Hydrogen engine control system

The control device addresses the issue of residual moisture in hydrogen engine exhaust passages by adjusting the air-fuel ratio and extending operation time to reduce water vapor content, ensuring the exhaust system remains dry.

JP7831273B2Active Publication Date: 2026-03-17TOYOTA JIDOSHA KK
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-12-20
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing hydrogen engine systems fail to adequately reduce moisture remaining in the exhaust passage after shutdown, leading to potential wetting of exhaust system components.

Method used

A control device that performs a water reduction treatment by adjusting the air-fuel ratio to a leaner mixture and extending the operation time after a shutdown request to minimize moisture in the exhaust passage.

Benefits of technology

Effectively reduces the amount of water vapor remaining in the exhaust passage by replacing it with drier exhaust, preventing wetting of exhaust system components.

✦ Generated by Eureka AI based on patent content.

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Abstract

To reduce water residing within an exhaust passage after a stop of a hydrogen engine.SOLUTION: When a stop of a hydrogen engine 10 is requested, a control device 30 carries out an operation with a water-reducing process carried out and then stops the hydrogen engine 10. The water-reducing process is a process for reducing a ratio of water vapor in exhaust gas. One example of the water-reducing process is a process for changing an air-fuel ratio of an air-fuel mixture combusting in a combustion chamber 11 to a leaner side than that before the stop request.SELECTED DRAWING: Figure 1
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Description

Technical Field

[0001] The present invention relates to a control device for a hydrogen engine.

Background Art

[0002] In a hydrogen engine that uses hydrogen gas as fuel, a large amount of moisture is generated during combustion. And due to the generated moisture, the exhaust system components may be wetted. Patent Document 1 discloses a technique for suppressing the wetting of exhaust system components by adjusting the air-fuel ratio according to the engine water temperature to reduce the moisture ratio of the exhaust.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] During the operation of a hydrogen engine, exhaust flows in the exhaust passage. At this time, most of the moisture generated by combustion is released to the outside air together with the exhaust. In the technique described in Patent Document 1, if the moisture ratio of the exhaust is reduced to an amount that can avoid wetting of the exhaust system components for the amount of moisture remaining in the exhaust passage without being released to the outside air together with the exhaust, the intended purpose is achieved.

[0005] On the other hand, when the hydrogen engine stops, since the flow of the exhaust stops, the water vapor in the exhaust existing in the exhaust passage at the time of stop remains in the exhaust passage as it is. Therefore, with only the technique described in Patent Document 1, there is a possibility that the amount of moisture remaining in the exhaust passage after the hydrogen engine stops cannot be sufficiently reduced.

Means for Solving the Problems

[0006] The hydrogen engine control device that solves the above problems operates the hydrogen engine after a request to stop it has been made, by performing a water reduction treatment to reduce the water vapor content of the exhaust gas, and then stops the hydrogen engine.

[0007] The control device for the hydrogen engine, when a shutdown is requested, operates the engine after performing a water reduction treatment before shutting it down. This operation after the shutdown request is performed with the exhaust water vapor content reduced by the water reduction treatment. Therefore, by performing this operation after the shutdown request, the amount of water remaining in the exhaust passage when the hydrogen engine is stopped can be reduced. Thus, the control device for the hydrogen engine has the effect of reducing the amount of water remaining in the exhaust passage after the hydrogen engine is stopped. [Brief explanation of the drawing]

[0008] [Figure 1] This diagram schematically shows the configuration of one embodiment of a control device for a hydrogen engine. [Figure 2] Figure 1 is a flowchart of the stop-time control routine executed by the control device. [Figure 3] This graph shows the relationship between the temperature parameters of a hydrogen engine when it is stopped and the reduced water-fuel ratio during operation. [Figure 4] This graph shows the relationship between the temperature parameters when a hydrogen engine is stopped and the water-reducing operation time. [Figure 5] This graph shows the relationship between valve overlap and the content of burnt gases and fresh air in the exhaust. [Modes for carrying out the invention]

[0009] Below, one embodiment of the control device for a hydrogen engine will be described in detail with reference to Figures 1 to 4. <Hydrogen engine configuration> First, the configuration of the hydrogen engine 10 to which this embodiment is applied will be described with reference to Figure 1. Note that the hydrogen engine 10 and control device 30 shown in Figure 1 are mounted on a vehicle.

[0010] The hydrogen engine 10 includes a combustion chamber 11 for burning a mixture of hydrogen gas and intake air, an intake passage 12 which is the introduction passage for intake air into the combustion chamber 11, and an exhaust passage 13 which is the discharge passage for exhaust gas from the combustion chamber 11. The combustion chamber 11 is connected to the intake passage 12 via an intake valve 14 and to the exhaust passage 13 via an exhaust valve 15. The hydrogen engine 10 also includes a VVT mechanism 16 which is a mechanism for varying the opening and closing timing of the intake valve 14, an injector 17 which injects hydrogen gas into the intake air, and an ignition device 18 which ignites the mixture in the combustion chamber 11 by spark discharge. In the case of the hydrogen engine 10 of this embodiment, an in-cylinder injection type injector 17 is used to inject hydrogen gas into the combustion chamber 11. Furthermore, the hydrogen engine 10 has an exhaust turbine type supercharger 19. The supercharger 19 has a compressor 20 installed in the intake passage 12 and a turbine 21 installed in the exhaust passage 13. Furthermore, a throttle valve 22 is installed in the intake passage 12 downstream of the compressor 20. In addition, exhaust system components 23 such as a catalytic converter and PM filter are installed in the exhaust passage 13.

[0011] <Control device configuration> Next, with reference to Figure 1, the configuration of the control device 30 that controls the hydrogen engine 10 will be described. The control device 30 is an electronic control unit equipped with a processor 31 and a memory 32. The memory 32 stores programs and data used to control the hydrogen engine 10. The processor 31 executes the programs read from the memory 32. The control device 30 receives detection signals from an airflow meter 33, a crank angle sensor 34, an intake air temperature sensor 35, a water temperature sensor 36, an ambient air temperature sensor 37, and an oil temperature sensor 38. The airflow meter 33 is a sensor that detects the intake air flow rate in the intake passage 12. The crank angle sensor 34 is a sensor that detects the rotation angle of the crankshaft, which is the output shaft of the hydrogen engine 10. The intake air temperature sensor 35 is a sensor that detects the temperature of the intake air taken into the intake passage 12. The water temperature sensor 36 is a sensor that detects the temperature of the cooling water in the hydrogen engine 10. The ambient air temperature sensor 37 is a sensor that detects the temperature of the ambient air. The oil temperature sensor 38 is a sensor that detects the temperature of the lubricating oil in the hydrogen engine 10.

[0012] The control device 30 determines the operating parameters of the hydrogen engine 10, such as the opening and closing timing of the intake valve 14, the amount and timing of hydrogen gas injection, the ignition timing of the air-fuel mixture, and the opening degree of the throttle valve 22, based on the detection results of each sensor. The control device 30 then controls the hydrogen engine 10 by operating the VVT ​​mechanism 16, injectors 17, ignition device 18, throttle valve 22, etc., based on the determined operating parameters.

[0013] <Control during shutdown> Next, we will describe the stop control performed by the control device 30 when a stop of the hydrogen engine 10 is requested. Note that the stop of the hydrogen engine 10 can be requested manually or automatically. A manual stop request is a request to stop the hydrogen engine 10 in response to a stop operation by the driver. An automatic stop request is a request to stop the hydrogen engine 10 automatically performed by the vehicle's driving control. An automatic stop of the hydrogen engine 10 is requested, for example, when the vehicle is stopped at a traffic light. Furthermore, if the hydrogen engine 10 is installed in a hybrid vehicle, an automatic stop of the hydrogen engine 10 is requested when the vehicle is performing electric-only driving.

[0014] Figure 2 shows a flowchart of the shutdown control routine executed by the control device 30 when a shutdown of the hydrogen engine 10 is requested. When this routine is started, the control device 30 first determines in step S100 whether the current shutdown request is an automatic shutdown request.

[0015] In the case of an automatic stop request (YES), the control device 30 sets the reduced water operation air-fuel ratio λt to "λ1" and the reduced water operation time T to "T1" in step S110. The reduced water operation air-fuel ratio λt set here represents the air-fuel ratio of the hydrogen engine 10 that the control device 30 sets when operating the hydrogen engine 10 after the stop request. The reduced water operation time T represents the operating time of the hydrogen engine 10 after the stop request. The value "λ1" set for the reduced water operation air-fuel ratio λt here is set to an air-fuel ratio that is leaner than the air-fuel ratio of the hydrogen engine 10 before the stop request.

[0016] On the other hand, in the case of a manual stop request (NO), the control device 30 sets the reduced water operation air-fuel ratio λt to "λ2" and the reduced water operation time T to "T2" in step S120. "λ2" is set to an air-fuel ratio that is leaner than "λ1". Also, "T2" is set to a time that is longer than "T1".

[0017] After the processing of step S110 or step S120, the control device 30 changes the air-fuel ratio of the hydrogen engine 10 to the water reduction operation air-fuel ratio λt in step S130. Also, at this time, the control device 30 starts measuring the elapsed time t after the change of the air-fuel ratio in step S130 in step S140.

[0018] After that, the control device 30 continues the operation of the hydrogen engine 10 with the air-fuel ratio set to the water reduction operation air-fuel ratio λt until the elapsed time t reaches the water reduction operation time T. Then, when the elapsed time t reaches the water reduction operation time T (S150: YES), the control device 30 stops the hydrogen engine 10 and then ends this routine.

[0019] <Actions and Effects of the Embodiment> The actions and effects of this embodiment will be described. In the stop control routine executed by the control device 30 when a stop request for the hydrogen engine 10 is made, the control device 30 changes the air-fuel ratio of the air-fuel mixture combusted in the combustion chamber 11 to the water reduction operation air-fuel ratio λt (S130). The water reduction operation air-fuel ratio λt is set to an air-fuel ratio on the lean side compared to before the stop request. The amount of water vapor generated by the combustion of the air-fuel mixture in the combustion chamber 11 is proportional to the amount of hydrogen gas in the air-fuel mixture. When the air-fuel ratio is changed to the lean side, the amount of intake air in the air-fuel mixture increases, but the amount of hydrogen gas does not change. Therefore, when the air-fuel ratio is changed to the lean side, the ratio of exhaust water vapor decreases. The control device 30 of this embodiment implements the process of changing the air-fuel ratio of the combusted air-fuel mixture to the lean side compared to before the stop request as a water reduction process for reducing the ratio of exhaust water vapor.

[0020] Then, after the stop request for the hydrogen engine 10, the control device 30 stops the hydrogen engine 10 after operating the hydrogen engine 10 in a state where the water reduction process has been performed. By the operation after such a stop request, the exhaust in the exhaust passage 13 is replaced with exhaust having a smaller water vapor ratio than before the stop request. Therefore, the amount of water remaining in the exhaust passage 13 after the hydrogen engine 10 is stopped decreases.

[0021] [[ID=第十九]] Furthermore, the control device 30 changes the reduced-water operation air-fuel ratio λt and the reduced-water operation time T depending on the shutdown status of the hydrogen engine 10. Specifically, the control device 30 changes the reduced-water operation air-fuel ratio λt and the reduced-water operation time T depending on whether an automatic shutdown is requested or a manual shutdown is requested. The reduced-water operation air-fuel ratio λt represents the air-fuel ratio of the hydrogen engine 10 during operation after the shutdown request, and the reduced-water operation time T represents the operating period of the hydrogen engine 10 after the shutdown request. The proportion of water vapor in the exhaust decreases as the air-fuel ratio is leaner. Therefore, the control device 30 changes the degree of reduction in the proportion of water vapor during the reduced-water treatment and the period during which the hydrogen engine 10 is operated in the state where the reduced-water treatment is performed, depending on the shutdown status of the hydrogen engine 10.

[0022] When the hydrogen engine 10 is stopped manually by the operator, it is more likely that the hydrogen engine 10 will be stopped for a longer period of time than when it is stopped automatically. If the stop is short, the hydrogen engine 10 will be restarted before the water vapor in the exhaust passage 13 has completely condensed. Therefore, in the case of an automatic stop where a short stop is expected, the problem of water contamination of the exhaust system components 23 by water vapor remaining in the exhaust passage 13 during the stop is less likely than in the case of a manual stop where a longer stop is expected. In response to this, in the case of a manual stop, the control device 30 sets the water reduction operation air-fuel ratio λt to a leaner air-fuel ratio than in the case of an automatic stop, and also sets the water reduction operation time T to a longer time than in the case of an automatic stop. In other words, in the case of a manual stop, the control device 30 increases the degree of reduction in the proportion of water vapor in the exhaust during the water reduction treatment compared to the case of an automatic stop. In addition, in the case of a manual stop, the control device 30 extends the period during which the hydrogen engine 10 is operated with the water reduction treatment in place after the stop request compared to the case of an automatic stop. Therefore, the amount of water remaining in the exhaust passage 13 when the engine is stopped can be reduced to an appropriate amount depending on the stopping status of the hydrogen engine 10.

[0023] This embodiment provides the following effects. (1) In this embodiment, the control device 30 operates the hydrogen engine 10 after a request to stop the hydrogen engine 10 has been made, in which state of water reduction treatment has been performed to reduce the water vapor content of the exhaust, and then stops the hydrogen engine 10. Through this operation after the stop request, the exhaust in the exhaust passage 13 is replaced with exhaust with a lower water vapor content than before the stop request. Therefore, the control device 30 in this embodiment can reduce the amount of water remaining in the exhaust passage 13 after the hydrogen engine 10 has been stopped.

[0024] (2) The control device 30 of this embodiment performs a process to change the air-fuel ratio of the mixture burning in the combustion chamber 11 to a leaner side than before the stop request, as a water reduction process. The proportion of water vapor in the exhaust is proportional to the air-fuel ratio. Therefore, it is easy to adjust the degree of reduction of the proportion of water vapor in the exhaust during the water reduction process.

[0025] (3) The control device 30 of this embodiment changes the degree to which the percentage of water vapor in the exhaust is reduced during the water reduction treatment, and the operating period after a stop request while the water reduction treatment is performed, according to the stopping status of the hydrogen engine 10. Specifically, when the engine is stopped manually, the control device 30 increases the degree to which the percentage of water vapor in the exhaust is reduced during the water reduction treatment compared to when it is stopped automatically. Also, when the engine is stopped manually, the control device 30 makes the operating period after a stop request while the water reduction treatment is performed longer than when it is stopped automatically. As a result, when the hydrogen engine 10 is stopped manually, the amount of water vapor remaining in the exhaust passage 13 at the time of stopping can be reduced compared to when it is stopped automatically. Therefore, the amount of water remaining in the exhaust passage 13 at the time of stopping can be reduced to an appropriate amount according to the stopping status of the hydrogen engine 10.

[0026] (Other embodiments) This embodiment can be implemented with the following modifications. This embodiment and the following modifications can be combined with each other to the extent that they do not contradict each other technically.

[0027] <Regarding water reduction treatment according to the shutdown situation and changes to the operating period after a shutdown request> When the hydrogen engine 10 is stopped, any water vapor remaining in the exhaust passage 13 may be naturally released into the outside air before the temperature in the exhaust passage 13 drops to the condensation point of water. The amount of water vapor released into the outside air before condensation increases with the length of time it takes for the temperature in the exhaust passage 13 to drop to the condensation point of water. Therefore, when the temperature in the exhaust passage 13 is high when the hydrogen engine 10 is stopped, the ratio of the amount of water that subsequently condenses in the exhaust passage 13 to the amount of water vapor remaining in the exhaust passage 13 at the time of stopping is smaller than when the temperature is low. Also, the rate at which the temperature in the exhaust passage 13 decreases after the hydrogen engine 10 is stopped is slower when the outside temperature is high. Therefore, the above ratio is also smaller when the outside temperature is high.

[0028] Therefore, the degree of reduction in the water vapor ratio during the water reduction treatment and the operating period after a shutdown request while the water reduction treatment is performed may be changed based on temperature parameters indicating the temperature state of the hydrogen engine 10 when it is stopped. For example, the temperatures of the intake air, coolant, and lubricating oil of the hydrogen engine 10, or the ambient temperature can be used as the above temperature parameters.

[0029] Figures 3 and 4 show examples of how the reduced-water operation air-fuel ratio λt and reduced-water operation time T are set according to the above temperature parameters at the time of shutdown in such cases. In Figure 3, when the temperature parameter at the time of shutdown of the hydrogen engine 10 is a value indicating a high temperature, the reduced-water operation air-fuel ratio λt is set to a leaner value than when the temperature parameter is a value indicating a low temperature. In Figure 4, when the temperature parameter at the time of shutdown of the hydrogen engine 10 is a value indicating a high temperature, the reduced-water operation time T is set to a shorter time than when the temperature parameter is a value indicating a low temperature.

[0030] Furthermore, the degree of reduction in the water vapor ratio during the water reduction treatment and the operating period after the water reduction request may be changed according to the air-fuel ratio of the hydrogen engine 10 before the shutdown request. The water vapor ratio in the exhaust increases as the air-fuel ratio shifts towards the rich side. Therefore, if the hydrogen engine 10 was operating at a rich air-fuel ratio before the shutdown request, the amount of water vapor in the exhaust passage 13 at the time of the shutdown request will be greater than if it had been operating at a lean air-fuel ratio. Thus, if the air-fuel ratio before the shutdown request is a rich air-fuel ratio, it is preferable to set the water reduction operation air-fuel ratio λt to a lean air-fuel ratio, or to set the water reduction operation time T to a longer time than if the air-fuel ratio were lean.

[0031] As described above, the degree of reduction in the water vapor ratio during the water reduction treatment and the operating period after the stop request may be changed based on the temperature parameter at the time of stopping, the air-fuel ratio before the stop request, etc. Furthermore, in the above embodiment and modified examples, only one of the water reduction operation air-fuel ratio λt and the water reduction operation time T may be changed according to the stopping status of the hydrogen engine 10. For example, in the stopping control routine in Figure 2, different values ​​may be set for "λ1" and "λ2" while equal values ​​may be set for "T1" and "T2". Alternatively, equal values ​​may be set for "λ1" and "λ2" while different values ​​may be set for "T1" and "T2". Moreover, regardless of the stopping status of the hydrogen engine 10, both the water reduction operation air-fuel ratio λt and the water reduction operation time T may be fixed values.

[0032] <Regarding water reduction treatment> The water reduction treatment, which reduces the proportion of water vapor in the exhaust gas, may be performed by methods other than changing the air-fuel ratio. For example, in the case of a hydrogen engine 10 equipped with a VVT mechanism 16 and a supercharger 19 as shown in Figure 1, the water reduction treatment can be performed by increasing the valve overlap amount of the intake valve 14 and exhaust valve 15 compared to before the stop request. In this case, after the stop request, the control device 30 operates the hydrogen engine 10 in the supercharged range with the valve overlap amount increased compared to before the stop request. Increasing the valve overlap amount increases the amount of intake air that passes through the intake passage 12, bypasses the combustion chamber 11, and blows out into the exhaust passage 13.

[0033] Figure 5 shows the relationship between the valve overlap amount and the respective contents of burnt gas and fresh air in the exhaust. Here, the amount of hydrogen gas in the fuel mixture burned in the combustion chamber 11 and the air-fuel ratio remain constant, while only the valve overlap amount is changed. Increasing the valve overlap amount increases the amount of intake air that passes through the combustion chamber 11 and flows into the exhaust passage 13 as fresh air. On the other hand, even if the valve overlap amount changes, the amount of water vapor produced by the combustion of hydrogen gas does not change. Therefore, the process of increasing the valve overlap amount can be carried out as a water reduction treatment to reduce the water vapor content of the exhaust. In this case, the degree of reduction in the water vapor content during the water reduction treatment can be adjusted by the amount of increase in the valve overlap amount from before the stop request.

[0034] <Other> The control device 30 may set the reduced water flow time T by the following calculation. When calculating the reduced water flow time T, the control device 30 divides the volume of the exhaust passage 13 by the exhaust flow rate after the stop request. The control device 30 then sets the divided value as the value of the reduced water flow time T. The value of the reduced water flow time T calculated in this way represents the time required for the exhaust in the exhaust passage 13 at the time of the stop request to be replaced by the exhaust generated by operation after the stop request while the reduced water flow treatment has been performed.

[0035] The control devices of the above embodiments and modified examples can also be applied to hydrogen engines with configurations different from those shown in Figure 1. [Explanation of symbols]

[0036] 10…Hydrogen engine, 11…Combustion chamber, 12…Intake passage, 13…Exhaust passage, 14…Intake valve, 15…Exhaust valve, 16…VVT mechanism, 17…Injector, 18…Ignition system, 19…Supercharger, 20…Compressor, 21…Turbine, 22…Throttle valve, 23…Exhaust system components, 30…Control device, 31…Processor, 32…Memory, 33…Airflow meter, 34…Crank angle sensor, 35…Intake air temperature sensor, 36…Water temperature sensor, 37…Outside air temperature sensor, 38…Oil temperature sensor

Claims

1. A control device for a hydrogen engine, After the hydrogen engine is shut down following a request to stop it, the hydrogen engine is operated while a water reduction treatment is performed to reduce the water vapor content of the exhaust gas, and then the hydrogen engine is shut down. The period during which the hydrogen engine is operated while the aforementioned water reduction treatment is performed is made longer when the hydrogen engine is manually stopped in response to the driver's stop operation compared to when the hydrogen engine is automatically stopped by the vehicle's driving control. Control device for a hydrogen engine.

2. The control device for a hydrogen engine according to claim 1, wherein the water reduction treatment is a process of changing the air-fuel ratio of the combustion mixture to a leaner side than before the stop request.

3. The aforementioned hydrogen engine has a supercharger, The aforementioned water reduction treatment is a process that increases the valve overlap amount of the intake valve and exhaust valve compared to before the stop request. A control device for a hydrogen engine according to claim 1.

Citation Information

Patent Citations

  • Control device of hydrogen engine

    JP2011047282A

  • Control device for spark-ignition gas fuel engine

    JP2012197775A