专利摘要:

公开号:SE0950511A1
申请号:SE0950511
申请日:2009-07-01
公开日:2011-01-02
发明作者:Klas Telborn
申请人:Scania Cv Ab;
IPC主号:
专利说明:

Effective regeneration of the particle filter can only take place at a minimum temperature.
A typical ignition temperature of the catalyst is about 250 degrees Celsius.
In addition, regeneration of the filter needs to take place for a certain period of time in order for the desired result to be achieved. This time period is of the order of 20 minutes. If regeneration continues for a period of time less than this period of time, the filter will not be complete. If the temperature of the catalyst is interrupted enough, it will regenerate sufficiently. regeneration of the particulate filter, ie when resuming the regeneration process, a certain amount of fuel is required to regain a favorable temperature in the exhaust system.
During normal operation of the vehicle, today's techniques work to regenerate particulate filters in an efficient manner. During certain operating cases of the vehicle, however, current regeneration techniques do not work satisfactorily. One such operating case is towing, especially for heavy vehicles such as e.g. trucks and buses. During towing, no fuel is supplied for the combustion and operation of the vehicle. Typically, the vehicle may roll downhill on a downhill slope, or roll forward towards a stop signal, such as a red light of a traffic light.
EP 1961939 describes a method for regenerating a particle filter at low engine load. The temperature in the exhaust system is raised by supplying fuel to certain cylinders of the vehicle's engine, while fuel is not added to certain other cylinders of the engine. SUMMARY OF THE INVENTION An object of the present invention is to provide a new and advantageous method for regenerating a particulate filter of a motor vehicle.
Another object of the invention is to provide a method, an apparatus and a computer program for effecting regeneration of a particulate filter in a vehicle during towing.
A further object of the invention is to provide a method, an apparatus and a computer program for achieving improved performance of a motor vehicle.
A further object of the invention is to provide a method, an apparatus and a computer program for providing a more environmentally friendly method for regenerating a particulate filter in a vehicle.
These objects are achieved with a method for regenerating a particulate filter arranged downstream of a catalyst in a motor vehicle according to claim 1.
According to one aspect of the invention, there is provided a method of regenerating a particulate filter arranged downstream of a catalyst in a motor vehicle. The process comprises the steps of supplying fuel for combustion and raising the temperature of the particulate filter upstream of the catalyst and maintaining the elevated temperature of the particulate filter for a desired period of time. The process includes the steps of, during towing, the normally corresponding lack of fuel supply, ensuring that the temperature of the catalyst exceeds the ignition temperature of the catalyst by supplying fuel for combustion in the engine to increase the temperature of the catalyst, and compensating a torque supplement corresponding to torque reduction. Advantageously, an improved method of regenerating a particulate filter of the vehicle during towing is enabled in that fewer interruptions of an ongoing regeneration of the filter are provided.
A driver does not experience changed driving characteristics when the regeneration of the particle filter during towing is in progress due to said torque reduction.
A model for describing a crankshaft torque of a vehicle is as follows: Mvev = Mind + Mgas + Mfrik + Magg, whereby (1) Mvev is torque of a crankshaft of the vehicle; Mind is indicated the torque of the vehicle, where Mind is torque generated by a high pressure part of the combustion cycle of a cylinder of the engine; Mgas is the throttle torque of the vehicle, where Mgas is torque generated by a low pressure part of the combustion cycle of a cylinder of the engine Mfrik is the frictional torque of the vehicle, where Mfrik is torque generated by bearings and piston movements of the vehicle; and Magg is the unit torque of the vehicle, where Magg is torque generated by different units of the vehicle, such as e.g. an AC compressor or motor fan.
According to one aspect of the invention, the particulate filter of the vehicle should be regenerated during towing without the driver experiencing a change in the torque of the crankshaft.
Since a suitable temperature of the catalyst and the particulate filter according to the invention is achieved by combustion of fuel in the engine, the indicated torque Mind of the engine will increase. It is assumed f.ö. that the friction moment Mfrik of the vehicle is substantially constant during the regeneration process according to this model. In order to maintain a substantially constant torque M crank of the crankshaft of the vehicle, the increase of the indicated torque Mind is compensated with a corresponding torque reduction with respect to the throttle torque Mgas and / or the unit torque Magg.
The torque reduction with regard to the gas switching torque Mgas and / or the unit torque Magg can take place in different ways. One way is to reduce the gas change torque Mgas is by using an exhaust brake of the vehicle. One way to reduce the Magg unit torque is to use a cooling fan for the vehicle. One unit of the Magg unit is to use an AC unit. engine by other means of reducing According to the invention, an increase of indicated torque is compensated with one and / or the unit torque during active regeneration of a particulate filter of a vehicle increase of the amount of the gas exchange torque the amount of during towing, when gas shift torque Mgas and / or unit torque of the vehicle and therefore can neutralize the increase of the indicated torque Mind.
The procedure is easy to implement in existing motor vehicles. Software for regenerating a particulate filter of a motor vehicle according to the invention during towing can be installed in a control unit of the vehicle during manufacture thereof. A buyer of the vehicle can thus be given the opportunity to choose the function of the procedure as an option. Alternatively, software including program code for performing the innovative method of regenerating a particulate filter of a motor vehicle during towing may be installed in a control unit of the vehicle when upgrading at a service station. In this case, the software can be loaded into a memory in the control unit. Implementation of the innovative method is thus cost-effective, especially since no additional sensors or sensors need to be installed in the vehicle according to an aspect of the invention. Required hardware is already present in the vehicle today. The invention thus provides a cost-effective solution to the above problems.
Software that includes program code to regenerate a particulate filter in a motor vehicle during towing can be easily updated or replaced. Furthermore, different parts of the software that include program code for regenerating a particulate filter of a motor vehicle during towing can be replaced independently of each other. This modular configuration is advantageous from a maintenance perspective.
The process may further comprise the step of measuring the temperature of the catalyst to initiate a fuel supply if necessary. If the temperature of the catalyst exceeds an ignition temperature of the catalyst, a temperature-raising action generally does not need to be taken. In that case, regeneration of the particle filter works as intended. If the temperature of the catalyst during towing of the vehicle is below an ignition temperature thereof, a temperature-raising measure according to the invention needs to be taken.
The ignition temperature of the catalyst can be substantially 250 degrees Celsius.
The torque reduction can take place by an increase in exhaust back pressure by means of an exhaust brake. Torque reduction by using an exhaust brake in the vehicle is an effective torque reduction measure.
The torque reduction can take place by using a motor fan and / or an arbitrary unit such as e.g. an AC unit. This provides the effect of alternatively performing a torque reducing action. In this way, a more versatile method is provided for regenerating a particulate filter of the vehicle during towing.
The torque reduction can take place by using an engine fan and / or an arbitrary unit and by raising the exhaust back pressure by means of an exhaust brake. By using torque reducing measures with regard to both throttle torque and unit torque, a more effective compensation of an increased indicated torque of the vehicle is achieved, according to an aspect of the invention.
The method may further comprise the step of first generating the torque reduction and on the basis thereof thereafter supplying fuel so that said compensation is provided. Since e.g. a change of exhaust back pressure as a torque reducing measure is a relatively slow process, it is advantageous to start with this measure and continuously, e.g. step by step, compensate for the torque reduction with an indicated torque achieved by supplying the appropriate amount of fuel for combustion of the engine during towing.
Fuel can be supplied for a period of time depending on the current regeneration rate of the particulate filter. Fuel can be supplied as long as towing of the vehicle. When towing of the vehicle ceases, the vehicle can return to a normal active regeneration of the particulate filter, which e.g. may include regeneration of the particulate filter without torque reduction to compensate for increased indicative torque.
According to one aspect of the invention, there is provided an apparatus for regenerating a particulate filter arranged downstream of a catalyst, the apparatus comprising means for supplying fuel upstream of the catalyst for combustion and raising the temperature of the particulate filter and means for maintaining the elevated temperature of the particulate filter below period. The device may comprise means for, during towing, normally corresponding lack of fuel supply, ensuring that the temperature of the catalyst exceeds the ignition temperature of the catalyst by supplying fuel for combustion in the engine for increasing the temperature of the catalyst and means for compensating a torque supplement corresponding to fuel supplied. to generate a torque reduction. The device may further comprise means for measuring the temperature of the catalyst and means for initiating a fuel supply if necessary. The means for measuring the temperature of the catalyst may be a temperature sensor connected to a control unit of the vehicle. The means for initiating, if necessary, a fuel supply during towing during active regeneration of the particulate filter may be a control unit which is arranged to supply fuel to at least one of the engine cylinders by means of injectors. first generate the torque reduction and on the basis thereof thereafter supply fuel so that the device may further comprise means for achieving said compensation.
The above objects are also achieved with a motor vehicle which includes the features of the device for regenerating a particulate filter of a motor vehicle during towing. The motor vehicle can be a truck, bus or car.
According to one aspect of the invention, there is provided a computer program for regenerating particulate filters of a motor vehicle during towing, said computer program comprising program code stored on a computer readable medium for causing an electronic control unit or another computer connected to the electronic control unit to perform the steps according to any one of claims 1-8. According to one aspect of the invention, there is provided a computer program product comprising a program code stored on a computer readable medium for performing the method steps of any of claims 1-8, when said computer program is run on an electronic control unit or another computer connected to the electronic control unit. .
Additional objects, advantages and novel features of the present invention will become apparent to those skilled in the art from the following details, as well as through the practice of the invention. While the invention is described below, it should be understood that the invention is not limited to the specific details described. Those skilled in the art having access to the teachings herein will recognize additional applications, modifications, and incorporations within other fields which are within the scope of the invention. SUMMARY DESCRIPTION OF THE DRAWINGS For a more complete understanding of the present invention and further objects and advantages thereof, reference is now made to the following detailed description which is to be read in conjunction with the accompanying drawings in which like reference numerals refer to like parts in the various figures, and in which: 1 schematically illustrates a vehicle, according to an embodiment of the invention; Figure 2 schematically illustrates a subsystem of the vehicle shown in Figure 1; Figure 3 schematically illustrates a subsystem of the vehicle shown in Figure 1; Figure 4a schematically illustrates a flow chart of a method, according to an embodiment of the invention; Figure 4b schematically illustrates in further detail a flow chart of a method, according to an embodiment of the invention; and Figure 5 schematically illustrates a computer, according to an embodiment of the invention.
DETAILED DESCRIPTION OF THE FIGURES Referring to Figure 1, a side view of a vehicle 100 is shown. The exemplary vehicle 100 consists of a tractor 110 and a trailer 112.
The vehicle can be a heavy vehicle, such as a truck or a bus. The vehicle can alternatively be a car.
Here, the term "link" refers to a communication link which may be a physical line, such as an optoelectronic communication line, or a non-physical line, such as a wireless connection, for example a radio or microwave link. Referring to Figure 2, a deis system 299 of the vehicle 100 is shown.
The subsystem 299 is arranged in the tractor 110. The subsystem 299 consists of a first exhaust pipe 210 arranged to direct exhaust gases from the engine of the vehicle to an exhaust housing 220. In the exhaust housing 220 a catalyst 240 is presently arranged. The catalyst 240 is arranged to catalyze chemical reactions to effect reduction of e.g. hydrocarbons in the exhaust gases. Catalyst 240 has an ignition temperature.
In the exhaust housing 220 there is also a particle filter, such as e.g. a DPF, arranged to collect particles in the exhaust gases to achieve cleaner emissions from the vehicle. A second exhaust pipe 230 is arranged to discharge the exhaust gases from the vehicle to an environment thereof.
Referring to Figure 3, there is schematically shown a deis system 399 of the vehicle 100. The subsystem 399 is arranged in the tractor 110. The subsystem 399 consists of an engine 340 which according to this example is a 6-cylinder diesel engine.
The engine 340 is arranged to direct exhaust gases from the combustion to an exhaust manifold 342. At the exhaust manifold 342, a turbocharger 345 is provided. The turbocharger 345 is arranged to compress some of the exhaust gases and lead them back to the engine 340 via a pipe 346.
The exhaust manifold 342 is arranged to direct the exhaust gases to the first exhaust pipe 210 which is also shown in Figure 2 above.
A first control unit 300 is arranged for communication with the engine 340 via a link 390. The first control unit 300 is arranged to control the engine 340. The first control unit 300 is arranged, inter alia, to control the supply of fuel to the cylinders of the engine for combustion and operation of the vehicle. . The first control unit 300 is arranged to control the generation of an indicated torque 10 of the engine 340. The indicated torque Mind refers to a torque which relates to a high-pressure part of the combustion cycle of the engine.
The first control unit 300 is arranged to continuously receive signals of a prevailing engine speed rpm via the link 390. The signals can be generated by a speed sensor at a flywheel of an output shaft of the engine.
The first control unit 300 is arranged for communication with a first pressure sensor 360 via a link 361. The pressure sensor 360 is arranged to measure an air pressure Pin of air which is supplied to the engine before combustion. The first pressure sensor 360 is arranged to continuously transmit signals including information about the air pressure Pin of air supplied to the engine before combustion and send these signals to the first control unit 300.
The first control unit 300 is arranged for communication with a second pressure sensor 370 via a link 371. The second pressure sensor 370 is arranged to measure an air pressure Pexh of the exhaust gases in the exhaust manifold 342. This pressure is also called exhaust back pressure. The second pressure sensor 370 is arranged to continuously transmit signals including information about the air pressure of the exhaust gases and send these signals to the first control unit 300.
The first control unit 300 is arranged for communication with a second temperature sensor 380 via a link 381. The temperature sensor 380 is arranged to measure a temperature Texh in the first exhaust pipe 210. Alternatively, the temperature sensor 380 is arranged to measure the temperature Texh of the catalyst 240. The second pressure sensor 370 is arranged to continuously send signals including measured temperature information Texh and send these signals to the first control unit 300. The detected temperature Texh can be used by the first control unit to determine how much the temperature of the catalyst 340 needs to be raised to at least exceed the ignition temperature of the catalyst. The first control unit 300 is arranged for communication with a first actuator 320 via a link 305. The actuator 320 is arranged to control, depending on control signals transmitted from the first control unit 300, an exhaust brake 350 which is arranged in the first exhaust pipe. 210.
The control unit 300 is arranged to reduce a gas exchange moment Mgas of the vehicle by means of the operating means 320, according to an aspect of the invention.
The first control unit 300 is arranged for communication with a second actuator 347 via a link 348. The actuator 347 is a VGT valve (Variable Geometry Turbocharger) and is arranged to vary the pressure of the exhaust gases in the pipe 346 depending on control signals transmitted from the first control unit 300. The VGT valve is arranged to adjust the pressure of the exhaust gases which are returned to the engine 340. The control unit 300 is arranged to reduce a vehicle by means of gas exchange torque Mgas of the actuators 347, according to an aspect of the invention.
A second control unit 310 is arranged for communication with the first control unit 300 via a link 301. The second control unit 310 may be detachably connected to the first control unit 300. The second control unit 310 may be a control unit external to the vehicle 100. The second control unit 310 may be arranged to perform the innovative method steps according to the invention. The second control unit 310 can be used to upload software to the first control unit 300, in particular software for performing the innovative method. The second control unit 310 may alternatively be arranged for communication with the first control unit 300 via an internal network in the vehicle. The second control unit 310 may be arranged to perform substantially the same functions as the first control unit 300, such as e.g. to compensate for a torque reduction with a corresponding increase of the indicated torque. According to an illustrative example according to an embodiment of the invention, the gas switching moment Mgas is stated as a function of the pressure Pin of the charge air, exhaust gas back pressure Pexh and engine speed rpm.
It is assumed that Mfrik and Magg are constant in Equation 1 above. That is, they do not change during towing and are therefore not taken into account in this example.
Given that a torque reduction is to compensate for an increase in Mind, an appropriate exhaust back pressure (torque reduction) can thus be determined.
In the first control unit 300, a model for combustion efficiency is stored. This can determine a relationship between Mind and the corresponding amount of fuel required to be supplied to the engine cylinders to compensate for the change in exhaust back pressure.
Figure 4a schematically illustrates a flow chart of a process for regenerating a particulate filter arranged downstream of a catalyst in a motor vehicle, according to an embodiment of the invention. The method comprises a first method step s401. Step s401 includes the steps of, upstream of the catalyst, supplying fuel for combustion and raising the temperature of the particulate filter and maintaining the elevated temperature of the particulate filter for a desired period of time. Process step s401 includes the steps of, during towing, normally corresponding to the lack of fuel supply, ensuring that the temperature of the catalyst exceeds the ignition temperature of the catalyst by supplying fuel for combustion in the engine to increase the catalyst temperature, and to compensate for a torque addition corresponding to a torque reduction. After step s401, the process is terminated.
Figure 4b schematically illustrates a flow chart of a method for regenerating a particulate filter arranged downstream of a catalyst in a motor vehicle, according to an embodiment of the invention. The method comprises a first method step S410. Method step S410 includes the step of detecting vehicle condition. If the vehicle is in a state of towing and if there is a need for active regeneration of the particulate filter, a subsequent process step S420 is performed. If the vehicle is not in a state of towing and if there is no need for active regeneration of the particulate filter, process step S410 is performed again.
Method step S420 includes the step of changing an operating parameter of the vehicle. According to an example, this could be to increase the gas change torque Mgas of the vehicle. According to an example, this can be done by acting on an exhaust brake downstream of the engine of the vehicle so that the exhaust back pressure in the exhaust system increases a predetermined amount. Said change of the operating parameter may be arbitrary. Said change of the operating parameter is associated with a request of change of the gas switching moment Mgas of the vehicle.
According to an example, the change of the gas exchange moment Mgas Ske can take place by increasing the gas exchange moment Mgas of the vehicle. According to one example, this can be done by actuating a control downstream of a turbo of the vehicle to reduce the charge pressure of the vehicle by a predetermined amount.
According to another example, the change in the operating parameter can consist of increasing a unit of Magg unit in the vehicle. This can e.g. performed by activating and controlling the operation of a motor fan of the vehicle. This can alternatively be done by activating and controlling the operation of an arbitrary unit of the vehicle, such as e.g. an AC unit or to charge a battery of the vehicle.
After the process step S420, a subsequent process step S430 is performed. The method step s430 includes the step of recording the actual change of a gas exchange moment Mgas of the vehicle. The change of the gas switching moment Mgas is dependent on the increase of the exhaust back pressure carried out in the process step s420. The change of the gas exchange moment Mgas is determined relative to a gas exchange moment Mgas which is normal for the vehicle during saponification. Alternatively, the change of the gas exchange moment Mgas can be determined relative to a level of the gas exchange moment Mgas which After was recorded in during this procedure. the process step s430 performs a subsequent process step s440. a previous cycle The process step s440 includes the step of compensating for the change of the gas exchange torque Mgas determined in the process stage s430 with a corresponding change of the indicated torque of the vehicle. This can be done by supplying a fixed amount of fuel in one or more of the engine cylinders for combustion. After the process step s440, a subsequent process step s450 is performed.
The process step s450 includes the step of evaluating whether the filter 250 is regenerated or not. This can be done by determining the total period of time that the regeneration has continued and comparing this time with a predetermined time period corresponding to the time required to achieve a desired regeneration result. If it is determined that the filter is regenerated to a desired regeneration level, the process is terminated. If it is determined that the filter is not regenerated to a desired regeneration level, process step s410 is performed.
Referring to Figure 5, there is shown a diagram of an embodiment of a device 500. The controllers 300 and 310 described with reference to Figure 2 may in one embodiment include the device 500. The device 500 includes a non-volatile memory 520, a data processing unit 510, and a read / write memory 550. The non-volatile memory 520 has a first memory portion 530 in which a computer program, such as an operating system, is stored to control the operation of the device 300. Further, the device 500 includes a bus - controller, a serial communication port, I / O means, an A / D converter, a time and date input and transfer unit, an event counter and an interrupt controller (not shown). The non-volatile memory 520 also has a second memory portion 540.
A computer program P is provided which includes routines for determining a torque reduction which can compensate for an increase in indicated torque for regenerating a particulate filter of a vehicle according to the innovative method. The program P includes routines for determining a corresponding indicated torque Mind of the vehicle on the basis of a change of gas exchange torque Mgas and / or unit torque Magg and controlling the supply of fuel to the engine for combustion during towing and thereby causing a temperature increase of the catalyst 240 without the driver experiencing a change in the driving characteristics of the vehicle, ie that the driver does not experience any change in the crankshaft torque Mvev in the vehicle. Thus, a computer program P is provided which includes routines for performing the innovative procedure when running on a computer. The program P can be stored in an executable manner or in a compressed manner in a memory 560 and / or in a read / write memory 550.
When it is described that the data processing unit 510 performs a certain function, it is to be understood that the data processing unit 510 performs a certain part of the program which is stored in the memory 560, or a certain part of the program which is stored in the read / write memory 550.
The data processing device 510 can communicate with a data port 599 via a data bus 515. The non-volatile memory 520 is intended for communication with the data processing unit 510 via a data bus 512. The separate memory 560 is intended to communicate with the data processing unit 510 via a data bus 511. Read / write memory 550 is arranged to communicate with the data processing unit 510 via a data bus 514. To the data port 599, e.g. links 301, 305, 361, 371, 381 and 390 are connected (see Figure 2).
When data is received on the data port 599, it is temporarily stored in the second memory part 540. Once the received input data has been temporarily stored, the data processing unit 510 is arranged to perform code execution in a manner described above. According to one embodiment, signals received at data port 599 include information on exhaust temperature Texh, prevailing engine speed rpm, boost pressure Pin, exhaust pressure Pexh. The received signals on the data port 599 can be used by the device 500 to e.g. determine gas torque Mgas, and control the supply of fuel to the engine for combustion during automatic towing to compensate for a torque reduction.
Parts of the methods described herein may be performed by the device 500 by means of the data processing unit 510 running the program stored in the memory 560 or the read / write memory 550. When the device 500 runs the program, the methods described herein are executed.
The foregoing description of the preferred embodiments of the present invention has been provided for the purpose of illustrating and describing the invention. It is not intended to be exhaustive or to limit the invention to the variations described. Obviously, many modifications and variations will occur to those skilled in the art. The embodiments were selected and described to best explain the principles of the invention and its practical applications, thereby enabling those skilled in the art to understand the invention for various embodiments and with the various modifications appropriate to the intended use.
权利要求:
Claims (18)
[1]
A process for regenerating a particulate filter (250) arranged downstream of a catalyst (240) of a motor vehicle (100; 110) comprising the steps of: - upstream of the catalyst (240) supplying fuel for combustion and raising the temperature of the particle filter (250); maintain the elevated temperature of the particulate filter (250) for a desired period of time, characterized in that - during towing, normally corresponding to the lack of fuel supply, ensure that the temperature of the catalyst (240) exceeds the ignition temperature of the catalyst by supplying fuel for combustion in the engine (3) to increase the temperature of the catalyst; and to - compensate for a torque supplement corresponding to the fuel supplied thereby by generating a torque reduction.
[2]
The process of claim 1, further comprising the step of: - measuring the temperature of the catalyst to initiate a fuel supply if necessary.
[3]
A process according to claim 1 or 2, wherein the ignition temperature of the catalyst is substantially 250 degrees Celsius.
[4]
A method according to any one of the preceding claims, wherein the torque reduction takes place by an increase of exhaust back pressure by means of an exhaust brake (350).
[5]
Method according to one of the preceding claims, wherein the torque reduction takes place by using a motor fan and / or an arbitrary unit such as e.g. an AC unit.
[6]
A method according to claims 5 and 6, wherein the torque reduction takes place by using an engine fan and / or an arbitrary unit and by raising the exhaust back pressure by means of an exhaust brake. 10 15 20 25 30 19
[7]
A method according to any one of the preceding claims, further comprising the step of: - first generating torque reduction and on the basis thereof subsequently supplying fuel so that said compensation is achieved.
[8]
A method according to any one of the preceding claims, wherein fuel is supplied for a period of time depending on the actual regeneration degree of the particulate filter.
[9]
An apparatus for regenerating a particulate filter (250) arranged downstream of a catalyst (240) of a motor vehicle (100; 110), comprising: - means for supplying fuel upstream of the catalyst for combustion and raising the temperature of the particulate filter (250); means (300; 310; 500) for maintaining the elevated temperature of the particulate filter for a desired period of time, characterized in that - means (300; 310; 500) for, during towing, normally corresponding to the lack of fuel supply, ensuring that the temperature of the catalyst (240) exceeds the ignition temperature of the catalyst by supplying fuel for combustion in the engine (340) to increase the temperature of the catalyst; and - means (300; 310; 500) for compensating a torque supplement corresponding to the fuel supplied thereby by generating a torque reduction.
[10]
The apparatus of claim 9, further comprising: - means (380) for measuring the temperature of the catalyst and means (300; 310; 500) for initiating a fuel supply if necessary. claim 9 ignition temperature is substantially 250 degrees Celsius.
[11]
Device according to or 10, wherein the catalyst 10 15 20 25 30 20
[12]
Device according to any one of claims 9-11, wherein the torque reduction takes place by an increase of exhaust back pressure by means of an exhaust brake (350).
[13]
Device according to any one of claims 9-12, wherein the torque reduction takes place by using a motor fan and / or an arbitrary unit such as e.g. an AC unit.
[14]
Device according to claims 12 and 13, wherein the torque reduction takes place by using an engine fan and / or an arbitrary unit and by raising the exhaust back pressure by means of an exhaust brake.
[15]
Device according to any one of claims 9-14, further comprising: - means (300; 310; 500) for first generating torque reduction and on the basis thereof subsequently supplying fuel so that said compensation is achieved.
[16]
Device according to any one of claims 9-15, wherein fuel is supplied for a period of time depending on the actual regeneration degree of the particulate filter (250).
[17]
Motor vehicle (100; 110) comprising a device according to any one of claims 9-16.
[18]
A motor vehicle (100; 110) according to claim 17, wherein the motor vehicle is something of a truck, bus or passenger car. A computer program (P) for regenerating a particulate filter arranged downstream of a catalyst, said computer program (P) comprising program code stored on a computer readable medium to cause an electronic control unit (200; 500) or a another computer (210; 500) connected to the electronic control unit (200; 500) to perform the steps according to any one of claims 1-8. A computer program product comprising a program code stored on a computer readable medium for performing the method steps of any of claims 1-8, when said computer program is run on an electronic control unit (200; 500) or another computer (210; 500) connected to the electronic control unit (200; 500).
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同族专利:
公开号 | 公开日
EP2449235A1|2012-05-09|
EP2449235B1|2016-05-11|
BRPI1010107B1|2021-01-19|
BRPI1010107A2|2016-03-15|
EP2449235A4|2014-07-30|
WO2011002395A1|2011-01-06|
SE533931C2|2011-03-08|
引用文献:
公开号 | 申请日 | 公开日 | 申请人 | 专利标题

US6738702B2|2002-08-29|2004-05-18|Ford Global Technologies, Llc|Method for particulate filter regeneration in vehicles having an automatically controlled transmission|
JP4139259B2|2003-04-08|2008-08-27|日野自動車株式会社|Particulate filter regeneration method|
JP4140640B2|2006-06-12|2008-08-27|いすゞ自動車株式会社|Exhaust gas purification method and exhaust gas purification system|
US20080196388A1|2007-02-21|2008-08-21|Johnson Randall J|Method and apparatus for activating a diesel particulate filter with engine heat|
法律状态:
优先权:
申请号 | 申请日 | 专利标题
SE0950511A|SE533931C2|2009-07-01|2009-07-01|Apparatus and method for regenerating a particle filter of a motor vehicle|SE0950511A| SE533931C2|2009-07-01|2009-07-01|Apparatus and method for regenerating a particle filter of a motor vehicle|
EP10794451.4A| EP2449235B1|2009-07-01|2010-06-15|Apparatus and method for regenerating a particulate filter in a motor vehicle|
BRPI1010107-1A| BRPI1010107B1|2009-07-01|2010-06-15|method and device for regenerating a particle filter, motor vehicle and computer-readable medium|
PCT/SE2010/050669| WO2011002395A1|2009-07-01|2010-06-15|Apparatus and method for regenerating a particulate filter in a motor vehicle|
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