Control device for internal combustion engine
10669979 ยท 2020-06-02
Assignee
Inventors
- Yoshihito Kanno (Numazu, JP)
- Gohki Kinoshita (Isehara, JP)
- Hiroki Morita (Hiratsuka, JP)
- Yutaro Kawatsu (Susono, JP)
Cpc classification
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
F02B75/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N2019/008
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N2300/2002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W10/06
PERFORMING OPERATIONS; TRANSPORTING
F02N2200/023
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02N2300/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F02N11/0814
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/40
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
B60W20/16
PERFORMING OPERATIONS; TRANSPORTING
F02D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
F02D41/0087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/445
PERFORMING OPERATIONS; TRANSPORTING
International classification
F02N11/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60K6/445
PERFORMING OPERATIONS; TRANSPORTING
F02N19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D13/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B75/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W20/16
PERFORMING OPERATIONS; TRANSPORTING
B60W10/08
PERFORMING OPERATIONS; TRANSPORTING
B60K6/365
PERFORMING OPERATIONS; TRANSPORTING
F02D41/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D29/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A control device is configured to read a required operation point of the internal combustion engine at the moment of restart following after intermittent stoppage, and to execute, when it is determined that the required operation point belongs to a reduced-cylinder operation allowed region and also to a reduced-cylinder operation restricted region which lies on a high load side of the reduced-cylinder operation allowed region, an all-cylinder operation and then move into a reduced-cylinder operation. When it is determined that the required operation point belongs to the reduced-cylinder operation allowed region but not to the reduced-cylinder operation restricted region, the control device is configured to switch the engine to the reduced-cylinder operation without execution of the all-cylinder operation.
Claims
1. A control device for an internal combustion engine having a plurality of cylinders and executing a reduced-cylinder operation mode where a part of the plurality of cylinders are operated and the rest of the plurality of cylinders are halted and a particular-cylinder operation mode where the number of operating cylinders are larger than that in the reduced-cylinder operation, the control device is configured to execute a computer program by a computer: i) to start the internal combustion engine in the reduced-cylinder operation mode and maintain the reduced-cylinder operation mode without changing to the particular-cylinder operation mode when a required operation point belongs to a reduced-cylinder operation allowed region and an engine torque of the internal combustion engine is in a low load side in a case of restart following intermittent stoppage of the internal combustion engine; and ii) to start the internal combustion engine in the particular-cylinder operation mode and change to the reduced-cylinder operation mode from the particular-cylinder operation mode as a coolant temperature rises after the starting of the internal combustion engine when the required operation point belongs to the reduced-cylinder operation allowed region and the engine torque of the internal combustion engine is in a high load side in another case of restart following intermittent stoppage of the internal combustion engine, wherein the required operation point is defined by an engine speed and the engine torque of the internal combustion engine.
2. The control device according to claim 1, being further configured to control the internal combustion engine so that the particular operation is executed longer as intermittent stoppage time which is duration from a moment of last stoppage up to a moment of restart this time gets longer.
3. The control device according to claim 1, being further configured to execute an all-cylinder operation where all of the plurality of cylinders are operated as the particular operation.
4. A control device for an internal combustion engine having a plurality of cylinders and executing a reduced-cylinder operation mode where a part of the plurality of cylinders are operated and a rest of the plurality of cylinders are halted and a particular-cylinder operation mode where more cylinders are operated than in the reduced-cylinder operation, the control device is configured to execute a computer program by a computer: i) to start the internal combustion engine in the reduced-cylinder operation mode and maintain the reduced-cylinder operation mode without changing to the particular-cylinder operation mode, under a required operation point being first load on a low load side; ii) to set a predetermined time period during which the particular-cylinder operation mode is operated such that an inside temperature of one or more cylinder reaches a threshold temperature where a number of pieces of emission particulates reaches a predetermined value or smaller, and iii) to start the internal combustion engine in the particular-cylinder operation mode and change to the reduced-cylinder operation mode from the particular-cylinder operation mode under a condition that an elapse time after the starting of the internal combustion engine is equal to or longer than the predetermined time period, under the required operation point being second load which is higher than the first load on the low load side.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6)
(7)
(8)
(9)
(10)
(11)
DESCRIPTION OF EMBODIMENTS
(12) (First Embodiment)
(13) As shown in
(14) The internal combustion engine 3 and a first motor generator 4 are connected with a power split mechanism 6. The first motor generator 4 functions as an electric generator which generates electricity by receiving power of the internal combustion engine 3 which has been split by the power split mechanism 6, and also functions as an electric motor which is driven by alternating-current power. As with that, a second motor generator 5 functions as the electric generator and also the electric motor. Each of the first motor generator 4 and the second motor generator 5 is connected electrically with a battery 7.
(15) The power split mechanism 6 is configured as a single pinion type planetary-gear mechanism. The power split mechanism 6 has a sun gear S which is an external gear, a ring gear R which is an internal gear arranged coaxially with the sun gear S, and a planet career C holding a pinion P rotatably and orbitably, the pinion P engaging with the gears S and R. Engine torque outputted by the internal combustion engine 3 is transmitted to the plant career C of the power split mechanism 6 via a torsional damper 10. A crank shaft 3a of the internal combustion engine 3 is connected with an input side of the torsional damper 10, and the planet career C is connected with an output side of the torsional damper 10. The first motor generator 4 is connected with the sun gear S of the power split mechanism 6.
(16) An output gear 12 which is an external gear is provided on the outer circumference of the ring gear R of the power split mechanism 6. The output gear 12 engages with a driven gear 13. A motor gear 15 engaging with the driven gear 13 is provided on a motor shaft 14 of the second motor generator 5. The driven gear 13 is fixed to a counter shaft 17, and a drive gear 18 is fixed to the counter shaft 17. The drive gear 18 engages with a ring gear 21 of a differential mechanism 20. Accordingly, torque outputted from the output gear 12 and motor torque of the second motor generator 5 are transmitted to the differential mechanism 20 via the driven gear 13 and the drive gear 18. The torque transmitted to the differential mechanism 20 is divided into right and left drive wheels 25.
(17) As is apparent from the configuration of the vehicle 1, by control of motor torque and motor speed of the first motor generator 4 connected with the power split mechanism 6, it is possible to change an operation point of the internal combustion engine 3, the operation point being defined by the engine speed and engine torque (the load) of the internal combustion engine 3, with maintaining the rotational speed of the output gear 12, that is, the vehicle speed.
(18) Each part of the vehicle 1 is controlled by an electric control unit (ECU) 30 configured as a computer. The ECU 30 executes various kinds of control for the internal combustion engine 3, the motor generators 4 and 5, and the like respectively. Various kinds of information of the vehicle 1 are inputted to the ECU 30. For example, inputted to the ECU 30 are: an output signal by an accelerator opening-degree sensor 31 which outputs a signal corresponding to the depressed amount of an accelerator pedal 26; an output signal by a vehicle speed sensor 32 which outputs a signal corresponding to the vehicle speed of the vehicle 1; and an output signal by a crank angle sensor 33 which outputs a signal corresponding to a crank angle of the internal combustion engine 3.
(19) The ECU 30 refers to the output signal of the accelerator opening-degree sensor 31 and the output signal of the vehicle speed sensor 32 to calculate a required output required by a driver, and controls the vehicle 1 with switching of various kinds of modes so that system efficiency becomes optimal with respect to the required output. For example, in a low load region where heat efficiency of the internal combustion engine 3 decreases, an EV mode is selected, where combustion of the internal combustion engine 3 is stopped and the second motor generator 5 is driven. Further, in a case that torque of the internal combustion engine 3 is not enough or a remaining capacity of the battery 7 is not enough, a hybrid mode is selected, where the internal combustion engine 3 or the second motor generator 5 together with the internal combustion engine 3 is used as a driving source for traveling.
(20) In a case that driving conditions have changed while the vehicle 1 is traveling, the ECU 30 switches an operation mode of the vehicle 1 from the hybrid mode to the EV mode by stopping combustion of the internal combustion engine 3, otherwise, switches an operation mode of the vehicle 1 from the EV mode to the hybrid mode by starting the internal combustion engine 3. In this way, the vehicle 1 executes as a feature of a hybrid vehicle, an intermittent operation mode where start and stoppage of the internal combustion engine 3 are alternately repeated in a comparatively short time. It is sometimes called intermittent stoppage to stop the internal combustion engine 3 for switching the operation mode from the hybrid mode to the EV mode while the intermittent operation mode is executed. As stoppage time of the internal combustion engine 3 gets longer, the inside temperature of the cylinder more decreases. The present embodiment is characterized by a control which is executed at a moment when the internal combustion engine 3 restarts following after the intermittent stoppage. Hereinafter, in reference to
(21) As is shown in
(22) As mentioned above, in a case that the reduced-cylinder operation obtains the same outputs with the same air-fuel ratio as the all-cylinder operation, the intake air quantity and fuel injection quantity per cylinder get larger in comparison with a case of the all-cylinder operation. As is shown in
(23) As one embodiment where the above mentioned control is realized, the ECU 30 executes control routines shown in
(24) The stoppage of the internal combustion engine 3 is executed by the control routine shown in
(25) At step S2, the ECU 30 determines whether the stoppage of the internal combustion engine 3 has been completed. In a case that the stoppage of the internal combustion engine 3 has been completed, the ECU 30 goes to step S4, and if this is not the case, the ECU 30 goes to step S3.
(26) At step S3, the ECU 30 executes a stop control of the internal combustion engine 3. The stop control is a well-known control including a control such that a crank shaft is made to stop at a predetermined piston position for preparation for the moment of restart of the internal combustion engine 3. Due to this, the details of this stop control will be omitted.
(27) At step S4, the ECU 30 increments an intermittent stoppage timer Ts. The intermittent stoppage timer Ts is a variable for managing time after the internal combustion engine 3 stops. For example, the intermittent stoppage timer Ts is updated by adding 1 to the intermittent stoppage timer Ts, and thereby, the intermittent stoppage timer Ts is incremented. Next, at step S5, the ECU 30 resets a restart elapse timer Tc. The restart elapse timer Tc is a variable for managing time after the internal combustion engine 3 was restarted.
(28) The restart following after the intermittent stoppage of the internal combustion engine 3 and the operation thereafter are executed by the control routine shown in
(29) At step S12, the ECU 30 determines whether the restart of the internal combustion engine 3 has been completed. The ECU 30 determines this depending on whether the engine speed is beyond a restart-completion determining value by referring to the output signal from the crank angle sensor 33. In a case that the restart of the internal combustion engine 3 has been completed, the ECU 30 goes to step S23. On the other hand, in a case that the restart of the internal combustion engine 3 has not been completed, the ECU 30 executes steps S13 to S19 in order to restart the internal combustion engine 3.
(30) At step S13, the ECU 30 reads a required operation point for a case of the restart of the internal combustion engine 3, the required operation point being calculated by the other routine not illustrated. As mentioned above, the required operation point is defined by the engine speed and engine torque of the internal combustion engine 3.
(31) At step S14, the ECU 30 determines whether the required operation point belongs to the reduced-cylinder operation allowed region A2 (see
(32) At step S15, the ECU 30 determines by referring to the intermittent stoppage timer Ts, whether the value of the intermittent stoppage timer Ts is equal to or larger than a threshold value T1. The threshold value T1 is set for avoiding the restriction of execution of the reduced-cylinder operation in a case of a short-time intermittent stoppage which does not affect increase of the PN because the inside temperature of the cylinder little decreases. In a case that the value of the intermittent stoppage timer Ts is smaller than the threshold value T1, it is not necessary to restrict the execution of the reduced-cylinder operation. Due to this, at step 18 the ECU 30 selects as the restart mode of the internal combustion engine 3, a reduced-cylinder restart mode where the internal combustion engine 3 is restarted with the reduced-cylinder operation. On the other hand, in a case that the value of the intermittent stoppage timer Ts is equal to or larger than the threshold value T1, the ECU 30 goes to step S16.
(33) At step S16, the ECU 30 determines whether the required operation point belongs to the reduced-cylinder operation restricted region . In a case that the required operation point belongs to this region , the ECU 30 selects the all-cylinder restart mode at step S17, and if this is not the case, the ECU 30 selects the reduced-cylinder operation mode at step S18.
(34) At step S19, the ECU 30 controls the internal combustion engine 3, the first motor generator 4 and the like so that the internal combustion engine 3 is restarted in the restart mode selected at either step S17 or step S18. Thereby, in a case that the required operation point of the internal combustion engine 3 belongs to the reduced-cylinder operation allowed region A2 (step S14) and also lies on the high load side of the region A2 (step S16), the internal combustion engine 3 is restarted with the all-cylinder operation. That is, even if the required operation point belongs to the reduced-cylinder operation allowed region A2 where the reduced-cylinder operation is allowed, in a case that the required operation point lies on the high load side thereof, the all-cylinder operation is executed.
(35) At step S20, the ECU 30 sets the restart elapse timer Tc to an initial value. For example, 1 may be set as this initial value. At step S21, the ECU 30 refers to the value of the intermittent stoppage timer Ts and determines a threshold value T2 so that the threshold value T2 becomes larger as the value of the intermittent stoppage timer Ts gets larger. The threshold value T2 is used for determining a period (a particular operation time) that the reduced-cylinder operation is restricted but the all-cylinder operation is executed. The threshold value T2 is set so that the inside temperature of the cylinder reaches a temperature where the PN generation amount gets to a predetermined value or smaller. Next, at step S22, the ECU 30 resets the intermittent stoppage timer Ts. Then, the ECU 30 ends this current routine.
(36) At step S23, the ECU 30 increments the restart elapse timer Tc. For example, in a case that the initial value of the restart elapse timer Tc is set to 1, in order to increment the restart elapse timer Tc, the ECU 30 updates the restart elapse timer Tc by adding 1 to the value of the timer Tc.
(37) At step S24, the ECU 30 determines whether the value of the restart elapse timer Tc is equal to or larger than the threshold value T2. In a case that the value of the restart elapse timer Tc is smaller than the threshold value T2, the ECU 30 goes to step S26 to continue the all-cylinder operation. On the other hand, in a case that the value of the restart elapse timer Tc is equal to or larger than the threshold value T2, the ECU 30 goes to step S25 to switch the cylinders mode from the all-cylinder operation to the reduced-cylinder operation, and the ECU 30 ends this current routine.
(38) According to the present embodiment, even if the required operation point belongs to the reduced-cylinder operation allowed region A2 where execution of the reduced-cylinder operation is allowed, in a case that the required operation point belongs also to the reduced-cylinder operation restricted region , the reduced-cylinder operation is executed after the all-cylinder operation is executed. By this execution of the all-cylinder operation, it is possible to raise the inside temperature of the cylinder while suppressing increase of the fuel injection quantity per cylinder. Accordingly, since the reduced-cylinder operation can be executed avoiding a situation that a possibility that the PN increases becomes higher, it is possible to suppress increase of the PN in comparison with a case that the reduced-cylinder operation is executed immediately after the restart.
(39) Further, as mentioned above, the threshold value T2 for determining the period of executing the all-cylinder operation becomes larger as a value of the intermittent stoppage timer Ts gets larger. And also, the value of the intermittent stoppage timer Ts becomes larger, as the intermittent stoppage time, the time from the latest stoppage of the internal combustion engine 3 up to this restart of the internal combustion engine 3, gets longer. Accordingly, in a case that the all-cylinder operation is executed because the required operation point belongs to the reduced-cylinder operation restricted region at the moment of restart, the all-cylinder operation is executed in a longer time as the intermittent stoppage time gets longer. As mentioned above, the particular operation time indicating an execution time of the all-cylinder operation is set so that the inside temperature of the cylinder becomes a temperature where the PN generation amount is equal to or smaller than a predetermined value. Accordingly, in a case that the intermittent stoppage time is short and an inside temperature of the cylinder is comparatively high, it is possible to avoid that the particular operation is executed in an excessively long time and to switch the cylinders mode to the reduced-cylinder operation as early as possible. Thereby, in a case that the inside temperature of the cylinder is comparatively high because of a short intermittent stoppage time, it is possible to switch the cylinders mode to the reduced-cylinder operation as early as possible with avoiding that the all-cylinder operation is executed in an excessively long time. Thereby, it is possible to reduce a demerit such as deterioration of fuel efficiency which could be caused by a prolonged all-cylinder operation.
(40) While, instead of a control that the ECU 10 determines the execution time of the all-cylinder operation at step S24 shown in
(41) Further, instead of a control which the ECU 30 executes at step S15 to avoid the restriction of execution of the reduced-cylinder operation when the intermittent stoppage time is a short time, it is possible to restrict the execution of the reduced-cylinder operation regardless of how long the intermittent stoppage time is. This control is possible to be realized by the ECU 30 which executes, instead of the control routine shown in
(42) (Second Embodiment)
(43) Next, in reference to
(44) The control in the second embodiment is executed by the ECU 30 which executes control routines shown in
(45) The stoppage of the internal combustion engine 3 is executed by the control routine shown in
(46) At step S52, the ECU 30 determines whether the stoppage of the internal combustion engine 3 has been completed or not. In a case that the stoppage of the internal combustion engine 3 has not been completed, the ECU 30 goes to step S53 to execute the stop control of the internal combustion engine 3. On the other hand, in a case that the stoppage of the internal combustion engine 3 has been completed, the ECU 30 goes to step S54 to increment the intermittent stoppage timer Ts. Next, at step S55, the ECU 30 resets an integrated air quantity Gs which is flown into the internal combustion engine 3, and ends this current routine. The integrated air quantity Gs is a variable set for the ECU 30, and is updated successively from the start of calculation thereof until the reset thereof. The intake air quantity is detected by the ECU 30 which refers to an output signal from an air flow meter not illustrated.
(47) The restart following after the intermittent stoppage of the internal combustion engine 3 and the operation thereafter are executed by the control routine shown in
(48) At step S70, the ECU 30 starts calculating the integrated air quantity Gs. Next, at step S71, the ECU 30 refers to the value of the intermittent stoppage timer Ts, and determines a threshold value T3 so that the larger the value of the intermittent stoppage timer Ts gets, the larger the threshold value T3 becomes. The threshold value T3 is used for determining a period (a particular operation period) that the reduced-cylinder operation is restricted but the all-cylinder operation is executed. The threshold value T3 is set so that the inside temperature of the cylinder reaches a temperature where the PN generation amount becomes equal to or smaller than a predetermined value. Next, at step S72, the ECU 30 resets the intermittent stoppage timer Ts. Then, the ECU 30 ends this current routine.
(49) At step S73, the ECU 30 reads the current integrated air quantity Gs. Next, at step S74, the ECU 30 determines whether the current integrated air quantity Gs is equal to or larger than the threshold value T3. In a case that the value of the integrated air quantity Gs is smaller than the threshold value T3, the ECU 30 goes to step S76 to continue the all-cylinder operation. On the other hand, in a case that the value of the integrated air quantity Gs is equal to or larger than the threshold value T3, the ECU 30 goes to step S75 to switch the cylinders mode from the all-cylinder operation to the reduced-cylinder operation and ends this current routine.
(50) According to the present embodiment, as with the first embodiment, it is possible to suppress the increase of the PN. Further, since the threshold value T3 for determining the period that the all-cylinder operation is executed, is set to a larger value as the value of the intermittent stoppage timer Ts gets larger, the all-cylinder operation is executed in a longer time as the intermittent stoppage period gets longer, as with the first embodiment. Thereby, as with the first embodiment, it is possible to reduce a demerit such as deterioration of fuel efficiency which could be caused by a prolonged all-cylinder operation.
(51) Especially, in the second embodiment, since the integrated air quantity integrated from the restart of the internal combustion engine 3 is used, it is possible to switch the cylinders mode to the reduced-cylinder operation at a timing when the inside temperature of the cylinder rises sufficiently so that the increase of the PN can be more infallibly suppressed in comparison with a case, such as the first embodiment, that the execution time of all-cylinder operation is determined based on the elapsed time from the restart. After the restart, the inside temperature of the cylinder more rises as the operation time of all-cylinder operation gets longer. However, the all-cylinder operation following after the restart is not always a steady operation. For example, in a case that the load (the air quantity) changes along with time, even if the inside temperature of the cylinder is estimated based on only operating time, an actual inside temperature of the cylinder changes depending on the load with respect to the same operating time. Accordingly, in the second embodiment, using the integrated air quantity, the difference in the load is reflected on the estimation of the inside temperature of the cylinder. Therefore, even if the all-cylinder operation is not the steady operation, it is possible to obtain accurately the inside temperature of the cylinder of the internal combustion engine 3. Thereby, the second embodiment is possible to determine the execution time of the all-cylinder operation more appropriately than the first embodiment. Due to this, it is possible to infallibly avoid making the all-cylinder operation prolonged while suppressing the increase of the PN.
(52) Instead of the control that the ECU 30 determines the threshold value T3 at step S71 in
(53) Further, instead of the control that the ECU 30 executes step S65 where in a case of a short intermittent stoppage time, it is avoided to restrict the execution of reduced-cylinder operation, the execution of reduced-cylinder operation may be restricted regardless of how long the intermittent stoppage time is. This control can be realized by the ECU 30 which executes, instead of the control routine of
(54) The present invention is not limited to the above embodiments, and is possible to be executed in various embodiments within a range of a summary of the present invention. In the above each embodiment, the present invention is applied to the internal combustion engine installed in the hybrid vehicle as an internal combustion engine which is restarted following after the intermittent stoppage. However, it is not necessary that the present invention is applied to an internal combustion engine installed in a hybrid car. For example, it is also possible to apply the present invention to an internal combustion engine installed in a vehicle which is configured to execute the idling stop that the internal combustion engine is stopped while the vehicle stops and is restarted when the vehicle starts traveling. Further, it is not necessary to apply the present invention to a spark ignition internal combustion engine. The present invention is also possible to be applied to a diesel engine.
(55) In the control mentioned in the above embodiments, after the all-cylinder operation as the particular operation is executed, the cylinders mode is switched to the reduced-cylinder operation. However, the all-cylinder operation is only one example of the particular operation. For example, in a case that the present invention is applied to an internal combustion engine which can make the number of operating cylinders change in a stepwise manner from the reduced-cylinder operation up to the all-cylinder operation, an operation where more cylinders are being operated than in the reduced-cylinder operation is practicable as the particular operation, instead of the above mentioned all-cylinder operation. Also in this case, since the fuel injection quantity per cylinder becomes smaller than in the reduced-cylinder operation, it is possible to obtain the effect that the increase of the PN is suppressed.
(56) In the control mentioned in the above embodiments, whether the internal combustion engine 3 is in the high load side or not is determined depending on whether the required operation point belongs to the reduced-cylinder operation restricted region . However, using the reduced-cylinder operation restricted region is only one example. For example, the reduced-cylinder operation may be restricted by the following way: in a case that the required operation point belongs to a reduced-cylinder operation allowed region A, the load of the internal combustion engine is calculated, and it is determined that the required operation point lies on the high load side when the calculated load exceeds a predetermined threshold value. The fuel injection quantity can be used as a substitute for the load of this case.
REFERENCE SINGS LIST
(57) 3 Internal Combustion Engine
(58) 30 ECU (Control Device)
(59) A2 Reduced-Cylinder Operation Allowed Region