Control circuit for transmission variable displacement pump with improved efficiency
09803638 · 2017-10-31
Assignee
Inventors
- Derek B. Kinch (Ypsilanti, MI, US)
- Mark Richard Dobson (Howell, MI, US)
- Lev Pekarsky (West Bloomfield, MI, US)
- Hrudaya Mahapatro (Canton, MI, US)
Cpc classification
F16H61/0021
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2270/585
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/3442
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y10T137/0402
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
F04C14/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The present disclosure relates to a control circuit for a variable displacement pump in a vehicle transmission, including: a regulator valve configured to regulate displacement control fluid to the variable displacement pump; and a response limiter in communication with the regulator valve, configured to mitigate pressure oscillations in the control circuit.
Claims
1. A control circuit for a variable displacement pump in a transmission, comprising: a hydraulically actuated regulator valve that regulates fluid flow from the valve to the variable displacement pump to vary displacement of the pump; and a response limiter biasing the regulator valve to mitigate hydraulic pressure oscillations in the control circuit and biasing the valve toward pump outlet pressure hydraulic fluid flowing through the valve to the transmission and a displacement decrease circuit.
2. The control circuit of claim 1, wherein the response limiter is configured to apply a resistive force on the regulator valve in proportion to regulator valve travel towards a position closing fluid communication between a pump output circuit and the displacement decrease circuit that directs fluid from the valve to the pump to vary displacement of the pump.
3. The control circuit of claim 2, wherein the response limiter is a centering spring configured to bias the regulator valve towards a position opening fluid communication between the pump output circuit and the displacement decrease circuit.
4. The control circuit of claim 3, wherein the control circuit includes a driving spring configured to bias the regulator valve towards a position closing fluid communication between the pump output circuit and the displacement decrease circuit; wherein a spring constant ratio between the driving spring and the centering spring is less than or equal to 1:1.
5. The control circuit of claim 1, further comprising: a low pressure exhaust circuit in fluid communication with the variable displacement pump; and wherein the displacement decrease circuit, which directs fluid from the valve to the pump to vary displacement of the pump, is not in direct fluid communication with the low pressure exhaust circuit.
6. The control circuit of claim 5, wherein the low pressure exhaust circuit is a sump.
7. The control circuit of claim 1, wherein the regulator valve is a spool valve.
8. A transmission, comprising: a variable displacement pump; a control circuit controlling pump displacement through a hydraulically actuated regulator valve, which regulates fluid flow to the pump to vary displacement of the pump; a response limiter biasing the regulator valve to mitigate pressure oscillations in the control circuit; a line providing unrestricted hydraulic flow from a pump outlet to the valve, biasing the valve toward open communication from the pump outlet to a displacement decrease circuit; and wherein the response limiter biases the valve toward pump outlet pressure hydraulic fluid flowing through the valve to the transmission and the displacement decrease circuit.
9. The transmission of claim 8, wherein the response limiter is configured to apply a resistive force on the regulator valve in proportion to regulator valve travel towards a position closing fluid communication between a pump output circuit and the displacement decrease circuit that directs fluid from the valve to the pump to vary displacement of the pump.
10. The transmission of claim 9, wherein the response limiter is a centering spring configured to bias the regulator valve towards a position opening fluid communication between the pump output circuit and the displacement decrease circuit.
11. The transmission of claim 10, wherein the control circuit includes a driving spring configured to bias the regulator valve towards a position closing fluid communication between the pump output circuit and the displacement decrease circuit; wherein a spring constant ratio between the driving spring and the centering spring is less than or equal to 1:1.
12. The transmission of claim 8, wherein the regulator valve is a spool valve.
13. The transmission of claim 8, further comprising: a low pressure exhaust circuit in fluid communication with the variable displacement pump; and wherein the transmission is configured so that the displacement decrease circuit, which directs fluid from the valve to the pump to vary displacement of the pump, is not in direct fluid communication with the low pressure exhaust circuit.
14. The transmission of claim 13, wherein the low pressure exhaust circuit is a sump.
15. A method of manufacturing a hydraulic control circuit for a variable displacement pump of a transmission, comprising: connecting a fluid sump to a pressure line; connecting the variable displacement pump to the pressure line; incorporating a hydraulically actuated regulator valve in the pressure line, the regulator valve configured to provide a displacement decrease pressure command to the pump and to regulate fluid flow from the valve to the pump to vary displacement of the pump; and incorporating a response limiter at one end of the regulator valve thereby reducing regulator valve positional response to hydraulic pressure oscillation inputs and the response limiter biases the valve toward pump outlet pressure hydraulic fluid flowing through the valve to the transmission and the displacement decrease circuit.
16. The method of claim 15, further comprising: configuring the response limiter to apply a resistive force on the regulator valve in proportion to regulator valve travel towards a position closing fluid communication between a pump output circuit and the displacement decrease circuit that directs fluid from the valve to the pump to vary displacement of the pump.
17. The method of claim 16, further comprising: restricting direct fluid communication between the displacement decrease circuit, which directs fluid from the valve to the pump to vary displacement of the pump, and a low pressure exhaust circuit.
18. The method of claim 17, wherein the restricting direct fluid communication between the displacement decrease circuit and low pressure exhaust circuit comprises restricting direct fluid communication between the displacement decrease circuit and a sump.
19. The method of claim 15, further comprising: incorporating a micro-controller in the control circuit, configured to control the regulator valve according to transmission performance.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
(4)
(5)
(6) Although the following detailed description makes reference to illustrative embodiments, many alternatives, modifications, and variations thereof will be apparent to those skilled in the art. Accordingly, it is intended that the claimed subject matter be viewed broadly.
DETAILED DESCRIPTION
(7) Referring to the drawings,
(8) Referring now to
(9) Referring now to
(10) As shown in
(11) When additional flow is required to maintain system operating pressure, flow to the sealed chamber is reduced by regulating valve 40, thus reducing the force counteracting the spring 90. The moveable bore ring 80 changes position to equalize the forces, increasing pump flow to meet the additional flow demand.
(12)
(13) A line pressure control solenoid 170, as shown in
(14) Line pressure control solenoid 170 has two stages. Solenoid valve 170 is spring biased towards the first stage (or a closed position) by return spring 200. Solenoid valve 170 is controlled by a microcontroller 175. Microcontroller 175, through solenoid valve 170, is configured to control regulator valve 40 according to transmission performance (e.g., speed, gear, temperature, or pressure). When the solenoid valve 170 is in the closed position, stage 1, line 190 is disconnected from the source line 150. Flow through control pressure line 190 is at least partially limited by orifice 210.
(15) Main regulator valve 40, as shown in
(16) Main regulator valve 40 is connected to feedback circuit 115 which is linked to a pump outlet passage 230, as shown in
(17) Noise response reduction spring 260 is a response limiter that acts to limit excessive main regulator valve position response due to noise input. Spring 260 is in communication with the regulator valve 40. Spring 260 is a coil spring configured to apply a resistive force on the regulator valve 40 in proportion to regulator valve travel towards a position closing fluid communication between the pump output circuit 230 and a displacement decrease circuit 110. No feedback circuit orifice is used in the embodiment shown in
(18) As shown, coil spring 260 acts as a system response limiter and opposes excessive valve movement in response to noise inputs such as changes to flow load. This type of noise input to the main regulator valve 40 results in excursions of main regulator valve due to: (1) the speed discrepancy between main regulator valve and displacement control mechanism in the pump (30 as shown in
(19) A method of manufacturing a hydraulic control circuit (e.g., as discussed in
(20) In one exemplary embodiment the method also includes the step of configuring the response limiter to apply a resistive force on the regulator valve in proportion to regulator valve travel towards a position closing fluid communication between a pump output circuit and a displacement decrease circuit. A centering spring 260 as shown in
(21) In another embodiment the method of manufacturing a hydraulic control circuit for a vehicle transmission pump includes restricting direct fluid communication between the displacement decrease circuit 110 and a low pressure exhaust circuit (e.g., sump 50 of
(22) In yet another embodiment, the method includes incorporating a micro-controller in the control circuit, configured to control the regulator valve according to transmission performance. E.g., 175 as shown in
(23) With reference now to
(24) Those familiar with the art to which this invention relates will recognize various alternative designs and embodiments for practicing the invention within the scope of the appended claims.