 1. A method for treating a fluorine element-containing exhaust gas , characterized by comprising:a first step of contacting the fluorine element-containing exhaust gas with water; anda second step of contacting a gas component discharged from the first step with a basic aqueous solution including a reducing agent.2. The method for treating a fluorine element-containing exhaust gas according to claim 1 , wherein the fluorine element-containing exhaust gas contains fluorine gas and/or hydrogen fluoride.3. The method for treating a fluorine element-containing exhaust gas according to claim 1 , wherein the reducing agent is a sulfur-based reducing agent.4. The method for treating a fluorine element-containing exhaust gas according to claim 3 , wherein the sulfur-based reducing agent is sulfite and/or thiosulfate.5. The method for treating a fluorine element-containing exhaust gas according to claim 1 , wherein at the first step claim 1 , a fluorine gas concentration in the exhaust gas when contacting the exhaust gas with the water is 40% by volume or less.6. The method for treating a fluorine element-containing exhaust gas according to claim 1 , wherein an oxygen difluoride concentration in the gas component discharged from the first step is 5% by volume or less.7. The method for treating a fluorine element-containing exhaust gas according to claim 1 , wherein an oxygen difluoride concentration in a gas component discharged from the second step is 1 ppm by volume or less.

Описание: The present invention relates to a method for treating a fluorine element-containing exhaust gas that treats the fluorine element-containing exhaust gas and discharges a treated gas containing reduced amounts of fluorine-based gases such as fluorine gas (F), oxygen difluoride (OF), and hydrogen fluoride (HF).Fluorine compounds are used in large amounts in a variety of fields, for purposes such as manufacturing of semiconductors, liquid crystals, and the like, raw materials of chemical products and polymer materials, or surface modifications.Particularly, in manufacturing processes for semiconductors, liquid crystals, and the like, fluorine-based gases such as F, NF, SiF, COF, SF, and fluorocarbons (such as CF, CF, and CF) have been conventionally used as gases for etching and cleaning. In processes using fluorine-based gases, gases derived from the used fluorine-based gases or fluorine element-containing gases produced by reaction are discharged as exhaust gases. Additionally, in manufacturing a fluorine gas or a fluorine compound, a gas containing an extremely highly concentrated fluorine element is sometimes discharged as an exhaust gas.These exhaust gases include highly toxic fluorine-based gases, such as oxidizing gases including fluorine gases and acidic gases including hydrogen fluoride, in high concentration, and therefore, it is necessary to sufficiently remove such toxic gases from the exhaust gases.As a method for removing toxic gases such as a fluorine gas and hydrogen fluoride from an exhaust gas, there is a conventional dry type process that removes them by filling a solid treatment agent such as calcium carbonate, calcium hydroxide, or active alumina in a fixed phase, but there is a problem in that running cost is high.As a wet type process, a wet type scrubber using water or an alkaline aqueous solution such as sodium hydroxide is excellent as a method for treating a large amount of gas at low cost, but is known by by-producing more highly toxic oxygen difluoride (OF). Oxygen difluoride has an ACGIH allowable concentration (TLV) of 0.05 ppm, which indicates extremely high toxicity, and there has been a problem where oxygen difluoride once generated cannot easily be removed by water or an alkaline aqueous solution, and is discharged from exhaust gas.As methods for solving the problem in such a wet process, Patent Document 1 discloses a method using a mixed liquid of alkali sulfite and caustic alkali as an absorbing liquid, Patent Document 2 discloses a method using an absorbing liquid that includes a mixture of a basic compound such as sodium hydroxide and a sulfur-based reducing agent such as sodium thiosulfate, and Patent Document 3 discloses a method using a liquid that includes a base such as an alkali metal hydroxide and a thiosulfate or a nitrous acid alkali metal salt.In addition, in Patent Document 4, it is disclosed that an oxidizing gas such as chlorine gas or fluorine gas is removed from an exhaust gas by performing a wet type process in a packed column filled with sulfite poorly soluble in water, without using any compound containing sodium ions and the like.Although these methods are effective in suppressing discharge of oxygen difluoride, concentrations of the alkalis or the reducing agents need to be maintained at high level in order to continuously treat an exhaust gas containing a fluorine element-containing gas in high concentration to obtain a sufficient effect. Due to this, there have been problems where troubles such as clogging easily occur, which increases chemical solution cost, as well as there are needs for waste liquid treatments of the alkalis, the reducing agents, and various kinds of reaction products in discharged liquids.Additionally, Patent Document 5 discloses a method in which an exhaust gas is reacted with steam under heating to be decomposed into hydrogen fluoride and oxygen. In this method, however, the reaction is performed at a high temperature of from 300 to 400° C., and thus there is a large influence of corrosion due to a high-temperature hydrogen fluoride gas and the like, which limits reactor material, so that it has been difficult to industrially employ the method.Patent Document 1: JP H02-233122 APatent Document 2: JP 2006-231105 APatent Document 3: JP 2013-539717 APatent Document 4: JP 2000-176243 APatent Document 5: JP 2006-289238 AIt is an object of the present invention to provide a method for treating a fluorine element-containing exhaust gas that efficiently treats the fluorine element-containing exhaust gas by a wet type method to obtain a treated gas in which toxic fluorine-based gases, such as oxidizing gases including fluorine gas and oxygen difluoride and acidic gases including hydrogen fluoride, are sufficiently reduced.The present invention relates to the following items [1] to [7]:[1] A method for treating a fluorine element-containing exhaust gas, characterized by including a first step of contacting the fluorine element-containing exhaust gas with water and a second step of contacting a gas component discharged from the first step with a basic aqueous solution including a reducing agent.[2] The method for treating a fluorine element-containing exhaust gas according to the [1], in which the fluorine element-containing exhaust gas contains fluorine gas (F) and/or hydrogen fluoride (HF).[3] The method for treating a fluorine element-containing exhaust gas according to the [1] or the [2], in which the reducing agent is a sulfur-based reducing agent.[4] The method for treating a fluorine element-containing exhaust gas according to the [3], in which the sulfur-based reducing agent is sulfite and/or thiosulfate.[5] The method for treating a fluorine element-containing exhaust gas according to any of the [1] to the [4], in which at the first step, a fluorine gas concentration in the exhaust gas when contacting the exhaust gas with the water is 40% by volume or less.[6] The method for treating a fluorine element-containing exhaust gas according to any of the [1] to the [5], in which an oxygen difluoride (OF) concentration in the gas component discharged from the first step is 5% by volume or less.[7] The method for treating a fluorine element-containing exhaust gas according to any of the [1] to the [6], in which an oxygen difluoride (OF) concentration in a gas component discharged from the second step is 1 ppm by volume or less.The method for treating a fluorine element-containing exhaust gas according to the present invention can efficiently treat the fluorine element-containing exhaust gas by a wet type method, and, even when treating an exhaust gas including fluorine-based gases such as fluorine gas in high concentration, can sufficiently reduce toxic fluorine-based gases such as oxidizing gases including fluorine gas and oxygen difluoride and acidic gases including hydrogen fluoride in a treated gas to be obtained. By treating the fluorine element-containing exhaust gas in the specific two stages, the invention can highly reduce the fluorine-based gases in the treated gas to be discharged, and can significantly reduce the amount of consumption of the basic aqueous solution including a reducing agent used as a chemical solution, which are economical and efficient. Additionally, even when the fluorine element-containing exhaust gas includes hydrogen fluoride in high concentration, the invention can suppress the amount of consumption of the chemical solution to small.Furthermore, in the present invention, when the fluorine gas (F) concentration in the exhaust gas when contacting the exhaust gas with the water at the first step is 40% by volume or less, the oxygen difluoride (OF) concentration in the gas component discharged from the first step can be suppressed, whereby a treatment load at the second step can be further reduced, thus enabling exhaust gas treatment to be efficiently performed.Hereinafter, the present invention will be specifically described.A method for treating a fluorine element-containing exhaust gas according to the present invention includes a first step of contacting the fluorine element-containing exhaust gas with water and a second step of contacting a gas component discharged from the first step with a basic aqueous solution including a reducing agent.At the first step, a fluorine element-containing exhaust gas is contacted with water.Examples of the fluorine element-containing exhaust gas can include gases containing fluorine-based gases such as F, NF, SiF, COF, SF, fluorocarbons (such as CF, CF, and CF). In the present invention, fluorine element-containing exhaust gases such as industrial exhaust gases produced in processes using fluorine-based gases or processes involving occurrences of fluorine-based gases can be treated without any particular limitation. The exhaust gas that is treated in the invention may include oxidizing gases such as oxygen difluoride (OF) and/or acidic gases such as hydrogen fluoride (HF).For example, when the exhaust gas includes a fluorine gas, the fluorine gas in the exhaust gas and water rapidly react with each other to produce hydrogen fluoride and oxygen, as in Reaction Formula (1).F+HO→HF+½O  (1)In the contact between the fluorine gas and water, reactivity of the fluorine gas is high, and therefore, it is known that other than the main reaction of Reaction Formula (1) mentioned above, there occurs a side reaction that produces ozone (O) and oxygen difluoride (OF) depending on conditions. However, the present inventor found that when a fluorine gas concentration in an exhaust gas when contacting the exhaust gas with water is set to 40% by volume or less, the side reaction is suppressed, so that ozone (O) is hardly produced, and production of oxygen difluoride (OF) is also suppressed to low level.Thus, at the first step of the present invention, the fluorine gas (F) concentration in the exhaust gas when contacting the exhaust gas with the water is preferably 40% by volume or less, and more preferably 30% by volume or less. When the fluorine gas (F) concentration in the exhaust gas is set to be within the above range, the fluorine gas (F) in the exhaust gas can be sufficiently removed at the first step, and production of ozone (O) and oxygen difluoride (OF) can be suitably suppressed, so that a load of the second step that will be described later can be reduced to achieve sufficient exhaust gas treatment.When the exhaust gas contains a highly concentrated fluorine gas (F), it is preferable to adjust the fluorine gas (F) concentration in the exhaust gas to 40% by volume or less by a method such as dilution with an inert gas such as air before contacting with water. In the present invention, the inert gas means a gas that, under treatment conditions, substantially does not react with components in the exhaust gas, water, and a basic aqueous solution including a reducing agent that is used at the second step and that will be described later, and does not hinder reaction, and examples of the gas include air, nitrogen, and rare gases.At the first step, as a method for contacting the exhaust gas with water, any conventionally known method for contacting gas with liquid can be employed without any particular limitation. Preferably employable are methods using in-liquid dispersion type apparatuses such as a ventilating/stirring tank or apparatuses such as an absorption column in which gas and liquid are contacted to allow at least a part of a gas component to be absorbed by a liquid component. Specifically, preferably employable are methods using a spraying column, a plate column, a packed column, or a known absorption column equipped with an apparatus such as a jet scrubber, and particularly preferred are methods using packed columns because of simple structure and good absorption efficiency thereof. Methods using such apparatuses can be employed also at the second step that will be described later.At the first step of the present invention, a fluorine element-containing exhaust gas is contacted with water, whereby, for example, fluorine gas (F) contained in the exhaust gas reacts with the water to be converted into hydrogen fluoride (HF) or oxygen difluoride (OF). Additionally, hydrogen fluoride (HF) contained in the exhaust gas and the hydrogen fluoride (HF) produced by the reaction of the fluorine gas (F) with the water are easily absorbed in water. In the invention, even when an exhaust gas to be treated contains highly concentrated hydrogen fluoride (HF), most thereof can be removed at the first step, thereby enabling suppression of the amount of consumption of the basic aqueous solution including a reducing agent that is used at the second step. Thus, in the invention, as the fluorine element-containing exhaust gas, a gas containing fluorine gas and/or hydrogen fluoride can be suitably used.In this manner, at the first step, the fluorine gas (F), the hydrogen fluoride (HF), and the like in the exhaust gas are reduced, and a gas component containing produced oxygen difluoride (OF) or the like is discharged. The gas component discharged at the first step is sent to the second step.Herein, when the fluorine gas concentration in the exhaust gas is 40% by volume or less, it is preferable since any side reaction that produces oxygen difluoride (OF) hardly occurs in the reaction of the first step, and thus the amount of the oxygen difluoride (OF) in the gas component that is sent to the second step can be suppressed, which can reduce the load of the second step.At the first step, the water that comes in contact with the exhaust gas can be used in a circulating manner. However, the concentration of the absorbed hydrogen fluoride (HF) increases as the exhaust gas is treated, and it is thus preferable to exchange the water as an absorbing liquid in a case where the exhaust gas is treated in large amount or continuously. Although the water as the absorbing liquid may be exchanged in a batch or continuous manner, the concentration of the hydrogen fluoride (HF) in the absorbing liquid is preferably maintained constant, and the water is preferably continuously exchanged in order to stabilize the conditions at the second step.Thus, in the gas discharged from the first step, the fluorine gas (F) concentration is sufficiently reduced, and the increase of the oxygen difluoride (OF) concentration is suitably suppressed. The oxygen difluoride (OF) concentration in the gas component discharged from the first step is preferably 5% by volume or less, and more preferably 1% by volume or less.At the second step, the gas component discharged from the first step is contacted with a basic aqueous solution including a reducing agent.The gas component discharged from the first step that is to be subjected to the second step usually includes oxygen difluoride (OF) either contained in the exhaust gas or produced at the first step, entrained hydrogen fluoride (HF), and the like. The gas component discharged from the first step may include fluorine gas (F) unreacted or entrained at the first step. The fluorine gas concentration in the gas component that is to be introduced into the second step is preferably 5% by volume or less, and more preferably 1% by volume or less.The oxygen difluoride (OF) concentration in the gas component that is introduced into the second step is not particularly limited, but is preferably 5% by volume or less, and more preferably 1% by volume or less. At the first step, when the fluorine gas (F) concentration in the exhaust gas when contacting the exhaust gas with the water is 40% by volume or less, the OFconcentration in the gas component discharged from the first step can be made sufficiently low, and can usually be 5% by volume or less when an initial exhaust gas does not include oxygen difluoride (OF). When the oxygen difluoride (OF) concentration in the gas component discharged from the first step is high, the gas component may be diluted with an inert gas as appropriate and then introduced into the second step.At the second step, the oxygen difluoride (OF) in the introduced gas component reacts with the reducing agent to become hydrogen fluoride (HF), and the HF in the introduced gas component and the hydrogen fluoride (HF) produced from the oxygen difluoride (OF) are removed by reacting with a base.The basic aqueous solution including a reducing agent that is used at the second step is an aqueous solution including a reducing agent and a base dissolved in water, and is used as an absorbing liquid.As the reducing agent, a reducing agent that can reduce oxygen difluoride (OF) can be used without any particular limitation, and can be selected from, for example, thiosulfates such as sodium thiosulfate, ammonium thiosulfate, and potassium thiosulfate; sulfites such as sodium sulfite, potassium sulfite, and ammonium sulfite; chlorides such as potassium chloride and sodium chloride; bromides such as potassium bromide; iodides such as potassium iodide; nitrites such as sodium nitrite and potassium nitrite; formates such as formic acid, sodium formate, and potassium formate; oxalic acid, hydrazine, and the like. In the present invention, as the reducing agent, preferably used are sulfur-based reducing agents, and more preferably used are thiosulfates and sulfites, from the viewpoint of efficiently removing oxygen difluoride (OF).The concentration of the reducing agent is preferably from 1 to 20% by mass, and more preferably from 1 to 10% by mass in the basic aqueous solution including a reducing agent, although it depends on conditions such as the oxygen difluoride (OF) concentration in the gas component to be contacted therewith.As the base, a base that can remove hydrogen fluoride (HF) can be used without any particular limitation, but preferably used is metal hydroxide, and more preferably used is sodium hydroxide or potassium hydroxide.The concentration of the base depends on conditions such as the hydrogen fluoride (HF) concentration in the gas component to be contacted. However, liquid properties of the basic aqueous solution including a reducing agent are preferably maintained to be alkaline, and pH thereof is preferably 8 or more, and more preferably 9 or more.At the second step, as a method for contacting the gas component discharged from the first step with the basic aqueous solution including a reducing agent, any conventionally known method for contacting gas with liquid can be employed without any particular limitation, similarly to the first step. Preferably employable are methods using apparatuses such as an absorption column in which gas and liquid are contacted to allow at least a part of a gas component to be absorbed by a liquid component. Specifically, preferably employable are methods using a spraying column, a plate column, a packed column, or a known absorption column equipped with an apparatus such as a jet scrubber, and a method using a packed column is particularly preferable because of its simple structure and high absorption efficiency. The first step and the second step may employ a method using similar apparatuses or may employ a method using different apparatuses.At the second step, the basic aqueous solution including a reducing agent that is used as the absorbing liquid can usually be used by being circulated in the absorption column. In the basic aqueous solution including a reducing agent, concentrations of the reducing agent and the base decrease as treatment of the introduced gas component proceeds, and the concentration of an absorbed reaction product increases, so that the basic aqueous solution including a reducing agent can be exchanged when the amount of the treatment is large. The basic aqueous solution including a reducing agent may be exchanged in either a batch or continuous manner. However, usually, exchanging in a batch manner is economical, since the concentrations of fluorine-based toxic gases included in the gas that is introduced into the second step are originally low, and a change of a reducing agent concentration or a base concentration in the basic aqueous solution including a reducing agent is small.In a gas component (a treated gas) discharged from the second step of the present invention, fluorine-based toxic gases such as fluorine gas (F), oxygen difluoride (OF), and hydrogen fluoride (HF) are sufficiently removed, and thus, can be a gas substantially including no fluorine-based gas. Specifically, the oxygen difluoride (OF) concentration in the gas component discharged from the second step of the invention is preferably 1 ppm by volume or less, and more preferably 0.5 ppm by volume or less. The fluorine gas (F) concentration in the gas component discharged from the second step of the invention is preferably 1 ppm by volume or less, and more preferably 0.5 ppm by volume. Additionally, the hydrogen fluoride (HF) concentration in the gas component discharged from the second step of the invention is preferably 3 ppm by volume or less, and more preferably 1.5 ppm by volume or less.Hereinafter, the present invention will be described more specifically based on Examples, but is not limited thereto.In the following Examples and Comparative Examples, concentrations of respective fluorine-based gas elements were measured and quantified in the following manners.A combined concentration of fluorine gas (F) and oxygen difluoride (OF) in the gas was obtained by analyzing by a method in which a specified amount of the gas was absorbed by an aqueous solution of potassium iodide and titrated with sodium thiosulfate (an iodine titration method). Lower quantitation limit was able to be adjusted by increasing the amount of the gas to be absorbed, and the combined concentration of fluorine and oxygen difluoride was measured to be 0.05 ppm by volume or more.When quantitatively analyzing by separating the fluorine gas from the oxygen difluoride in the gas, the oxygen difluoride was quantified using FT-IR method (Fourier Transform Infrared Spectroscopy), and the concentration of the oxygen difluoride was subtracted from the combined concentration of the fluorine gas and the oxygen difluoride to obtain the concentration of the fluorine gas. In the case of using a long optical path gas cell having an optical path length of 10 m as a gas cell of the FT-IR, the lower quantitation limit of the oxygen difluoride concentration is 0.5 ppm by volume.Hydrogen fluoride concentration was quantified using FT-IR method. The lower quantitation limit of the hydrogen fluoride concentration is 0.5 ppm by volume when a gas cell of 15 cm is used.Treatment of an exhaust gas was performed by using an apparatus equipped with a first absorption column () having a diameter of 500 mm in which cascade mini-rings as a filling material were filled at a filling height of 4 m in a filling layer () and a second absorption column () having a diameter of 500 mm in which cascade mini-rings as a filling material were filled at a filling height of 4 m in a filling layer (). depicts a schematic diagram.At the first step performed on the first absorption column () side, water was introduced into a circulation liquid tank (), and circulated at 4 m/hr. The amount of water introduced and the amount of the circulation liquid discharged were adjusted such that an HF concentration in the circulation liquid tank () was 3% by mass.At the second step performed on the second absorption column () side, a basic aqueous solution including a reducing agent (pH at charging: 13.5) prepared so that KOH as the base had a concentration of 2% by mass and potassium sulfite (KSO) as the reducing agent had a concentration of 12% by mass was charged in a circulation liquid tank (), and circulated at 4 m/hr.The exhaust gas to be treated was a gas including 25% by volume of Fand 10% by volume of HF, but not including OF, in which the rest was nitrogen gas. This gas was introduced into the first absorption column () configured to perform the first step, at 30 m/hr from an exhaust gas introducing pipe (). The exhaust gas introduced into the first absorption column () was sufficiently contacted with water emitted from a shower nozzle () in the first absorption column () provided with the filling layer (), and a gas component after the contact with the water was discharged from a column top of the first absorption column (). The discharged gas component was introduced into the second absorption column () configured to perform the second step through an exhaust gas introducing pipe . The gas component discharged from the first absorption column () and introduced into the second absorption column () was a gas including 2,000 ppm by volume of F, 1,300 ppm by volume of HF, and 4,100 ppm by volume of OF.The gas component introduced into the second absorption column () was sufficiently contacted with a basic aqueous solution including a reducing agent emitted from a shower nozzle () in the second absorption column () provided with the filling layer (). The gas component after having been contacted with the basic aqueous solution including a reducing agent was discharged as a treated gas from a column top of the second absorption column () through a treated gas discharging pipe ().Table 1 has listed concentrations of respective fluorine-based gas elements in the treated gas discharged from the treated gas discharging pipe () and amounts of consumption of chemical solution (the basic aqueous solution including a reducing agent) in the second step performed on the second absorption column () side. Neither Fnor OFnor HF was detected from the treated gas. Additionally, the amounts of the chemical solution consumed in the second absorption column () were 0.7 kg/hr for KOH as the base and 1.9 kg/hr for KSOas the reducing agent.Exhaust gas treatment was performed in the same manner as Example 1 except that, in Example 1, the Fconcentration in the exhaust gas to be treated was 40% by volume. The gas component discharged from the first absorption column () and introduced into the second absorption column () was a gas including 20,000 ppm by volume of F, 1,300 ppm by volume of HF, and 42,000 ppm by volume of OF.Table 1 has listed concentrations of respective fluorine-based gas elements in the treated gas discharged from the treated gas discharging pipe () and amounts of consumption of chemical solution (the basic aqueous solution including a reducing agent) in the second step. Neither Fnor HF was detected from the treated gas, and 1 ppm by volume of OFwas detected therefrom. In addition, the amounts of the chemical solution consumed in the second absorption column () were 6.7 kg/hr for KOH as the base and 18 kg/hr for KSOas the reducing agent.Exhaust gas treatment was performed in the same manner as Example 1 except that, in Example 1, sodium thiosulfate (NaSO) was used in place of potassium sulfite (KSO), as the reducing agent in the chemical solution (the basic aqueous solution including a reducing agent) used at the second step, and the concentration of NaSOwas set to 3% by mass.Table 1 has listed concentrations of respective fluorine-based gas elements in the treated gas discharged from the treated gas discharging pipe () and amounts of consumption of chemical solution (the basic aqueous solution including a reducing agent) in the second step. Neither Fnor OFnor HF was detected from the treated gas. Additionally, the amounts of the chemical solution consumed in the second absorption column () were 0.7 kg/hr for KOH as the base and 1.9 kg/hr for NaSOas the reducing agent.Exhaust gas treatment was performed in the same manner as Example 1 except that, in Example 1, potassium iodide (KI) was used in place of potassium sulfite (KSO), as the reducing agent in the chemical solution (the basic aqueous solution including a reducing agent) used at the second step, and the concentration of KI was set to 3% by mass.Table 1 has listed concentrations of respective fluorine-based gas elements in the treated gas discharged from the treated gas discharging pipe () and amounts of consumption of chemical solution (the basic aqueous solution including a reducing agent) in the second step. Neither Fnor OFnor HF was detected from the treated gas. Additionally, the amounts of the chemical solution consumed in the second absorption column () were 0.7 kg/hr for KOH as the base and 2.0 kg/hr for KI as the reducing agent.Exhaust gas treatment was performed in the same manner as Example 1 except that, in Example 1, potassium chloride (KCl) was used in place of potassium sulfite (KSO), as the reducing agent in the chemical solution (the basic aqueous solution including a reducing agent) used at the second step, and the concentration of KCl was set to 10% by mass.Table 1 has listed concentrations of respective fluorine-based gas elements in a treated gas discharged from the treated gas discharging pipe () and amounts of consumption of chemical solution (the basic aqueous solution including a reducing agent) in the second step. Neither Fnor HF was detected from the treated gas, and 0.3 ppm by volume of OFwas detected therefrom. Additionally, the amounts of the chemical solution consumed in the second absorption column () were 0.7 kg/hr for KOH as the base and 1.8 kg/hr for KCl as the reducing agent.Using an apparatus that is equipped with the first absorption column () and the circulating liquid tank () and that is the same as the apparatus used at the first step of Example 1, water was circulated similarly to Example 1, and the amount of the water to be introduced and the amount of a circulating liquid to be discharged were adjusted so that the HF concentration in the circulating liquid tank () was 1% by mass. The same exhaust gas as that of Example 1 was introduced from the exhaust gas introducing pipe () and treated, whereby a gas component discharged from the column top of the first absorption column () was obtained as a treated gas. The concentrations of respective fluorine-based gas elements in the treated gas were 980 ppm by volume for F, 670 ppm by volume for HF, and 4,050 ppm by volume for OF, as listed in Table 1.Exhaust gas treatment was performed by, in Example 1, bypassing the first step to introduce the exhaust gas to be treated from the exhaust gas introducing pipe () into the second absorption column () and in the same manner as the second step of Example 1.Table 1 has listed concentrations of respective fluorine-based gas elements in the treated gas discharged from the treated gas discharging pipe () and amounts of consumption of chemical solution (the basic aqueous solution including a reducing agent). Neither Fnor HF nor OFwas detected from the treated gas. However, the amounts of the chemical solution consumed in the second absorption column () were 53 kg/hr for KOH as the base and 127 kg/hr for KSOas the reducing agent, resulting in that the consumption of the chemical solution was larger than Example 1.The method for treating an exhaust gas according to the present invention is suitable as a method for treating a fluorine element-containing exhaust gas produced in a process using a fluorine-based gas as an etching or cleaning gas, a process for manufacturing a fluorine-based gas, or the like to obtain a treated gas substantially including no fluorine-based gas.

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Номер патента: US5514355A. Автор: Akinori Eshita,Senshi Kasahara. Владелец: Tosoh Corp. Дата публикации: 1996-05-07.

Catalyst Unit, Method For Producing The Same, And Exhaust Gas Catalyst

Номер патента: US20170204769A1. Автор: Andrea DÖRING. Владелец: MAN Diesel and Turbo SE. Дата публикации: 2017-07-20.

METHOD AND EXHAUST SYSTEM FOR TREATING NOX IN EXHAUST GAS FROM STATIONARY EMISSION SOURCES

Номер патента: US20170341022A1. Автор: Doura Kevin,ANDERSEN Paul. Владелец: . Дата публикации: 2017-11-30.

Method for recovering nitrogen trifluoride from exhaust gas

Номер патента: KR20140095241A. Автор: 최병구. Владелец: 최병구. Дата публикации: 2014-08-01.

Device for treating semiconductor process exhaust gas

Номер патента: US20230271133A1. Автор: Jong Pil Yoon. Владелец: Plasma Science System Co Ltd. Дата публикации: 2023-08-31.

Device for treating semiconductor process exhaust gas

Номер патента: EP4327916A1. Автор: Jong Pil Yoon. Владелец: Plasma Science System Co Ltd. Дата публикации: 2024-02-28.

Method for producing monolithic catalyst for exhaust gas purification and monolithic catalyst

Номер патента: US20090149323A1. Автор: Yoshihide Segawa,Tomoaki Sunada. Владелец: Individual. Дата публикации: 2009-06-11.

Method for the operation of an exhaust gas aftertreatment system

Номер патента: US09976462B2. Автор: Dieter Rothe,Florian Lutz. Владелец: MAN Truck and Bus SE. Дата публикации: 2018-05-22.

Systems and methods for removing particulate matter from exhaust gas streams

Номер патента: US09682340B2. Автор: Parthosarothy K. Mukherji. Владелец: Sidel Systems USA Inc. Дата публикации: 2017-06-20.

A method for the treatment of an exhaust gas and an hvac system

Номер патента: EP4392166A1. Автор: Silvia Alcove Clave,Joseph Fedeyko,Kevin Doura. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2024-07-03.

Method for separating and treating exhaust gas of carbon fiber

Номер патента: US6602486B2. Автор: Kunio Nishimura,Nobuhiro Matsumoto,Yoshihisa Sakamoto. Владелец: Showa Denko KK. Дата публикации: 2003-08-05.

Method for the treatment of an exhaust gas and an HVAC system

Номер патента: US11980868B2. Автор: Silvia Alcove Clave,Joseph Fedeyko,Kevin Doura. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2024-05-14.

Device for treating pfc-containing exhaust gas

Номер патента: WO2022208848A1. Автор: 啓志 今村. Владелец: 北京康肯▲環▼保▲設▼▲備▼有限公司. Дата публикации: 2022-10-06.

Exhaust gas treatment system comprising a multifunctional catalyst

Номер патента: EP4164775A1. Автор: Tobias Paul,Robert Dorner,Ansgar Wille. Владелец: BASF Corp. Дата публикации: 2023-04-19.

Method for removing soot from exhaust gases

Номер патента: US09869222B2. Автор: Steven L. Suib,D. A. Saminda DHARMARATHNA,Lakshitha R. PAHALAGEDARA. Владелец: University of Connecticut. Дата публикации: 2018-01-16.

Catalyst for exhaust gas purification, and method for producing same

Номер патента: US09498771B2. Автор: Masaya Ibe,Daichi Sato,Satoshi Nagao,Rui Imoto. Владелец: Toyota Motor Corp. Дата публикации: 2016-11-22.

Exhaust gas purification catalyst and method for producing the same

Номер патента: US09795945B2. Автор: Tatsuya Miyazaki,Shogo Shirakawa,Yui KAMADA. Владелец: Toyota Motor Corp. Дата публикации: 2017-10-24.

METHOD FOR TREATING NOX IN EXHAUST GAS AND SYSTEM THEREFORE

Номер патента: US20130202507A1. Автор: Echoff Stephan,Hoyer Ruediger,Philipp Susanne,Grisstede Ina,Mueller Wilfried,Rohr Friedemann. Владелец: . Дата публикации: 2013-08-08.

Catalyst for exhaust gas purification, and method for producing same

Номер патента: US20150217280A1. Автор: Masaya Ibe,Daichi Sato,Satoshi Nagao,Rui Imoto. Владелец: Toyota Motor Corp. Дата публикации: 2015-08-06.

Exhaust gas purification catalyst and method for producing the same

Номер патента: US20160296912A1. Автор: Tatsuya Miyazaki,Shogo Shirakawa,Yui KAMADA. Владелец: Toyota Motor Corp. Дата публикации: 2016-10-13.

METHOD FOR OBTAINING ALKALINE CHEMICALS FROM EXHAUST GAS CONTAINING ALKALINE STEAMS.

Номер патента: DE3669901D1. Автор: Johannes Kiiskilae. Владелец: Ahlstrom Corp. Дата публикации: 1990-05-03.

CATALYSED FILTER SYSTEM FOR TREATING PARTICULATE-CONTAINING EXHAUST GAS FROM STATIONARY EMISSION SOURCES

Номер патента: US20200306694A1. Автор: ANDERSEN PAUL JOSEPH,YEH Thomas M.. Владелец: . Дата публикации: 2020-10-01.

Catalyst layer applied to object being enamelled - suitable for making catalyst for treating motor-car exhaust gas

Номер патента: FR2262127A1. Автор: . Владелец: EQUIPINOX. Дата публикации: 1975-09-19.

Method for collecting volatile organic substances

Номер патента: CA2175289C. Автор: Kenichi Hamada,Jun Izumi,Takayuki Harada,Akinori Yasutake,Hiroyuki Tsutaya. Владелец: Mitsubishi Heavy Industries Ltd. Дата публикации: 2000-04-25.

Method for separating each substance from mixed gas containing plural substances and apparatus thereof

Номер патента: US20030124042A1. Автор: Teruyuki Endo,Kinya Kato,Miwa Nakazawa. Владелец: Canon Inc. Дата публикации: 2003-07-03.

Catalysed filter system for treating particulate-containing exhaust gas from stationary emission sources

Номер патента: GB202004366D0. Автор: . Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2020-05-13.

Catalysed filter system for treating particulate-containing exhaust gas from stationary emission sources

Номер патента: GB202114641D0. Автор: . Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2021-11-24.

METHOD FOR PREPARING CATALYST COMPOSITION FOR EXHAUST GAS AFTER-TREATMENT

Номер патента: US20170021336A1. Автор: Wille Ansgar,Kemmer Martina,BONIFER Marcus. Владелец: . Дата публикации: 2017-01-26.

Device for removing emissions and methods for reducing emissions in the exhaust gas

Номер патента: DE102011086787A1. Автор: Robert J. Kudla,Andrew Robert Drews. Владелец: FORD GLOBAL TECHNOLOGIES LLC. Дата публикации: 2012-05-24.

SYSTEM AND METHOD FOR INJECTING AMMONIA INTO AN EXHAUST GAS STREAM

Номер патента: US20130171050A1. Автор: Adelman Brad J.,Strots Vadim Olegovich,Santhanam Shyam. Владелец: . Дата публикации: 2013-07-04.

METHOD FOR THE AFTERTREATMENT OF THE EXHAUST GAS OF AN INTERNAL COMBUSTION ENGINE AND INTERNAL COMBUSTION ENGINE

Номер патента: US20200149453A1. Автор: Döring Andreas. Владелец: . Дата публикации: 2020-05-14.

Catalyst Unit, Method For Producing The Same, And Exhaust Gas Catalyst

Номер патента: US20170204769A1. Автор: DÖRING Andrea. Владелец: . Дата публикации: 2017-07-20.

HONEYCOMB STRUCTURAL BODY, METHOD FOR MANUFACTURING THE SAME, AND EXHAUST GAS PURIFICATION FILTER

Номер патента: US20190224606A1. Автор: IMAGAWA Hirokatsu,NIWA Hironori. Владелец: . Дата публикации: 2019-07-25.

Method for restoring performance capabilities of exhaust gas treatment apparatus

Номер патента: AU2003289030A1. Автор: Hiroshi Shimada,Yousuke Oka. Владелец: Chugoku Electric Power Co Inc. Дата публикации: 2005-06-29.

Composite oxide, method for producing the same and exhaust gas purification catalyst

Номер патента: JP5706339B2. Автор: 尚孝 大竹,和彦 横田. Владелец: Anan Kasei Co Ltd. Дата публикации: 2015-04-22.

Method for producing coating layer of exhaust gas purifying catalyst device

Номер патента: CN112774677A. Автор: 山内让太,山内稔久,木下洋平,林高弘. Владелец: Toyota Motor Corp. Дата публикации: 2021-05-11.

Method for restoring performance capabilities of exhaust gas treatment apparatus

Номер патента: US7441332B2. Автор: Hiroshi Shimada,Yousuke Oka. Владелец: Chugoku Electric Power Co Inc. Дата публикации: 2008-10-28.

Method for detecting abnormality occurred in exhaust gas clarification device

Номер патента: EP1801375A4. Автор: Ichiro Tsumagari. Владелец: HINO MOTORS LTD. Дата публикации: 2007-12-05.

Method for removing sulfur dioxide from exhaust gas

Номер патента: CA1031137A. Автор: Tetsuya Watanabe,Kenji Kodama,Tamotsu Miyamori,Koji Konno,Shigeru Saitoh,Kunihide Yaguchi. Владелец: Kureha Corp. Дата публикации: 1978-05-16.

Method for removing nitrogen oxides in exhaust gas

Номер патента: WO1998046334A1. Автор: Yoichi Mori,Kiyomi Arakawa. Владелец: EBARA CORPORATION. Дата публикации: 1998-10-22.

SYSTEMS AND METHOD FOR THE DIFFERENTIATED HEATING OF EXHAUST GAS CATALYSTS

Номер патента: DE102016102356A1. Автор: Devesh Upadhyay. Владелец: FORD GLOBAL TECHNOLOGIES LLC. Дата публикации: 2016-09-01.

Catalytic method for reducing nitrogen oxides in exhaust gas, and composition of the reducing agent

Номер патента: NO20053881D0. Автор: Timo Nissinen,Jari Kukkonen. Владелец: KEMIRA OYJ. Дата публикации: 2005-08-18.

Method for removing nitrogen oxide from exhaust gas in combustion furnaces

Номер патента: EP1834688A1. Автор: Dieter Dr. Kaufmann,Nicole Dr. Schödel,Franz Beran,Gerhard Dr. Merz. Владелец: Linde GmbH. Дата публикации: 2007-09-19.

METHOD FOR REMOVING POLLUTIONS FROM HOT EXHAUST GAS

Номер патента: DE2536068A1. Автор: Ohio Cincinnati,Raphael Katzen,Allan E Hokanson,Edward F Button. Владелец: DEUTSCHE ITT INDUSTRIESGESELLSCHAFT MBH. Дата публикации: 1976-03-04.

Catalyst carrier particles, method for producing the same, and exhaust gas purification catalyst

Номер патента: JP4265626B2. Автор: 伸一 竹島,亮 清山. Владелец: Toyota Motor Corp. Дата публикации: 2009-05-20.

Method for the aftertreatment of the exhaust gas of an internal combustion engine

Номер патента: EP2294293B1. Автор: Rainer Haeberer,Manfred Fritz. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2012-12-05.

System and method for nitrogen oxides from vehicle exhaust gas

Номер патента: AU2003222118A1. Автор: Brad Adelman,Per Gosta Edvin Andersson. Владелец: Ricardo Inc. Дата публикации: 2003-10-13.

Apparatus and method for exhaust gas pollution reduction

Номер патента: AU2023209832A1. Автор: John Gage,Norman DRIVERS. Владелец: Mercury Capture Intellectual Property Llc. Дата публикации: 2024-09-12.

Apparatus and method for exhaust gas pollution reduction

Номер патента: WO2023141362A1. Автор: John Gage,Norman DRIVERS. Владелец: Mercury Capture Intellectual Property, Llc. Дата публикации: 2023-07-27.

Apparatus and method for exhaust gas pollution reduction

Номер патента: US20230233992A1. Автор: John Gage,Norman Divers. Владелец: Mercury Capture Intellectual Property Llc. Дата публикации: 2023-07-27.

Method for treating exhaust gas

Номер патента: CA1289728C. Автор: Yukio Iida,Mitsuhiro Horaguchi,Joji Tonomura,Shigechika Tomisawa. Владелец: Mitsubishi Heavy Industries Ltd. Дата публикации: 1991-10-01.

Method and apparatus for treating exhaust gas

Номер патента: EP1610883A1. Автор: Yasuhiko Suzuki,Yoichi Mori,Toyoji Shinohara. Владелец: Ebara Corp. Дата публикации: 2006-01-04.

Hybrid-type apparatus for treating exhaust gas having a condenser

Номер патента: WO2006118369A1. Автор: Hern Kim,In Seob Lee,Mi Hye Yang. Владелец: Dai Sung Engineering Environment Co., Ltd.. Дата публикации: 2006-11-09.

Method and apparatus for treating exhaust gas

Номер патента: US11731079B2. Автор: Jun Choi,Su Han Kim,Hyun Woo Kang,Kyoung Hye Kim. Владелец: Kia Corp. Дата публикации: 2023-08-22.

Method and apparatus for treating exhaust gas

Номер патента: US20230211285A1. Автор: Jun Choi,Su Han Kim,Hyun Woo Kang,Kyoung Hye Kim. Владелец: Kia Corp. Дата публикации: 2023-07-06.

Zoned catalyst for treating exhaust gas

Номер патента: US09579603B2. Автор: Andrew Newman,Gudmund Smedler,Olivier Sonntag,Tim GENSCHOW,Isabel Zoe Tingay. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2017-02-28.

Gas Analyzer and Method for Measuring Nitrogen Oxides in an Exhaust Gas

Номер патента: US20190317067A1. Автор: Camiel Heffels,Daniel Roßfeld. Владелец: SIEMENS AG. Дата публикации: 2019-10-17.

Exhaust gas treatment system and method

Номер патента: WO2023199117A1. Автор: Barry BEDNAR,Sander CASTEL,Elwin KONING. Владелец: Sodaflexx Distribution LLP. Дата публикации: 2023-10-19.

Method and apparatus for treating exhaust gas

Номер патента: US20140075920A1. Автор: Satoru Sugita. Владелец: Mitsubishi Heavy Industries Ltd. Дата публикации: 2014-03-20.

A catalyst for treating exhaust gas of diesel lng dual fuel vehicles

Номер патента: WO2009057961A3. Автор: Seung-Hoon Oh,Yong-Woo Kim,Seongho Lee,Hong-Seok Jung. Владелец: Hong-Seok Jung. Дата публикации: 2009-08-06.

Lead-tolerant catalyst system and method for treating exhaust gas containing lead compounds

Номер патента: US4702897A. Автор: Isik Onal. Владелец: Signal Applied Technologies Inc. Дата публикации: 1987-10-27.

Method and device for treating exhaust gases

Номер патента: US09897382B2. Автор: Bernd VON DER HEIDE. Владелец: Mehidau & Steinfath Umwelttechnik GmbH. Дата публикации: 2018-02-20.

Compositions and methods for treating exhaust gases

Номер патента: US7833932B1. Автор: Kozo Iida,Chris E. DiFrancesco. Владелец: Cormetech Inc. Дата публикации: 2010-11-16.

Compositions and methods for treating exhaust gases

Номер патента: CA2659740C. Автор: Kozo Iida,Chris E. DiFrancesco. Владелец: Cormetech Inc. Дата публикации: 2016-05-03.

Exhaust gas treatment system and method

Номер патента: US20230338897A1. Автор: Barry BEDNAR,Sander CASTEL,Elwin KONING. Владелец: Sodaflexx Distribution LLP. Дата публикации: 2023-10-26.

Systems and methods for purifying exhaust gas emission from fuel reforming device

Номер патента: US20020031453A1. Автор: Shigeru Ogino. Владелец: Toyota Motor Corp. Дата публикации: 2002-03-14.

Catalyzed filter for treating exhaust gas

Номер патента: US09687786B2. Автор: Debnath DE,Wendy MANNING,Hai-Ying Chen,Julian Peter Cox. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2017-06-27.

Catalyzed filter for treating exhaust gas

Номер патента: US09687785B2. Автор: Debnath DE,Wendy MANNING,Hai-Ying Chen,Julian Peter Cox. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2017-06-27.

Method for clarifying exhaust gas

Номер патента: US20050201915A1. Автор: Kenji Ohtsuka,Satoshi Arakawa,Koshi Ochi. Владелец: Japan Pionics Ltd. Дата публикации: 2005-09-15.

Manganese-containing catalytic articles, exhaust gas treatment systems, and methods

Номер патента: EP4452481A1. Автор: Shiang Sung,Jeffrey B. Hoke. Владелец: BASF Corp. Дата публикации: 2024-10-30.

Exhaust gas purification apparatus for motor vehicles

Номер патента: US4301652A. Автор: Kathuharu Sohda,Shojiro Sohda,Keiko Sohda. Владелец: Individual. Дата публикации: 1981-11-24.

Method of treating exhaust gas discharged from nitric acid plant

Номер патента: US4115516A. Автор: Yukio Takigawa,Shingo Abe,Toshinori Tsutsumi,Koichi Takami,Yoshio Kinsho. Владелец: Mitsubishi Kasei Corp. Дата публикации: 1978-09-19.

PGM catalyst for treating exhaust gas

Номер патента: US09751080B2. Автор: Paul Joseph Andersen,Hai-Ying Chen,Joseph Michael Fedeyko. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2017-09-05.

Device and method for treating cement kiln exhaust gas

Номер патента: TW201002413A. Автор: Hajime Wada,Shinichiro Saito,Jun-Ichi Terasaki. Владелец: Taiheiyo Cement Corp. Дата публикации: 2010-01-16.

Process and apparatus for treating contaminated gas

Номер патента: US20020176808A1. Автор: Ching-Chih Lai,Shu-Sung Lin. Владелец: Industrial Technology Research Institute ITRI. Дата публикации: 2002-11-28.

Apparatus and method for treating mixed acid exhaust gas

Номер патента: KR100817303B1. Автор: 박재경. Владелец: (주)플라즈마텍. Дата публикации: 2008-03-27.

Exhaust gas purification filter, and method for producing same

Номер патента: US20130171036A1. Автор: Masaaki Fukuda,Hiroyoshi Mori,Takahiro Mishima,Sachio Fukuoka. Владелец: Otsuka Chemical Co Ltd. Дата публикации: 2013-07-04.

Method and apparatus for treating power plant exhaust gas of fossil fuel* especially coal

Номер патента: JPS5345669A. Автор: Gorutoshiyumitsuto Kurausu,Shiyuteeru Manfureeto. Владелец: Steag GmbH. Дата публикации: 1978-04-24.

METHOD FOR PRODUCING A GASOLINE ENGINE EXHAUST GAS SYSTEM HAVING A PARTICULATE FILTER, AND EXHAUST GAS SYSTEM OF A GASOLINE ENGINE

Номер патента: US20180298799A1. Автор: Wessels Michael. Владелец: . Дата публикации: 2018-10-18.

Method for preparing catalyst composition for exhaust gas after-treatment

Номер патента: US9981250B2. Автор: Marcus Bonifer,Ansgar Wille,Martina KEMMER. Владелец: Heraeus Deutschland GmbH and Co KG. Дата публикации: 2018-05-29.

Method for the operation of an exhaust gas aftertreatment system

Номер патента: US20170096921A1. Автор: Dieter Rothe,Florian Lutz. Владелец: MAN Truck and Bus SE. Дата публикации: 2017-04-06.

SYSTEMS AND METHODS FOR REMOVING PARTICULATE MATTER FROM EXHAUST GAS STREAMS

Номер патента: US20150251121A1. Автор: Mukherji Parthosarothy K.. Владелец: . Дата публикации: 2015-09-10.

CATALYST AND METHOD FOR REMOVING NOX FROM COMBUSTION EXHAUST GAS

Номер патента: US20190314789A1. Автор: Masuda Tomotsugu,NOCHI Katsumi,Higashino Koji. Владелец: Mitsubishi Hitachi Power Systems, Ltd.. Дата публикации: 2019-10-17.

Method for the operation of an exhaust gas aftertreatment system

Номер патента: KR20170039579A. Автор: 플로리안 루츠,디터 로테. Владелец: 만 트럭 운트 버스 악티엔게젤샤프트. Дата публикации: 2017-04-11.

Honeycomb structural body, method for manufacturing the same, and exhaust gas purification filter

Номер патента: US10905992B2. Автор: Hirokatsu Imagawa,Hironori Niwa. Владелец: Denso Corp. Дата публикации: 2021-02-02.

Method for the treatment of an exhaust gas and an hvac system

Номер патента: US20230074001A1. Автор: Silvia Alcove Clave,Joseph Fedeyko,Kevin Doura. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2023-03-09.

Zoned catalyst for treating exhaust gas

Номер патента: US09597636B2. Автор: Andrew Newman,Gudmund Smedler,Olivier Sonntag,Tim GENSCHOW,Isabel Zoe Tingay. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2017-03-21.

Apparatus and method for treating exhaust gas

Номер патента: US09375667B2. Автор: Naiyang Ma. Владелец: ARCELORMITTAL INVESTIGACIÓN Y DESARROLLO SL. Дата публикации: 2016-06-28.

Method for treating air contaminants in exhaust gas

Номер патента: US09849422B1. Автор: II Dorian Francis Corliss. Владелец: Powercell Controltek LLC. Дата публикации: 2017-12-26.

Exhaust gas catalyst and catalyst binders for filter substrates

Номер патента: EP3487604A1. Автор: Paul Phillips,Alexander Green,David MARVELL,Guy Chandler,Keith Flanagan. Владелец: JOHNSON MATTHEY PLC. Дата публикации: 2019-05-29.

Methods and apparatus for treating exhaust gas in a processing system

Номер патента: US09597634B2. Автор: Daniel O. Clark,Colin John Dickinson,Mehran Moalem. Владелец: Applied Materials Inc. Дата публикации: 2017-03-21.

Method For Treating An Exhaust Gas

Номер патента: US20170284252A1. Автор: II Dorian Francis Corliss. Владелец: Individual. Дата публикации: 2017-10-05.

Method for reducing exhaust carbon dioxide

Номер патента: US20070154380A1. Автор: Makoto Kato,Haruyoshi Tanabe,Tatsuhito Takahashi,Tsuneo Isoo. Владелец: JFE Steel Corp. Дата публикации: 2007-07-05.

Method for treating an exhaust gas

Номер патента: US09816417B2. Автор: II Dorian Francis Corliss. Владелец: Powercell Controltek LLC. Дата публикации: 2017-11-14.

Apparatus and method for treating exhaust gas

Номер патента: CA2791007C. Автор: Naiyang Ma. Владелец: ARCELORMITTAL INVESTIGACIÓN Y DESARROLLO SL. Дата публикации: 2018-03-13.

Zoned catalyst for treating exhaust gas

Номер патента: WO2016020806A1. Автор: Andrew Newman,Gudmund Smedler,Isabel Tingay,Olivier Sonntag,Tim GENSCHOW. Владелец: JOHNSON MATTHEY PUBLIC LIMITED COMPANY. Дата публикации: 2016-02-11.

Apparatus and method for treating exhaust gas

Номер патента: WO2011106012A1. Автор: Naiyang Ma. Владелец: ARCELORMITTAL INVESTIGACION Y DESARROLLO, S.L.. Дата публикации: 2011-09-01.

Apparatus and method for treating exhaust gas

Номер патента: US20140174299A1. Автор: Naiyang Ma. Владелец: ARCELORMITTAL INVESTIGACIÓN Y DESARROLLO SL. Дата публикации: 2014-06-26.

Apparatus and method for treating exhaust gas

Номер патента: US20130160646A1. Автор: Naiyang Ma. Владелец: ARCELORMITTAL INVESTIGACIÓN Y DESARROLLO SL. Дата публикации: 2013-06-27.

System and method for adaptive aftertreatment control of NOx

Номер патента: US09695727B2. Автор: Taner Tuken,Robert J. Iverson. Владелец: Deere and Co. Дата публикации: 2017-07-04.

A catalyst for treating exhaust gas of natural gas vehicles

Номер патента: WO2009057959A2. Автор: Seung-Hoon Oh,Yong-Woo Kim,Seongho Lee,Hong-Seok Jung. Владелец: SK ENERGY CO., LTD.. Дата публикации: 2009-05-07.

Scrubber for treating exhaust gas from biomass combustion

Номер патента: CA3108147C. Автор: Raymond Dueck. Владелец: Individual. Дата публикации: 2023-05-09.

System for removing particulate matter from biomass combustion exhaust gas comprising gas cyclones and baghouses

Номер патента: CA3112738C. Автор: David Maendel. Владелец: Triple Green Products Inc. Дата публикации: 2024-01-16.

Catalytic oxidation of carbon black exhaust gas

Номер патента: US20230226489A1. Автор: Mads Lykke,Gordon R. REYNOLDS, JR.. Владелец: Haldor Topsoe AS. Дата публикации: 2023-07-20.

Method and apparatus for treating exhaust gases from CVD, PECVD or plasma etch reactors

Номер патента: US5928426A. Автор: Kenneth Allen Aitchison. Владелец: Novellus Systems Inc. Дата публикации: 1999-07-27.

METHOD FOR REMOVING SOx FROM EXHAUST GASES EMITTED FROM A STEAM BOILER

Номер патента: RU2604746C2. Автор: Петер ШОУБИЕ. Владелец: ХАЛЬДОР ТОПСЕЭ А/С. Дата публикации: 2016-12-10.

Method for combined production of urea and urea-ammonium nitrate

Номер патента: RU2739768C2. Автор: Лука РУНЬОНЕ. Владелец: Касале Са. Дата публикации: 2020-12-28.

Method for treating silicate mineral

Номер патента: RU2654983C2. Автор: Эллис ГАРТНЕР,Александер ПИШ,Венсан МЕЙЕР. Владелец: Лафарж. Дата публикации: 2018-05-23.

System and method for treating a fluid

Номер патента: US20240066457A1. Автор: Kasper Gram Bilde. Владелец: ALFA LAVAL CORPORATE AB. Дата публикации: 2024-02-29.

Exhaust gas and reductant mixer for an aftertreatment system

Номер патента: US11761365B2. Автор: Niklas Schmidt,Z. Gerald Liu,Apoorv KALYANKAR,Achuth MANNANNUR. Владелец: Cummins Inc. Дата публикации: 2023-09-19.

Exhaust gas and reductant mixer for an aftertreatment system

Номер патента: GB2607398A. Автор: Kalyankar Apoorv,Munnannur Achuth,Schmidt Niklas,gerald liu Z. Владелец: Cummins Inc. Дата публикации: 2022-12-07.

Apparatus, system, and method for oxidizing methane in a lean-burn engine exhaust

Номер патента: US20220090528A1. Автор: Tracy D. Staller,Steven G. DeCicco. Владелец: Miratech Group LLC. Дата публикации: 2022-03-24.

Method for producing catalyst carrier for exhaust gas purification

Номер патента: JP5872179B2. Автор: 慎太郎 八木,翔 谷口,鈴木 涼,涼 鈴木,祐介 小縣. Владелец: FCC KK. Дата публикации: 2016-03-01.

METHOD FOR THE MANUFACTURE OF A UREA-BASED PARTICULATE MATERIAL CONTAINING ELEMENTAL SULPHUR

Номер патента: US20200062665A1. Автор: LEDOUX Francois,Colpaert Filip. Владелец: Yara International ASA. Дата публикации: 2020-02-27.

Method for the manufacture of a urea-based particulate material containing elemental sulphur

Номер патента: US20180179115A1. Автор: Francois Ledoux,Filip COLPAERT. Владелец: Yara International ASA. Дата публикации: 2018-06-28.

METHOD FOR THE MANUFACTURE OF A UREA-BASED PARTICULATE MATERIAL CONTAINING ELEMENTAL SULPHUR

Номер патента: US20210214281A1. Автор: LEDOUX Francois,Colpaert Filip. Владелец: Yara International ASA. Дата публикации: 2021-07-15.

Method for the manufacture of a urea-based particulate material containing elemental sulphur

Номер патента: EP3319926A1. Автор: Francois Ledoux,Filip COLPAERT. Владелец: Yara International ASA. Дата публикации: 2018-05-16.

Method for the manufacture of a urea-based particulate material containing elemental sulphur

Номер патента: WO2017005695A1. Автор: Francois Ledoux,Filip COLPAERT. Владелец: Yara International ASA. Дата публикации: 2017-01-12.

Honeycomb structure, method for manufacturing honeycomb structure, and exhaust gas purifying apparatus

Номер патента: US20080241012A1. Автор: Kazushige Ohno,Akihiro Ohira. Владелец: Ibiden Co Ltd. Дата публикации: 2008-10-02.

Method for the manufacture of a urea-based particulate material containing elemental sulphur

Номер патента: AU2016289420A1. Автор: Francois Ledoux,Filip COLPAERT. Владелец: Yara International ASA. Дата публикации: 2018-01-18.

Method for the manufacture of a urea-based particulate material containing elemental sulphur

Номер патента: IL256453B. Автор: . Владелец: Yara Int Asa. Дата публикации: 2022-04-01.

Device for treating exhaust gas from fuel cell

Номер патента: US20240266569A1. Автор: Sang Kyu Lee. Владелец: Kia Corp. Дата публикации: 2024-08-08.

Device for treating exhaust gas from fuel cell

Номер патента: US12003009B2. Автор: Sang Kyu Lee. Владелец: Kia Corp. Дата публикации: 2024-06-04.

Apparatus and method for destructive removal of particles contained in flowing fluid

Номер патента: US4376637A. Автор: Lien C. Yang. Владелец: California Institute of Technology CalTech. Дата публикации: 1983-03-15.

SYSTEMS AND METHODS FOR IDENTIFYING A STUCK OPEN EXHAUST GAS RECIRCULATION VALVE

Номер патента: US20190032590A1. Автор: Conis Peter. Владелец: . Дата публикации: 2019-01-31.

SYSTEM AND METHOD FOR SUPPLYING HEAT TO AN EXHAUST GAS AFTER-TREATMENT SYSTEM OF A PLUG-IN HYBRID ELECTRIC VEHICLE

Номер патента: US20200070668A1. Автор: Langer Ingmar,Schreiber Michael. Владелец: . Дата публикации: 2020-03-05.

Method for the Quality Assurance of Exhaust Gas Behavior in a Motor Vehicle

Номер патента: US20180326972A1. Автор: RANSBERGER Marinus,FLENKER Christian,GARCON Christian. Владелец: . Дата публикации: 2018-11-15.

Method for filling, cleaning and emptying large volume gas containers, especially airships

Номер патента: WO2001005653A1. Автор: Diethard Sillat,Thomas C. Sauer. Владелец: Flytex. Дата публикации: 2001-01-25.

Holding seal material, manufacturing method for holding seal material and exhaust gas purification apparatus

Номер патента: EP2789821A1. Автор: Daisuke Suzuki. Владелец: Ibiden Co Ltd. Дата публикации: 2014-10-15.

Mat, method for producing the mat, snd exhaust gas purifying apparatus

Номер патента: CN102251840A. Автор: 辻浩光. Владелец: Ibiden Co Ltd. Дата публикации: 2011-11-23.

System and method for treating gas turbine exhaust gas

Номер патента: US12031468B2. Автор: Piero Scapini,Glen L. Bostick,Nathan Ross,Shaun P. HENNESSEY. Владелец: Nooter Eriksen Inc. Дата публикации: 2024-07-09.

Method for diagnosing motor vehicle partial exhaust gas recirculation system

Номер патента: RU2700175C2. Автор: Людовик МАРТЕН. Владелец: Рено С.А.С.. Дата публикации: 2019-09-13.

System and method for treating gas turbine exhaust gas

Номер патента: US20230332526A1. Автор: Piero Scapini,Glen L. Bostick,Nathan Ross,Shaun P. HENNESSEY. Владелец: Nooter Eriksen Inc. Дата публикации: 2023-10-19.

System and method for treating gas turbine exhaust gas

Номер патента: US20230332529A1. Автор: Glen L. Bostick,Nathan Ross,Shaun P. HENNESSEY. Владелец: Nooter Eriksen Inc. Дата публикации: 2023-10-19.

Method for determining bearing play of exhaust-gas-turbocharger friction bearings

Номер патента: US20120197579A1. Автор: Norbert Walter,André Seiler. Владелец: BorgWarner Inc. Дата публикации: 2012-08-02.

Apparatus and Method for Heating a Device for Exhaust Gas After-Treatment

Номер патента: US20200332695A1. Автор: Rolf Bruck. Владелец: Vitesco Technologies GmbH. Дата публикации: 2020-10-22.

Method for injecting reductant into an exhaust gas of an engine using an oscillating supply pressures

Номер патента: US09765669B2. Автор: Scott A Chase,Josh C Schmitt. Владелец: Deere and Co. Дата публикации: 2017-09-19.

Inductively heatable ceramic body, method for manufacturing a ceramic body, exhaust gas purification device and vehicle

Номер патента: US20210071560A1. Автор: Ekkehard Pott. Владелец: VOLKSWAGEN AG. Дата публикации: 2021-03-11.

A method for detecting leakage in an exhaust gas recirculation arrangement

Номер патента: SE1550889A1. Автор: Forslund Anders. Владелец: SCANIA CV AB. Дата публикации: 2016-12-27.

A method for detecting leakage in an exhaust gas recirculation arrangement

Номер патента: SE539413C2. Автор: Forslund Anders. Владелец: SCANIA CV AB. Дата публикации: 2017-09-19.

System, apparatus, and method for protection and cleaning of exhaust gas sensors

Номер патента: US20210079829A1. Автор: Shu Li,Ganesh Raghunath. Владелец: Cummins Inc. Дата публикации: 2021-03-18.

System and method for purging fuel vapors using exhaust gas

Номер патента: US7331334B2. Автор: Ralph Wayne Cunningham,Thomas Leone. Владелец: FORD GLOBAL TECHNOLOGIES LLC. Дата публикации: 2008-02-19.

Method for recovering energy possessed by exhaust gas from blast furnace

Номер патента: US4163364A. Автор: Takeshi Shirato,Kiyomi Teshima. Владелец: Mitsui Engineering and Shipbuilding Co Ltd. Дата публикации: 1979-08-07.

Method for reducing pollutants in the exhaust gas of a multi-cylinder internal combustion engine

Номер патента: US5661971A. Автор: Wolfgang Wehling,Uwe Waschatz. Владелец: VOLKSWAGEN AG. Дата публикации: 1997-09-02.

Method for determining when to regenerate exhaust gas particulate filters

Номер патента: EP2401488A1. Автор: Jacob George,Uta-Barbara Goers,Natarajan Gunasekaran,Gary G. Squier. Владелец: Corning Inc. Дата публикации: 2012-01-04.

Method for Injecting Reductant into an Exhaust Gas of an Engine Using an Oscillating Supply Pressures

Номер патента: US20170089243A1. Автор: Josh C. Schmitt,Scott A. Chase. Владелец: Deere and Co. Дата публикации: 2017-03-30.

Method for distinguishing an arc from a luminous gas containing at least metal vapor

Номер патента: US20170279260A1. Автор: Wolfgang Hauer,Michael Bartonek. Владелец: Eaton Industries Austria GmbH. Дата публикации: 2017-09-28.

Method for separating zinc out of a hot gas containing zinc vapour

Номер патента: US4876074A. Автор: Bengt O. Gustafsson,Nils B. Johansson. Владелец: SKF Plasma Technologies AB. Дата публикации: 1989-10-24.

Device and method for treating an exhaust gas containing particles

Номер патента: US09657617B2. Автор: Jan Hodgson,Christian Vorsmann. Владелец: Continental Automotive GmbH. Дата публикации: 2017-05-23.

Method for operating a hybrid vehicle

Номер патента: US20190152467A1. Автор: Henrik Olsson,Andreas CARLÉN,Erik Lauri,Patrice Keghelian,Gabriel NAPADOW. Владелец: Volvo Truck Corp. Дата публикации: 2019-05-23.

Method for treating titanium-containing feedstock

Номер патента: RU2660029C2. Автор: Мацухиде ХОРИКАВА,Эиити ФУКАСАВА. Владелец: Тохо Титаниум Ко., Лтд.. Дата публикации: 2018-07-04.

Substrate treating method for treating substrates with treating liquids

Номер патента: US09437464B2. Автор: Toyohide Hayashi. Владелец: Screen Holdings Co Ltd. Дата публикации: 2016-09-06.

Method and apparatus for determining efficiency of exhaust gas purifying device

Номер патента: RU2672546C2. Автор: Андреас ПФАФФИНГЕР. Владелец: Ман Трак Унд Бас Аг. Дата публикации: 2018-11-15.

Apparatus and method for dryer performance optimization system

Номер патента: US20140373385A1. Автор: Malcolm L. Swanson. Владелец: Astec Inc. Дата публикации: 2014-12-25.

Antimicrobial peptides and use of the same for treating microbial infections

Номер патента: US20240182527A1. Автор: Yu-Ren Chen,Chin-Hao Yang,Je-Wen Liou. Владелец: TZU CHI UNIVERSITY. Дата публикации: 2024-06-06.

Antimicrobial peptides and use of the same for treating microbial infections

Номер патента: US12129279B2. Автор: Yu-Ren Chen,Chin-Hao Yang,Je-Wen Liou. Владелец: Tzu Chi Univ. Дата публикации: 2024-10-29.

Removal of pollutants from exhaust gas of internal combustion engines

Номер патента: GB1416382A. Автор: . Владелец: Exxon Research and Engineering Co. Дата публикации: 1975-12-03.

Diamond substrate and method for manufacturing the same

Номер патента: US11753740B2. Автор: Hitoshi Noguchi,Norio Tokuda,Tsubasa MATSUMOTO. Владелец: Kanazawa University NUC. Дата публикации: 2023-09-12.

System and method for insulating components in an exhaust gas flow from a gas turbine

Номер патента: EP4249733A1. Автор: Robert Jamiolkowski,Adam Wisniewski,Damian Wolff. Владелец: General Electric Co. Дата публикации: 2023-09-27.

System and method for insulating components in an exhaust gas flow from a gas turbine

Номер патента: US20230296055A1. Автор: Robert Jamiolkowski,Adam Wisniewski,Damian Wolff. Владелец: General Electric Co. Дата публикации: 2023-09-21.

METHOD FOR MONITORING AND REGULATING THE EXHAUST GAS TREATMENT SYSTEM

Номер патента: RU2013139344A. Автор: Микаэль ЭДСТАМ. Владелец: Сканиа Св Аб. Дата публикации: 2015-03-10.

Method for treating kidney disorders

Номер патента: US20030124093A1. Автор: Uwe Rothenpieler,Michael Imgrund. Владелец: Individual. Дата публикации: 2003-07-03.

Method and device for diagnosing and for calibrating an exhaust gas sensor

Номер патента: US20180100462A1. Автор: Johannes Rausing,Johannes Neukam. Владелец: Audi AG. Дата публикации: 2018-04-12.

Method for estimating water content, and estimation device

Номер патента: US11092336B2. Автор: Yotaro Murakami. Владелец: Denso Wave Inc. Дата публикации: 2021-08-17.

Method and device for diagnosing and for calibrating an exhaust gas sensor

Номер патента: US10539088B2. Автор: Johannes Rausing,Johannes Neukam. Владелец: Audi AG. Дата публикации: 2020-01-21.

Method for estimating water content, and estimation device

Номер патента: US20200088406A1. Автор: Yotaro Murakami. Владелец: Denso Wave Inc. Дата публикации: 2020-03-19.

Method for controlling the filling process of pressurised-gas containers

Номер патента: SK27098A3. Автор: Werner Hermeling. Владелец: Messer Griesheim GmbH. Дата публикации: 1998-11-04.

Method for determining loss of gas in gas container

Номер патента: US20210025549A1. Автор: Nam Goo KANG,Sang Hyub OH. Владелец: Korea Research Institute of Standards and Science KRISS. Дата публикации: 2021-01-28.

Method for determining loss of gas in gas container

Номер патента: US11105470B2. Автор: Nam Goo KANG,Sang Hyub OH. Владелец: Korea Research Institute of Standards and Science KRISS. Дата публикации: 2021-08-31.

DEVICE FOR TREATING GAS ENGINE EXHAUST GAS WITH PARTICLE FILTER, EXHAUST LINE AND CORRESPONDING VEHICLE

Номер патента: FR2966870A1. Автор: Gabriel Crehan. Владелец: PEUGEOT CITROEN AUTOMOBILES SA. Дата публикации: 2012-05-04.

Exhaust gas recirculation system leak diagnostics using upstream and downstream oxygen sensors

Номер патента: US20190331068A1. Автор: Lurun Zhong,Tamer Badawy,Kaustabh Pethe. Владелец: FCA US LLC. Дата публикации: 2019-10-31.

Method for monitoring an emission level in a vehicle

Номер патента: US11913364B2. Автор: Timm Hollmann,Jurij Woelfling,Roberto Verrino. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2024-02-27.

Method for monitoring an emission level in a vehicle

Номер патента: US20230024848A1. Автор: Timm Hollmann,Jurij Woelfling,Roberto Verrino. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2023-01-26.

Method and apparatus for treating dust in exhaust gas from cement kiln

Номер патента: JP3616165B2. Автор: 哲雄 大桐,泰史 山本,良彦 宮部. Владелец: Taiheiyo Cement Corp. Дата публикации: 2005-02-02.

Method and apparatus for treating N2O-containing exhaust gas

Номер патента: JP4629967B2. Автор: 啓志 今村,達郎 別府. Владелец: Kanken Techno Co Ltd. Дата публикации: 2011-02-09.

APPARATUSES AND METHODS FOR GENERATING CARBON PARTICLES AND EXHAUST GAS USED BY GAS TURBINE SYSTEMS

Номер патента: US20210095594A1. Автор: Berry Jonathan Dwight. Владелец: . Дата публикации: 2021-04-01.

Apparatuses and methods for generating carbon particles and exhaust gas used by gas turbine systems

Номер патента: US11181043B2. Автор: Jonathan Dwight Berry. Владелец: General Electric Co. Дата публикации: 2021-11-23.

EXHAUST GAS RECIRCULATION DEVICE AND METHOD FOR THE USE OF THE EXHAUST GAS RECIRCULATION DEVICE

Номер патента: FR2875274B1. Автор: Werner Aberle. Владелец: VOLKSWAGEN AG. Дата публикации: 2010-06-04.

METHOD FOR THE DIAGNOSIS OF AN EXHAUST GAS AFTERTREATMENT SYSTEM FOR AN INTERNAL COMBUSTION ENGINE

Номер патента: US20170248059A1. Автор: Pfister Tobias,Franz Alexander,Nagel Cornelia. Владелец: . Дата публикации: 2017-08-31.

METHOD FOR THE PRODUCTION OF AN EXHAUST-GAS ROUTING DEVICE FOR A MOTOR VEHICLE

Номер патента: US20190301345A1. Автор: Stiglmair Manfred,Zipfel Toni,Herbers Claudia. Владелец: . Дата публикации: 2019-10-03.

Apparatus and Method for Heating a Device for Exhaust Gas After-Treatment

Номер патента: US20200332695A1. Автор: BRÜCK Rolf. Владелец: . Дата публикации: 2020-10-22.

Method for cleaning heat exchangers for exhaust gas from engines

Номер патента: EP0126737B1. Автор: Jan Kramb. Владелец: KRAMB MOTHERMIK KG. Дата публикации: 1986-09-03.

Method for producing catalyst for purifying exhaust gas of engine

Номер патента: JP3596026B2. Автор: 啓司 山田,敏嗣 上岡,智士 市川,康人 渡辺. Владелец: Mazda Motor Corp. Дата публикации: 2004-12-02.

Particle sensor, exhaust system and method for determining particles in the exhaust gas

Номер патента: US20120186329A1. Автор: Yasser M. Yacoub,Guido Havenith. Владелец: FORD GLOBAL TECHNOLOGIES LLC. Дата публикации: 2012-07-26.

SYSTEM, APPARATUS, AND METHOD FOR PROTECTION AND CLEANING OF EXHAUST GAS SENSORS

Номер патента: US20210079829A1. Автор: Li Shu,Raghunath Ganesh. Владелец: . Дата публикации: 2021-03-18.

Method for Injecting Reductant into an Exhaust Gas of an Engine Using an Oscillating Supply Pressures

Номер патента: US20170089243A1. Автор: Chase Scott A.,Schmitt Josh C.. Владелец: . Дата публикации: 2017-03-30.

Method for Injecting Reductant into an Exhaust Gas of an Engine

Номер патента: US20170089244A1. Автор: Josh Schmitt C.,Scott Chase A.,Taner Tuken. Владелец: . Дата публикации: 2017-03-30.

METHOD FOR CONTROLLING AN ELECTRICALLY SUPPORTED EXHAUST GAS TURBOCHARGER

Номер патента: US20210102545A1. Автор: Weigand Rainer. Владелец: . Дата публикации: 2021-04-08.

SYSTEMS AND METHODS FOR PREVENTING THERMAL SPIKES AT EXHAUST GAS CATALYSTS

Номер патента: US20200200109A1. Автор: Phillips John D.. Владелец: . Дата публикации: 2020-06-25.

PARTICLE SENSOR, EXHAUST SYSTEM AND METHOD FOR DETERMINING PARTICLES IN THE EXHAUST GAS

Номер патента: US20150260630A1. Автор: Yacoub Yasser Mohamed sayed,Schneider Matthew Allen. Владелец: . Дата публикации: 2015-09-17.

System and Method for the Conditioning of Recirculated Exhaust Gas

Номер патента: US20150275702A1. Автор: Urbanski Nicholas F.,Arlidge Jayne. Владелец: . Дата публикации: 2015-10-01.

Method for Monitoring at Least One Exhaust Gas Turbocharger

Номер патента: US20150275753A1. Автор: Strasser Christian,Teichmann Rüdiger,PFISTER CHRISTOPH,MOHR HINRICH,GUTSCHI WILHELM. Владелец: AVL List GmbH. Дата публикации: 2015-10-01.

The control method for the purification performance of exhaust gas

Номер патента: KR101704270B1. Автор: 정진우. Владелец: 현대자동차주식회사. Дата публикации: 2017-02-07.

A system and method for high and low pressure exhaust gas recirculation control and estimation

Номер патента: GB0614900D0. Автор: . Владелец: FORD GLOBAL TECHNOLOGIES LLC. Дата публикации: 2006-09-06.

Particle sensor, exhaust system and method for determining particles in the exhaust gas

Номер патента: CN102606266A. Автор: Y·M·S·雅克布,M·A·施奈德. Владелец: FORD GLOBAL TECHNOLOGIES LLC. Дата публикации: 2012-07-25.

Method for examining the performance of exhaust gas catalyzer

Номер патента: EP0609527B1. Автор: Dietmar Schwarzenthal,Stephan Pelters. Владелец: Dr Ing HCF Porsche AG. Дата публикации: 1998-02-25.

Method for observing hydrogen concentration in exhaust gas

Номер патента: JPH10306312A. Автор: Yasuto Mizushima,康人 水嶋. Владелец: Kawasaki Steel Corp. Дата публикации: 1998-11-17.

Method for measuring caloric value of exhaust gas in a converter

Номер патента: KR100476810B1. Автор: 이상룡,김춘식,윤원규,이비호. Владелец: 주식회사 포스코. Дата публикации: 2005-03-18.

High temperature oxidation test method for heat-resisting material of exhaust gas system

Номер патента: KR100747170B1. Автор: 고세진. Владелец: 현대자동차주식회사. Дата публикации: 2007-08-07.

SYSTEM AND METHOD FOR CLEANING A DIESEL ENGINE EXHAUST GAS RECYCLING CIRCUIT

Номер патента: FR2880069B1. Автор: Sophie Schmidtlin,Valeri Claudio Malaguzzi. Владелец: RENAULT SAS. Дата публикации: 2007-04-20.

SYSTEM AND METHOD FOR MONITORING AND DIAGNOSING AN EXHAUST GAS RECIRCULATION SYSTEM

Номер патента: FR2917126B1. Автор: Laurent Fontvieille,Arnaud Guinois,Philippe Moulin,Ahmad Saab. Владелец: RENAULT SAS. Дата публикации: 2009-08-21.

Method for measuring flow rate of exhausted gas from converter

Номер патента: JPS59196424A. Автор: 明 山根,Akira Yamane. Владелец: Kawasaki Steel Corp. Дата публикации: 1984-11-07.

METHOD FOR DYNAMIC DIAGNOSIS OF AN EXHAUST GAS PROBE.

Номер патента: FR2906308A1. Автор: Andreas Koring. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2008-03-28.

Method for controlling an electrically assisted exhaust gas turbocharger

Номер патента: CN112696262A. Автор: R·维甘德. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2021-04-23.

Holding seal material, manufacturing method for holding seal material and exhaust gas purification apparatus

Номер патента: EP2789733B1. Автор: Daisuke Suzuki. Владелец: Ibiden Co Ltd. Дата публикации: 2015-11-18.

Method for measuring flow rate of exhaust gas from incinerator

Номер патента: JPS59218918A. Автор: Yoshinori Takada,Hiroshi Kudo,Kaoru Fukui,宏 工藤,馨 福井,高田 義憲. Владелец: Mitsui Zosen KK. Дата публикации: 1984-12-10.

Method for controlling a motor vehicle exhaust gas sensor

Номер патента: EP1119765B1. Автор: Frederic Aimard,Pierre Neyrat,Bernard Dionnet,Gabriel Col,Hugues Albouy. Владелец: RENAULT SAS. Дата публикации: 2011-04-27.

Device and method for controlling cooling fan of exhaust gas aftertreatment system

Номер патента: KR101664687B1. Автор: 김동혁. Владелец: 기아자동차주식회사. Дата публикации: 2016-10-10.

Device and method for active noise cancellation in exhaust gas channel of a combustion engine

Номер патента: US20090173568A1. Автор: Uwe Kassner. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2009-07-09.

Method for operating a thermal regenerative exhaust gas purification system

Номер патента: EP1906088A2. Автор: Matthias Hänel,Frank Barth. Владелец: KBA Metalprint GmbH and Co KG. Дата публикации: 2008-04-02.

Method for controlling an electrically assisted exhaust gas turbocharger

Номер патента: DE102019215310A1. Автор: Rainer Weigand. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2021-04-08.

Filter with catalyst, method for manufacturing the same, and exhaust gas purification system

Номер патента: JP4393039B2. Автор: 正明 小島,紀之 田岡,幸雄 押見. Владелец: Ibiden Co Ltd. Дата публикации: 2010-01-06.

Arrangement and method for mixing reducing agent with exhaust gas

Номер патента: EP2564042B1. Автор: Klaus Widjeskog,Jukka SADINMÄKI. Владелец: WÄRTSILÄ FINLAND OY. Дата публикации: 2015-07-01.

Method for adjusting a heating installation, exhaust gas measuring device and adjusting arrangement

Номер патента: EP3130852A1. Автор: Knut Hoyer. Владелец: Testo SE and Co KGaA. Дата публикации: 2017-02-15.

Method for particulate-matter measuring of exhaust gas and an apparatus therefor

Номер патента: EP1063516A3. Автор: Ichiro Asano,Hirokazu Fukushima. Владелец: Horiba Ltd. Дата публикации: 2003-12-10.

Method for recovering energy possessed by exhaust gas from blast furnace

Номер патента: ES466922A1. Автор: . Владелец: Mitsui Engineering and Shipbuilding Co Ltd. Дата публикации: 1978-10-01.

Method for adjusting a heating installation, exhaust gas measuring device and adjusting arrangement

Номер патента: EP3130852A8. Автор: Knut Hoyer. Владелец: Testo SE and Co KGaA. Дата публикации: 2017-05-10.

System and method for controlling the bypass of exhaust gas post-treatment device

Номер патента: CN108952910A. Автор: A·潘努兹奥,L·加蒂. Владелец: GM GLOBAL TECHNOLOGY OPERATIONS LLC. Дата публикации: 2018-12-07.

Method for controlling or regulating the exhaust gas flow of converters

Номер патента: FR1442772A. Автор: . Владелец: Beteiligungs und Patentverwaltungs GmbH. Дата публикации: 1966-06-17.

Method for manufacturing a motor vehicle exhaust gas purifying member

Номер патента: US8661672B2. Автор: Gerard Lerdung,Cyrille Cantele. Владелец: Faurecia Systemes dEchappement SAS. Дата публикации: 2014-03-04.

Device and method for measuring a plurality of exhaust gas constituents

Номер патента: US8221613B2. Автор: Bertrand Lemire. Владелец: Continental Automotive GmbH. Дата публикации: 2012-07-17.

System and method for purging fuel vapors using exhaust gas

Номер патента: US20070186910A1. Автор: Thomas Leone,Ralph Cunningham. Владелец: FORD GLOBAL TECHNOLOGIES LLC. Дата публикации: 2007-08-16.

Method for removing nitrogen oxides from exhaust gas and catalyst

Номер патента: JP2737441B2. Автор: 博史 川上,耿 張. Владелец: SUMITOMO METAL MINING CO LTD. Дата публикации: 1998-04-08.

Holding seal material, production method for holding seal material, and exhaust gas purification device

Номер патента: EP3051185A4. Автор: Takahiko Okabe,Keiji Kumano. Владелец: Ibiden Co Ltd. Дата публикации: 2017-06-07.

Holding seal material, production method for holding seal material, and exhaust gas purification device

Номер патента: EP3051185A8. Автор: Takahiko Okabe,Keiji Kumano. Владелец: Ibiden Co Ltd. Дата публикации: 2016-11-09.

METHOD FOR DISTINGUISHING AN ARC FROM A LUMINOUS GAS CONTAINING AT LEAST METAL VAPOR

Номер патента: US20190260195A1. Автор: BARTONEK Michael,Hauer Wolfgang. Владелец: . Дата публикации: 2019-08-22.

METHOD FOR DISTINGUISHING AN ARC FROM A LUMINOUS GAS CONTAINING AT LEAST METAL VAPOR

Номер патента: US20170279260A1. Автор: BARTONEK Michael,Hauer Wolfgang. Владелец: Eaton Industries (Austria) GmbH. Дата публикации: 2017-09-28.

METHOD FOR ASCERTAINING A PHYSICAL PARAMETER OF A GAS-CONTAINING LIQUID

Номер патента: US20200271494A1. Автор: RIEDER Alfred,ZHU Hao. Владелец: . Дата публикации: 2020-08-27.

METHOD FOR ESTIMATING A COMBUSTION CHARACTERISTIC OF A GAS CONTAINING DIHYDROGEN

Номер патента: FR3061302B1. Автор: Mathieu OURLIAC,Sandra CAPELA,Laurent Lantoine,Naushad MANJOO. Владелец: Engie SA. Дата публикации: 2019-05-31.

Method for distinguishing an arc from a luminous gas containing at least metal vapor

Номер патента: WO2016034712A1. Автор: Wolfgang Hauer,Michael Bartonek. Владелец: Eaton Industries (Austria) GmbH. Дата публикации: 2016-03-10.

Method and device for treating exhaust gas condensates of an internal combustion engine

Номер патента: US9217347B2. Автор: Peter Englert,Roger Gorges. Владелец: MAHLE International GmbH. Дата публикации: 2015-12-22.

Method and device for treating exhaust gas condensates of an internal combustion engine

Номер патента: US20140373509A1. Автор: Peter Englert,Roger Gorges. Владелец: Behr GmbH and Co KG. Дата публикации: 2014-12-25.

Method for treating exhaust gases of melamine production apparatus

Номер патента: RU2586702C2. Автор: Арне ШАДТ,Кристоф НОЙМЮЛЛЕР. Владелец: Касале Са. Дата публикации: 2016-06-10.

System and method for treating exhaust pipe

Номер патента: US20150118133A1. Автор: Said Zidat. Владелец: Scambia Holdings Cyprus Ltd. Дата публикации: 2015-04-30.

Apparatus for treating exhausted heating gas

Номер патента: EP1230516A1. Автор: Yeon Mook Choi. Владелец: Individual. Дата публикации: 2002-08-14.

Method for producing β-sialon fluorescent material

Номер патента: US10190044B2. Автор: Kenichi Aoyagi,Shoji Hosokawa,Takashi Kaide,Tadayoshi Yanagihara,Motoharu MORIKAWA. Владелец: Nichia Corp. Дата публикации: 2019-01-29.

Method for producing beta-sialon fluorescent material

Номер патента: US20170037311A1. Автор: Kenichi Aoyagi,Shoji Hosokawa,Takashi Kaide,Tadayoshi Yanagihara,Motoharu MORIKAWA. Владелец: Nichia Corp. Дата публикации: 2017-02-09.

Method for producing reduced iron

Номер патента: EP4417711A1. Автор: Moritoshi Mizutani. Владелец: Nippon Steel Corp. Дата публикации: 2024-08-21.

System and method for auxiliary power unit emissions management

Номер патента: WO2009102476A3. Автор: Lowell K. Siewert,Anthony T. Klejeski,Ronald J. Mellum. Владелец: Cummins Power Generation IP, Inc.. Дата публикации: 2009-11-05.

System for treating the exhaust gases of a motor vehicle engine and method for controlling same

Номер патента: US09683469B2. Автор: Mickael Remingol. Владелец: RENAULT SAS. Дата публикации: 2017-06-20.

System and method for detecting tailpipe ammonia slip

Номер патента: US09528417B1. Автор: Taner Tuken,Michael J. Pipho,Christian Duesseldorf. Владелец: Deere and Co. Дата публикации: 2016-12-27.

Method for production of egg yolk with high content of af-16

Номер патента: RU2723097C1. Автор: Стефан ЛАНГЕ. Владелец: Лантменнен Ас-Фактор Аб. Дата публикации: 2020-06-08.

Refrigerating plant for exhaust gas

Номер патента: RU2199059C2. Автор: Масаки ИИДЗИМА. Владелец: Мицубиси Хэви Индастриз, Лтд.. Дата публикации: 2003-02-20.

Apparatus and method for manufacturing a product

Номер патента: WO2023213939A1. Автор: Celso Carlos Canosa,Christian Gradenegger. Владелец: REFRACTORY INTELLECTUAL PROPERTY GMBH & CO. KG. Дата публикации: 2023-11-09.

Composition for treating arthritis, maintaining mobility and slowing aging

Номер патента: RU2733403C2. Автор: Самюэль СЕРИЗЬЕ. Владелец: Марс, Инкорпорейтед. Дата публикации: 2020-10-01.

Method for treating individual's keratin fibers

Номер патента: RU2091049C1. Автор: Стюрла Жан-Мишель. Владелец: Л'Ореаль. Дата публикации: 1997-09-27.

Exhaust gas aftertreatment system

Номер патента: EP1979586A1. Автор: Gert-Ove WAHLSTRÖM,Paulina Ramfelt. Владелец: VOLVO LASTVAGNAR AB. Дата публикации: 2008-10-15.

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Номер патента: RU2723008C1. Автор: Александр Леонидович Гинцбург,Денис Юрьевич Логунов,Амир Ильдарович Тухватулин,Ольга Вадимовна Зубкова,Алина Шахмировна Джаруллаева,Инна Вадимовна Должикова,Борис Савельевич Народицкий,Татьяна Андреевна Ожаровская,Дмитрий Викторович Щебляков,Наталья Михайловна Тухватулина,Ильяс Булатович Есмагамбетов,Ирина Алексеевна Фаворская,Артем Алексеевич Деркаев,Фатима Магометовна Ижаева,Павел Вячеславович Симакин. Владелец: федеральное государственное бюджетное учреждение «Национальный исследовательский центр эпидемиологии и микробиологии имени почетного академика Н.Ф. Гамалеи» Министерства здравоохранения Российской Федерации. Дата публикации: 2020-06-08.

Methods and compositions for treating disease

Номер патента: RU2468820C2. Автор: Роберт П. БИЧ,Томас Д. РИД. Владелец: Интрексон Корпорейшн. Дата публикации: 2012-12-10.

Method for preparing acetic acid

Номер патента: RU2320638C2. Автор: Майкл Джеймс МАСКЕТТ. Владелец: Бп Кемикэлз Лимитед. Дата публикации: 2008-03-27.

Nanosuspensions of natural materials and method for production thereof

Номер патента: RU2695325C1. Автор: Вернер БРАНД. Владелец: Апурано Фармасьютикэлс Гмбх. Дата публикации: 2019-07-23.

Compositions and methods for treating and preventing infections caused by staphylococcus aureus

Номер патента: RU2764981C1. Автор: Джон СИМАРД. Владелец: ИксБиотеч Инк.. Дата публикации: 2022-01-24.

Device, kit and method for treating disturbances of heart rhythm regulation system

Номер патента: RU2372052C2. Автор: Ян Отто СОЛЕМ. Владелец: Зинтах Аг. Дата публикации: 2009-11-10.

Method for treating exhaust gas from light oil combustion and apparatus therefor

Номер патента: CA2056079C. Автор: Yoshihiro Ikenaga,Takeji Kobata. Владелец: Social Welfare Foundation Hokkaido. Дата публикации: 1999-05-25.

Filter medium for treating an exhaust gas

Номер патента: CA1264314A. Автор: Yukio Iida,Mitsuhiro Horaguchi,Yuji Kaihara,Shigechika Tomisawa. Владелец: Mitsubishi Heavy Industries Ltd. Дата публикации: 1990-01-09.

Method and apparatus for treating exhaust gas for removal of fine particles

Номер патента: US4923484A. Автор: Keizo Saito. Владелец: Agency of Industrial Science and Technology. Дата публикации: 1990-05-08.

Method and device for treating exhaust gases produced by an internal combustion engine

Номер патента: US6810657B1. Автор: Horst Harndorf,Nikolaus Benninger. Владелец: ROBERT BOSCH GMBH. Дата публикации: 2004-11-02.

Compositions and methods for treating cancer

Номер патента: RU2770081C2. Автор: Махеш КАНДУЛА. Владелец: Селликс Био Прайвет Лимитед. Дата публикации: 2022-04-14.

Methods for treating cancer

Номер патента: RU2745678C2. Автор: Гэри ХЭТТЕРСЛИ. Владелец: Радиус Фармасьютикалз, Инк.. Дата публикации: 2021-03-30.

Method for treating thrice-negative breast cancer

Номер патента: RU2757905C2. Автор: Сара М. ТОЛАНИ,Дэн Дж. ДЬЮДА. Владелец: Экселиксис, Инк.. Дата публикации: 2021-10-22.

CRYSTALLINE FORMS OF CORTEXOLONE-17α-PROPIONATE AND METHOD FOR PREPARING THEM

Номер патента: RU2482190C2. Автор: Луиджи МОРО,Мауро АЯНИ. Владелец: Космо Спа. Дата публикации: 2013-05-20.

Methods for regulating differentiation of neural cells and uses thereof

Номер патента: EP1745127A2. Автор: Lloyd A. Greene,James M. Angelastro. Владелец: Columbia University in the City of New York. Дата публикации: 2007-01-24.

Methods and compositions for treating bacterial infection

Номер патента: US09814719B2. Автор: David W. Anderson,Hongmin Sun,Lianhai Li. Владелец: University of Missouri System. Дата публикации: 2017-11-14.

Methods and compositions for treating disorders of oesophagus

Номер патента: RU2705364C2. Автор: Марк Дж. КАРРИ. Владелец: Айронвуд Фармасьютикалз, Инк.. Дата публикации: 2019-11-07.

Method for engine

Номер патента: RU2712506C2. Автор: Сяоган ЧЖАН. Владелец: ФОРД ГЛОБАЛ ТЕКНОЛОДЖИЗ, ЛЛК. Дата публикации: 2020-01-30.

Agents and methods for treating bleeding disorders

Номер патента: RU2495034C2. Автор: Паскаль ДРУЗГАЛА,Сируз БЕККЕР. Владелец: Арметеон, Инк.. Дата публикации: 2013-10-10.

Method for treating a brain tumor

Номер патента: RU2728796C2. Автор: Лань ХУАН. Владелец: Бейондспринг Фармасьютикалс, Инк.. Дата публикации: 2020-07-31.

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Номер патента: US20210196697A1. Автор: Alagu P. Thiruvengadam. Владелец: PsychNostics LLC. Дата публикации: 2021-07-01.

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Номер патента: EP4352086A1. Автор: Michael White,Jeffrey Hubbell. Владелец: University of Chicago. Дата публикации: 2024-04-17.

Methods for treating irritable bowel syndrome (ibs)

Номер патента: RU2582940C2. Автор: Уилльям ФОРБЗ,Энох БОРТИ. Владелец: Саликс Фармасьютикалз, Лтд.. Дата публикации: 2016-04-27.

Method for treatment of surface of oxide glass with fluorinating agent

Номер патента: EP3225599A1. Автор: Kunio Watanabe,Chikaya Tamitsuji. Владелец: Asahi Glass Co Ltd. Дата публикации: 2017-10-04.

Method and device for treating wastewater

Номер патента: SG11201908648UA. Автор: Marc Caligaris,Irène MOZO. Владелец: SUEZ GROUPE. Дата публикации: 2019-10-30.

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Номер патента: US9518090B2. Автор: DING Xue,Xin Geng. Владелец: University of Colorado. Дата публикации: 2016-12-13.

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Номер патента: WO2020227331A1. Автор: Homer L. PEARCE. Владелец: Inspira, LLC. Дата публикации: 2020-11-12.

Compositions and methods for treating hepatitis b

Номер патента: US20150232513A1. Автор: DING Xue,Xin Geng. Владелец: University of Colorado. Дата публикации: 2015-08-20.

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Номер патента: US20180243335A1. Автор: Claire Sampson,Svetlana Panicheva,Mark Sampson,Cary Schockemoehl. Владелец: Realm Therapeutics Inc. Дата публикации: 2018-08-30.

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Номер патента: US20240279636A1. Автор: Leandro BUCHMANN. Владелец: BUEHLER AG. Дата публикации: 2024-08-22.

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Номер патента: WO2004034971A9. Автор: Dongxu Liu,Alvin E Davis. Владелец: Alvin E Davis. Дата публикации: 2004-09-02.

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Номер патента: WO2018104484A1. Автор: François Lambert. Владелец: VALMET AB. Дата публикации: 2018-06-14.

Methods and compositions for treating inflammatory disorders

Номер патента: US09999635B2. Автор: Claire Sampson,Svetlana Panicheva,Mark Sampson,Cary Schockemoehl. Владелец: Realm Therapeutics Inc. Дата публикации: 2018-06-19.

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Номер патента: US09884899B2. Автор: Mark L. Lupher, Jr.,David Paul Hesson,Michael Scott Kramer,Teresa K. Surowy,Shawn Li. Владелец: Promedior Inc. Дата публикации: 2018-02-06.

Methods for treating and preventing prostate cancer bone metastases

Номер патента: US09682090B2. Автор: Colm Morrissey. Владелец: UNIVERSITY OF WASHINGTON. Дата публикации: 2017-06-20.

Systems and methods for hydrolysis of biomass

Номер патента: US09663807B2. Автор: Jason Alan Bootsma,Neelakantam V. Narendranath,William F. McDonald. Владелец: Poet Research Inc. Дата публикации: 2017-05-30.

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Номер патента: WO2024192209A1. Автор: Alberto PANIZ-MONDOLFI,Roy MADIGAN. Владелец: Vida Pharmacal Inc.. Дата публикации: 2024-09-19.

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Номер патента: WO2024044141A1. Автор: Karolynn Teresa ECHOLS. Владелец: THOMAS JEFFERSON UNIVERSITY. Дата публикации: 2024-02-29.

Method for treating gastroesophageal reflux disease cases

Номер патента: RU2280443C2. Автор: Андерс ЛЕМАНН. Владелец: Астразенека Аб. Дата публикации: 2006-07-27.

Methods for treating pancreatic cancer

Номер патента: RU2768479C2. Автор: Израел ЧАРО,Петрус БЕККЕР,Шичанг МИАО,Том ЩАЛЛ. Владелец: Хемоцентрикс, Инк.. Дата публикации: 2022-03-24.

Catalyst member mounting means, staged catalytic flame arrestor and method for preventing flame initiation of exhaust gas

Номер патента: WO1998002649B1. Автор: . Владелец: . Дата публикации: 1998-03-19.

Method for judging normal operation of exhaust gas recirculation control valve

Номер патента: KR970062294A. Автор: 김영환. Владелец: 한승준. Дата публикации: 1997-09-12.

Method for judging normal operation of exhaust gas recirculation control valve

Номер патента: KR970062295A. Автор: 김영환. Владелец: 한승준. Дата публикации: 1997-09-12.

Method for detecting leakage in an exhaust gas recirculation arrangement

Номер патента: BR102016014240A2. Автор: . Владелец: . Дата публикации: 2017-01-03.

Method for controlling or regulating the exhaust gas flow of converters

Номер патента: AU6195065A. Автор: MANTSCH and HUBERT ROHM JURGEN. Владелец: SIEMENS AG. Дата публикации: 1967-01-26.

Method for controlling or regulating the exhaust gas flow of converters

Номер патента: AU294565B2. Автор: MANTSCH and HUBERT ROHM JURGEN. Владелец: SIEMENS AG. Дата публикации: 1967-01-26.

Method for regulating the oxidation of exhaust gas

Номер патента: CA691451A. Автор: F. Gerald Curtis. Владелец: Universal Oil Products Co. Дата публикации: 1964-07-28.

APPARATUS FOR TREATING DIESEL ENGINE EXHAUST GAS

Номер патента: US20120031083A1. Автор: Yamamoto Hikaru,Minami Wataru. Владелец: . Дата публикации: 2012-02-09.

Device for treating tungsten smelting exhaust gas and ionic exchange wastewater

Номер патента: CN203498140U. Автор: 高招辉. Владелец: HUNAN JINXIN NEW MATERIALS Co Ltd. Дата публикации: 2014-03-26.

Method and apparatus for treating melting furnace exhaust gas

Номер патента: JP3607803B2. Автор: 元 神保,俊郎 雨宮,猛 菊池,泰之 合田. Владелец: Ebara Corp. Дата публикации: 2005-01-05.

Method and apparatus for treating dust in exhaust gas from cement kiln

Номер патента: JP4158860B2. Автор: 哲雄 大桐,泰史 山本,良彦 宮部. Владелец: Taiheiyo Cement Corp. Дата публикации: 2008-10-01.

Method for removing harmful gas in exhaust gas

Номер патента: JPS647932A. Автор: Hiroshi Kono,Miki Yamagishi,Tsuneharu Miyaji,Yoji Ogaki,Yoshinari Fujisawa,Nariaki Higuchi. Владелец: Nippon Kokan Ltd. Дата публикации: 1989-01-11.

Method for producing metal carrier for exhaust gas purification catalyst

Номер патента: JP3139519B2. Автор: 清三 飯田,洋一 芹野,龍蔵 堀,久 武井,安夫 加藤. Владелец: Cataler Corp. Дата публикации: 2001-03-05.

Method for producing metal carrier for exhaust gas purification catalyst

Номер патента: JP2925453B2. Автор: 卓三 加古,仁史 太田,郁二 中島,徹 内海. Владелец: Nippon Steel Corp. Дата публикации: 1999-07-28.

Method for preparing catalyst slurry for exhaust gas purification material

Номер патента: JP4120215B2. Автор: 雅博 井上,達郎 宮崎,信行 徳渕,雅昭 有田,洋太 橋本. Владелец: Panasonic Corp. Дата публикации: 2008-07-16.

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Номер патента: US20120110850A1. Автор: . Владелец: . Дата публикации: 2012-05-10.

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Номер патента: US20120186228A1. Автор: Yacoub Yasser M.. Владелец: FORD GLOBAL TECHNOLOGIES, LLC. Дата публикации: 2012-07-26.

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Номер патента: US20120197579A1. Автор: Walter Norbert,Seiler Andre. Владелец: BORGWARNER INC.. Дата публикации: 2012-08-02.

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Номер патента: US20120202275A1. Автор: . Владелец: . Дата публикации: 2012-08-09.

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Номер патента: US20120272938A1. Автор: . Владелец: ROBERT BOSCH GMBH. Дата публикации: 2012-11-01.

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Номер патента: US20130014484A1. Автор: Caprile Luciano,Passalacqua Biagio,Torazza Arturo. Владелец: . Дата публикации: 2013-01-17.

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Номер патента: US20130080083A1. Автор: Chi John N.. Владелец: . Дата публикации: 2013-03-28.

Method for removing mercury from refinery exhaust gas

Номер патента: JPS5784722A. Автор: Hiroshi Tanaka,Hideki Abe. Владелец: Dowa Mining Co Ltd. Дата публикации: 1982-05-27.

Method for removing harmful compnents in exhaust gas of high temperatu re and high humidity

Номер патента: JPS5232884A. Автор: Kenichi Iwamoto. Владелец: YOSHINO SETSUKOU KK. Дата публикации: 1977-03-12.

Method for adjusting solvent concentration of exhaust gas

Номер патента: JPS59132919A. Автор: Shinichi Hoshino,Inokichi Koike,小池 猪之吉,星野 新一. Владелец: Parker Netsushori Kogyo KK. Дата публикации: 1984-07-31.

Removing method for nitrogen oxides contained in exhaust gas

Номер патента: JPS5397975A. Автор: Masatoshi Isono,Yoichi Suzuki,Takuji Itou. Владелец: Toa Nenryo Kogyyo KK. Дата публикации: 1978-08-26.

Method for absorbing nitrogen oxides in exhaust gas

Номер патента: CN104307330A. Автор: 朱忠良. Владелец: 朱忠良. Дата публикации: 2015-01-28.

Method for removing nitrogen oxides in exhaust gas

Номер патента: JPH0649133B2. Автор: 忠夫 村川,實 澤地,尚夫 伊藤,善介 井上,晃生 広常,利治 小林. Владелец: Hitachi Zosen Corp. Дата публикации: 1994-06-29.

Method for reducing toxic substance in exhaust gas and incinerator

Номер патента: JP2002206720A. Автор: Takashi Noto,輝生 立福,隆 能登,Teruo Tatefuku. Владелец: Nippon Kokan Ltd. Дата публикации: 2002-07-26.

Detection method for dimethyl formamide content of exhaust gas

Номер патента: CN104764841A. Автор: 雷强,吴健堂. Владелец: Dongguan City Zheng Ming Detection Technique Co Ltd. Дата публикации: 2015-07-08.

Removing method for nitrogen oxides contained in exhaust gas

Номер патента: JPS5499076A. Автор: Masao Ota,Kazuo Miura,Taiji Kamiguchi,Meiji Ito,Shintaro Arita. Владелец: Babcock Hitachi KK. Дата публикации: 1979-08-04.

Solid oil separation method for heavy oil fired boiler exhaust gas

Номер патента: JP4174936B2. Автор: 文彦 山口,由美 早川,敬一 三輪,健次 鈴木. Владелец: IHI Corp. Дата публикации: 2008-11-05.

Method for concentrating carbon dioxide in exhaust gas of limestone calcination furnace

Номер патента: JPS5792514A. Автор: Tetsuo Okamoto,Yoshiyuki Kasuya,Shoki Yamano. Владелец: Nippon Steel Corp. Дата публикации: 1982-06-09.

Control method for collecting dust in engine exhaust gas

Номер патента: JPS6226311A. Автор: Yozo Ito,陽三 伊藤. Владелец: Toyota Motor Corp. Дата публикации: 1987-02-04.

Decreasing method for nitrogen oxide in combustion exhaust gas

Номер патента: JPS5479161A. Автор: Nobuaki Murakami,Yutaka Yamashita. Владелец: Mitsubishi Heavy Industries Ltd. Дата публикации: 1979-06-23.

Treating method for oxidizable substance contained in exhaust gas or discharged liquid

Номер патента: JPS5345667A. Автор: Shigeyoshi Kobayashi,Kimihiko Sato. Владелец: Asahi Glass Co Ltd. Дата публикации: 1978-04-24.

Holding seal material, manufacturing method for holding seal material and exhaust gas purification device

Номер патента: JP2023048673A. Автор: Reo UCHIMURA,玲夫 内村. Владелец: Ibiden Co Ltd. Дата публикации: 2023-04-07.

Removing method for nitrogen oxides contained in exhaust gas

Номер патента: JPS54101762A. Автор: Hitoshi Takagi,Takemune Kitamura. Владелец: Asahi Chemical Industry Co Ltd. Дата публикации: 1979-08-10.

Method for wet type desulfurization of exhaust gas

Номер патента: JPS5597230A. Автор: Osamu Kanda. Владелец: Babcock Hitachi KK. Дата публикации: 1980-07-24.

Method for removing mercury from acidic exhaust gas

Номер патента: JP2662768B2. Автор: 晴俊 窪田,千秋 南,高幸 橋本,雄次 薩摩. Владелец: SUMITOMO METAL MINING CO LTD. Дата публикации: 1997-10-15.

Method for converting sulfur dioxide in exhaust gas to sulfur

Номер патента: JPS57190637A. Автор: Toshikatsu Mori,Fumito Nakajima,Shinpei Matsuda,Teruo Kumagai. Владелец: Babcock Hitachi KK. Дата публикации: 1982-11-24.

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Номер патента: US20120003723A1. Автор: . Владелец: HOLLYWOOD VENTURES, LLC. Дата публикации: 2012-01-05.

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Номер патента: US20120004499A1. Автор: Ott Douglas E.. Владелец: Lexion Medical, LLC. Дата публикации: 2012-01-05.

Process for treating exhaust gas

Номер патента: MY128010A. Автор: Tadahiro Ohmi,Yoshio Ishihara. Владелец: Nippon Oxygen Co Ltd. Дата публикации: 2007-01-31.

Method and system for treating exhaust gas

Номер патента: MY126001A. Автор: Atsushi Saito,Tadao Murakawa,Keizo Nomachi,Toshiyuki Shimbo. Владелец: Hitachi Shipbuilding Eng Co. Дата публикации: 2006-09-29.

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Номер патента: US20120003226A1. Автор: Scannon Patrick J.,Solinger Alan M.,Bauer Robert J.. Владелец: XOMA TECHNOLOGY LTD.. Дата публикации: 2012-01-05.

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Номер патента: US20120003298A1. Автор: Maj Roberto,Pattarino Franco,Mura Emanuela,Barberis Alcide. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003329A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120004191A1. Автор: . Владелец: ArQule, Inc.. Дата публикации: 2012-01-05.

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Номер патента: US20120004217A1. Автор: TAFESSE Laykea,SUN Qun,VICTORY Sam. Владелец: Purdue Pharma L.P.. Дата публикации: 2012-01-05.

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Номер патента: US20120003186A1. Автор: . Владелец: SNU R&DB FOUNDATION. Дата публикации: 2012-01-05.

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Номер патента: US20120003203A1. Автор: Mizrachi-Nebenzahl Yaffa,Dagan Ron. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003208A1. Автор: Ye Weilan,Parker,Schmidt Maike,Filvaroff Ellen,IV Leon H.,Hongo Jo-Anne S.. Владелец: Genentech, Inc.. Дата публикации: 2012-01-05.

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Номер патента: US20120003332A1. Автор: Lyga John W.,Zheng Qian,Chen Siming W.,Santhanam Uma. Владелец: AVON PRODUCTS, INC.. Дата публикации: 2012-01-05.

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Номер патента: US20120004173A1. Автор: . Владелец: LABO JUVERSA CO., LTD.. Дата публикации: 2012-01-05.

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Номер патента: US20120004188A1. Автор: Belardinelli Luiz. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120004223A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120004300A1. Автор: Melnick Susan Marie,Lee Sung James. Владелец: SK Holdings Co., Ltd.. Дата публикации: 2012-01-05.

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Номер патента: US20120004320A1. Автор: . Владелец: TissueTech,Inc.. Дата публикации: 2012-01-05.

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Номер патента: US20120004546A1. Автор: Neuberger Wolfgang,Groenhoff Endrick. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003244A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003246A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120004099A1. Автор: Kurahashi Makoto,Matsuzaki Yuichi. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120004204A1. Автор: Simes Stephen,Snabes Michael,Zborowski Joanne. Владелец: BIOSANTE PHARMACEUTICALS, INC.. Дата публикации: 2012-01-05.

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Номер патента: US20120004301A1. Автор: Melnick Susan Marie,Taylor Duncan Paul. Владелец: SK Holdings Co., Ltd.. Дата публикации: 2012-01-05.

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Номер патента: US20120004549A1. Автор: . Владелец: GUIDED THERAPY SYSTEMS, L.L.C.. Дата публикации: 2012-01-05.

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Номер патента: US20120004833A1. Автор: . Владелец: DAIMLER AG. Дата публикации: 2012-01-05.

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Номер патента: US20120000809A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120002035A1. Автор: Nirmalan Nirm Velumylum,Li Hejie. Владелец: GENERAL ELECTRIC COMPANY. Дата публикации: 2012-01-05.

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Номер патента: US20120003190A1. Автор: Yamoah Ebenezer N.,Wei Dongguang. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003275A1. Автор: Donello John E.,Schweighoffer Fabien J.,Rodrigues Gerard A.,McLaughlin Anne P.,Mahé Florence. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003342A1. Автор: . Владелец: INDUSTRIAL TECHNOLOGY RESEARCH INSTITUTE. Дата публикации: 2012-01-05.

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Номер патента: US20120004701A1. Автор: Errico Joseph P.,Mendez Steven. Владелец: ElectroCore, LLC. Дата публикации: 2012-01-05.

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Номер патента: US20120004182A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120000185A1. Автор: Narita Hironori. Владелец: HINO MOTORS ,LTD.. Дата публикации: 2012-01-05.

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Номер патента: US20120001180A1. Автор: Yoshizumi Kensuke,YOKOI Tomokazu. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120004092A1. Автор: RAATSCHEN Willigert,MATTHIAS Carsten,Schauer Lutz,Westermann Helmut. Владелец: Astrium GmbH. Дата публикации: 2012-01-05.

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Номер патента: US20120000270A1. Автор: Narita Hironori. Владелец: HINO MOTORS, LTD.. Дата публикации: 2012-01-05.

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Номер патента: US20120000813A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003446A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003628A1. Автор: Fallon Joan M.. Владелец: Curemark LLC. Дата публикации: 2012-01-05.

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Номер патента: US20120004339A1. Автор: . Владелец: SURMODICS, INC.. Дата публикации: 2012-01-05.

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Номер патента: US20120000331A9. Автор: Grabau Thomas. Владелец: NORDISCHER MASCHINENBAU RUD. BAADER GMBH + CO. KG. Дата публикации: 2012-01-05.

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Номер патента: US20120001776A1. Автор: . Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120003325A1. Автор: . Владелец: BAYER SCHERING PHARMA AKTIENGESELLSCHAFT. Дата публикации: 2012-01-05.

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Номер патента: US20120003735A1. Автор: Dorai Haimanti,Ly Celia,Sauerwald McClain Tina M.. Владелец: . Дата публикации: 2012-01-05.

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Номер патента: US20120004595A1. Автор: DUBOIS Brian R.,NIELSEN James T.,GORDON Alexander. Владелец: LAURIMED, LLC. Дата публикации: 2012-01-05.

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Номер патента: US20120003396A1. Автор: . Владелец: Nederlandse Organisatie voor toegepast-natuurweten schappelijk onderzoek TNO. Дата публикации: 2012-01-05.

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Номер патента: US20120003823A1. Автор: Sasaki Makoto,NISHIGUCHI Taro,HARADA Shin,Okita Kyoko,Namikawa Yasuo. Владелец: Sumitomo Electric Industries, Ltd.. Дата публикации: 2012-01-05.

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