IP Library Granted Patent US 9,593,611
Granted Patent B2
US 9,593,611 · App. 14/440,163 · Granted Mar 14, 2017

Exhaust gas control apparatus for internal combustion engine

Inventors: Bungo Kawaguchi (Susono, JP); Takeru Shirasawa (Susono, JP); Tomihisa Oda (Numazu, JP)
Assignee: Toyota Jidosha Kabushiki Kaisha
F01N3/106B01D53/9409B01D53/9431B01D53/9477B01D53/9495F01N3/0205F01N3/0814F01N3/103F01N3/206F01N3/2006F01N3/208F01N9/005B01D2251/2062B01D2251/2067F01N3/035F01N2240/16F01N2430/06F01N2550/22F01N2560/026F01N2560/06F01N2560/14F01N2570/14F01N2570/18F01N2610/02F01N2610/03F01N2900/1402F01N2900/1404F01N2900/1602F01N2900/1621F01N2900/1622Y02T10/24Y02T10/26Y02T10/47
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Quick Facts
Patent No.
US 9,593,611
App. No.
14/440,163
Granted
Mar 14, 2017
Kind
B2
Abstract

It is possible to decrease the amount of NOx emitted into the air. The amount of ammonia adsorbed on an SCR catalyst is calculated by subtracting the amount of ammonium nitrate produced on the SCR catalyst from the amount of ammonia adsorbed on the SCR catalyst at the time of starting of an internal combustion engine, and the amount of NO 2 flowing into the SCR catalyst is decreased when an NOx purification rate estimated from the amount of ammonia adsorbed on the SCR catalyst is less than a threshold value compared to when the NOx purification rate is equal to or greater than the threshold value.

Claims (26)

1. An exhaust gas control apparatus for an internal combustion engine, the exhaust gas control apparatus comprising:

a selective reduction type NOx catalyst provided in an exhaust passage of the internal combustion engine and configured to reduce NOx with ammonia as a reducing agent;

a supply device configured to supply ammonia to the selective reduction type NOx catalyst;

a temperature sensor configured to measure or estimate the temperature of the selective reduction type NOx catalyst;

an electronic control unit configured to:

(i) measure or estimate an amount of ammonium nitrate produced on the selective reduction type NOx catalyst; and

(ii) calculate an amount of ammonia adsorbed on the selective reduction type NOx catalyst at the present time by subtracting the amount of ammonium nitrate produced on the selective reduction type NOx catalyst from the amount of ammonia adsorbed on the selective reduction type NOx catalyst at the time of starting of the internal combustion engine, and

(iii) decrease an amount of NO 2 flowing into the selective reduction type NOx catalyst when an NOx purification rate estimated from the amount of ammonia adsorbed on the selective reduction type NOx catalyst at the present time is less than a threshold value, as compared to when the NOx purification rate is equal to or greater than the threshold value.

2. The exhaust gas control apparatus according to claim 1 ,

wherein the electronic control unit is configured to increase the amount of NO 2 flowing into the selective reduction type NOx catalyst by increasing a ratio of NO 2 in NOx flowing into the selective reduction type NOx catalyst, and

the electronic control unit is configured to decrease the amount of NO 2 flowing into the selective reduction type NOx catalyst by decreasing the ratio of NO 2 in NOx flowing into the selective reduction type NOx catalyst.

3. The exhaust gas control apparatus according to claim 1 ,

wherein, when the temperature of the selective reduction type NOx catalyst is equal to or higher than a predetermined temperature at which ammonia reacts with NO 2 , the electronic control unit is configured to decrease the amount of NO 2 flowing into the selective reduction type NOx catalyst.

4. The exhaust gas control apparatus according to claim 3 , further comprising:

a catalyst having an oxidation function and provided upstream of the selective reduction type NOx catalyst; and

a heat supply device configured to supply heat to the catalyst having the oxidation function,

wherein the electronic control unit is configured to cause the heat supply device to supply heat to the catalyst having the oxidation function until the temperature of the selective reduction type NOx catalyst becomes equal to or higher than the predetermined temperature.

5. The exhaust gas control apparatus according to claim 1 ,

wherein, when the temperature of the selective reduction type NOx catalyst is lower than a temperature enabling reduction of NO, the electronic control unit is configured to decrease the amount of NO 2 flowing into the selective reduction type NOx catalyst.

6. The exhaust gas control apparatus according to claim 1 , further comprising:

a catalyst having an oxidation function and provided upstream of the selective reduction type NOx catalyst,

wherein the electronic control unit is configured to decrease the amount of NO 2 flowing into the selective reduction type NOx catalyst by increasing an amount of unburned fuel flowing into the catalyst having the oxidation function.

7. The exhaust gas control apparatus according to claim 1 , further comprising:

a catalyst having an oxidation function and provided upstream of the selective reduction type NOx catalyst; and

an oxygen supply device configured to supply oxygen into exhaust gas upstream of the catalyst having the oxidation function,

wherein the electronic control unit is configured to decrease the amount of NO 2 flowing into the selective reduction type NOx catalyst by decreasing an amount of oxygen supplied into exhaust gas upstream of the catalyst having the oxidation function with the oxygen supply device.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 14, 2015
From: KAWAGUCHI, BUNGO; SHIRASAWA, TAKERU; ODA, TOMIHISA
To: TOYOTA JIDOSHA KABUSHIKI KAISHA
Reel/Frame 036081/0146 →
Priority Claims (1)
JP 2012-245210 · Nov 7, 2012 · national
Continuity (1)
Related Publication 20150314239A1 · Nov 5, 2015