Method and Device for Pressure Regulation in a Fuel Hight-Pressure Injection System
20220099045 · 2022-03-31
Assignee
Inventors
Cpc classification
F02D41/3845
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/0602
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/3863
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2041/286
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D41/3836
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02D2200/101
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
The disclosure relates to a method for pressure regulation in a fuel high-pressure injection system having an overpressure valve, in which pressure pulsations occur which are caused by fuel being pumped into a high-pressure fuel accumulator and extracted from the high-pressure fuel accumulator. The method includes detecting pressure values of the fuel present in the high-pressure fuel accumulator. The method also includes comparing the detected pressure values with a nominal pressure value; and carrying out a pressure regulation in which the fuel pressure prevailing in the high-pressure fuel accumulator is set to the nominal pressure value. During pressure regulation, a peak pressure value of the detected pressure values is used as the actual pressure value. The disclosure also relates to a device for pressure regulation in a fuel high-pressure injection system.
Claims
1. A method for pressure regulation in a fuel high-pressure injection system having an overpressure valve, in which pressure pulsations occur which are caused by fuel being pumped into a high-pressure fuel accumulator and extracted from the high-pressure fuel accumulator, the method having the following steps: detecting pressure values of the fuel present in the high-pressure fuel accumulator; comparing the detected pressure values with a nominal pressure value; and carrying out a pressure regulation in which the fuel pressure prevailing in the high-pressure fuel accumulator is set to the nominal pressure value; wherein during pressure regulation, a peak pressure value of the detected pressure values is used as the actual pressure value.
2. The method of claim 1, wherein the peak pressure value is determined for each engine segment and used as an actual pressure value for the following engine segment.
3. The method of claim 2, wherein an engine segment has a segment duration of several milliseconds.
4. The method of claim 3, wherein several pressure values are detected per millisecond.
5. The method of claim 1, wherein the detected pressure values are written to a buffer memory.
6. The method of claim 5, wherein the pressure values stored in the buffer memory are read from the buffer memory and processed further by a processing software.
7. The method of claim 6, wherein only some of the pressure values detected per millisecond are processed further by the processing software.
8. The method of claim 7, wherein a number of pressure values processed further by the processing software depends on an engine rotation speed.
9. The method of claim 6, wherein the processing software determines a maximum pressure value from the pressure values detected for each millisecond of an engine segment, and determines the peak pressure value for this engine segment from all maximum pressure values of this engine segment.
10. The method of claim 1, wherein an opening pressure of the overpressure valve is set to an empirically determined constant pressure value which is greater than the determined peak pressure value in normal operating mode of the fuel high-pressure injection system.
11. A device for pressure regulation in a fuel high-pressure injection system having an overpressure valve and a controller for regulating a fuel pressure in the high-pressure injection system, the controller configured to perform the following steps: detect pressure values of fuel present in a high-pressure fuel accumulator; compare the detected pressure values with a nominal pressure value; and carrying out a pressure regulation in which the fuel pressure prevailing in the high-pressure fuel accumulator is set to the nominal pressure value; wherein during pressure regulation, a peak pressure value of the detected pressure values is used as the actual pressure value.
12. The device of claim 11, wherein the overpressure valve is arranged in a high-pressure pump unit.
13. The device of claim 11, wherein the overpressure valve is connected to the high-pressure fuel accumulator.
14. The device of claim 11, wherein the controller further performs: determining a peak pressure value for each engine segment and used as an actual pressure value for the following engine segment.
15. The device of claim 14, wherein an engine segment has a segment duration of several milliseconds.
16. The device of claim 15, wherein the controller further performs: several pressure values are detected per millisecond.
17. The device of claim 11, wherein the controller further performs: detecting pressure values are written to a buffer memory.
18. The device of claim 11, wherein an opening pressure of the overpressure valve is set to an empirically determined constant pressure value which is greater than the determined peak pressure value in normal operating mode of the fuel high-pressure injection system.
Description
DESCRIPTION OF DRAWINGS
[0012]
[0013]
[0014]
[0015]
[0016]
[0017] Like reference symbols in the various drawings indicate like elements.
DETAILED DESCRIPTION
[0018]
[0019] In this fuel high-pressure injection system, fuel is provided from a fuel tank (not shown) and supplied via a fuel supply line 9 to a high-pressure pump unit 1. By a high-pressure pump belonging to this high-pressure pump unit 1, the fuel is brought to a high pressure and then delivered to a high-pressure fuel accumulator 2. The high-pressure fuel present in this high-pressure fuel accumulator 2 is extracted from the high-pressure fuel accumulator 2 for the performance of injection processes, and supplied to an injector device which includes a plurality of injectors 6. The injectors 6 inject the fuel into combustion chambers 7 of a respective motor vehicle.
[0020] The high-pressure pump unit 1 receives control signals st1 from a controller 8 for controlling the operation of the high-pressure pump. The injector device 5 receives control signals st2 from the controller 8 for controlling the injection processes carried out by the injectors 6.
[0021] The controller 8 determines the control signals st1 and st2 and further control signals st3—sty using sensor signals s1 and further sensor signals s2—sx and using stored software. The sensor signals s1 are pressure signals provided by a high-pressure sensor 4 which provide information on the pressure of the fuel stored in the high-pressure fuel accumulator 2. The further sensor signals are for example output signals from a rotation speed sensor giving information on the engine rotation speed, and output signals from temperature sensors giving information on temperatures measured at various locations in the engine. Further input signals supplied to the controller 8 are for example signals giving information on the type of fuel present in the tank of the motor vehicle, signals giving information on the size of the high-pressure fuel accumulator used, and signals giving information on any superposition of the pump delivery with the injection.
[0022] An overpressure valve 3, having a predefined opening pressure, is connected to the high-pressure fuel accumulator 2. If the pressure of the fuel present in the high-pressure fuel accumulator 2 exceeds the opening pressure of the overpressure valve 3, this opens and conducts fuel from the high-pressure fuel accumulator 2 via a fuel return line 10 back into the fuel tank (not shown).
[0023] The fuel high-pressure injection system shown in
[0024] In conventional methods for pressure regulation in a fuel high-pressure injection system having an overpressure valve, the fuel pressure in the high-pressure fuel accumulator 2 is regulated by a controller which sets a mean pressure of the fuel to a predefined nominal value for each pump stroke. In this regulation process, the high-pressure signal is sampled with a sampling frequency of 1 kHz and then averaged in order to determine a mean actual pressure value. This procedure is illustrated in
[0025] In a method according to the disclosure for pressure regulation in a fuel high-pressure injection system having an overpressure valve, in contrast to the procedure explained with reference to
[0026]
[0027] This controller includes a pressure value acquisition in which a significantly higher sampling frequency is used for sampling the pressure signal. In the example shown, the pressure signals p present at the input and provided by the high-pressure sensor 4 are sampled in an A/D converter 11 with a sampling frequency of 16 kHz, so that 16 pressure values are present per millisecond.
[0028] These pressure values are read into a buffer memory 12 which for example has 32 memory locations.
[0029] Every millisecond, the 16 pressure values are output from this buffer memory to a processing software 13 and processed further there. In the context of this further processing, if required a digital filtering may be performed using a digital filter 14, the purpose of which is to damp or filter out any disruptive components in the output signal from the buffer memory. These disruptive components may for example be higher frequency components which lie outside the range concerned for the application, e.g. 1 kHz.
[0030] The signals output from the buffer memory 12 or digital filter 14 are supplied to a peak pressure value determinator 15. In this peak pressure value determinator 15, for each engine segment 17, a peak pressure value ps is determined from the signals present within this engine segment and supplied to the controller 16, which uses this as an actual pressure value for the regulation process in the respective following engine segment. In this regulation process, the controller compares the provided actual pressure value with a predefined, empirically determined nominal pressure value or one predefined by the vehicle manufacturer, and sets the pressure in the high-pressure fuel accumulator 2 to the predefined nominal pressure value. To this end, the controller generates control signals st1 which are supplied to the pump unit 1 shown in
[0031]
[0032]
[0033]
[0034] As a peak pressure value ps for the engine segment 17 shown in
[0035] In the example described above, all pressure values provided by the A/D converter are used in determination of the peak pressure value for a respective engine segment. In alternative examples, not all pressure values provided by the A/D converter are used in determination of the peak pressure value for a respective engine segment, but for example only every second, third or fourth pressure value. The number of pressure values used may be selected depending on the engine rotation speed such that always a predefined minimum number of pressure values are present per engine segment. By such a reduction in the number of pressure values used for determining a peak pressure value, the sampling frequency required to determine a respective peak pressure value can be adapted according to the pulsation frequency occurring, in order e.g. to exclude aliasing effects and keep the required buffer size within limits.
[0036] In the present disclosure, overall, the mean pressure value is not set to a nominal value, and the opening pressure of the overpressure valve is not dimensioned for a pressure peak occurring in the worst case scenario; rather, a peak pressure value in each engine segment is set to a nominal value, and the opening pressure of the overpressure valve is set to a value which does not lead to opening of the overpressure valve in the presence of an operating point occurring in normal operation. The pulsations occurring in operation are thus included in the regulation, such that the maximum pressure does not exceed the nominal pressure.
[0037] A number of implementations have been described. Nevertheless, it will be understood that various modifications may be made without departing from the spirit and scope of the disclosure. Accordingly, other implementations are within the scope of the following claims.