Double-acting shift cylinder actuating assembly
09797508 · 2017-10-24
Assignee
Inventors
Cpc classification
F16H61/0206
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0644
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T74/20024
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
International classification
F16H63/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H63/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K15/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An assembly for actuating a double-acting shift cylinder of a shift assembly of an automatic transmission of a motor vehicle includes a hydraulic fluid reservoir having a motor-driven hydraulic pump and two control valves that are each connected to a pressure supply line of the hydraulic pump and to a return line to the hydraulic fluid reservoir. The shift cylinder has two pressure chambers that are each connected to one of the control valves. The control valves each connect one pressure chamber of the shift cylinder to the pressure supply line of the hydraulic pump or to the return line to the hydraulic fluid reservoir. The actuating assembly includes at least one pressure-limiting valve that connects the pressure supply line to the return line if a hydraulic over-pressure is present. The control valves can be 3/2-directional valves having integrated pressure-limiting valves.
Claims
1. An actuating assembly for a double-acting shift cylinder of a shift assembly of an automatic transmission of a motor vehicle, the actuating assembly comprising: a hydraulic fluid reservoir; a hydraulic pump; a first 3/2-directional control valve and a second 3/2-directional control valve; a pressure supply line that connects the hydraulic pump to a first port of the first 3/2-directional control valve and to a first port of the second 3/2-directional control valve; a return line that connects a second port of the first 3/2-directional control valve and a second port of the second 3/2-directional control valve to the hydraulic fluid reservoir; a first connecting line that connects a third port of the first 3/2-directional control valve to a first working chamber of the double-acting shift cylinder of the shift assembly of the automatic transmission of the motor vehicle; and a second connecting line that connects a third port of the second 3/2-directional control valve a second working chamber of the double-acting shift cylinder of the shift assembly of the automatic transmission of the motor vehicle, wherein the first 3/2-directional control valve is configured to fluidly connect the pressure supply line to the first connecting line in a first position, to fluidly connect the return line to the first connecting line in a second position, and to fluidly connect, in a third position, its respective first and second ports so as to fluidly connect the pressure supply line to the return line in the presence of a hydraulic overpressure, and wherein the second 3/2-directional control valve is configured to fluidly connect the pressure supply line to the second connecting line in a first position, to fluidly connect the return line to the second connecting line in a second position, and to fluidly connect, in a third position, its respective first and second ports so as to fluidly connect the pressure supply line to the return line in the presence of a hydraulic overpressure.
2. The actuating assembly as claimed in claim 1, wherein for each of the 3/2-directional control valves, the third position is a middle position between the first position and the second position.
3. The actuating assembly as claimed in claim 2, wherein each of the 3/2-directional control valves comprises: a valve closure element connected to a valve piston; a compression spring; a first valve seat; and a second valve seat; wherein the compression spring is configured to exert a force on the valve piston so as to press the valve closure element against the first valve seat so as to seal the first port of the respective 3/2-directional control valve.
4. The actuating assembly as claimed in claim 3, wherein in response to an overpressure on the valve closure element, the compression spring is configured to cause the valve closure element to lift from the first valve seat so as to connect the first and second ports of the respective 3/2-directional control valve.
5. The actuating assembly as claimed in claim 1, wherein the shift cylinder is a synchronous cylinder having substantially equal effective areas.
6. The actuating assembly as claimed in claim 1, wherein each of the 3/2-directional control valves are valve cartridges affixed in bores of a carrier part of a subassembly, each of the valve cartridges being connected to the return line, to the pressure supply line, and to bores leading to the associated working chambers of the shift cylinder.
7. The actuating assembly as claimed in claim 6, wherein the return line and the pressure supply line are passages defined in the carrier part.
8. The actuating assembly as claimed in claim 7, further comprising a servicing bore defined in the carrier part substantially parallel to the valve cartridges, wherein the passages defined in the carrier part open into the servicing bore.
9. The actuating assembly as claimed in claim 8, wherein the servicing bore is configured to be releasably closed by a screw.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The embodiments of the present invention are described in greater detail below with reference to the accompanying drawings in which:
(2)
(3)
(4)
(5)
(6)
(7)
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(8) Referring now to the drawing figures,
(9) The shift cylinder 2 according to the prior art is in the form of a differential cylinder 12. Accordingly, it has a piston 13, which has a piston rod 16 on only one side of its piston surfaces 14, 15. The piston rod 16 is connected to an actuating element such as a shift fork.
(10) A pressure-limiting valve 17, which is energized only if the system detects an abnormal overpressure, is arranged between the return line 9 and the pressure supply line 6. In this case, when an abnormal overpressure is present, the pressure supply line and the return line are connected to one another.
(11)
(12) The control valves 7, 8, in the form of solenoid valve cartridges 22, 23, are screwed into corresponding bores of the carrier part 21. A passage 24 bored in the carrier part 21 forms the pressure supply line 6, while a passage 25 forms the return line 9. The pressure limiting valve 17, which connects the pressure supply line 6 to the return line 9 upon detection of an abnormal overpressure, is also fitted into a corresponding bore.
(13) Bores 26, 27, which form connections to the working chambers 10, 11 of the shift cylinder 2, pass through the carrier part 21 in the region of the control valves 7, 8, transversely to the pressure supply line 6 and to the return line 9, in each case. Upon appropriate switching of the control valves 7, 8, hydraulic fluid is pumped into the bores 26, 27, whereby the working chambers 10, 11 of the shift cylinder 2 are charged with hydraulic fluid.
(14)
(15) The assembly 31 according to the inventive embodiment differs from the prior art above all in the configuration of the control valves 37, 38 and in the configuration of the shift cylinder 32 as a synchronous cylinder 42.
(16) The control valves 37, 38 are in the form of 3/2-directional control valves 47, 48. Each of the control valves 37, 38 takes over the function of a pressure-limiting valve. The constructional details in this regard are described in more detail in connection with
(17) With regard to construction, two exemplary embodiments of the assembly 3 according to the present invention are represented in
(18) A first exemplary embodiment of a subassembly 60 of the assembly 31 is represented in
(19)
(20)
(21) The control valve 37 has a substantially cylindrical valve body 70, represented only partially in
(22) The valve body 72 is connected via a piston rod 77 to a disk 78 against which a compression spring 79 bears, an end of the compression spring 79 opposite the disk 78 bearing against a spring disk 80. The spring disk 80 is rigidly connected to the valve body 70. The compression spring 79 ensures that the ball 73 of the valve piston 72 is pressed firmly against the valve seat 75 when the solenoid 74 is switched off, and therefore closes the supply line 66 to the working chamber 40 of the synchronous cylinder 42. If an electromagnetic coil of the solenoid 74 is suitably energized, the valve piston 72 is pulled against the resistance of the compression spring 79 and is placed firmly against the valve seat 76, whereby the supply line 66 to the working chamber 40 of the synchronous cylinder 42 is opened and the return line 39 is closed.
(23) In accordance with the two normal switching positions, the closed position 49 and the open position 50 are brought about in the corresponding working chambers of the valve body 70.
(24) The components of the control valve 37 are designed for a normal operating pressure of approximately 80 bar. The compression spring 79 is set such that it works under normal pressure and under the afore-described conditions and ensures either the closed or the open position of the control valve 37. However, unlike normal 2/2-directional control valves, the compression spring 79 is tuned such that that it no longer folly maintains the closed position 49 at an overpressure of an order of magnitude above approximately 100 bar. At a corresponding pressure P on the ball 73, the ball 73 is lifted slightly from the valve seat 75 against the compression spring 79 so that hydraulic fluid can flow via the valve seat 75 and via the valve seat 76 in each case to the return line 39 and into the line 66 to the working chamber 40 of the synchronous cylinder 42. This middle position 51 is represented in
(25) It will thus be seen that the objects set forth above, among those made apparent from the preceding description, are efficiently attained, and since certain changes may be made without departing from the spirit and scope of the invention, it is intended that all matter contained in the above description or shown in the accompanying drawings shall be interpreted as illustrative and not in a limiting sense.
(26) It is also to be understood that the following claims are intended to cover all of the generic and specific features of the invention herein described and all statements of the scope of the invention that, as a matter of language, night be said to fall therebetween.