Hydraulic Valve System for Actuating a Parking Lock Device
20170369040 · 2017-12-28
Inventors
Cpc classification
B60T1/005
PERFORMING OPERATIONS; TRANSPORTING
F16H63/3458
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T13/686
PERFORMING OPERATIONS; TRANSPORTING
F16D63/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/3483
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T11/28
PERFORMING OPERATIONS; TRANSPORTING
B60T13/662
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60T1/00
PERFORMING OPERATIONS; TRANSPORTING
B60T1/06
PERFORMING OPERATIONS; TRANSPORTING
F16D63/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B60T11/28
PERFORMING OPERATIONS; TRANSPORTING
F15B13/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electrohydraulic transmission control system having a parking lock valve by which a parking lock cylinder of a parking lock device can be charged with an actuation pressure adjustable in an operating-state-dependent manner by at least one pilot pressure adjustable in the region of an electrohydraulic pressure adjuster and/or one pressure source. Above a defined actuation pressure level, the parking lock valve can be held in a defined operating state in which the actuation pressure can be applied to the parking lock cylinder. The actuation and pilot pressures can be applied to a valve device such that when the actuation and pilot pressure levels approximately correspond to one another, the region of the control system which conducts the actuation pressure is operatively connected, upstream of the parking lock valve, to a pressure region in the region of the valve device with a pressure lower than the defined actuation pressure level.
Claims
1-15. (canceled)
16. An electrohydraulic transmission control system (1), comprising: a parking lock valve (2) by which a parking lock cylinder (3) of a parking lock device is chargeable with an actuation pressure (p_sys), the actuation pressure (p_sys) adjustable in an operating-state-dependent manner by at least one pilot pressure (p_EDSSYS), the at least one pilot pressure (p_EDSSYS) adjustable with an electrohydraulic pressure adjuster (EDSSYS), a pressure source (7), or both the electrohydraulic pressure adjuster (EDSSYS) and the pressure source (7); and a valve device (60) to which the actuation pressure (p_sys) and the pilot pressure (p_EDSSYS) are applicable; wherein the parking lock valve (2) can be held in a defined operating state in which the actuation pressure (p_sys) is applicable to the parking lock cylinder (3) above a defined pressure level of the actuation pressure (p_sys), and wherein the valve device (60) is configured such that a portion of the electrohydraulic transmission control system (1) that conducts the actuation pressure (p_sys) upstream of the parking lock valve (2) is operatively connected to a pressure region (50) proximate the valve device (60) when pressure levels of the actuation pressure (p_sys) and of the pilot pressure (p_EDSSYS) at least approximately correspond to each other, a pressure of the pressure region (50) being less than the defined pressure level.
17. The electrohydraulic transmission control system according to claim 16, wherein the actuation pressure (p_sys) is applicable to a control surface (61) of a valve slide (63) of the valve device (60), the valve slide (63) being longitudinally displaceable in a housing (62), the actuation pressure (p_sys) urging the valve device (60) towards an operating state of the valve device (60) in which the portion of the electrohydraulic transmission control system (1) which conducts the actuation pressure (p_sys) is blocked from the pressure region (50) by the valve device (60).
18. The electrohydraulic transmission control system according to claim 17, wherein the pilot pressure (p_EDSSYS) is applicable at a further control surface (64) of the valve slide (63) to urge the valve device (60) towards a further operating state of the valve device (60) in which the portion of the electrohydraulic transmission control system (1) which conducts the actuation pressure (p_sys) is connected to the pressure region (50) through the valve device (60).
19. The electrohydraulic transmission control system according to claim 18, wherein a spring device (65) is connected to the valve slide (63), the spring device (65) urging the valve device (60) towards the further operating state of the valve device (60) in which the portion of the electrohydraulic transmission control system (1) which conducts the actuation pressure (p_sys) is connected to the pressure region (50) through the valve device (60).
20. The electrohydraulic transmission control system according to claim 17, wherein the portion of the electrohydraulic transmission control system (1) which conducts the actuation pressure (p_sys) is operatively connectable with the pressure region (50) through a throttle device (66) arranged upstream of the valve device (60).
21. The electrohydraulic transmission control system according to claim 18, wherein the control surface (61) and the further control surface (64) are of at least approximately the same size.
22. The electrohydraulic transmission control system according to claim 20, wherein the actuation pressure (p_sys) is applicable at a first valve pocket (601) of the valve device (60) and downstream of the throttle device (66) at a second valve pocket (602) of the valve device (60), the second valve pocket (602) being spaced apart from the first valve pocket (601) in an axial direction.
23. The electrohydraulic transmission control system according to claim 22, wherein: the second valve pocket (602) is operatively connected by the valve slide (63) to a third valve pocket (603) in the further operating state of the valve device (60), and the operative connection is shut off by the valve slide (63) when the valve device (60) is in the defined operating state; and the third valve pocket (603) is connected to the pressure region (50) in the further operating state of the valve device (60).
24. The electrohydraulic transmission control system according to claim 16, wherein, during normal operation of the electrohydraulic transmission control system (1), the parking lock valve (2) is chargeable with a pressure signal (p_ESDA) which is adjustable by a further electrohydraulic pressure adjuster (EDSA) and which is applicable to the parking lock valve (2) to urge the parking lock valve (2) towards the defined operating state of the parking lock valve (2).
25. The electrohydraulic transmission control system according to claim 24, wherein, during normal operation of the electrohydraulic transmission control system (1), the parking lock valve (2) is chargeable with a pressure signal (p_MVPS) which is adjustable by an additional electrohydraulic pressure adjuster (MVPS) and which is applicable to the parking lock valve (2) to urge the parking lock valve (2) away from the defined operating state of the parking lock valve (2).
26. The electrohydraulic transmission control system according to claim 24, wherein the pressure signal (p_EDSSYS) which is adjustable with the electrohydraulic pressure adjuster (EDSSYS) is additionally applicable to an actuation pressure valve (4), the actuation pressure (p_sys) being adjustable by the actuation pressure valve (4) in a manner dependent on the pressure signal (p_EDSSYS) and by a pressure provided by a further pressure source (5).
27. The electrohydraulic transmission control system according to claim 24, wherein the parking lock valve (2) comprises a valve slide (VS2) which is longitudinally displaceable in a housing (18), the valve slide (VS2) connected to a spring device (17) that urges the parking lock valve (2) away from the defined operating state of the parking lock valve (2), the actuation pressure (p_sys) and the pressure signals (p_EDSA, p_MVPS) applicable to the valve slide (VS2) at a plurality of control surfaces (21 to 27).
28. The electrohydraulic transmission control system according to claim 27, wherein the actuation pressure (p_sys) is blocked from the parking lock cylinder (3) by the parking lock valve (2) in a first switching position of the valve slide (VS2) of the parking lock valve (2).
29. The electrohydraulic transmission control system according to claim 28, wherein the pressure signal (p_MVPS) which is adjustable by the additional electrohydraulic pressure adjuster (MVPS) is applicable at a first control surface (22) of a plurality of control surfaces (21 to 27) such that the pressure signal (p_MVPS) urges the valve slide (VS2) towards the first switching position when the pressure signal (p_MVPS) is applied.
30. The electrohydraulic transmission control system according to claim 25, wherein the electrohydraulic pressure adjuster (EDSSYS) is a pressure adjuster with a falling pressure characteristic curve versus the actuation current, the further electrohydraulic pressure adjuster (EDSA) and the additional electrohydraulic pressure adjuster (MVPS) are pressure adjusters with a rising pressure characteristic curve versus the actuation current, and the actuation pressure (p_sys) increases with increasing pressure signal (p_EDSSYS) of the electrohydraulic pressure adjuster (EDSSYS).
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The invention is described more specifically by example on the basis of the attached figures. The following is shown:
[0031]
[0032]
[0033]
DETAILED DESCRIPTION
[0034] Reference will now be made to embodiments of the invention, one or more examples of which are shown in the drawings. Each embodiment is provided by way of explanation of the invention, and not as a limitation of the invention. For example features illustrated or described as part of one embodiment can be combined with another embodiment to yield still another embodiment. It is intended that the present invention include these and other modifications and variations to the embodiments described herein.
[0035]
[0036] The shift elements A to E can be charged with actuation pressures p_A to p_E which are adjustable in the region of valve devices KVA to KVE, and in the non-actuated operating state, a pre-fill pressure p_VB1 or p_VB2 prevails at these. Furthermore a converter lock-up clutch WK can be charged with an actuation pressure p_WK which is adjustable in the region of a converter clutch valve WKV. Electrohydraulic pressure adjusters EDSA to EDSE and EDSWK are assigned to each of the valve devices KVA to KVE and WKV, the actuation pressure p_sys which is adjustable in the region of a actuation pressure valve 4 prevailing at the electrohydraulic pressure adjusters EDSA to EDSE and EDSWK, in the region of which in each case a pilot pressure p_EDSA to p_EDSE and p_EDSWK can be adjusted.
[0037] By a preferably mechanically driven pump device 5, which constitutes a pressure source of the electrohydraulic transmission control system 1, a supply pressure is provided which prevails in the region of the actuation pressure valve 4 when a drive machine of a vehicle drivetrain including the gearbox is active. At the actuation pressure valve 4, a pilot pressure p_EDSSYS can be applied which is adjustable in the region of an electrohydraulic pressure adjuster EDSSYS, the pilot pressure p_EDSSYS acting in the same direction as a spring device 6 to a valve slide 41 of the actuation pressure valve 4, wherein, in the present case, the actuation pressure p_sys increases with increasing pilot pressure p_EDSSYS.
[0038] In order to be able, in certain operating situations of the transmission, to briefly compensate instances of undersupply from the pump device 5, a hydraulic fluid volume accumulator 7 is provided, in the region of which a hydraulic fluid volume can be temporarily stored counter to the spring force of a spring device 8, which hydraulic fluid volume can, in accordance with demand, be introduced into the line system of the electrohydraulic transmission control system 1 downstream of a check valve device 9. In this way a hydraulic supply can be provided to the transmission control system 1 as desired within short operating times.
[0039] In addition to the shift elements A to E the transmission includes a launch component 10 which in the present case is designed as a hydrodynamic torque converter and which can be locked up, in a manner dependent on the operating state, by the converter lock-up clutch WK. The launch component 10 and the converter lock-up clutch WK can be actuated as desired not only by the converter clutch valve WKV but also by further valve devices 11 and 12. Downstream of the valve device 12 there is provided a cooler 13 which is connected upstream of a lubricating circuit 14.
[0040] In the actuated operating state of the shift elements A to E, the valve devices KVA to KVE are pilot-operated by the electrohydraulic pressure adjusters EDSA to EDSE in each case by pilot pressures p_EDSA to p_EDSE, in such a way that the actuation pressure p_sys prevailing in each case in the region of the valve devices KVA to KVE is applied, having been correspondingly converted as required, in the region of actuation pistons (not illustrated any more detail) of the shift elements A to E, in each case as actuation pressure p_A to p_E. Here, the actuation pressure p_sys corresponds in each case to the maximum actuation pressure p_A to p_E that can be realized.
[0041] In order to be able to charge the parking lock cylinder 3, in accordance with demand, with the actuation pressure p_sys for disengaging the parking lock device or for hydraulically holding the parking lock device in the disengaged state via the parking lock valve 2, the pilot pressure p_EDSA, which is adjustable in the region of the electrohydraulic pressure adjuster EDSA, can be applied in the region of a control surface 21 of a valve slide VS2 of the parking lock valve 2. Here, the valve slide VS2 of the parking lock valve 2 can be transferred by the prevailing pressure signal p_EDSA, counter to the spring force of the spring device 17, into the switching position illustrated in
[0042] In addition to the pilot pressure p_EDSA and the actuation pressure p_sys, which simultaneously constitutes the actuation pressure of the parking lock cylinder 3, a pressure signal p_MVPS which is adjustable in the region of a further electrohydraulic pressure adjuster MVPS, which in the present case is designed as a solenoid valve, can be applied in the region of a spring chamber 16 of the parking lock valve 2, in which spring chamber the spring device 17 of the parking lock valve 2 is arranged. In the present case, the spring chamber 16 is delimited by a housing 18 and by the valve slide VS2 of the parking lock valve 2, wherein the pressure signal p_MVPS can be applied in the region of a further control surface 22 of the valve slide VS2 of the parking lock valve 2 so as to act in the same direction as the spring force of the spring device 17. Both the spring force of the spring device 17 and the pressure signal p_MVPS act on the valve slide VS2 in the direction of its shifted switching position.
[0043] In the first switching position of the valve slide VS2 as illustrated in
[0044] In the present case, the control surfaces 21, 22, 25 and 26 of the valve slide VS2 and the spring force of the spring device 17 are coordinated with one another such that, during normal operation of the electrohydraulic transmission control system 1, in which the electrohydraulic pressure adjusters EDSA to EDSE, MVPS and EDSSYS can be fed with current, the parking lock device can be transferred into its engaged operating state or into its disengaged operating state in the manner described in more detail below.
[0045] Proceeding from the engaged operating state Pein of the parking lock device, and in the presence of a demand for disengagement of the parking lock device, the parking lock valve 2, the valve slide VS2 of which is then situated in the shifted switching position, is transferred into the operating state illustrated in
[0046] Here, a piston 30 of the parking lock cylinder 3 is displaced from its position corresponding to the engaged operating state Pein of the parking lock device into the position corresponding to the disengaged operating state Paus of the parking lock device by the prevailing actuation pressure p_sys counter to a spring device (not illustrated in any more detail) of the parking lock device. When the position that corresponds to the disengaged operating state Paus of the parking lock device is reached, an electrically actuable locking device 31 arrests the piston 30, which is then held redundantly, both by the actuation pressure p_sys and by the locking device 31, in the position that corresponds to the disengaged operating state Paus of the parking lock device.
[0047] During normal operation of the electrohydraulic transmission control system 1, if an engagement of the parking lock device is demanded proceeding from the operating state of the parking lock valve 2 as illustrated in
[0048] In the present case, the control surfaces 21 to 26 of the valve slide VS2 and the spring force of the spring device 17 are also coordinated with one another such that the valve slide VS2 can be transferred from its first switching position into its second switching position by a pilot pressure p_EDSA of approximately 3.5 bar counter to the spring force of the spring device 17, if the pressure signal p_MVPS of the solenoid valve MVPS is substantially equal to zero or more specifically substantially corresponds to the ambient pressure of the transmission, which basically prevails in all regions of the parking lock valve 2 in addition to the pressure signals and which thus has no effect.
[0049] At the latest when the first switching position of the valve slide VS2 is reached, the actuation pressure p_sys prevails again at the control surfaces 25 and 26 of the valve slide VS2. By the actuation pressure p_sys, the self-holding action of the parking lock valve 2 is activated if the actuation pressure p_sys is approximately 2 bar. This means that, in the presence of a actuation pressure p_sys of approximately 2 bar, the valve slide VS2 can no longer be transferred into its second switching position by only the spring device 17.
[0050] During normal operation of the transmission control system 1, through corresponding adjustment of the pilot pressure p_EDSA, the shift element A is charged with the actuation pressure p_A, and incorporated into the power flow during the realization of the park operating state, the neutral operating state, the realization of the ratio for reverse travel, and during the realization of the ratios “1” and “2” for forward travel and for the realization of the ratios “7” and “8”. The pressure signal or more specifically the pilot pressure p_EDSA is therefore particularly suitable for transferring the parking lock valve 2 from the operating state not illustrated in any more detail in the drawing in the direction of the operating state shown in
[0051] If the current-feed of the electrohydraulic transmission control system 1 fails, this has the effect that the pilot pressures p_EDSA to p_EDSE fall to zero owing to the configuration described in more detail below of the electrohydraulic pressure adjusters EDSSYS, MVPS and EDSA to EDSE, whereas the pressure signal p_EDSSYS assumes its maximum value. Furthermore, in the deenergized operating state of the solenoid valve MVPS, the pressure signal p_MVPS is also equal to zero.
[0052] This results from the fact that the pressure adjusters EDSA to EDSE are formed in each case with a rising pressure characteristic curve versus the actuation current, whereas the electrohydraulic pressure adjuster EDSSYS has a falling pressure characteristic curve versus the actuation current. Thus, during hydraulic emergency operation of the electrohydraulic transmission control system 1, the actuation pressure valve 4 is charged with the maximum pressure value of the pressure signal p_EDSSYS, whereby the actuation pressure p_sys assumes its maximum value for as long as the pump device 5 provides a corresponding supply pressure. This has the effect that the hydraulic fluid volume accumulator 7 is also charged with the maximum actuation pressure p_sys and gets filled completely.
[0053] A detent device 34 of the hydraulic fluid volume accumulator 7 is likewise deactivated in the event of an electrical failure of the electrohydraulic transmission control system 1. The hydraulic fluid volume stored in the region of the hydraulic fluid volume accumulator 7 is introduced, upstream of the parking lock valve 2, into the line system of the transmission control system 1 if the actuation pressure p_sys falls below a defined pressure level of the actuation pressure p_sys, which in the present case lies at approximately 7 bar. To prevent the actuation pressure p_sys from being held for a limited time period at the pressure level of approximately 7 bar, the electrohydraulic transmission control system 1 includes a valve device 60 with the functionality described further below.
[0054] For as long as the pump device 5 provides an adequately high supply pressure, the self-holding action of the parking lock valve 2 remains active during emergency operation, and the valve slide VS2 is held in the operating state shown in
[0055] Since, in the present case, the self-holding pressure threshold of the parking lock valve 2 effective during emergency operation of the transmission control system 1 is lower than the actuation pressure p_sys provided by the hydraulic fluid volume accumulator 7 in the event of the deactivation of the pressure supply from the pump, it is the case, despite the drop in the actuation pressure p_sys to the pressure level of the hydraulic fluid volume accumulator 7, that the valve slide VS2 is initially not immediately transferred by the spring device 17, owing to the design, into its first switching position, and the parking lock device initially is not transferred into its engaged operating state.
[0056] To nevertheless be able to transfer the parking lock device into its engaged operating state immediately after the deactivation of the pressure supply from the pump during emergency operation of the transmission control system 1, the valve device 60 is based on the following mode of operation:
[0057] During the operation of the electrohydraulic transmission control system 1, the actuation pressure p_sys and the pilot pressure p_EDSSYS prevail at the valve device 60. Here, the valve device 60 is designed such that, when the pressure levels of the actuation pressure p_sys and of the pilot pressure p_EDSSYS at least approximately correspond to one another, the region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys is, upstream of the parking lock valve 2, operatively connected to a pressure region in the region of the valve device 60, a pressure of the pressure region being lower than the self-holding pressure level of the parking lock valve 2 or, more specifically, being lower than the defined pressure level of the actuation pressure p_sys. In the present case, the pressure region corresponds to the unpressurized region 50 of the transmission in which ambient pressure prevails.
[0058] Here, the actuation pressure p_sys prevails in the region of a control surface 61 of a valve slide 63 of the valve device 60, the valve slide 63 being longitudinally displaceable in a housing 62 so as to act in a direction of an operating state of the valve device 60 in which the region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys is isolated from the pressure region 50 in the region of the valve device 60.
[0059] Furthermore, the pilot pressure p_EDSSYS prevails in the region of a further control surface 64 of the valve slide 63 in a direction of action toward a further operating state of the valve device 60 in which that region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys is connectedto the pressure region 50 in the region of the valve device 60. Furthermore, a spring device 65 acts on the valve slide 63 of the valve device 60, said spring device 65 acting in the direction of the operating state of the valve device 60 in which the region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys is connected to the pressure region 50 in the region of the valve device 60. In the present case, the operating state of the valve device 60 is shown in
[0060] It is additionally the case that the region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys can be placed in operative connection with the pressure region 50 by a throttle device 66 arranged upstream of the valve device 60. In the exemplary embodiment of the valve device 60 illustrated in the drawing, the control surface 61 and the further control surface 64 are of equal size, whereby the actuating forces that act on the valve slide 63 correspond to one another in a state of pressure equilibrium, said actuating forces resulting from the actuation pressure p_sys and the pilot pressure p_EDSSYS, and the valve slide 63 can be transferred into or held in the switching position illustrated in
[0061] The actuation pressure p_sys prevails in the region of a first valve pocket 601 of the valve device 60 and, downstream of the throttle device 66, in the region of a second valve pocket 602 of the valve device 60, the second valve pocket 602 being spaced apart from the first valve pocket 601 in an axial direction. In the further operating state of the valve device 60 as illustrated in
[0062] Owing to the configuration of the valve device 60 as described in more detail above, it is ensured that, in the shut-down operating state of the vehicle and thus in the unpressurized operating state of the electrohydraulic transmission control system 1, the valve slide 63 of the valve device 60 is in the switching position illustrated in
[0063] Upon a start-up of a vehicle, during normal operation of the electrohydraulic transmission control system, the valve device 60 is charged with the actuation pressure p_sys in the region of the control surface 61. Furthermore, the region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys is initially also connected to the unpressurized region 50 by the throttle device 66 and the two valve pockets 602 and 603. Owing to the throttling action of the throttle device 66, a pressure level is built up in the region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys, said pressure level being higher than the pressure level of the pilot pressure p_EDSSYS and transferring the valve slide 63 of the valve device 60, counter to the pilot pressure p_EDSSYS and the spring force of the spring device 65, into the operating state shown in
[0064] Owing to the configuration of the valve device 60, it is ensured, in the event of a deactivation of the pressure supply during emergency operation of the electrohydraulic transmission control system 1, that the parking lock device is engaged as desired despite the hydraulic fluid volume being displaced from the hydraulic fluid volume accumulator 7 into the region of the electrohydraulic transmission control system 1 which conducts the actuation pressure p_sys, and the associated maintaining of the pressure level of the actuation pressure p_sys above the self-holding pressure threshold of the parking lock valve 2.
[0065] This results from the fact that, in the event of the deactivation of the pressure supply of the electrohydraulic transmission control system 1 during emergency operation, the actuation pressure p_sys and the pilot pressure p_EDSSYS abruptly correspond to one another, and the valve slide 63 of the valve device 60 is then transferred by the spring device 65 from the switching position shown in
[0066] Modifications and variations can be made to the embodiments illustrated or described herein without departing from the scope and spirit of the invention as set forth in the appended claims.
REFERENCE DESIGNATIONS
[0067] 1 Electrohydraulic transmission control system [0068] 2 Parking lock valve [0069] 3 Parking lock cylinder [0070] 4 Actuation pressure valve [0071] 5 Pump device [0072] 6 Spring device of the actuation pressure valve [0073] 7 Hydraulic fluid volume accumulator [0074] 8 Spring device of the hydraulic fluid volume accumulator [0075] 9 Check valve device [0076] 10 Starting component, torque converter [0077] 11, 12 Valve device [0078] 13 Cooler [0079] 14 Lubrication circuit [0080] 16 Spring chamber [0081] 17 Spring device [0082] 18 Housing [0083] 20 Piston chamber [0084] 21 Control surface [0085] 22 Further control surface [0086] 25 Control surface [0087] 26 Control surface [0088] 30 Piston of the parking lock cylinder [0089] 31 Interlock device of the parking lock cylinder [0090] 34 Detent device of the hydraulic fluid volume accumulator [0091] 41 Valve slide of the actuation pressure valve [0092] 50 Unpressurized region [0093] 60 Valve device [0094] 61 Control surface [0095] 62 Housing [0096] 63 Valve slide [0097] 64 Further control surface [0098] 65 Spring device [0099] 66 Throttle device [0100] 601 First valve pocket [0101] 602 Second valve pocket [0102] 603 Third valve pocket [0103] A to E Shift element [0104] EDSA to EDSE Electrohydraulic pressure adjuster [0105] EDSSYS Electrohydraulic pressure adjuster [0106] EDSWK Electrohydraulic pressure adjuster [0107] KVA to KVE Valve device [0108] MVPS Electrohydraulic pressure adjuster, solenoid valve [0109] p_A to p_E Actuation pressure [0110] Paus, Pein Operating state of the parking lock [0111] p_MVPS Pressure signal [0112] p_EDSSYS Pressure signal [0113] p_EDSA to p_EDSE Pilot pressure [0114] p_sys Actuation pressure [0115] p_VB1, p_VB2 Pre-fill pressure [0116] p_WK Actuation pressure [0117] VS2 Valve slide of the parking lock valve [0118] VS25, VS26 Valve slide region [0119] WK Converter lock-up clutch [0120] WKV Converter clutch valve