Engine control device and engine control method
A two-stage fuel injection control method for engines addresses unstable combustion issues by retarding the second stage in high idle mode, improving load application performance and reducing emissions.
Patent Information
- Application Number
- JP2021183714
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2021-11-10
- Publication Date
- 2025-05-21
- Estimated Expiration
- 2041-11-10
AI Technical Summary
Excessive retarding of fuel injection timing during high idle in engines leads to unstable combustion, resulting in high HC emissions and white smoke, limiting the improvement of load application performance.
Implementing a control method that includes a rotation speed increase mode, followed by a high idle mode with two-stage fuel injection, where the second stage is retarded, and adjusting fuel injection timing to maintain optimal engine operating conditions.
This approach enhances load application performance while suppressing HC emissions and white smoke, maintaining stable combustion regardless of atmospheric conditions.
Smart Images

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Abstract
Description
[Technical field]
[0001] The present disclosure relates to an engine control device and an engine control method. [Background technology]
[0002] For example, engines for generating electricity are required to supply electric power very quickly, and therefore load application performance is important. To improve the load application performance, it is necessary to operate the turbocharger early. For this reason, as described in Patent Document 1, for example, a method is known in which the fuel injection timing is retarded during high idle before the application of load to the diesel engine, thereby increasing the engine exhaust energy and operating the turbocharger early. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 10-288057 Summary of the Invention [Problem to be solved by the invention]
[0004] However, excessive retarding of fuel injection timing during high idle causes unstable combustion, resulting in the emission of large amounts of HC and the generation of white smoke, raising concerns about the environmental impact. For this reason, there is a limit to the amount of retardation of fuel injection timing, and the effect of adjusting the amount of retardation of fuel injection timing in improving load application performance is limited.
[0005] In view of the above circumstances, an object of at least one embodiment of the present disclosure is to provide an engine control device and an engine control method that can achieve good load application performance while suppressing an increase in HC emissions. [Means for solving the problem]
[0006] In order to achieve the above object, an engine control device according to at least one embodiment of the present disclosure includes: An engine control device for controlling a turbocharged engine, a rotation speed increase mode execution unit configured to execute a rotation speed increase mode in which a rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution unit configured to execute a high idle mode, which is a mode for operating the engine under no load and is different from the increased rotation speed mode, when a first parameter related to an operating state of the engine reaches a threshold value in the increased rotation speed mode; a load application mode execution unit configured to execute a load application mode in which a load is applied to the engine after executing the high idle mode; Equipped with the increased speed mode includes at least one fuel injection stage in one combustion cycle of the engine; the high idle mode includes at least two stages of fuel injection within one combustion cycle of the engine; The high idle mode execution unit is configured to retard the timing of a second stage fuel injection in one combustion cycle of the engine in the high idle mode compared to the timing of a first stage fuel injection in one combustion cycle of the engine in the rotation speed increase mode.
[0007] In order to achieve the above object, an engine control method according to at least one embodiment of the present disclosure includes: 1. An engine control method for controlling a turbocharged engine, comprising: a rotation speed increase mode execution step of executing a rotation speed increase mode, which is a mode in which a rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution step of executing a high idle mode, which is a mode for operating the engine under no load and is different from the increased rotation speed mode, when a first parameter related to an operating state of the engine reaches a threshold value in the increased rotation speed mode; a load application mode execution step of executing a load application mode, which is a mode for applying a load to the engine, after executing the high idle mode; Equipped with the increased speed mode includes at least one fuel injection stage in one combustion cycle of the engine; the high idle mode includes at least two stages of fuel injection within one combustion cycle of the engine; In the high idle mode execution step, a timing of a second stage fuel injection in one combustion cycle of the engine in the high idle mode is retarded from a timing of a first stage fuel injection in one combustion cycle of the engine in the rotation speed increase mode.
[0008] In order to achieve the above object, an engine control device according to at least one embodiment of the present disclosure includes: An engine control device for controlling a turbocharged engine, a rotation speed increase mode execution unit configured to execute a rotation speed increase mode in which a rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution unit configured to execute a high idle mode, which is a mode for operating the engine under no load and is different from the increased rotation speed mode, when a first parameter related to an operating state of the engine reaches a threshold value in the increased rotation speed mode; a load application mode execution unit configured to execute a load application mode in which a load is applied to the engine after executing the high idle mode; Equipped with The high idle mode execution unit is configured to adjust a timing of fuel injection in one combustion cycle of the engine in the high idle mode so that a second parameter related to an operating state of the engine falls within a target range. Effect of the Invention
[0009] According to at least one embodiment of the present disclosure, an engine control device and an engine control method are provided that are capable of realizing good load application performance while suppressing an increase in HC emissions. [Brief description of the drawings]
[0010] [Figure 1] FIG. 1 is a diagram illustrating a schematic configuration of a diesel engine system 100 according to an embodiment. [Diagram 2] FIG. 2 is a diagram illustrating an example of a hardware configuration of an ECU 4 according to an embodiment. [Diagram 3] 3 is a block diagram showing an example of a functional configuration of an ECU 4 shown in FIGS. 1 and 2. FIG. [Figure 4] 4 is a diagram showing an outline of a load application flow for applying a load to the engine 2 by the ECU 4 shown in FIG. 3. [Diagram 5] FIG. 5 is a diagram showing an engine operating state under the control of the load application flow shown in FIG. 4. [Figure 6] FIG. 2 is a diagram showing the relationship between the crank angle and the opening degree of the fuel injection valve in one combustion cycle of the engine 2 for each of the high idle mode and the increased rotation speed mode. [Figure 7] The relationship between the elapsed time and the excess air ratio of engine 2, the relationship between the elapsed time and the temperature before the exhaust turbine, and the relationship between the elapsed time and the concentration of HC in the exhaust gas of engine 2 are shown. [Figure 8] 4 is a diagram showing an example of a load application flow for applying a load to the engine 2 via the high idle mode by the ECU 4 shown in FIG. 3. [Figure 9]FIG. 10 is a diagram showing the relationship between the second-stage fuel injection timing of the engine 2 and the fuel injection amount F, the relationship between the second-stage fuel injection timing of the engine 2 and the turbocharger rotation speed N2, and the relationship between the second-stage fuel injection timing of the engine 2 and the intake air pressure Ps of the engine 2, for the cases when the intake air temperature of the engine 2 is high and low in the load application flow shown in FIG. [Figure 10] FIG. 9 is a diagram showing the relationship between the second-stage fuel injection timing of engine 2 and the limit load input rate when the intake air temperature of engine 2 is high and when it is low in the load application flow shown in FIG. 8, and the relationship between the second-stage fuel injection timing of engine 2 and the concentration of HC in the exhaust gas of engine 2 in high idle mode. [Figure 11] 4 is a diagram showing an example of a load application flow for applying a load to the engine 2 via the high idle mode by the ECU 4 shown in FIG. 3. [Figure 12] FIG. 12 is a diagram showing the relationship between a ratio F2 / F1 and a fuel injection amount F, the relationship between the ratio F2 / F1 and a turbocharger rotation speed N2, and the relationship between the ratio F2 / F1 and an intake pressure Ps of the engine 2, for the cases when the intake air temperature of the engine 2 is high and low in the load application flow shown in FIG. [Figure 13] FIG. 12 shows the relationship between a ratio F2 / F1 (to be described later) and a limit load input rate, and the relationship between the ratio F2 / F1 and the concentration of HC in the exhaust gas of the engine 2 in high idle mode, for the cases when the intake air temperature of the engine 2 is high and low in the load application flow shown in FIG. [Figure 14] 4 is a diagram showing an example of a load application flow for applying a load to the engine 2 via the high idle mode by the ECU 4 shown in FIG. 3. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0011] Hereinafter, some embodiments of the present disclosure will be described with reference to the accompanying drawings. However, the dimensions, materials, shapes, relative arrangements, etc. of components described as the embodiments or shown in the drawings are merely illustrative examples and are not intended to limit the scope of the invention. For example, expressions expressing relative or absolute configuration, such as "in a certain direction," "along a certain direction," "parallel," "orthogonal," "center," "concentric," or "coaxial," not only strictly express such a configuration, but also express a state in which there is a relative displacement with a tolerance or an angle or distance to the extent that the same function is obtained. For example, expressions indicating that things are in an equal state, such as "identical," "equal," and "homogeneous," not only indicate a state of strict equality, but also indicate a state in which there is a tolerance or a difference to the extent that the same function is obtained. For example, expressions describing shapes such as a rectangular shape or a cylindrical shape do not only refer to rectangular shapes, cylindrical shapes, etc. in the strict geometric sense, but also refer to shapes that include uneven portions, chamfered portions, etc., to the extent that the same effect is obtained. On the other hand, the expressions "comprise," "include," "have," "includes," or "have" of one element are not exclusive expressions excluding the presence of other elements.
[0012] FIG. 1 is a diagram that illustrates a schematic configuration of a diesel engine system 100 according to one embodiment. 1, the diesel engine system 100 includes a turbocharged diesel engine 2 (hereinafter simply referred to as the engine 2) and an engine control unit (ECU) 4 as a control device for controlling the engine 2. The engine 2 is, for example, an engine for generating electricity, and the rotational energy generated by the engine 2 is converted into electric power by a generator 25.
[0013] 1, the engine 2 includes an engine body 6 configured to generate power by burning fuel therein, an intake line 8 for compressing and supplying intake air (gas, for example, air) to the engine body 6, an exhaust line 10 for guiding exhaust gas discharged from the engine body 6 to the outside of the engine 2, a fuel injection device (fuel injection valve) 12 configured to inject liquid fuel into the engine body 6, a turbocharger 16, and an intercooler 18. The engine 2 also includes an engine tachometer 32 for measuring the rotation speed N1 of the engine 2, a turbocharger tachometer 34 for measuring the rotation speed N2 of the turbocharger 16, an intake air temperature gauge 35 for measuring an intake air temperature Ts (the temperature after the intercooler 18 in the intake air line 8 in the illustrated example) which is the temperature of the intake air of the engine 2, and an intake air pressure gauge 36 for measuring an intake air pressure Ps (the pressure after the intercooler 18 in the intake air line 8 in the illustrated example) which is the pressure of the intake air of the engine 2.
[0014] The turbocharger 16 includes an exhaust turbine 16a provided in the exhaust line 10, and a compressor 16b connected to the exhaust turbine 16a via a rotating shaft and provided in the intake line 8. When exhaust air from the engine body 6 is supplied to the exhaust turbine 16a via the exhaust line 10, the exhaust turbine 16a rotates, and accordingly, the compressor 16b connected to the exhaust turbine 16a via a rotating shaft compresses the air flowing through the intake line 8 and supplies it to the engine body 6. The air compressed by the compressor 16b of the turbocharger 16 is cooled by an intercooler 18 and supplied to the engine body 6.
[0015] The engine body 6 includes at least one cylinder 20 and at least one piston 22 housed in the at least one cylinder 20 so that each piston can reciprocate along the axial direction. The engine body 6 has a combustion chamber 26 defined by the cylinder 20 and the piston 22. The engine body 6 compresses and heats gas supplied to the combustion chamber 26 from the intake line 8 through the intake valve 28 to a temperature equal to or higher than the ignition point of the liquid fuel by the piston 22. The liquid fuel is injected from the fuel injector 12 into the compressed and heated gas in response to a fuel injection command 14 from the ECU 4, thereby causing the liquid fuel to self-ignite. The piston 22 is pushed out by the expansion of the combustion gas generated by the self-ignition. The reciprocating motion of the piston 22 is converted into a rotational force (power) by a crankshaft (not shown) via a connecting rod 23, and the rotational force of the crankshaft is transmitted to a generator 25, which converts the rotational force into electric power. The combustion gas in the combustion chamber 26 is discharged from the combustion chamber 26 through an exhaust valve 30 and is led to the exhaust turbine 16 a of the turbocharger 16 via the exhaust line 10 .
[0016] FIG. 2 is a diagram illustrating an example of a hardware configuration of the ECU 4 according to an embodiment. As shown in FIG. 2, the ECU 4 is configured using a computer including, for example, a processor 72, a RAM (Random Access Memory) 74, a ROM (Read Only Memory) 76, an input I / F 80, and an output I / F 82, which are connected to one another via a bus 84. The hardware configuration of the ECU 4 is not limited to the above, and may be configured by a combination of a control circuit and a storage device. The ECU 4 is also configured by a computer executing a program that realizes each function of the ECU 4. The functions of each part in the ECU 4 described below are realized, for example, by loading a program held in the ROM 76 into the RAM 74 and executing it with the processor 72, and by reading and writing data from and to the RAM 74 and the ROM 76.
[0017] FIG. 3 is a block diagram showing an example of a functional configuration of the ECU 4 shown in FIG. 1 and FIG. 2. FIG. 4 is a diagram showing an example of a load application flow for applying a load to the engine 2 by the ECU 4 shown in FIG. 3. FIG. 5 is a diagram showing details of the control of the load application flow shown in FIG. 4. FIG. 5 shows the relationship between the elapsed time and the engine load, the relationship between the elapsed time and the engine speed, the relationship between the elapsed time and the fuel injection amount, the relationship between the elapsed time and the fuel injection timing, and the relationship between the elapsed time and the boost pressure, and the horizontal axis (elapsed time) shown in FIG. 5 is common to each of the above relationships. In FIG. 5, the solid line indicates an embodiment described below, and the dashed line indicates conventional load application flow control (control for performing one-stage (one-time) fuel injection during one combustion cycle in high idle mode).
[0018] As shown in FIG. 3, the ECU 4 includes a load application command receiving unit 38, a rotation speed increase mode executing unit 40, a high idle mode executing unit 42, a load application mode executing unit 44, and a storage unit 46. The rotation speed increase mode executing unit 40, the high idle mode executing unit 42, and the load application mode executing unit 44 are entities that execute the rotation speed increase mode, the high idle mode, and the load application mode, respectively, which will be described below. However, an entity that determines a schedule for executing each of these modes may be, for example, a control device other than the ECU 4 (for example, a control device that controls the generator 25, etc.). That is, the ECU 4 may execute each of the above modes based on a command indicating a schedule for executing each of the above modes received from a control device other than the ECU 4 (for example, a control device that controls the generator 25, etc.). For example, when the engine 2 is an engine for generating electricity, the "control device other than the ECU 4" may be a control device that controls the generator 25. That is, the ECU 4 may execute each of the above modes based on a command indicating a schedule for executing each of the above modes received from a control device that controls the generator 25.
[0019] As shown in FIG. 4, in S101, the load application command receiving unit 38 judges whether or not a load application command, which is a command (request) to apply a load to the engine 2, has been received from the outside of the ECU 4 (for example, a control device that controls the generator 25). If the load application command receiving unit 38 judges that a load application command has not been received in S101, the load application command receiving unit 38 waits until a load application command is received. If the load application command receiving unit 38 judges that a load application command has been received in S101, in S102, the rotation speed increase mode executing unit 40 executes a rotation speed increase mode (see FIG. 5), which is a mode in which the rotation speed of the engine 2 is increased while the engine 2 is operated without load. Note that "applying a load to the engine 2" here means applying an initial load (initial load by the generator 25 in the configuration shown in FIG. 1) to the engine 2 from an unloaded state of the engine 2. In addition, when the load application command receiving unit 38 receives a load application command at S101, the ECU 4 may execute a low idle mode in which the engine 2 is operated without load and at a predetermined rotation speed (low idle rotation speed) for a certain period of time before executing the rotation speed increase mode.
[0020] As shown in FIG. 5, in the rotation speed increase mode, the rotation speed increase mode execution unit 40 increases the fuel injection amount F, which is the amount of fuel injected by the fuel injector 12 during one combustion cycle of the engine 2, over time while operating the engine 2 under no load, thereby increasing the rotation speed of the engine 2 over time.
[0021] In S103, the rotation speed increase mode execution unit 40 judges whether or not a first parameter P1 related to the operating state of the engine 2 in the rotation speed increase mode has reached a predefined threshold value Pth. The first parameter P1 here may be, for example, the rotation speed N1 of the engine 2 measured by the engine revolution meter 32 shown in Fig. 1, the rotation speed N2 of the supercharger 16 measured by the supercharger revolution meter 34 shown in Fig. 1, or the fuel energization period (pulse width) of the fuel injection device 12 or the fuel injection amount F recognized by the ECU 4.
[0022] In S103, when the first parameter P1 reaches the threshold value Pth, in S104, the high idle mode execution unit 42 executes the high idle mode (see FIG. 5), which is a mode in which the engine 2 is operated without load and is different from the rotation speed increase mode, for a predetermined period (for example, a period corresponding to a predetermined number of combustion cycles of the engine 2).
[0023] As shown in Fig. 5, in the high idle mode, the high idle mode execution unit 42 maintains the fuel injection amount of the fuel injector 12 constant while operating the engine 2 under no load, thereby maintaining the rotation speed of the engine 2 constant. As shown in Fig. 6, the rotation speed increase mode includes at least one stage (one time) of fuel injection in one combustion cycle of the engine, and the high idle mode includes at least two stages (two times) of fuel injection in one combustion cycle of the engine. The high idle mode execution unit 42 may control the fuel injector 12 so that the number of stages (number of times) of fuel injection per one combustion cycle of the engine 2 during at least a portion of a period during which the high idle mode is executed is greater than the number of stages (number of times) of fuel injection per one combustion cycle of the engine during at least a portion of a period during which the rotation speed increase mode is executed.
[0024] In the example shown in FIG. 6, the number of fuel injection stages per combustion cycle of the engine 2 in the rotation speed increase mode is one stage, and the number of fuel injection stages per combustion cycle of the engine 2 in the high idle mode is two stages.
[0025] 6, the rotation speed increase mode execution unit 40 controls the fuel injection device 12 to inject fuel over a first crank angle range A1, which is a predefined crank angle range in one combustion cycle of the engine 2, in the rotation speed increase mode. The high idle mode execution unit 42 controls the fuel injection device 12 to inject fuel over a second crank angle range A2, which is a predefined crank angle range in one combustion cycle of the engine, in the high idle mode, and to inject fuel over a third crank angle range A3, which is spaced on the retard side from the second crank angle range A2 in the one combustion cycle. The high idle mode execution unit 42 controls the fuel injection device 12 not to inject fuel between an end point A2e of the second crank angle range A2 and a start point A3s of the third crank angle range A3 in the high idle mode.
[0026] In this way, the high idle mode execution unit 42 is configured to retard the timing of the second stage fuel injection in one combustion cycle of the engine 2 in the high idle mode (the timing of the start point A3s) from the timing of the first stage fuel injection in one combustion cycle of the engine 2 in the rotation speed increase mode (the timing of the start point A1s of the first crank angle range). Note that "retarding" means shifting the timing in one combustion cycle of the engine 2 to the retard side.
[0027] In the example shown in FIG. 6, the high idle mode executing unit 42 controls the end point A3e of the third crank angle range A3 in the high idle mode to be more retarded than the end point A1e of the first crank angle range A1 in the rotation speed increase mode. In the example shown in FIG. 6, the high idle mode executing unit 42 controls the start point A3s of the third crank angle range A3 in the high idle mode to be more advanced than the end point A1e of the first crank angle range A1 in the rotation speed increase mode. In the example shown in FIG. 6, the high idle mode executing unit 42 controls the fuel injector 12 so that the end point A2e of the second crank angle range A2 in the high idle mode is between the start point A1s and the end point A1e of the first crank angle range A1 in the rotation speed increase mode. However, the end point A2e does not have to be between the start point A1s and the end point A1e.
[0028] Returning to FIG. 4, after the high idle mode is executed, in S105, the load application mode execution unit 44 executes the load application mode in which a load is applied to the engine 2.
[0029] As shown in Fig. 5, in the load application mode, the fuel injection amount is increased over time so as to recover the amount of decrease in the rotation speed of the engine 2 caused by the application of a load to the engine 2, and when the rotation speed of the engine 2 reaches a predetermined rotation speed, the fuel injection amount is controlled to be constant. Also, in the load application mode, the timing of each of the above two stages of fuel injection is advanced over time, and the interval between the timing of the first stage fuel injection and the timing of the second stage fuel injection (the interval between the timing of the end point A2e and the timing of the start point A3s in Fig. 6) is made smaller over time, and the interval is set to zero, thereby changing the number of stages of fuel injection in one combustion cycle from two stages to one stage.
[0030] (Effects of the above-mentioned control by ECU 4) According to the above control, when the first parameter P1 related to the operating state of the engine 2 reaches a predetermined threshold value Pth in the rotation speed increase mode, the rotation speed increase mode including one-stage fuel injection in one combustion cycle is switched to the high idle mode including two-stage fuel injection in one combustion cycle. As a result, the gas temperature (in-cylinder gas temperature) in the combustion chamber 26 of the engine 2 at the start of the second-stage fuel injection in the high idle mode increases, so that even if the timing of the second-stage fuel injection is retarded, the exhaust energy of the engine can be increased while realizing stable combustion as shown in FIG. 7, and the temperature before the exhaust turbine (the temperature between the exhaust valve 30 and the exhaust turbine 16a in the exhaust line 10 in the configuration shown in FIG. 1) can be increased, and the boost pressure of the engine 2 can be increased as shown in FIG. 5. Therefore, as shown in FIG. 7, it is possible to realize good load application performance while suppressing an increase in the concentration of HC in the exhaust of the engine 2 in the high idle mode and suppressing an increase in the amount of white smoke emission.
[0031] Furthermore, by controlling the end point A3e of the third crank angle range A3 in the high idle mode to be more retarded than the end point A1e of the first crank angle range A1 in the rotation speed increase mode, the temperature upstream of the exhaust turbine of the turbocharger 16 in the high idle mode can be effectively increased, and the boost pressure of the engine 2 can be effectively increased. Therefore, the load application performance can be effectively improved.
[0032] In addition, by controlling the starting point A3s of the third crank angle range A3 in the high idle mode to be more advanced than A1e of the first crank angle range A1 in the rotation speed increase mode, it is possible to effectively suppress an increase in the concentration of HC in the exhaust gas of the engine 2 in the high idle mode.
[0033] In some embodiments, for example, as shown in FIG. 8, the high idle mode execution unit 42 may adjust the timing of the second stage fuel injection in one combustion cycle of the engine 2 in high idle mode (the timing of the start point A3s in the example shown in FIG. 6) over multiple combustion cycles so that the second parameter P2 related to the operating state of the engine 2 in high idle mode falls within a desired appropriate target range W (a range with a lower limit of PL and an upper limit of PH in the example shown in FIG. 9).
[0034] The second parameter P2 here may be, for example, the rotation speed N2 of the turbocharger 16 measured by the turbocharger tachometer 34 shown in FIG. 1, the intake pressure Ps of the engine 2 measured by the intake pressure gauge 36, or the fuel energization period (pulse width) or fuel injection amount F of the fuel injection device 12 recognized by the ECU 4.
[0035] In the example shown in FIG. 8, in S201, the high idle mode executing unit 42 starts adjusting the fuel injection pattern of the fuel injector 12 in the high idle mode. In S202, the high idle mode executing unit 42 judges whether or not the second parameter P2 in the high idle mode exceeds the upper limit PH of the target range W. If it is judged in S202 that the second parameter P2 exceeds the upper limit PH of the target range W, in S203, the high idle mode executing unit 42 advances the timing of the second stage fuel injection in one combustion cycle of the engine 2 in the high idle mode (the timing of the above-mentioned start point A3s) over a plurality of combustion cycles, and returns to S202. If it is judged in S202 that the second parameter P2 does not exceed the upper limit PH of the target range W, in S204, it is judged whether or not the second parameter P2 is below the lower limit PL of the target range W. If it is determined in S204 that the second parameter P2 is below the lower limit PL of the target range W, the high idle mode execution unit 42 retards the timing of the second stage fuel injection in one combustion cycle of the engine 2 in the high idle mode (the timing of the start point A3s) over a plurality of combustion cycles in S205, and returns to S202. If it is determined in S204 that the second parameter P2 is not below the lower limit PL of the target range W, it is determined that the second parameter P2 is within the target range W and the timing of the second stage fuel injection in one combustion cycle of the engine 2 in the high idle mode has been optimized. Therefore, in S206, the adjustment of the fuel injection pattern of the fuel injection device 12 is terminated, and then the load application of the engine 2 is performed. Note that, even in the load application mode, the timing of the fuel injection in one combustion cycle of the engine 2 in the load application mode may be adjusted over a plurality of combustion cycles so that the second parameter P2 related to the operating state of the engine 2 falls within a desired appropriate target range.
[0036] The effects achieved by the embodiment described with reference to FIG. 8 will be described below. As shown in FIG. 9, the appropriate timing of fuel injection corresponding to an appropriate range W of the operating condition of the engine 2 (in the illustrated example, the fuel injection amount F, the rotation speed N2 of the turbocharger 16, and the intake pressure Ps of the engine 2) changes depending on, for example, the intake air temperature (atmospheric condition) of the engine 2.
[0037] Therefore, as described above, by adjusting the timing of the second stage fuel injection in one combustion cycle of the engine 2 in a plurality of combustion cycles so that the second parameter P2 related to the operating state of the engine 2 falls within a desired appropriate target range W (a range with a lower limit of PL and an upper limit of PH in the example shown in FIG. 9), in addition to the effects of the embodiment described using FIG. 1 to FIG. 7, it is possible to maintain a good combustion state of the engine 2 in high idle mode regardless of changes in the atmospheric conditions (temperature, etc.) of the engine 2. As a result, as shown in FIG. 10, it is possible to maintain the concentration of HC in the exhaust of the engine 2 in high idle mode at or below a reference level, suppressing an increase in the amount of white smoke emitted, while maintaining the limit load application rate at or above a reference level, thereby realizing good load application performance, regardless of the intake air temperature of the engine 2.
[0038] In some embodiments, as shown in FIG. 11 , for example, the high idle mode execution unit 42 may adjust the ratio F2 / F1 between the fuel injection amount F1 (the fuel injection amount in a period corresponding to the second crank angle range A2) by the first stage fuel injection in one combustion cycle of the engine 2 in the high idle mode and the fuel injection amount F2 (the fuel injection amount in a period corresponding to the third crank angle range A3) by the second stage fuel injection in one combustion cycle of the engine 2 in the high idle mode, over multiple combustion cycles, so that the second parameter P2 related to the operating state of the engine 2 falls within a desired appropriate target range W (a range with a lower limit PL and an upper limit PH in the example shown in FIG. 9 ).
[0039] The second parameter P2 here may be, for example, the rotation speed N2 of the turbocharger 16 measured by the turbocharger tachometer 34 shown in FIG. 1, the intake pressure Ps of the engine 2 measured by the intake pressure gauge 36, or the fuel energization period (pulse width) or fuel injection amount F of the fuel injection device 12 recognized by the ECU 4.
[0040] In the example shown in FIG. 11, in S301, the high idle mode execution unit 42 starts adjusting the fuel injection pattern of the fuel injector 12 in the high idle mode. In S302, the high idle mode execution unit 42 determines whether the second parameter P2 exceeds the upper limit PH of the target range W. If it is determined in S302 that the second parameter P2 exceeds the upper limit PH of the target range W, in S303, the high idle mode execution unit 42 decreases the ratio F2 / F1 over multiple combustion cycles and returns to S302. If it is determined in S302 that the second parameter P2 does not exceed the upper limit PH of the target range W, in S304, the high idle mode execution unit 42 determines whether the second parameter P2 is below the lower limit PL of the target range W. If it is determined in S304 that the second parameter P2 is below the lower limit PL of the target range W, in S305, the high idle mode execution unit 42 increases the ratio F2 / F1 over multiple combustion cycles and returns to S301. If it is determined in S304 that the second parameter P2 has not fallen below the lower limit PL of the target range W over a plurality of combustion cycles, it can be determined that the second parameter P2 is within the target range W and the ratio F2 / F1 in one combustion cycle of the engine 2 in high idle mode has been optimized. In this case, adjustment of the fuel injection pattern of the fuel injection device 12 is terminated in S306, and then a load is applied to the engine 2.
[0041] The effects achieved by the embodiment described with reference to FIG. 11 will be described below. As shown in FIG. 12, the ratio F2 / F1, which corresponds to an appropriate range W of the operating state of the engine 2 (in the illustrated example, the fuel injection amount F, the rotation speed N2 of the turbocharger 16, and the intake pressure Ps of the engine 2) changes depending on, for example, the intake air temperature (atmospheric condition) of the engine 2.
[0042] Therefore, as described above, by adjusting the ratio F2 / F1 in multiple combustion cycles so that the second parameter P2 related to the operating state of the engine 2 falls within a desired appropriate target range W (a range with a lower limit PL and an upper limit PH in the example shown in FIG. 11), in addition to the effects of the embodiment described using FIG. 1 to FIG. 7, it is possible to maintain a good combustion state of the engine 2 in high idle mode regardless of changes in the atmospheric conditions (temperature, etc.) of the engine 2. As a result, as shown in FIG. 13, it is possible to maintain the concentration of HC in the exhaust of the engine 2 in high idle mode at or below a reference level, suppressing an increase in the amount of white smoke emitted, while maintaining the limit load application rate at or above a reference level, thereby achieving good load application performance, regardless of the atmospheric conditions of the engine 2.
[0043] The present disclosure is not limited to the above-described embodiments, and includes modifications to the above-described embodiments and appropriate combinations of these modifications.
[0044] In some of the above-described embodiments, control for performing two-stage fuel injection in one combustion cycle of the engine 2 in the high idle mode has been exemplified, but in other embodiments, the number of stages of fuel injection in one combustion cycle of the engine 2 in the high idle mode may be one stage. In this case, as described below, the high idle mode execution unit 42 adjusts the timing of fuel injection in one combustion cycle of the engine 2 in the high idle mode so that the second parameter P2 related to the operating state of the engine 2 falls within the target range W, thereby making it possible to realize good load application performance while suppressing an increase in the concentration of HC in the exhaust of the engine 2 in the high idle mode and suppressing an increase in the amount of white smoke emission.
[0045] FIG. 14 is a diagram showing an example of a fuel injection control flow when the number of fuel injection stages in one combustion cycle of the engine 2 in the high idle mode is set to one stage. In some embodiments, for example, as shown in FIG. 14, the high idle mode execution unit 42 may adjust the timing of fuel injection in one combustion cycle of the engine 2 in the high idle mode over multiple combustion cycles so that the second parameter P2 related to the operating state of the engine 2 falls within a desired appropriate target range W (a range with a lower limit of PL and an upper limit of PH in the example shown in FIG. 14).
[0046] The second parameter P2 here may be, for example, the rotation speed N2 of the turbocharger 16 measured by the turbocharger tachometer 34 shown in FIG. 1, the intake pressure Ps of the engine 2 measured by the intake pressure gauge 36, or the fuel energization period (pulse width) or fuel injection amount F of the fuel injection device 12 recognized by the ECU 4.
[0047] In the example shown in FIG. 14, in S401, the high idle mode executing unit 42 starts adjusting the fuel injection pattern of the fuel injector 12 in the high idle mode. In S402, the high idle mode executing unit 42 determines whether the second parameter P2 exceeds the upper limit PH of the target range W. If it is determined in S402 that the second parameter P2 exceeds the upper limit PH of the target range W, in S403, the high idle mode executing unit 42 advances the timing of fuel injection in one combustion cycle of the engine in the high idle mode, and returns to S402. If it is determined in S402 that the second parameter P2 does not exceed the upper limit PH of the target range W, in S404, the high idle mode executing unit 42 determines whether the second parameter P2 is below the lower limit PL of the target range W. If it is determined in S404 that the second parameter P2 is below the lower limit PL of the target range W, in S405, the high idle mode executing unit 42 retards the timing of fuel injection in one combustion cycle of the engine 2 in the high idle mode, and returns to S402. If it is determined in S404 that the second parameter P2 is not below the lower limit PL of the target range W over a plurality of combustion cycles, the second parameter P2 falls within the target range W, and the fuel injection timing in one combustion cycle of the engine 2 in the high idle mode is optimized, and in this state, the load application mode execution unit 44 executes the load application mode in S406. Note that, in the load application mode as well, the fuel injection timing in one combustion cycle of the engine 2 in the load application mode may be adjusted over a plurality of combustion cycles so that the second parameter P2 related to the operating state of the engine 2 falls within a desired appropriate target range, as in the above S402 to S405.
[0048] 8, the control shown in Fig. 14 makes it possible to maintain a good combustion state of the engine in high idle mode regardless of changes in the atmospheric conditions (temperature, etc.) of the engine 2. As a result, regardless of the atmospheric conditions of the engine 2, the concentration of HC in the exhaust of the engine 2 in high idle mode can be maintained at or below a reference level to suppress an increase in the amount of white smoke emitted, while the limit load application rate can be maintained at or above a reference level to achieve good load application performance.
[0049] The contents described in each of the above embodiments can be understood, for example, as follows.
[0050] (1) An engine control device (e.g., the above-mentioned ECU 4) according to at least one embodiment of the present disclosure includes: An engine control device for controlling a turbocharged engine (for example, the above-mentioned turbocharged diesel engine 2), a rotation speed increase mode execution unit (e.g., the above-mentioned rotation speed increase mode execution unit 40) configured to execute a rotation speed increase mode, which is a mode in which the rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution unit (e.g., the above-mentioned high idle mode execution unit 42) configured to execute a high idle mode, which is a mode for operating the engine under no load and is different from the increased rotation speed mode, when a first parameter (e.g., the above-mentioned first parameter P1) related to an operating state of the engine reaches a threshold value (e.g., the above-mentioned threshold value Pth) in the increased rotation speed mode; a load application mode execution unit (e.g., the above-mentioned load application mode execution unit 44) configured to execute a load application mode, which is a mode for applying a load to the engine, after executing the high idle mode; Equipped with the increased speed mode includes at least one fuel injection stage in one combustion cycle of the engine; the high idle mode includes at least two stages of fuel injection within one combustion cycle of the engine; The high idle mode execution unit is configured to retard the timing of a second stage fuel injection in one combustion cycle of the engine in the high idle mode (for example, the timing of the above-mentioned start point A3s) from the timing of a first stage fuel injection in one combustion cycle of the engine in the rotation speed increase mode (for example, the timing of the above-mentioned start point A1s).
[0051] According to the engine control device described in (1) above, when the first parameter related to the operating state of the engine reaches a threshold value in the rotation speed increase mode, the rotation speed increase mode including one-stage fuel injection in one combustion cycle is switched to the high idle mode including two-stage fuel injection in one combustion cycle. As a result, the gas temperature (in-cylinder gas temperature) in the combustion chamber of the engine at the start of the second-stage fuel injection in the high idle mode increases, so that even if the timing of the second-stage fuel injection is retarded, the exhaust energy of the engine can be increased while realizing stable combustion, and the temperature in front of the exhaust turbine of the supercharger can be increased, and the boost pressure of the engine can be increased. Therefore, it is possible to realize good load application performance while suppressing an increase in the concentration of HC in the exhaust of the engine in the high idle mode and suppressing an increase in the amount of white smoke emission.
[0052] (2) In some embodiments, in the engine control device described in (1) above, the rotation speed increase mode execution unit performs fuel injection over a first crank angle range (e.g., the above-mentioned first crank angle range A1) in one combustion cycle of the engine in the rotation speed increase mode, the high idle mode execution unit is configured to, in the high idle mode, perform fuel injection over a second crank angle range (e.g., the above-mentioned second crank angle range A2) in one combustion cycle of the engine, and to perform fuel injection over a third crank angle range (e.g., the above-mentioned third crank angle range A3) that is spaced on the retard side from the second crank angle range in the one combustion cycle; The high idle mode execution unit is configured to control the end point of the third crank angle range in the high idle mode (e.g., the above-mentioned end point A3e) to be more retarded than the end point of the first crank angle range in the rotation speed increase mode (e.g., the above-mentioned end point A1e).
[0053] According to the engine control device described in (2) above, by controlling the end point of the third crank angle range in the high idle mode to be more retarded than the end point of the first crank angle range in the rotation speed increase mode, the temperature upstream of the exhaust turbine of the turbocharger in the high idle mode can be effectively increased, and the boost pressure of the engine can be effectively increased, thereby effectively improving the load application performance.
[0054] (3) In some embodiments, in the engine control device described in (2) above, The high idle mode execution unit is configured to control a start point of the third crank angle range in the high idle mode (e.g., the above-mentioned start point A3s) to be more advanced than an end point of the first crank angle range in the rotation speed increase mode (e.g., the above-mentioned end point A1e).
[0055] According to the engine control device described in (3) above, by controlling the starting point of the third crank angle range in the high idle mode to be more advanced than the end point of the first crank angle range in the rotation speed increase mode, it is possible to effectively suppress an increase in the concentration of HC in the exhaust gas of the engine in the high idle mode.
[0056] (4) In some embodiments, in the engine control device according to any one of (1) to (3), The first parameter is the engine speed (for example, the above-mentioned speed N1), the fuel injection amount of the engine (for example, the above-mentioned fuel injection amount F), or the supercharger speed (for example, the above-mentioned speed N2).
[0057] According to the engine control device described in (4) above, the high idle mode can be executed when the engine speed, the engine fuel injection amount, or the turbocharger speed reaches a threshold value.
[0058] (5) In some embodiments, in the engine control device according to any one of (1) to (4), The high idle mode execution unit is configured to adjust the timing of the second stage fuel injection in one combustion cycle of the engine in the high idle mode (e.g., the timing of the above-mentioned start point A3s) so that a second parameter related to the operating state of the engine (e.g., the above-mentioned second parameter P2) falls within a target range (e.g., the above-mentioned target range W).
[0059] The timing of fuel injection that realizes an appropriate engine operating state varies depending on atmospheric conditions such as the engine intake air temperature. Therefore, as described in (5) above, by adjusting the timing of the second stage fuel injection in one combustion cycle of the engine so that the second parameter related to the engine operating state falls within a desired appropriate target range, it is possible to maintain a good engine combustion state in high idle mode regardless of changes in the engine atmospheric conditions. This makes it possible to realize good load application performance while suppressing an increase in the concentration of HC in the engine exhaust in high idle mode, regardless of the engine atmospheric conditions.
[0060] (6) In some embodiments, in the engine control device according to any one of (1) to (4), The high idle mode execution unit is configured to adjust the ratio (e.g., the above-mentioned ratio F2 / F1) between the fuel injection amount by first stage fuel injection in one combustion cycle of the engine in the high idle mode and the fuel injection amount by second stage fuel injection in one combustion cycle of the engine in the high idle mode so that a second parameter related to the operating state of the engine (e.g., the above-mentioned second parameter P2) falls within a target range (e.g., the above-mentioned target range W).
[0061] The ratio F2 / F1 at which an appropriate engine operating state can be achieved varies depending on atmospheric conditions such as the engine intake air temperature. Therefore, as described in (6) above, by adjusting the ratio F2 / F1 so that the second parameter related to the engine operating state falls within a desired appropriate target range, it is possible to maintain a good engine combustion state in high idle mode regardless of changes in the engine atmospheric conditions (temperature, etc.). This makes it possible to achieve good load application performance while suppressing an increase in the concentration of HC in the engine exhaust in high idle mode, regardless of the engine atmospheric conditions.
[0062] (7) In some embodiments, in the engine control device described in (5) above, the second parameter is a fuel injection amount of the engine (e.g., the above-mentioned fuel injection amount F), a rotation speed of the turbocharger (e.g., the above-mentioned rotation speed N2), or a boost pressure of the engine (e.g., the above-mentioned boost pressure Ps), The high idle mode execution unit advances the timing of the second stage fuel injection in one combustion cycle of the engine in the high idle mode when the second parameter exceeds an upper limit of the target range (for example, the above-mentioned upper limit PH), and retards the timing of the second stage fuel injection in one combustion cycle of the engine in the high idle mode when the second parameter is below a lower limit of the target range (for example, the above-mentioned lower limit PL).
[0063] The timing of fuel injection that realizes an appropriate engine operating state varies depending on atmospheric conditions such as the engine intake air temperature. Therefore, as described in (7) above, by appropriately adjusting the timing of the second stage fuel injection in one combustion cycle of the engine so that the engine fuel injection amount, turbocharger rotation speed, or engine intake pressure falls within a desired appropriate target range, it is possible to maintain a good engine combustion state in high idle mode regardless of changes in the engine atmospheric conditions. This makes it possible to realize good load application performance while suppressing an increase in the concentration of HC in the engine exhaust in high idle mode, regardless of the engine atmospheric conditions.
[0064] (8) In some embodiments, in the engine control device described in (6) above, the second parameter is a fuel injection amount of the engine (e.g., the above-mentioned fuel injection amount F), a rotation speed of the turbocharger (e.g., the above-mentioned rotation speed N2), or a boost pressure of the engine (e.g., the above-mentioned boost pressure Ps), The high idle mode execution unit is configured to decrease a ratio F2 / F1 between a fuel injection amount F1 by a first stage fuel injection in one combustion cycle of the engine in the high idle mode and a fuel injection amount F2 by a second stage fuel injection in one combustion cycle of the engine in the high idle mode when the second parameter exceeds an upper limit of the target range, and to increase the ratio F2 / F1 when the second parameter is below a lower limit of the target range.
[0065] The ratio F2 / F1 that realizes an appropriate engine operating state varies depending on atmospheric conditions such as the engine intake air temperature. Therefore, as described in (8) above, by appropriately adjusting the ratio (F2 / F1) so that the engine fuel injection amount, turbocharger rotation speed, or engine intake pressure falls within a desired appropriate target range, it is possible to maintain a good engine combustion state in high idle mode regardless of changes in the engine atmospheric conditions. This makes it possible to realize good load application performance while suppressing an increase in the concentration of HC in the engine exhaust in high idle mode, regardless of the engine atmospheric conditions.
[0066] (9) In some embodiments, in the engine control device according to any one of (5) to (8), The load application mode execution unit is configured to execute the load application mode when a second parameter related to an operating state of the engine falls within a target range.
[0067] According to the engine control device described in (9) above, a load can be applied to the engine in an appropriate engine operating state that can achieve both suppression of an increase in the concentration of HC in the exhaust gas and high load application performance.
[0068] Whether the engine is in an appropriate operating state when the load is applied can be determined based on the engine fuel injection amount, the turbocharger rotation speed, or the engine intake pressure.
[0069] (10) An engine control method according to at least one embodiment of the present disclosure, An engine control method for controlling a turbocharged engine (for example, the above-mentioned turbocharged diesel engine 2), a rotation speed increase mode execution step of executing a rotation speed increase mode, which is a mode in which a rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution step of executing a high idle mode, which is a mode in which the engine is operated under no load and is different from the increased rotation speed mode, when a first parameter related to an operating state of the engine reaches a threshold value in the increased rotation speed mode; a load application mode execution step of executing a load application mode, which is a mode for applying a load to the engine, after executing the high idle mode; Equipped with the increased speed mode includes at least one fuel injection stage in one combustion cycle of the engine; the high idle mode includes at least two stages of fuel injection within one combustion cycle of the engine; In the high idle mode execution step, the timing of the second stage fuel injection in one combustion cycle of the engine in the high idle mode (for example, the timing of the start point A3s described above) is retarded from the timing of the first stage fuel injection in one combustion cycle of the engine in the rotation speed increase mode (for example, the timing of the start point A1s described above).
[0070] According to the engine control method described in (10) above, when the first parameter related to the operating state of the engine reaches a threshold value in the rotation speed increase mode, the rotation speed increase mode including one-stage fuel injection in one combustion cycle is switched to the high idle mode including two-stage fuel injection in one combustion cycle. As a result, the gas temperature (in-cylinder gas temperature) in the combustion chamber of the engine at the start of the second-stage fuel injection in the high idle mode increases, so that even if the timing of the second-stage fuel injection is retarded, the exhaust energy of the engine can be increased while realizing stable combustion, and the temperature in front of the exhaust turbine of the turbocharger can be increased, and the boost pressure of the engine can be increased. Therefore, it is possible to realize good load application performance while suppressing an increase in the concentration of HC in the exhaust of the engine in the high idle mode and suppressing an increase in the amount of white smoke emission.
[0071] (11) An engine control device (e.g., the above-mentioned ECU 4) according to at least one embodiment of the present disclosure, An engine control device for controlling a turbocharged engine (for example, the above-mentioned turbocharged diesel engine 2), a rotation speed increase mode execution unit (e.g., the above-mentioned rotation speed increase mode execution unit 40) configured to execute a rotation speed increase mode, which is a mode in which the rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution unit (e.g., the above-mentioned high idle mode execution unit 42) configured to execute a high idle mode, which is a mode for operating the engine under no load and is different from the increased rotation speed mode, when a first parameter (e.g., the above-mentioned first parameter P1) related to an operating state of the engine reaches a threshold value (e.g., the above-mentioned threshold value Pth) in the increased rotation speed mode; a load application mode execution unit (e.g., the above-mentioned load application mode execution unit 44) configured to execute a load application mode, which is a mode for applying a load to the engine, after executing the high idle mode; Equipped with The high idle mode execution unit is configured to adjust a timing of fuel injection in one combustion cycle of the engine in the high idle mode so that a second parameter related to an operating state of the engine falls within a target range.
[0072] The timing of fuel injection that realizes an appropriate engine operating state varies depending on atmospheric conditions such as the engine intake air temperature. Therefore, as described in (11) above, by appropriately adjusting the timing of fuel injection in one combustion cycle of the engine so that the second parameter related to the engine operating state falls within a desired appropriate target range, it is possible to maintain a good engine combustion state in high idle mode regardless of changes in the engine atmospheric conditions. This makes it possible to realize good load application performance while suppressing an increase in the concentration of HC in the engine exhaust in high idle mode regardless of the engine atmospheric conditions. [Explanation of symbols]
[0073] 2. Turbocharged diesel engine (engine) 4 ECU 6 Engine body 8 Air Supply Line 10 Exhaust line 12 Fuel injection device 14 Fuel injection command 16 Turbocharger 16a Exhaust turbine 16b Compressor 18 Intercooler 19 Throttle valve 20 cylinders 22 Piston 23 Connecting rod 25 Generator 26 Combustion chamber 28 Air supply valve 30 Exhaust valve 32 Engine Tachometer 34 Turbocharger Tachometer 35 Intake air temperature gauge 36 Air supply pressure gauge 38 Load input command reception section 40 RPM increase mode execution section 42 High idle mode execution unit 44 Load application mode execution unit 46 Memory section 72 processors 74 RAM 76 ROM 78 HDD 80 Input I / F 82 Output I / F 84 Bus 100 Diesel Engine System
Claims
1. An engine control device for controlling a turbocharged engine, a rotation speed increase mode execution unit configured to execute a rotation speed increase mode in which a rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution unit configured to execute a high idle mode, which is a mode for operating the engine under no load and is different from the increased rotation speed mode, when a first parameter related to an operating state of the engine reaches a threshold value in the increased rotation speed mode; a load application mode execution unit configured to execute a load application mode in which a load is applied to the engine after executing the high idle mode; Equipped with the increased speed mode includes at least one fuel injection stage in one combustion cycle of the engine; the high idle mode includes at least two stages of fuel injection within one combustion cycle of the engine; the high idle mode execution unit is configured to retard a timing of a second stage fuel injection in one combustion cycle of the engine in the high idle mode compared to a timing of a first stage fuel injection in one combustion cycle of the engine in the rotation speed increase mode.
2. the rotation speed increase mode execution unit performs fuel injection over a first crank angle range in one combustion cycle of the engine in the rotation speed increase mode, the high idle mode execution unit is configured to perform, in the high idle mode, fuel injection over a second crank angle range in one combustion cycle of the engine, and to perform fuel injection over a third crank angle range in the one combustion cycle that is spaced on a retard side from the second crank angle range, 2. The engine control device according to claim 1, wherein the high idle mode execution unit is configured to control an end point of the third crank angle range in the high idle mode to be more retarded than an end point of the first crank angle range in the rotation speed increase mode.
3. 3. The engine control device according to claim 2, wherein the high idle mode execution unit is configured to control a start point of the third crank angle range in the high idle mode to be more advanced than an end point of the first crank angle range in the rotation speed increase mode.
4. 4. The engine control device according to claim 1, wherein the first parameter is a rotation speed of the engine, a fuel injection amount of the engine, or a rotation speed of the supercharger.
5. 5. The engine control device according to claim 1, wherein the high idle mode execution unit is configured to adjust a timing of the second stage fuel injection in one combustion cycle of the engine in the high idle mode so that a second parameter related to an operating state of the engine falls within a target range.
6. 5. The engine control device according to claim 1, wherein the high idle mode execution unit is configured to adjust a ratio between a fuel injection amount by a first stage fuel injection in one combustion cycle of the engine in the high idle mode and a fuel injection amount by a second stage fuel injection in one combustion cycle of the engine in the high idle mode, so that a second parameter related to an operating state of the engine falls within a target range.
7. the second parameter is a fuel injection amount of the engine, a rotation speed of the turbocharger, or a boost pressure of the engine, 6. The engine control device according to claim 5, wherein the high idle mode execution unit advances a timing of the second stage fuel injection in one combustion cycle of the engine in the high idle mode when the second parameter exceeds an upper limit of the target range, and retards the timing of the second stage fuel injection in one combustion cycle of the engine in the high idle mode when the second parameter is below a lower limit of the target range.
8. the second parameter is a fuel injection amount of the engine, a rotation speed of the turbocharger, or a boost pressure of the engine, 7. The engine control device according to claim 6, wherein the high idle mode execution unit is configured to decrease a ratio F2 / F1 between a fuel injection amount F1 by a first stage fuel injection in one combustion cycle of the engine in the high idle mode and a fuel injection amount F2 by a second stage fuel injection in one combustion cycle of the engine in the high idle mode, when the second parameter exceeds an upper limit of the target range, and to increase the ratio F2 / F1, when the second parameter is below a lower limit of the target range.
9. 9. The engine control device according to claim 5, wherein the load application mode execution unit is configured to execute the load application mode in a state where a second parameter related to an operating state of the engine falls within a target range.
10. 1. An engine control method for controlling a turbocharged engine, comprising: a rotation speed increase mode execution step of executing a rotation speed increase mode, which is a mode in which a rotation speed of the engine is increased while the engine is operated under no load; a high idle mode execution step of executing a high idle mode, which is a mode in which the engine is operated under no load and is different from the increased rotation speed mode, when a first parameter related to an operating state of the engine reaches a threshold value in the increased rotation speed mode; a load application mode execution step of executing a load application mode, which is a mode for applying a load to the engine, after executing the high idle mode; Equipped with the increased speed mode includes at least one fuel injection stage in one combustion cycle of the engine; the high idle mode includes at least two stages of fuel injection within one combustion cycle of the engine; In the high idle mode execution step, a timing of a second stage fuel injection in one combustion cycle of the engine in the high idle mode is retarded relative to a timing of a first stage fuel injection in one combustion cycle of the engine in the rotation speed increase mode.
Citation Information
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