METHOD FOR ADJUSTING AN OPERATING POINT OF A HYDRAULIC ACTUATOR ARRANGEMENT
20200182314 · 2020-06-11
Assignee
Inventors
Cpc classification
F16D2500/10412
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60W10/02
PERFORMING OPERATIONS; TRANSPORTING
F16D2500/3026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/1026
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D48/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/3021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/688
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/3024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/70416
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/50245
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/1024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/7041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D48/066
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D31/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D2500/3025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A method for adjusting an operating point of a hydraulic actuator arrangement, in which a volumetric flow source is connected to a hydraulic cylinder via a pressure line which is filled with a hydraulic fluid, wherein a volume of the hydraulic fluid is regulated via the volumetric flow source and the operating point corresponds to a position of the actuator arrangement for a predefined parameter of a device which is to be actuated by the actuator arrangement, wherein the volume of the hydraulic fluid which is required to adjust the operating point is derived from a rotational position of a volumetric flow source motor and/or the volumetric flow source. In a method which facilitates a reliable start of the volume determination, a volume determination is started by means of a rotary angle regulation at a predefined pressure, wherein the predefined pressure is lower than a system pressure.
Claims
1. A hydraulic actuator arrangement, comprising: a volume flow source connected to a hydraulic cylinder via a pressure line filled with a hydraulic fluid, wherein the volume flow source is configured to regulated a volume of the hydraulic fluid, and configured to set an operating point that corresponds to a position an actuator arrangement for a predefined parameter of a clutch to be actuated by the actuator arrangement, wherein the volume of the hydraulic fluid that is required for setting the operating point is derived from a rotational position of a volume flow source motor or of the volume flow source, and a volume determination via a rotational angle regulation is started at a predefined pressure, wherein the predefined pressure is less than a system pressure.
2. The hydraulic actuator arrangement of claim 1, wherein the volume determination is carried out with a fully open clutch.
3. The hydraulic actuator arrangement of claim 2, wherein the clutch is configured to open at a predefined speed from a time from when the clutch no longer transmits torque.
4. The hydraulic actuator arrangement of claim 3, wherein the predefined speed is selected such that unintentional actuation of a gear of a transmission actuator is prevented.
5. The hydraulic actuator arrangement of claim 3, wherein the actuator is configured to move at the predefined speed until attainment of a minimum position or a minimum pressure in a transmission actuator, wherein the actuator arrangement is configured to be deactivated in response to attainment of the minimum position or minimum pressure.
6. The hydraulic actuator arrangement of claim 1, wherein, after opening of the clutch, the actuator arrangement, in response to a request for clutch closure, immediately runs up again, in response to a detected volume, to an operating point at which there is not a transmission of torque by the clutch.
7. The hydraulic actuator arrangement of claim 1, wherein the clutch is opened at a maximum speed in response to a gear request.
8. The hydraulic actuator arrangement of claim 7, wherein the maximum speed is reduced shortly before attainment of the minimum position or of the minimum pressure of the actuator arrangement.
9. The hydraulic actuator arrangement of claim 7, wherein the hydraulic actuator arrangement includes a directional control valve which actuates a gear is switched into a pass-through position during the clutch opening.
10. The hydraulic actuator arrangement of claim 9, wherein the volume of the hydraulic fluid that is required for setting the operating point is set via the rotational angle regulation below a predefined operating point and is set via a pressure regulation above the predefined operating point.
11. A method for setting an operating point of a hydraulic actuator arrangement, comprising: connecting a volume flow source to a hydraulic cylinder via a pressure line filled with a hydraulic fluid; regulating a volume of the hydraulic fluid via the volume flow source; setting the operating point to a position of the actuator arrangement for a predefined parameter of a clutch configured to be actuated by the actuator arrangement; and deriving the volume of the hydraulic fluid that is required for setting the operating point from a rotational position of a volume flow source motor or of the volume flow source.
12. The method of claim 11, wherein the method includes the step of selecting a predefined speed so that unintentional actuation of a transmission actuator is prevented.
13. The method of claim 11, wherein the method includes the step of moving a predefined speed until attainment of a minimum position in a transmission actuator.
14. The method of claim 11, wherein the method includes the step of moving a predefined speed until attainment of a minimum pressure in a transmission actuator.
15. The method of claim 11, wherein the method includes the step of opening the clutch at a maximum speed in response to a gear request.
16. The method of claim 11, wherein the method includes the step of the volume of the hydraulic fluid that is required for setting the operating is further in response to a rotational angle regulation meeting a predefined pressure, wherein the predefined pressure is less than a system pressure.
17. The method of claim 11, wherein the method includes the step of setting the volume of the hydraulic fluid that is required for setting the operating point in response to a rotational angle regulation falling below a predefined operating point and set via a pressure regulation above the predefined operating point
18. A method for setting an operating point of a hydraulic actuator arrangement, comprising: connecting a volume flow source to a hydraulic cylinder via a pressure line filled with a hydraulic fluid; regulating a volume of the hydraulic fluid via the volume flow source; setting the operating point in response to a position of the hydraulic actuator arrangement for a predefined parameter of a clutch to be actuated by the hydraulic actuator arrangement; and determining the volume of the hydraulic fluid that is required for setting the operating point in response to a rotational angle regulation meeting a predefined pressure that is less than a system pressure.
19. The method of claim 18, determining the volume is carried out with a fully open clutch.
20. The method of claim 18, wherein the clutch is configured to open at a predefined speed from a time from when the clutch no longer transmits torque.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0017] The disclosure permits numerous embodiments. It is sought to discuss one of these in more detail on the basis of the figures illustrated in the drawing.
[0018] In the drawing:
[0019]
[0020]
[0021]
DETAILED DESCRIPTION
[0022] A pump actuator arrangement 1 is designed as a twin-engine double-clutch transmission in
[0023] Since both partial strands 2, 3 are of identical construction, only one partial strand shall be described below. In each partial strand 2, 3, a line 10 is connected to the pump actuator 7, which is driven by an electric motor 11. The electric motor 11, in turn, is activated by a control unit 12. A sensor 13 for determining the angle increments .sub.IST covered by the electric motor 11 is arranged on the electric motor 11. The switching signals of the sensor 13 are counted by a counter 14 arranged in the control unit 12. The pump actuator 7 has a pump 15 which serves as a volume flow source and which is connected via the hydraulic line 2 to a hydraulic cylinder (not illustrated further) in the transmission actuator 9. Via the pump 15, hydraulic fluid is, from a hydraulic reservoir 16 via a line 17, sucked in and supplied to the transmission actuator 9 via the line 10.
[0024] The illustrated hydraulic pump actuator arrangement 1 is actuated by a regulating loop 18, as is shown in
[0025] The switching between the regulation of the pressure p and the pump angle regulation is realized with an actuation of an open clutch 5 above a pressure limit. The selection of the respective regulating method is realized via a controller. The controller predefines a pressure target signal p.sub.SOLL and/or a target volume V.sub.SOLL. The regulation of the signal p is traditionally realized here with the regulating deviation between the pressure target value p.sub.SOLL and the pressure actual value p.sub.IST, which is output by the pump 15, taken into consideration. According to the selection output by the controller in the block 200, the corresponding output signal of the pressure regulation or of the rotational angle regulation is forwarded to the pump 15. With the aid of the rotational angle .sub.IST determined at the pump 15 and of the pressure signal p.sub.IST, adaptation of a volume V.sub.BPneu for the setting of a new operating point (block 210) is realized. This new volume V.sub.BPneu of the hydraulic fluid is supplied to the controller in the block 200, which controller determines from the new volume V.sub.BPneu, which corresponds to a specific operating point, the target value V.sub.SOLL of the volume V. In the block 230, the target volume V.sub.SOLL is converted into a target angle .sub.SOLL via the pump characteristic value volume per angle. The difference between this actual rotational angle .sub.IST, which is measured by the sensor 13, and the newly calculated target angle .sub.SOLL forms the input of the rotational angle regulation in the block 30.
[0026] The method according to the disclosure shall be discussed in more detail in conjunction with
[0027] It is sought to start the rotational angle regulation already at a pressure p close to 0. However, owing to the measurement accuracy of the sensor 13, this is not always possible, and for this reason, in the present exemplary embodiment, the pressure p_K for the start of the rotational angle regulation is situated in the middle of the pressure increase phase in the range I.
[0028] Upon attainment of this predefined pressure value p_K, the clutch 5 may be fully open. With the opening of the clutch 5, from the time from which the clutch 5 no longer transmits torque (departure from the range III in the direction of range II), the pump actuator arrangement 1 is moved at an appropriate speed further in the direction of low actuator positions. Here, the pump 15 sucks in the hydraulic fluid at a rotational speed. As soon as the pump actuator arrangement 1 has attained a predefined minimum position, the electric motor 11 is no longer electrically energized and is deactivated, whereby also the clutch 5 comes to a standstill since the pump actuator arrangement 1 no longer moves. This avoids a situation in which, even at a reduced speed, the clutch 5 is opened, whereby a selection piston (not illustrated further) of the transmission actuator 9 is moved, which would lead to unintentional engagement of a gear.
[0029] If it is ensured that the clutch 5 is fully open, the predefined pressure p_K can be reliably detected. However, if a gear actuation is requested during such a process, the clutch 5 has to be opened at a maximum speed. In this case, dynamics, which are lost with the rotational speed limitation or the stoppage of the electric motor 11, are ensured. However, here too, the minimum position of the pump actuator arrangement 1 may be monitored in order to prevent a gear actuation by the transmission actuator 9. Therefore, the maximum speed of the pump actuator arrangement 1 or the rotational speed of the electric motor 11 is reduced in a timely manner to avoid uncontrolled selection piston actuation.
[0030] For the purpose of ensuring quick switching between a clutch strategy and a gear actuation strategy, a directional control valve which is used for actuating the gear is switched into a pass-through position, with the result that, at the maximum speed of the pump actuator arrangement 1, a gear can be swiftly engaged.
LIST OF REFERENCE SIGNS
[0031] 1 Pump actuator arrangement
[0032] 2 Partial strand
[0033] 3 Partial strand
[0034] 4 Hydraulic cylinder
[0035] 5 Clutch
[0036] 6 Two-pressure valve
[0037] 7 Pump actuator
[0038] 8 Valve
[0039] 9 Transmission actuator means
[0040] 10 Line
[0041] 11 Electric motor
[0042] 12 Control unit
[0043] 13 Sensor
[0044] 14 Counter
[0045] 15 Pump
[0046] 16 Hydraulic reservoir
[0047] 17 Line
[0048] 18 Regulating loop