Engine System

The engine system addresses misfires and knocking by controlling ignition sequences in main and auxiliary combustion chambers, improving fuel economy and exhaust gas performance through strategic ignition timing adjustments.

JP7725919B2Active Publication Date: 2025-08-20MAZDA MOTOR CORP
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Patent Information

Application Number
JP2021125484
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-07-30
Publication Date
2025-08-20
Estimated Expiration
2041-07-30

AI Technical Summary

Technical Problem

Existing engines with a main and auxiliary combustion chamber face challenges in introducing air-fuel mixture at high speeds and low loads, leading to misfires, and at high speeds and high loads, knocking is likely to occur, undermining fuel economy and exhaust gas performance improvements.

Method used

An engine system with a main and auxiliary combustion chamber, utilizing a controller to execute auxiliary ignition after main ignition at high speeds and low loads, and advance main ignition timing at low loads, while performing auxiliary ignition alone or with main ignition at high loads to promote air-fuel mixture introduction and suppress knocking.

Benefits of technology

The system effectively prevents misfires and knocking, enhancing fuel economy and exhaust gas performance by ensuring timely and efficient combustion in both operating conditions.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To reliably improve a fuel consumption performance and an exhaust gas performance in an engine system having a main combustion chamber and an auxiliary chamber.SOLUTION: An engine system 1 comprises an injector 28 for injecting fuel to a main consumption chamber 26, a main ignition plug 32 for mainly igniting air-fuel mixture of the main combustion chamber 26, and an ECU 100 electrically connected to an auxiliary ignition plug 62 for auxiliary igniting the air-fuel mixture in an auxiliary chamber 60, and outputting control electric signals to each device. When an engine is operating in a specific area A2H that is a high rotation area with an engine speed higher than a predetermined reference speed, the ECU 100 performs following control. In a low load area with an engine load not higher than a predetermined reference load (Tqs), the ECU 100 executes the auxiliary ignition after the main ignition is executed. In a high load area with the engine load higher than the reference load (Tqs), only the auxiliary ignition is executed, or the auxiliary ignition and the main ignition performed at the same time of or after the auxiliary ignition are executed.SELECTED DRAWING: Figure 7
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Description

[Technical Field]

[0001] The present invention relates to an engine system having a main combustion chamber and an auxiliary combustion chamber. [Background technology]

[0002] There is known an engine equipped with a main combustion chamber using a cylinder and an auxiliary combustion chamber communicating with the main combustion chamber. For example, Patent Document 1 discloses an engine in which a fuel injector and an ignition plug are disposed in both the main combustion chamber and the auxiliary combustion chamber. In this engine, an air-fuel mixture is combusted in the main combustion chamber, and then combusted in the auxiliary combustion chamber. The flame in the auxiliary combustion chamber is then ejected into the main combustion chamber, thereby combusting the unburned air-fuel mixture present in the main combustion chamber. This prevents the unburned air-fuel mixture from remaining in the main combustion chamber, thereby improving fuel economy and exhaust gas performance. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2007-255370 Summary of the Invention [Problem to be solved by the invention]

[0004] Unlike the engine of Patent Document 1, if a fuel injection device is placed only in the main combustion chamber for the purpose of structural simplification, it may be difficult to introduce the air-fuel mixture into the pre-chamber. For example, when the engine is operating at high speeds and low loads, the amount of air taken into the main combustion chamber is relatively small, making it difficult to introduce the air-fuel mixture into the pre-chamber. Therefore, even if ignition is performed by the spark plug in the pre-chamber, misfire may occur due to insufficient air-fuel mixture. Furthermore, when operating at high speeds and high loads, there is also the problem that knocking is inherently more likely to occur in the main combustion chamber. As a result, the improvements in fuel economy and exhaust gas emissions achieved by providing a pre-chamber in addition to the main combustion chamber may not be fully realized.

[0005] An object of the present invention is to reliably improve fuel economy and exhaust gas performance in an engine system equipped with a main combustion chamber and an auxiliary combustion chamber. [Means for solving the problem]

[0006] According to one aspect of the present invention, there is provided an engine system comprising: a cylinder block and a cylinder head which define cylinders; a piston housed in the cylinder so as to be able to reciprocate; a main combustion chamber partitioned by the cylinder block, the cylinder head, and the piston; an auxiliary chamber separated from the main combustion chamber by a partition wall and communicating with the main combustion chamber through a communication hole formed in the partition wall; a fuel injection device which injects fuel into the main combustion chamber; a main ignition device which performs main ignition to ignite an air-fuel mixture in the main combustion chamber; an auxiliary ignition device which performs auxiliary ignition to ignite an air-fuel mixture in the auxiliary chamber; and a controller which is electrically connected to the fuel injection device, the main ignition device, and the auxiliary ignition device and outputs control electrical signals to each of the devices; and when the engine is operated in a high rotation range where the engine speed is higher than a predetermined reference rotation speed, the controller executes the auxiliary ignition after executing the main ignition in a low load range where the engine load is equal to or lower than the predetermined reference load. At the same time, the lower the engine load, the more the timing of the main ignition is advanced. In a high load region where the engine load exceeds the reference load, only the auxiliary ignition is executed, or the auxiliary ignition is executed together with the main ignition which is executed at the same time as the auxiliary ignition or at a later time.

[0007] In the high-speed, low-load operating range of an engine, the amount of air taken into the main combustion chamber is relatively small, making it difficult to introduce the air-fuel mixture into the pre-combustion chamber. Even if the pre-ignition device performs pre-ignition when there is not enough air-fuel mixture in the pre-combustion chamber, misfire may occur. If a misfire occurs, a flame cannot be ejected from the pre-combustion chamber and cannot contribute to the combustion of the unburned air-fuel mixture remaining in the main combustion chamber. In contrast, with the above-described engine system, pre-ignition is performed after main ignition in the high-speed, low-load operating range. This promotes the flow of the air-fuel mixture into the pre-combustion chamber. That is, the combustion pressure of the flame propagation combustion generated by the main ignition is superimposed on the pushing force of the piston, increasing the force pushing the air-fuel mixture into the pre-combustion chamber. Therefore, even when the amount of air taken into the main combustion chamber is small, the introduction of the air-fuel mixture into the pre-combustion chamber is promoted. As a result, the above-mentioned misfire does not occur, and the execution of pre-ignition allows a flame to be ejected from the pre-combustion chamber, thereby successfully combusting the unburned air-fuel mixture remaining in the main combustion chamber. On the other hand, in the high-speed, high-load operating range, knocking is inherently more likely to occur in the main combustion chamber. In the above engine system, in the high-load, high-speed operating range, the auxiliary ignition is performed in advance to eject a flame from the auxiliary combustion chamber. This accelerates combustion in the main combustion chamber and suppresses knocking.

[0008] Moreover, The above engine system So In the low load region, the controller advances the timing of the main ignition as the engine load becomes lower. do.

[0009] The lower the engine load, the less air is taken into the main combustion chamber, making it more difficult for the air-fuel mixture to be introduced into the auxiliary combustion chamber. Therefore, According to the engine system described above, the lower the load, the more the timing of the main ignition is advanced, so that it is possible to ensure sufficient time to push the air-fuel mixture into the pre-chamber according to the engine load.

[0010] An engine system according to another aspect of the present invention includes a cylinder block and a cylinder head that define a cylinder, a piston accommodated in the cylinder so as to be able to reciprocate, a main combustion chamber defined by the cylinder block, the cylinder head, and the piston, an auxiliary chamber that is separated from the main combustion chamber by a partition wall and communicates with the main combustion chamber through a communication hole formed in the partition wall, a fuel injection device that injects fuel into the main combustion chamber, a main ignition device that performs main ignition to ignite the air-fuel mixture in the main combustion chamber, and an auxiliary ignition device that performs secondary ignition to ignite the air-fuel mixture in the auxiliary chamber. and a controller electrically connected to the fuel injection device, the main ignition device, and the auxiliary ignition device and outputting an electric control signal to each of the devices, wherein when the engine is operated in a high rotation range where the engine rotation speed is higher than a predetermined reference rotation speed, the controller executes the main ignition and then the auxiliary ignition in a low load range where the engine load is equal to or lower than a predetermined reference load, and executes the auxiliary ignition and the main ignition which is performed at the same time as or later than the auxiliary ignition in a high load range where the engine load exceeds the reference load, The higher the engine load, the more the timing of the main ignition is advanced. do.

[0011] According to the engine system described above, in the high-speed, low-load operating range, it is possible to satisfactorily combust the unburned mixture remaining in the main combustion chamber, and in the high-load, high-speed operating range, it is possible to accelerate combustion in the main combustion chamber and suppress knocking. The higher the engine load, the more likely the unburned mixture in the main combustion chamber is to self-ignite. Therefore, According to the above engine system, In the high load and high rotation range, The higher the load, the more the timing of the main ignition is advanced, so that combustion can be completed before the self-ignition occurs, thereby suppressing knocking.

[0012] In the above engine system, it is preferable that the controller executes both the main ignition and the auxiliary ignition at different times, and executes the main ignition during the compression stroke in the low load region where the main ignition is advanced, and executes the main ignition during the expansion stroke in the high load region where the auxiliary ignition is advanced.

[0013] With this engine system, in the low load range, the main ignition is performed during the compression stroke, which makes it easier to force the mixture into the pre-combustion chamber afterwards. In the high load range, the main ignition is performed during the expansion stroke, which allows the mixture remaining in the main combustion chamber after the pre-ignition to be quickly combusted by the main ignition. Therefore, knocking can be suppressed.

[0014] In the above engine system, it is preferable that the controller sets an ignition phase difference between the auxiliary ignition and the main ignition to a larger value as the engine load becomes lower in the low load region.

[0015] According to this engine system, the lower the engine load, the greater the ignition phase difference, so that it is possible to ensure a sufficient time for forcing the air-fuel mixture into the pre-chamber in accordance with the engine load. [Effects of the Invention]

[0016] According to the present invention, in an engine system having a main combustion chamber and an auxiliary combustion chamber, misfires and knocking in the auxiliary combustion chamber can be suppressed, and fuel economy and exhaust gas performance can be reliably improved. [Brief explanation of the drawings]

[0017] [Figure 1] FIG. 1 is a schematic configuration diagram of an engine system according to an embodiment of the present invention. [Figure 2] FIG. 2 is a schematic cross-sectional view of the engine body. [Figure 3] FIG. 3 is a partial cross-sectional side view of the tip of the sub-chamber plug. [Figure 4] FIG. 4 is a plan view of the tip of the sub-chamber plug. [Figure 5] FIG. 5 is a block diagram showing the control configuration of the engine system. [Figure 6] Figure 6 is a map showing the engine operating range. [Figure 7] FIG. 7 is a flowchart showing an example of fuel injection and ignition control that is executed when the operating region is in the specific region. [Figure 8] FIG. 8 is a time chart showing the fuel injection timing, the main ignition timing, and the auxiliary ignition timing in the low load region within the specific region. [Figure 9] FIG. 9 is a time chart showing the fuel injection timing, the main ignition timing, and the auxiliary ignition timing in the high load region within the specific region. [Figure 10] FIG. 10 is a chart showing the relationship between the engine load and the main ignition, the auxiliary ignition, and the ignition phase difference in the specific region. DETAILED DESCRIPTION OF THE INVENTION

[0018] Hereinafter, an engine system according to an embodiment of the present invention will be described in detail with reference to the drawings. In this embodiment, the engine system is an engine system mounted on a vehicle such as an automobile as a power source for driving the vehicle.

[0019] [Overall engine configuration] 1 is a schematic diagram of an engine system 1 according to an embodiment of the present invention. The engine system 1 includes an engine body 2, an intake passage 4 through which air (intake air) introduced into the engine body 2 flows, an exhaust passage 6 through which exhaust gas discharged from the engine body 2 flows, and an EGR device 50. The engine body 2 is a four-stroke gasoline engine that uses gasoline as its main fuel, and fuel containing gasoline is supplied to the engine body 2.

[0020] FIG. 2 is a schematic cross-sectional view of the engine body 2. The engine body 2 is a multi-cylinder engine having a plurality of cylinders 22. For example, the engine body 2 has four cylinders 22 aligned in a row (aligned in a direction perpendicular to the plane of FIG. 1). The engine body 2 includes a cylinder block 52, a cylinder head 54, and a plurality of pistons 24. The cylinders 22 are defined by the cylinder block 52 and the cylinder head 54. A plurality of cylindrical spaces defining the plurality of cylinders 22 are provided inside the cylinder block 52. The cylinder head 54 has a bottom surface 54a that closes the upper end openings of the cylindrical spaces, and is attached to the upper surface of the cylinder block 52. The pistons 24 are accommodated in each cylinder 22 so that they can slide back and forth. In this embodiment, the side from the cylinder block 52 toward the cylinder head 54 is referred to as the top, and the opposite is referred to as the bottom. These terms are used for convenience of explanation and are not intended to limit the installation orientation of the engine body 2.

[0021] A space that serves as a main combustion chamber 26 is formed above the piston 24 of each cylinder 22. The main combustion chamber 26 is defined by an inner circumferential surface 22a of the cylinder 22 formed in the cylinder block 52, a bottom surface 54a of the cylinder head 54, and a crown surface 24a of the piston 24. Fuel is supplied to the main combustion chamber 26 by injection from an injector 28, which will be described later. The supplied mixture of fuel and air is combusted in the main combustion chamber 26, and the expansion force caused by the combustion causes the piston 24 to reciprocate up and down.

[0022] A crankshaft 20, which is the output shaft of the engine body 2, is provided at the bottom of the cylinder block 52 (below the pistons 24). The crankshaft 20 is connected to the pistons 24 of each cylinder 22 via connecting rods 21, and rotates around its central axis in response to the reciprocating motion of the pistons 24.

[0023] An intake port 8 and an intake valve 10, and an exhaust port 12 and an exhaust valve 14 are formed in the cylinder head 54 for each cylinder 22. The intake port 8 is a port for introducing air supplied from the intake passage 4 into the main combustion chamber 26. The exhaust port 12 is a port for directing exhaust gas generated in the main combustion chamber 26 to the exhaust passage 6. The intake valve 10 opens and closes the opening of the intake port 8 on the side of the main combustion chamber 26. The exhaust valve 14 opens and closes the opening of the exhaust port 12 on the side of the main combustion chamber 26. In this embodiment, two intake valves 10 and two exhaust valves 14 are provided for each cylinder 22.

[0024] The intake valve 10 and the exhaust valve 14 are driven to open and close by valve trains 16, 18, respectively, which are disposed in a cylinder head 54, in conjunction with the rotation of a crankshaft 20. The valve train 16 for the intake valve 10 is provided with a variable valve lift mechanism (intake S-VT) 16a that electrically variably controls the valve lift amount and opening and closing timing of the intake valve 10. Similarly, the valve train 18 for the exhaust valve 14 is provided with a variable valve lift mechanism (exhaust S-VT) 18a that electrically variably controls the valve lift amount and opening and closing timing of the exhaust valve 14.

[0025] The cylinder head 54 is provided with one set of injector 28 (fuel injection device), main spark plug 32 (main ignition device), and auxiliary ignition unit 30 for each cylinder 22. The injector 28 is an injection valve that injects fuel into the main combustion chamber 26. A nozzle hole for injecting fuel is formed at a tip 28x of the injector 28. The injector 28 is attached to the cylinder head 54 so that the tip 28x faces the main combustion chamber 26 from above. The injector 28 is disposed so that the tip 28x is located at the center of the ceiling surface of the main combustion chamber 26, more specifically, on the axis of the cylinder 22.

[0026] The main spark plug 32 performs main ignition by spark discharge, igniting the air-fuel mixture in the main combustion chamber 26. An electrode portion 32x for discharging the spark is provided at the tip of the main spark plug 32. The electrode portion 32x includes a center electrode 32a and a side electrode 32b for grounding. The main spark plug 32 is attached to the cylinder head 54 so that the electrode portion 32x faces the combustion chamber 5 from above. The main spark plug 32 is disposed so that the electrode portion 32x is located on the ceiling surface of the main combustion chamber 26 closer to the intake port 8 than the tip portion 28x of the injector 28.

[0027] The secondary ignition unit 30 is a device for injecting a flame into the main combustion chamber 26. The secondary ignition unit 30 will be described in detail below.

[0028] The intake passage 4 is connected to one side of the cylinder head 54 so as to communicate with the intake ports 8 of each cylinder 22. The intake passage 4 is provided with, in order from the upstream side, an air cleaner 34 that removes foreign matter from the intake air, an openable / closable throttle valve 36 that adjusts the flow rate of intake air, and a surge tank 38. The downstream end of the intake passage 4 branches into multiple passages, and each of these branch passages is connected to one intake port 8. In each cylinder 22, the branch passage connected to one of the two intake ports 8 is provided with a swirl valve 56 (see FIG. 5) that opens and closes the branch passage.

[0029] The exhaust passage 6 is connected to one side of the cylinder head 54 (the side opposite to the intake passage 4) so as to communicate with the exhaust ports 12 of each cylinder 22. The exhaust passage 6 is provided with a catalytic device 40 incorporating a catalyst 41 such as a three-way catalyst.

[0030] The EGR device 50 is a device for recirculating a part of the exhaust gas to the intake passage 4 as EGR gas. 5 The exhaust gas turbine engine 0 has an EGR passage 42 that connects the exhaust passage 6 and the intake passage 4, and an EGR valve 46 and an EGR cooler 44 that are respectively provided in the EGR passage 42. The upstream end of the EGR passage 42 is connected to the downstream end of the catalytic converter 40, which is connected to the exhaust passage 6 downstream of the catalyst 41. The downstream end of the EGR passage 42 is connected to the surge tank 38. The EGR valve 46 is a valve that opens and closes the EGR passage 42 to adjust the flow rate of EGR gas. The EGR cooler 44 is a heat exchanger that cools the EGR gas. The EGR cooler 44 is connected to the downstream end of the catalytic converter 40, which is connected to the exhaust passage 6 downstream of the catalyst 41. above It is located on the stream side.

[0031] [Details of the auxiliary ignition unit] Fig. 3 is a partial cross-sectional view of the tip portion 30x of the auxiliary ignition unit 30 as seen from the side, and Fig. 4 is a plan view of the tip portion 30x as seen from below. The auxiliary ignition unit 30 includes an auxiliary spark plug 62 (auxiliary ignition device), a cover member 64 (partition wall) attached to the tip of the auxiliary spark plug 62, and an auxiliary chamber 60 which is an internal space covered by the cover member 64.

[0032] The auxiliary spark plug 62 performs auxiliary ignition by igniting the air-fuel mixture in the auxiliary combustion chamber 60 through spark discharge. The tip of the auxiliary spark plug 62 is provided with an electrode portion 62x that discharges sparks. The electrode portion 62x includes a center electrode 62a and a side electrode 62b for grounding. The cover member 64 constitutes the tip portion 30x of the auxiliary ignition unit 30 and covers the periphery of the electrode portion 62x of the auxiliary spark plug 62. The cover member 64 has a hemispherical shape that bulges downward. The auxiliary combustion chamber 60 is the space inside the cover member 64. More specifically, the auxiliary combustion chamber 60 is the space surrounding the electrode portion 62x of the auxiliary spark plug 62 and is a space partitioned by the cover member 64. Because of this space, the size of the auxiliary combustion chamber 60 is smaller than the size of the main combustion chamber 26. An electrode portion 62x of the auxiliary spark plug 62 is disposed so as to face the auxiliary chamber 60, thereby enabling the auxiliary ignition to be performed.

[0033] 2, the auxiliary ignition unit 30 is attached to the cylinder head 54 so that its tip end 30x faces the main combustion chamber 26 from above. The auxiliary ignition unit 30 is attached to the ceiling surface of the main combustion chamber 26 (the bottom surface 54a of the cylinder head 54) at a position closer to the exhaust port 12 than the injector 28. In this attached state, almost the entire cover member 64 is located inside the main combustion chamber 26. As a result, the cover member 64 serves as a partition wall separating the auxiliary combustion chamber 60 from the main combustion chamber 26.

[0034] The cover member 64 is formed with a plurality of communication holes 66 that penetrate the front and back of the cover member 64 and communicate with the main combustion chamber 26. The auxiliary chamber 60, which is the space inside the cover member 64, communicates with the main combustion chamber 26 via these communication holes 66. In this embodiment, an example is shown in which three communication holes 66 are formed in the cover member 64. As shown in FIG. 4, the three communication holes 66 are arranged at 120-degree intervals around the axis of the cover member 64 that passes through the vertex A of the cover member 64. Also, as shown in FIG. 3, each communication hole 66 is arranged at a position diagonally upward by approximately 45 degrees from the vertex A in a side view. In this embodiment, the cover member 64 has a radius of 5 mm, a thickness of 1 mm, and a diameter of each communication hole 66 of 1.2 mm.

[0035] The auxiliary ignition unit 30 having the above configuration functions as a device for injecting a flame into the main combustion chamber 26. When fuel is injected from the injector 28 into the main combustion chamber 26 and a mixture of air and fuel is formed in the main combustion chamber 26, a portion of this mixture is introduced into the auxiliary combustion chamber 60 through the communication hole 66. When a sufficient amount of mixture is present in the auxiliary combustion chamber 60 and a spark discharge (auxiliary ignition) is caused by the auxiliary spark plug 62, the mixture begins to burn in the auxiliary combustion chamber 60, and a flame propagates from the vicinity of the electrode portion 62x of the auxiliary spark plug 62 to the surrounding area. This flame is then ejected into the main combustion chamber 26 through the communication hole 66 and propagates to the mixture in the main combustion chamber 26.

[0036] Here, when main ignition is performed on the air-fuel mixture in the main combustion chamber 26 by the main spark plug 32, a flame also propagates from the vicinity of the electrode portion 32x of the main spark plug 32 to the surrounding area. In this way, if ignition is performed by both the main spark plug 32 and the auxiliary spark plug 62 and the air-fuel mixture starts to burn appropriately in the main combustion chamber 26 and the auxiliary combustion chamber 60, flames will propagate to the air-fuel mixture in the main combustion chamber 26 from multiple positions (the positions of the electrode portion 32x and each communication hole 66). Therefore, the combustion speed of the air-fuel mixture in the main combustion chamber 26 is increased, which in turn improves fuel efficiency and suppresses the occurrence of knocking.

[0037] [Control system] 5 is a block diagram showing a control system of the engine system 1. The engine system 1 includes an ECU 100 (controller) that performs overall control of each functional unit of the engine system 1. The ECU 100 is electrically connected to the injector 28 (fuel injection device), main spark plug 32 (main ignition device), and auxiliary spark plug 62 (auxiliary ignition device), and outputs control electrical signals to these devices. The ECU 100 is configured with a microcomputer that includes a processor (CPU) that performs various arithmetic processing, memories such as ROM and RAM, and various input / output buses.

[0038] Information detected by various sensors is input to the ECU 100. The ECU 100 performs various determinations and calculations based on the information input from the various sensors to control various parts of the engine. Detected values from an air flow sensor SN1, an intake air temperature sensor SN2, an intake air pressure sensor SN3, a water temperature sensor SN4, and a crank angle sensor SN5 provided in the engine system 1, and an accelerator opening sensor SN6 provided in the vehicle, are input to the ECU 100.

[0039] The air flow sensor SN1 detects the flow rate of intake air that passes through the intake passage 4 and is introduced into the engine body 2. The intake air temperature sensor SN2 and the intake air pressure sensor SN3 respectively detect the temperature and pressure of the intake air that is introduced into the engine body 2. The water temperature sensor SN4 detects the temperature of the engine coolant that cools the engine body 2. The crank angle sensor SN5 detects the crank angle, which is the rotation angle of the crankshaft 20, and the engine speed. The accelerator position sensor SN6 detects the accelerator position, which is the position of an accelerator pedal (not shown) provided on the vehicle.

[0040] 6 is a map showing the engine operating range, with the horizontal axis representing engine speed and the vertical axis representing engine load. The engine operating range is roughly divided into three ranges A1 to A3 (first range A1, second range A2, and third range A3) depending on the control details of the injector 28, main spark plug 32, and sub spark plug 62.

[0041] The first region A1 is a low-speed, low-load region where the engine speed is equal to or less than a predetermined first speed N1 and the engine load is equal to or less than a predetermined first load Tq1. The third region A3 is a low-speed, high-load region where the engine speed is equal to or less than the first speed N1 and the engine load is higher than a predetermined second load Tq2. The second region A2 is the other region, that is, the region where the engine speed is equal to or less than the first speed N1, and is made up of a region where the engine load is higher than the first load Tq1 and equal to or less than the second load Tq2, and a region where the engine speed is higher than the first speed N1.

[0042] In the first region A1, the injector 28, the main spark plug 32, and the auxiliary spark plug 62 are controlled to achieve HCCI combustion (Homogeneous Compression Charge Ignition). Specifically, fuel is injected from the injector 28 during the intake stroke. In addition, the ignition operations of the main spark plug 32 and the auxiliary spark plug 62 are stopped.

[0043] The injector 28 is disposed facing the main combustion chamber 26, and fuel injected from the injector 28 is dispersed throughout the main combustion chamber 26. Thus, in the first region A1, fuel is injected from the injector 28 during the intake stroke, so that the fuel and air are thoroughly mixed in the main combustion chamber 26 before the top dead center of compression is reached. In the first region A1, this thoroughly mixed mixture (premixed air-fuel) is heated and pressurized by the compression of the piston 24, causing it to self-ignite near the top dead center of compression. In HCCI combustion, the air-fuel ratio of the mixture is made lean (high) to a level where flame propagation is impossible, thereby improving fuel economy. Therefore, in the first region A1, the opening of the throttle valve 36 is adjusted so that the air-fuel ratio of the mixture in the main combustion chamber 26 is leaner than the stoichiometric air-fuel ratio (14.7).

[0044] In the second region A2, the injector 28, the main spark plug 32, and the auxiliary spark plug 62 are controlled to achieve flame propagation combustion (SI combustion). In the second region A2, fuel is injected from the injector 28 during the intake stroke, as in the first region A1. Meanwhile, in the second region A2, the main spark plug 32 and the auxiliary spark plug 62 are driven, and main ignition and auxiliary ignition are performed by these spark plugs 32, 62. The opening of the throttle valve 36 is also adjusted so that the air-fuel ratio of the mixture in the main combustion chamber 26 approaches the stoichiometric air-fuel ratio. In the second region A2, flame kernels are generated around the electrodes 32x, 62x by main ignition by the main spark plug 32 and auxiliary ignition by the auxiliary spark plug 62. Flames propagate from these flame kernels to the surrounding areas, causing the mixture in the main combustion chamber 26 and the auxiliary combustion chamber 60 to combust.

[0045] In the third region A3, the injector 28, the main spark plug 32, and the auxiliary spark plug 62 are controlled to achieve retarded SI combustion, in which the fuel injection timing is more retarded than in the second region A2. In the third region A3, fuel is injected from the injector 28 during the compression stroke, not the intake stroke. This is because if fuel injection is performed during the intake stroke in the third region A3, which is low rotation and high load, pre-ignition, in which the air-fuel mixture self-ignites before the main ignition, may occur.

[0046] In this embodiment, a specific ignition control is executed in a specific region A2H within the second region A2. The specific region A2H is a high rotation region where the engine speed is higher than a second rotation speed N2 (predetermined reference rotation speed) that is predetermined as a high rotation region. The second rotation speed N2 is a predetermined engine rotation speed that is set in a region higher than the first rotation speed N1, which is the boundary between the first region A1 and the third region A3. In the specific region A2H, the ECU 100 executes different ignition controls at a predetermined boundary load Tqs (predetermined reference load). The boundary load Tqs is set with reference to the likelihood of knocking, etc.

[0047] In a low load region below the boundary load Tqs (for example, at the operating point P1 in FIG. 6), the ECU 100 causes the main spark plug 32 to perform main ignition and then causes the auxiliary spark plug 62 to perform auxiliary ignition. That is, in the low rotation speed region of the specific region A2H, control is executed to cause main ignition to precede auxiliary ignition. On the other hand, in a high rotation speed region above the boundary load Tqs (for example, at the operating point P2), control is executed to give priority to auxiliary ignition over main ignition. Specifically, in the high rotation speed region, the ECU 100: Pattern A: Only secondary ignition is performed. Pattern B: Sub-ignition and main ignition are performed simultaneously, or Pattern C: Auxiliary ignition and main ignition performed at a time after the auxiliary ignition are performed. The control is selected from the following three patterns.

[0048] In the relatively low-load operating range (operating point P1) in the specific high-speed range A2H, the amount of air taken into the main combustion chamber 26 is relatively small, making it difficult to introduce the air-fuel mixture into the auxiliary combustion chamber 60. Even if auxiliary ignition is performed by the auxiliary spark plug 62 when there is not enough air-fuel mixture in the auxiliary combustion chamber 60, misfire may occur. If misfire occurs, a flame cannot be emitted from the communication hole 66 of the auxiliary combustion chamber 60, and the flame cannot contribute to the combustion of the unburned air-fuel mixture in the main combustion chamber 26. In consideration of this, the ECU 100 executes auxiliary ignition after main ignition in the high-speed, low-load operating range. This promotes the inflow of the air-fuel mixture into the auxiliary combustion chamber 60. In other words, the combustion pressure of the flame propagation combustion generated by the main ignition is superimposed on the pushing force of the piston 24, increasing the pushing force of the air-fuel mixture into the auxiliary combustion chamber 60. Therefore, even when the amount of air taken into the main combustion chamber 26 is small, the introduction of the air-fuel mixture into the auxiliary combustion chamber 60 is promoted. As a result, the above-mentioned misfire does not occur, and the execution of the secondary ignition allows a flame to be ejected from the secondary combustion chamber 60, thereby enabling the unburned mixture remaining in the main combustion chamber 26 to be combusted satisfactorily.

[0049] In contrast, in the relatively high-load operating range (operating point P2) in the specific range A2H, knocking is inherently more likely to occur in the main combustion chamber 26. In consideration of this, in the high-load, high-speed operating range, the ECU 100 executes the auxiliary ignition first to eject a flame from the auxiliary combustion chamber 60. For example, only the auxiliary ignition is executed at a predetermined time (pattern A), and the flame ejected from the auxiliary combustion chamber 60 causes all of the mixture in the main combustion chamber 26 to undergo SI combustion. Alternatively, the auxiliary ignition and the main ignition are executed simultaneously (pattern B), causing a flame to eject from the auxiliary combustion chamber 60 and forming a flame kernel around the electrode portion 32x of the main ignition plug 32, thereby causing the mixture in the main combustion chamber 26 to undergo SI combustion. Alternatively, main ignition is performed after the auxiliary ignition (pattern C), and the mixture in the main combustion chamber 26 is SI-combusted first by the flame from the auxiliary combustion chamber 60, while the remaining mixture is burned by main ignition from the main spark plug 32. Either of these controls accelerates combustion in the main combustion chamber 26, making it possible to suppress knocking.

[0050] [Specific control examples in specific areas] Next, a specific example of control in the specific region A2H will be described. Fig. 7 is a flowchart showing an example of fuel injection control of the injector 28 and ignition control of the main spark plug 32 and the sub spark plug 62, which are executed by the ECU 100 when the operating region is the specific region A2H. Here, an example is shown in which the control of "Pattern C" is executed in the high rotation region (operating point P2) of the specific region A2H.

[0051] When a predetermined sampling period arrives, the ECU 100 reads various pieces of information from the various sensors SN1 to SN6 and other sensors shown in Fig. 5 (step S1). For the fuel injection control and ignition control described above, the ECU 100 reads the engine speed detected by the crank angle sensor SN5 and the accelerator pedal opening detected by the accelerator pedal opening sensor SN6.

[0052] Next, the ECU 100 calculates the required torque, that is, the engine load, which is the torque required of the engine body 2 (step S2). The ECU 100 calculates the required torque (engine load) based on the engine speed and accelerator pedal opening degree read in step S1.

[0053] Next, the ECU 100 determines whether or not the operating point of the engine main body 2 is in a specific region A2H (see the operating map in FIG. 6) within the second region A2 (step S3). Specifically, the ECU 100 determines whether or not the current operating point of the engine is within the specific region A2H based on the engine speed read in step S1 and the engine load calculated in step S2.

[0054] If the operating point of the engine main body 2 is not within the specific region A2H (NO in step S3), the ECU 100 executes control according to another operating region, i.e., preset fuel injection control and ignition control for the first region A1, the third region A3, or the second region A2 other than the specific region A2H (step S8). On the other hand, if the operating point of the engine main body 2 is within the specific region A2H (YES in step S3), the ECU 100 executes the processes of steps S4 to S7. These processes set the fuel injection timing at which the injector 28 starts fuel injection, the main ignition timing at which the main ignition plug 32 performs ignition (spark discharge), and the auxiliary ignition timing at which the auxiliary ignition plug 62 performs ignition (spark discharge).

[0055] In step S4, the ECU 100 determines whether the operating point of the engine main body 2 is in a low load region within the specific region A2H (step S4). If the operating point is in a low load region (for example, operating point P1) within the specific region A2H that is equal to or lower than the boundary load Tqs (YES in step S4), the ECU 100 sets the main ignition timing and the auxiliary ignition timing so that auxiliary ignition is performed after the main ignition is performed (step S5).

[0056] On the other hand, if the operating point is in a high load region (for example, operating point P2) exceeding the boundary load Tqs within the specific region A2H (NO in step S4), the ECU 100 sets the main ignition timing and the auxiliary ignition timing so that the main ignition is executed after the auxiliary ignition (step S6). Note that in both the low rotation region and the high rotation region, the fuel injection timing is set to a predetermined time during the intake stroke.

[0057] Thereafter, the ECU 100 drives the injector 28 so that fuel injection begins at the set fuel injection timing. The ECU 100 also drives the main spark plug 32 so that main ignition occurs at the main ignition timing set in step S5 or S6, and drives the auxiliary spark plug 62 so that auxiliary ignition occurs at the auxiliary ignition timing set in step S5 or S6 (step S7). In actual control, a control map formed by linking the fuel injection timing, main ignition timing, and auxiliary ignition timing to the engine load and engine speed is stored in advance in a memory area of the ECU 100, and the fuel injection timing and ignition timing are set by referring to the control map.

[0058] FIG. 8 is a time chart showing the fuel injection timing, main ignition timing tm, and auxiliary ignition timing ts at an operating point P1 in the low load region within the specific region A2H. The fuel injection timing in the low load region is during the intake stroke. Specifically, the start and end timings of fuel injection from the injector 28 are set to be included in the intake stroke. This is because in the specific region A2H, there is little need to retard the fuel injection timing to prevent pre-ignition, as in the third region A3. The fuel injection end timing may be during the compression stroke.

[0059] In the low load region within the specific region A2H, as explained in step S5 of FIG. 7, the main ignition timing tm is set to a timing more advanced than the auxiliary ignition timing ts. That is, first, main ignition is performed by the main spark plug 32, and then auxiliary ignition is performed by the auxiliary spark plug 62. The main ignition timing tm is set in the latter half of the compression stroke, which is more advanced than the compression top dead center (TDC), and the auxiliary ignition timing ts is set in the expansion stroke, which is slightly more retarded than the compression top dead center (TDC). The preceding main ignition initiates SI combustion of the mixture in the main combustion chamber 26. In the low load region, the amount of air taken into the main combustion chamber 26 is relatively small, making it difficult to introduce the mixture into the auxiliary combustion chamber 60. However, with the assistance of the pressure increase associated with the SI combustion, the unburned mixture remaining in the main combustion chamber 26 is forced into the auxiliary combustion chamber 60 through the communication hole 66. This allows a sufficient amount of mixture to be introduced into the auxiliary combustion chamber 60.

[0060] The air-fuel mixture introduced into the auxiliary combustion chamber 60 is combusted by the auxiliary ignition following the main ignition. As described above, since a sufficient amount of air-fuel mixture is introduced into the auxiliary combustion chamber 60, misfires are unlikely to occur, and the air-fuel mixture in the auxiliary combustion chamber 60 is combusted by the auxiliary ignition. As a result, it is possible to increase the reliability of ejecting flames from the multiple communication holes 66. These flames combust the unburned air-fuel mixture in the main combustion chamber 26 all at once. This can therefore improve fuel economy and exhaust gas performance.

[0061] FIG. 9 is a time chart showing the fuel injection timing, main ignition timing tm, and auxiliary ignition timing ts at operating point P2 in the high load region within the specific region A2H. The fuel injection timing in the high load region is during the intake stroke, as in the low load region described above. As explained in step S6 of FIG. 7, the ignition timing in the high load region is set such that the auxiliary ignition timing ts is more advanced than the main ignition timing tm. That is, contrary to the low load region described above, auxiliary ignition is performed first by the auxiliary spark plug 62, and then main ignition is performed by the main spark plug 32. The auxiliary ignition timing ts is close to top dead center (TDC) of the compression stroke, and the main ignition timing tm is relatively close to TDC of the expansion stroke.

[0062] In the high load range, a relatively large amount of air is taken into the main combustion chamber 26, which makes it easier for the air-fuel mixture to be introduced into the auxiliary combustion chamber 60. Therefore, even if auxiliary ignition is performed first, misfires are unlikely to occur. The auxiliary ignition causes the air-fuel mixture in the auxiliary combustion chamber 60 to burn, and the resulting flames are ejected from the multiple communication holes 66. These flames serve as ignition points for the air-fuel mixture in the main combustion chamber 26 to start SI combustion. The main ignition following this auxiliary ignition causes the remaining air-fuel mixture in the main combustion chamber 26 to burn all at once. This increases the combustion speed of the air-fuel mixture in the main combustion chamber 26, thereby suppressing knocking, which tends to occur in the high rotation range.

[0063] [Relationship between engine load and ignition control] FIG. 10 is a chart showing the relationship between engine load and main ignition timing (upper part of FIG. 10), auxiliary ignition timing (middle part), and ignition phase difference (lower part) in the specific region A2H. In FIG. 10, the boundary load Tqs is used as the reference load, and the low load region and the high load region are separated. The vertical axis of each chart represents the crank angle, with the advance side of TDC representing the compression stroke and the retard side representing the expansion stroke. FIGS. 8 and 9 show examples of ignition control at a specific operating point P1 in the low load region and a specific operating point P2 in the high load region, respectively. FIG. 10 shows the tendency of ignition control executed by ECU 100 in the full load region of the specific region A2H. The chart in FIG. 10 shows the relationship between each parameter and engine load at a constant engine speed.

[0064] The main ignition timing is set to the compression stroke because it is a pre-ignition in the low load range. In the low load range, the ECU 100 controls the main ignition timing to be more advanced as the engine load becomes lower. Specifically, the main ignition timing is set closest to TDC at the boundary load Tqs and is shifted more advanced as the engine load becomes lower. The lower the engine load, the less air is taken into the main combustion chamber 26, making it more difficult for the mixture to be introduced into the auxiliary combustion chamber 60. Therefore, by advancing the main ignition timing as the load becomes lower, the period from main ignition to auxiliary ignition can be lengthened. This ensures sufficient time for the mixture to be forced into the auxiliary combustion chamber 60, ensuring reliable flame ejection from the multiple communication holes 66.

[0065] In the high engine load range, the main ignition timing is set to the expansion stroke because it is a delayed ignition. That is, the main ignition timing is shifted stepwise from the advance side to the retard side from TDC at the boundary load Tqs, which is the reversal point of ignition control. The ECU 100 retards the main ignition timing in the high engine load range most at the boundary load Tqs point, and shifts it to the advance side so that it approaches TDC as the engine load increases. The higher the engine load, the more likely the unburned mixture in the main combustion chamber 26 is to self-ignite. Therefore, by advancing the main ignition timing as the load increases, it is possible to complete combustion before the self-ignition occurs. Therefore, knocking can be suppressed.

[0066] As described above, the ECU 100 sets the main ignition timing tm during the compression stroke in the low load range where main ignition is advanced, and sets the main ignition timing tm during the expansion stroke in the high load range where secondary ignition is advanced. By executing main ignition during the compression stroke in the low load range, it becomes easier to force the mixture into the secondary combustion chamber 60 after the main ignition. Furthermore, by executing main ignition during the expansion stroke in the high load range, the mixture remaining in the main combustion chamber 26 after secondary ignition can be quickly combusted by the main ignition. Therefore, knocking can be suppressed.

[0067] The auxiliary ignition timing is set to the expansion stroke because it is a delayed ignition in the low load range. In the low load range, the ECU 100 controls the auxiliary ignition timing to be retarded as the engine load becomes lower. Specifically, the auxiliary ignition timing is set near TDC at the boundary load Tqs, and is controlled to be shifted to the retard side as the engine load becomes lower. By retarding the auxiliary ignition timing as the load becomes lower, the period from when the main ignition is performed until when the auxiliary ignition is performed can be made longer. This, combined with the above-mentioned main ignition timing advance control, ensures sufficient time to push the mixture into the auxiliary combustion chamber 60.

[0068] The auxiliary ignition timing is set in the compression stroke because it is a pre-ignition in the high load region. In the high load region, the ECU 100 controls the auxiliary ignition timing so that it advances as the engine load increases. Specifically, the auxiliary ignition timing is set near TDC at the boundary load Tqs, and is controlled to shift more gradually to the advance side as the engine load increases. .workman By advancing the auxiliary ignition timing as the engine load increases, SI combustion based on the flame ejected from the auxiliary combustion chamber 60 can be initiated at an earlier timing. This makes it possible to further increase the combustion speed of the air-fuel mixture in the main combustion chamber 26, which contributes to suppressing knocking.

[0069] As shown in FIG. 8, the ignition phase difference dt is the phase difference in crank angle between the main ignition timing tm and the auxiliary ignition timing ts. In the low load region of the specific region A2H, the ignition phase difference dt is set to be larger as the engine load becomes lower. In the low load region, the main ignition timing tm is advanced as the engine load becomes lower. On the other hand, the auxiliary ignition timing ts is retarded as the engine load becomes lower. Therefore, the ignition phase difference dt becomes larger as the engine load becomes lower. Note that in the high load region, the ignition phase difference dt becomes smaller as the engine load becomes higher.

[0070] As described above, by setting the ignition phase difference dt to be larger as the engine load decreases, it is possible to ensure sufficient time to force the mixture into the auxiliary combustion chamber 60 according to the engine load. In other words, increasing the ignition phase difference dt leads to a longer period between the main ignition, which is a leading ignition, and the auxiliary ignition, which is a trailing ignition, in the low load region. Therefore, it is possible to more easily obtain the effect of introducing the mixture into the auxiliary combustion chamber 60 as a result of combustion in the main combustion chamber 26.

[0071] [Variations] Although the embodiment of the present invention has been described above, the present invention is not limited to the above embodiment, and the following modified embodiments are possible.

[0072] (1) In the control of the high load range (P2) shown in Figures 9 and 10, an example based on the control of "Pattern C" shown above is shown. When the control of "Pattern A" shown above (executing only sub-ignition) is performed, only the sub-ignition timing ts is set. In this case, in order to suppress knocking, the sub-ignition timing shown in Figure 10 may be shifted to the advance side overall. Also, when the control of "Pattern B" shown above (executing sub-ignition and main ignition at the same time) is performed, the main ignition timing tm and the sub-ignition timing ts are set to the same time (ignition phase difference dt = 0).

[0073] (2) In the above embodiment, the cover member 64 of the auxiliary ignition unit 30 has a semispherical dome shape (FIG. 3) and three communication holes 66 (FIG. 4). The cover member 64 may have other shapes, such as a truncated cone shape or a rectangular parallelepiped shape. The number and size of the communication holes 66 can be set appropriately. The attachment position of the auxiliary ignition unit 30 is not limited to the embodiment shown in FIG. 2. For example, the auxiliary ignition unit 30 may be provided on the intake port 8 side of the tip end 28x of the injector 28. [Explanation of symbols]

[0074] 1 Engine System 22 cylinders 24 pistons 26 Main combustion chamber 28 Injector (fuel injection device) 30 Sub-ignition unit 32 Main spark plug (main ignition device) 52 Cylinder block 54 Cylinder head 60 Antechamber 62 Auxiliary spark plug (auxiliary ignition device) 64 Cover member (partition wall) 66 Communication hole 100 ECU (Controller) A2H Specific range (higher than reference speed range) P1 Low load operating point P2 High load operating point N2 Second rotation speed (predetermined reference rotation speed) Tq21 Boundary load (predetermined reference load) tm main ignition timing ts sub ignition timing dt ignition phase difference

Claims

1. a cylinder block and a cylinder head that form a cylinder; a piston accommodated in the cylinder so as to be capable of reciprocating; a main combustion chamber defined by the cylinder block, the cylinder head, and the piston; an auxiliary chamber separated from the main combustion chamber by a partition wall and communicating with the main combustion chamber through a communication hole formed in the partition wall; a fuel injection device that injects fuel into the main combustion chamber; a main ignition device that performs main ignition to ignite the air-fuel mixture in the main combustion chamber; an auxiliary ignition device that performs auxiliary ignition to ignite the air-fuel mixture in the auxiliary chamber; a controller electrically connected to the fuel injection device, the main ignition device, and the auxiliary ignition device, and outputting control electrical signals to each of the devices; When the engine is operated in a high rotation region where the engine rotation speed is higher than a predetermined reference rotation speed, the controller In a low load region where the engine load is equal to or lower than a predetermined reference load, the auxiliary ignition is executed after the main ignition is executed, and the lower the engine load, the more the timing of the main ignition is advanced; In a high load region where the engine load exceeds the reference load, only the auxiliary ignition is executed, or the auxiliary ignition is executed together with the main ignition which is executed at the same time as the auxiliary ignition or at a later time.

2. A cylinder block and a cylinder head forming a cylinder; a piston accommodated in the cylinder so as to be capable of reciprocating; a main combustion chamber defined by the cylinder block, the cylinder head, and the piston; an auxiliary chamber separated from the main combustion chamber by a partition wall and communicating with the main combustion chamber through a communication hole formed in the partition wall; a fuel injection device that injects fuel into the main combustion chamber; a main ignition device that performs main ignition to ignite the air-fuel mixture in the main combustion chamber; an auxiliary ignition device that performs auxiliary ignition to ignite the air-fuel mixture in the auxiliary chamber; a controller electrically connected to the fuel injection device, the main ignition device, and the auxiliary ignition device, and outputting control electrical signals to each of the devices; When the engine is operated in a high rotation region where the engine rotation speed is higher than a predetermined reference rotation speed, the controller In a low load region where the engine load is equal to or less than a predetermined reference load, the main ignition is executed first, and then the auxiliary ignition is executed. In a high load region where the engine load exceeds the reference load, the auxiliary ignition and the main ignition, which are performed at the same time as the auxiliary ignition or at a later time, are executed, and the higher the engine load, the more the timing of the main ignition is advanced.

3. 3. The engine system according to claim 1, The controller executes both the main ignition and the auxiliary ignition at different times, In the low load region where the main ignition is advanced, the main ignition is performed during a compression stroke, In the high load region where the secondary ignition precedes, the main ignition is performed during the expansion stroke.

4. 3. The engine system according to claim 1, The controller sets an ignition phase difference between the auxiliary ignition and the main ignition to a larger value as the engine load becomes lower in the low load region.

Citation Information

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