Balanced binary pump for CVT transmission
09546728 ยท 2017-01-17
Assignee
Inventors
- JOHN C. SCHULTZ (SALINE, MI, US)
- Daryl A. Wilton (Macomb, MI, US)
- Philip C. Lundberg (Keego Harbor, MI, US)
Cpc classification
F16H39/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C11/001
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2/3446
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/66272
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H2061/66281
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/0025
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16H61/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A flexible binary pump system for a motor vehicle transmission includes a shaft, a first vane pump mounted on the shaft and having a first rotor with a first diameter and a first width and a second vane pump mounted on the shaft and having a second rotor with a second diameter and a second width. The first vane pump provides hydraulic fluid to the transmission at a first pressure, and the second vane pump provides hydraulic fluid to the transmission at a second pressure. The first diameter, first width, second diameter, and second width are selected to optimize power consumption of the binary pump system and hydraulic fluid budget for the transmission.
Claims
1. A flexible binary pump system for a motor vehicle transmission comprising: a shaft; a first vane pump mounted on the shaft, the first vane pump having a first rotor with a first diameter and a first width, the first vane pump providing hydraulic fluid to the transmission at a first pressure; and a second vane pump mounted on the shaft, the second vane pump having a second rotor with a second diameter and a second width, the second vane pump providing hydraulic fluid to the transmission at a second pressure, the first diameter, first width, second diameter and second width being selected to optimize power consumption of the binary pump system and hydraulic fluid budget for the transmission; a first pressure regulator valve that receives hydraulic fluid from the first pump or a combination of hydraulic fluid from the first pump and from the second pump, the first pressure regulator valve providing the hydraulic fluid from the first pump to a first portion of the transmission or the combination of hydraulic fluid from the first pump and the second pump to the first portion and to a second portion of the transmission; and a second pressure regulator valve that receives hydraulic fluid from the second pump and provides the hydraulic fluid from the second pump to the second portion of the transmission.
2. The binary pump system of claim 1 wherein the transmission is an automatic transmission.
3. The binary pump system of claim 1 wherein the transmission is a continuously variable transmission.
4. The binary pump system of claim 1 wherein the first pump and the second pump are balanced vane pumps.
5. The binary pump system of claim 4 wherein the first rotor has a first surface area and the second rotor has a second surface area, the first surface area and the second surface area being minimized to reduce frictional losses of the first vane pump and the second vane pump while each of the first pump and the second pump remain balanced to minimize side loads on the shaft.
6. The binary pump system of claim 1 wherein the first rotor has a first set of vanes and the second rotor has a second set of vanes, the first set of vanes being circumferentially offset form the second set of vanes to mitigate tonal noise emanating from the binary pump system.
7. The binary pump system of claim 1 wherein discharge ports of the first pump are circumferentially offset from the orientation of discharge ports of the second pump to mitigate pressure ripple disturbances.
8. The binary pump system of claim 1 wherein the first pressure is greater than the second pressure.
9. The binary pump system of claim 8 wherein the binary pump delivers the hydraulic fluid at the first pressure and the hydraulic fluid at the second pressure at a desired demand.
10. A hydraulic control system of a motor vehicle transmission comprising: a binary pump including a first pump and a second pump; a first pressure regulator valve that receives hydraulic fluid from the first pump or a combination of hydraulic fluid from the first pump and from the second pump, the first pressure regulator valve providing the hydraulic fluid from the first pump to a first portion of the transmission or the combination of hydraulic fluid from the first pump and the second pump to the first portion and to a second portion of the transmission; and a second pressure regulator valve that receives hydraulic fluid from the second pump and provides the hydraulic fluid from the second pump to the second portion of the transmission.
11. The hydraulic control system of claim 10 wherein the transmission is a continuously variable transmission (CVT).
12. The hydraulic control system of claim 11 wherein the hydraulic fluid from the first pump is at a first pressure and the hydraulic fluid from the second pump is at a second pressure, the first pressure being greater than the second pressure.
13. The hydraulic control system of claim 11 wherein the first portion includes pulleys of the CVT.
14. The hydraulic control system of claim 11 wherein the second portion includes a torque converter, clutches, gears and a final drive gear set of the CVT.
15. The hydraulic control system of claim 10 wherein the first pump is a vane pump.
16. The hydraulic control system of claim 10 wherein the second pump is a vane pump, the first pump having a first rotor with a first diameter and a first width and the second pump having a second rotor with a second diameter and a second width, the first width, the first diameter, the second width and the second diameter each being selectively chosen to optimize a hydraulic fluid budget for the transmission.
17. The hydraulic control system of claim 16 wherein the binary pump operates with a high speed fill limit that is near or greater than a maximum operating speed of the motor vehicle's internal combustion engine.
18. The hydraulic control system of claim 10 wherein the first pump is a vane pump and the second pump is a Gerotor pump.
19. The hydraulic control system of claim 10 wherein the transmission is an automatic transmission.
Description
DRAWINGS
(1) The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way. The components in the figures are not necessarily to scale, emphasis instead being placed upon illustrating the principles of the invention. Moreover, in the figures, like reference numerals designate corresponding parts throughout the views. In the drawings:
(2)
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DETAILED DESCRIPTION
(7) The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses.
(8) Referring now to the drawings, a flexible binary pump system embodying the principles of the present invention is illustrated in
(9) The high pressure pump 12 and the low pressure pump 14 are enclosed in a generally cylindrical housing 18 that can be formed of two parts 18a and 18b. The two parts 18a and 18b can be joined together by any suitable process, generally as a bolted assembly. In certain arrangements, the high pressure pump 12 and the low pressure pump 14 are spaced apart with a port plate such as plate 72. The flexible binary pump 10 further includes a priming spring 13 and O-rings 70, 76, 78 and 80. The priming spring 13 preloads the rotor sets 71 (
(10) Referring also to
(11) In some arrangements, the orientation of the discharge ports 64A and 64B of the high pressure pump 12 can be circumferentially offset about the axis 90 (
(12) In particular arrangements, the plate 72 can be the same diameter as the pumps 12 and 14 with the O-ring 70 omitted to provide a common inlet for the pumps 12 and 14.
(13) Referring now to
(14) Hydraulic fluid is discharged from the discharge ports 64A and 64B of the high pressure pump 12 which combine in the region 81 shown in
(15) Hydraulic fluid is discharged from the discharge ports 64A and 64B of the low pressure pump 14 to the region 83 shown in
(16) In some arrangements, both pumps 12 and 14 can at times both be operated at high pressure, for example, up to about 65 BAR, for periods of time when the transmission demands maximum high pressure flow, such as, for example, for making fast ratio changes on the belt and pulleys. In certain arrangements, the function of the pressure regulator valves 50 and 52 can be implemented in a single valve of suitable design.
(17) In particular arrangements, one or both of the inlet lines 26, 28 can be provided with a nozzle 100. Each nozzle 100 also receives hydraulic fluid from either or both pump bypass lines 27, 29. The nozzle 100 is especially useful for decreasing cavitation at high pump speeds. Consequently, the high speed fill limit can be increased above the typically maximum operating speed of an internal combustion engine. Additional details of the nozzle 100 can be found in U.S. Pat. No. 8,105,049, the entire contents of which are incorporated herein by reference.
(18) As shown in
(19) In various arrangements, one or any combination of the diameters D1 and D2 and the widths W1 and W2 can be varied to change pump displacement for each rotor to optimize the oil budget demand in the hydraulic control system while meeting packaging constraints. Note that with a traditional binary pump, the pump delivers high pressure hydraulic fluid at either 100% or 50% of flow (referred to as a 50/50 split) since both discharge ports 64A and 64B have the same projected area against the shaft 16. The arrangement shown in
(20) In some arrangements, the flexible binary pump 10 employs a single balanced vane pump for either the low pressure or high pressure pump and a Gerotor gear pump for the other pump, employed typically to supply low pressure hydraulic fluid for cooling and lubrication requirements of the transmission.
(21) The description of the invention is merely exemplary in nature and variations that do not depart from the gist of the invention are intended to be within the scope of the invention. Such variations are not to be regarded as a departure from the spirit and scope of the invention.