IP Library Granted Patent US 11,268,421
Granted Patent B2
US 11,268,421 · App. 16/741,947 · Granted Mar 8, 2022

Regeneration air system for an exhaust aftertreatment system of an internal combustion engine, and method for exhaust aftertreatment

Inventors: Martin Williges (Gifhorn, DE); Lars Stratmann (Brome, DE); Rene Fink (Wismar, DE)
Assignee: VOLKSWAGEN AKTIENGESELLSCHAFT
F01N3/22F01N3/025F01N3/2033F01N3/30F01N9/002F01N2240/14F01N2250/02F01N2550/14F01N2560/025F01N2560/06F01N2610/03
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Quick Facts
Patent No.
US 11,268,421
App. No.
16/741,947
Granted
Mar 8, 2022
Kind
B2
Abstract

The invention relates to a regeneration air system for an exhaust aftertreatment system of an internal combustion engine and to such an exhaust aftertreatment system. The regeneration air system comprises a regeneration air delivery element, a regeneration air duct, and a regeneration air valve. A sensor system is provided in the regeneration air duct with which a regeneration air mass flow {dot over (m)} SL can be determined exactly. The exhaust aftertreatment system comprises an exhaust system with an exhaust duct in which, in the direction of flow of an exhaust gas through the exhaust duct, a three-way catalytic converter is arranged underhood and a four-way catalytic converter is arranged downstream. A provision is made that an intake point for the regeneration air from the regeneration air system is formed on the exhaust duct downstream from the underhood three-way catalytic converter and upstream from the four-way catalytic converter.

Claims (18)

1. A method for exhaust aftertreatment of an internal combustion engine, with an exhaust system that can be connected to an outlet of the internal combustion engine, the exhaust system having an exhaust duct in which, in the direction of flow of an exhaust gas of the internal combustion engine through the exhaust duct, a three-way catalytic converter is arranged underhood and a particulate filter with a catalytically active coating is arranged downstream from the underhood three-way catalytic converter, as well as with an exhaust aftertreatment system of a regeneration air system, an intake point for the regeneration air of the regeneration air system being formed at the exhaust duct downstream from the underhood three-way catalytic converter and upstream from the particulate filter, comprising the following steps:

determining an exhaust gas temperature (T EG ) or a component temperature (T OPF ) of the particulate filter with the catalytically active coating,

heating the particulate filter when the determined exhaust gas temperature (T EG ) or the component temperature (T OPF ) of the particulate filter is below a regeneration temperature (T reg ) required for the regeneration of the particulate filter,

with the internal combustion engine being operated with a substoichiometric combustion air ratio (λ<1),

with fresh air being blown into the exhaust duct by the regeneration air system with which the unburned exhaust gas components on the catalytically active coating of the particulate filter are reacted exothermically, and

with the metering and regulation of the regeneration air mass flow {dot over (m)} SL being performed in such a way that a stoichiometric or superstoichiometric exhaust gas is established downstream from an intake point of the regeneration air system into the exhaust duct,

wherein a pressure difference Δp is determined via a regeneration air delivery element, of the regeneration air system, the regeneration air mass flow {dot over (m)} SL being calculated from the pressure difference Δp and a rotational speed n SL of the regeneration air delivery element.

2. The method for exhaust aftertreatment of an internal combustion engine as set forth in claim 1 , further comprising determining an actual mass flow and comparing it with a target mass flow, the regeneration air delivery element being regulated appropriately by a controller if the actual mass flow deviates from the target mass flow.

3. The method for exhaust aftertreatment of an internal combustion engine as set forth in claim 1 , wherein the exhaust gas temperature (T EG ) of the internal combustion engine is determined and compared with a threshold temperature (T S ), with internal engine heating measures being initiated if the exhaust gas temperature (T EG ) is below the threshold temperature (T S ).

4. The method for exhaust aftertreatment of an internal combustion engine as set forth in claim 1 , wherein the regeneration air system has an air mass meter, the regeneration air mass flow {dot over (m)} SL , being inferred from a change in the current or in the resistance of the air mass meter.

5. A method for exhaust aftertreatment of an internal combustion engine, with an exhaust system that can be connected to an outlet of the internal combustion engine, the exhaust system having an exhaust duct in which, in the direction of flow of an exhaust gas of the internal combustion engine through the exhaust duct, a three-way catalytic converter is arranged underhood and a particulate filter with a catalytically active coating is arranged downstream from the underhood three-way catalytic converter, as well as with an exhaust aftertreatment system of a regeneration air system, an intake point for the regeneration air of the regeneration air system being formed at the exhaust duct downstream from the underhood three-way catalytic converter and upstream from the particulate filter, comprising the following steps:

determining an exhaust gas temperature (T EG ) or a component temperature (T OPF ) of the particulate filter with the catalytically active coating,

heating the particulate filter when the determined exhaust gas temperature (T EG ) or the component temperature (T OPF ) of the particulate filter is below a regeneration temperature (T reg ) required for the regeneration of the particulate filter,

with the internal combustion engine being operated with a substoichiometric combustion air ratio (λ<1),

with fresh air being blown into the exhaust duct by the regeneration air system with which the unburned exhaust gas components on the catalytically active coating of the particulate filter are reacted exothermically, and

with the metering and regulation of the regeneration air mass flow {dot over (m)} SL being performed in such a way that a stoichiometric or superstoichiometric exhaust gas is established downstream from an intake point of the regeneration air system into the exhaust duct, and

determining a combustion air ratio (λ 1 ) at a first lambda sensor, and the regeneration air mass flow {dot over (m)} SL is regulated in such a way that a stoichiometric exhaust gas results downstream from the intake point.

6. The method as set forth in claim 1 , further comprising determining an exhaust gas temperature (T EG ) upstream and/or downstream from the particulate filter, the regeneration air mass flow {dot over (m)} SL being regulated in such a way that thermal damage to the particulate filter is avoided and/or a drop in the temperature (T OPF ) of the particulate filter below its regeneration temperature (T reg ) is prevented.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 22, 2020
From: WILLIGES, MARTIN; STRATMANN, LARS; FINK, RENE
To: VOLKSWAGEN AKTIENGESELLSCHAFT
Reel/Frame 051586/0823 →
Priority Claims (1)
DE 10 2019 100 752.6 · Jan 14, 2019 · national
Continuity (1)
Related Publication 20200224573A1 · Jul 16, 2020