Variable displacement vane pump with improved pressure control and range
11635076 · 2023-04-25
Assignee
Inventors
- Dennis N. Koenig (Hartland, MI, US)
- Douglas G. Hunter (Rochester Hills, MI, US)
- Fuzheng Hu (Toronto, CA)
- Matthew J. Jannausch (Lake Orion, MI, US)
Cpc classification
F04C2/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/80
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C15/0034
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/226
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C2240/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F04C2/344
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04C14/22
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An arrangement of a variable capacity vane pump for an automobile is provided that includes a pump housing having an outlet and inlet. A pump control ring is provided having a cavity. The control ring is positioned within the housing to move about a pivot. A vane pump rotor is positioned within the cavity of the pump control ring. A position of the pump control ring determines an offset between a center of the pump control ring cavity and an axis of rotation of the vane pump rotor. Vanes are provided that are driven by the rotor and which engage an interior surface of the pump control ring. The vanes and the engaged surface defining working fluid chambers. A first control chamber is provided. The first control chamber is exposed to a first side of the pivot between the pump housing and the outer surface of the pump control ring. The first control chamber is operable to receive pressurized fluid to create a force to move the pump control ring to reduce a volumetric capacity of the pump. A second control chamber, positioned between the pump inlet and outlet is provided that provides a hydraulic force to increase the volumetric capacity of the pump.
Claims
1. An arrangement of a variable capacity vane pump for an automobile including a drivetrain in receipt of a fluid pressurized by the pump, the pump arrangement comprising: a pump housing having an outlet and inlet; a pump control ring including a cavity and positioned within the housing to move about a pivot; a vane pump rotor positioned within the cavity of the pump control ring, wherein a position of the pump control ring determines an offset between a center of the pump control ring cavity and an axis of rotation of the vane pump rotor; vanes being driven by the rotor and engaging an inner surface of the pump control ring that surrounds the cavity, the vanes and the pump control ring inner surface at least partially defining pumping fluid chambers; a first control chamber positioned on a first circumferential side of the pivot between the pump housing and an outer surface of the pump control ring, the outer surface of the pump control ring being positioned on an opposite side of the pump control ring as the pumping fluid chambers, the first control chamber being operable to receive pressurized fluid to create a force to move the pump control ring to reduce a volumetric capacity of the pump; a second control chamber positioned on a second circumferential side of the pivot between the pump housing and the pump control ring, the second control chamber being between the pump housing and the outer surface of the pump control ring, the second control chamber being operable to receive pressurized fluid to create a force to move the pump control ring to increase the volumetric capacity of the pump, and wherein the pump outlet juxtaposes a major portion of the second control chamber from the pivot; wherein the inlet is sealed from the second chamber by a pressurized seal; and a return spring biasing the pump control ring toward a position of maximum volumetric capacity, the return spring acting against the forces created by the pressurized fluid within the first control chamber, the return spring being exposed to the inlet and being in a position sealed from the first and second chambers.
2. The variable capacity vane pump arrangement of claim 1, wherein the outlet is sealed from the second chamber.
3. The variable capacity vane pump arrangement of claim 1, wherein the drivetrain includes an engine.
4. The variable capacity vane pump arrangement of claim 3, wherein the pump housing can mount a solenoid valve to selectively control the pressure within the first chamber as a function of the actual or desired lubricant pressure in the engine.
5. The variable capacity vane pump arrangement of claim 4, wherein the pump housing mounts a relief valve.
6. The variable capacity vane pump arrangement of claim 1, wherein the pivot includes a pin fixed to the housing, wherein a portion of the pump control ring includes a curved surface engaging a portion of the pin.
7. The variable capacity vane pump arrangement of claim 1 wherein the outlet juxtaposes an entirety of the second chamber from the pivot.
8. The variable capacity vane pump arrangement of claim 1, wherein the pivot forms a seal for one of the first and second control chambers.
9. The variable capacity vane pump arrangement of claim 1, wherein the vanes are slidably positioned within radially extending slots in the vane pump rotor.
10. The variable capacity vane pump arrangement of claim 1, wherein a radial arm defined by a line from the pivot to a seal separating the first chamber from an area of the pump exposed to the inlet is greater in length from a radial arm defined by a line from the pivot to a seal separating the second chamber from the area exposed to the inlet.
11. The variable capacity vane pump arrangement of claim 1 wherein the pivot is formed by a semicircular portion integrally formed on the pump control ring pivoting on a semicircular portion on the housing.
12. The variable capacity vane pump arrangement of claim 1, wherein the pump control ring includes an axial top and bottom reduced thickness area to facilitate fluid flow from the inlet to the pumping chambers.
13. The variable capacity vane pump arrangement of claim 12, wherein the axial top and bottom reduced thickness area extends to a section radially opposite the first chamber and past a radial arm defined by a line from the pivot to a seal separating the first chamber from an area of the pump exposed to the inlet.
14. The variable capacity vane pump arrangement of claim 1, wherein the pump control ring includes an axial top and bottom reduced thickness area to facilitate fluid flow from the pumping chambers to the outlet.
15. The variable capacity vane pump arrangement of claim 1, wherein the second control chamber has a restricted drain.
16. The variable capacity vane pump arrangement of claim 1, wherein the inlet is sealed from the first chamber by a pressurized seal.
17. The variable capacity vane pump arrangement of claim 1, wherein the inlet has approximately one half of its opening offset from a plane that the control ring pivots in.
18. An arrangement of a variable capacity vane pump for an automobile including a drivetrain in receipt of a fluid pressurized by the pump, the pump arrangement comprising: a pump housing having an outlet and inlet, the pump housing also mounting a solenoid valve and a check valve; a pump control ring including a cavity and positioned within the housing to move about a pivot in a first pivotal plane, the pump control ring includes a first axial top and bottom reduced thickness area to facilitate fluid flow from the pump housing inlet to an interior of the pump control ring, and wherein approximately one half of the inlet is offset from the first pivotal plane, the pump control ring includes a second axial top and bottom reduced thickness area to facilitate fluid flow from the interior of the pump control ring pump to the housing outlet; a vane pump rotor positioned within the cavity of the pump control ring, wherein a position of the pump control ring determines an offset between a center of the pump control ring cavity and an axis of rotation of the vane pump rotor; vanes being driven by the rotor and engaging an inner surface of the pump control ring that surrounds the cavity, the vanes and the inner surface at least partially defining pumping fluid chambers; a first control chamber positioned on a first circumferential side of the pivot between the pump housing and a first outer surface of the pump control ring, the first outer surface of the pump control ring being positioned on an opposite side of the pump control ring as the pumping fluid chambers, the first control chamber operable to receive pressurized fluid to create a force to move the pump control ring to reduce a volumetric capacity of the pump, the first control chamber is sealed from an area exposed to the inlet by a first pressurized seal between the first chamber and the inlet; a second control chamber between the pump housing and a second outer surface of the pump control ring, the second outer surface of the pump control ring being positioned on an opposite side of the pump control ring as the pumping fluid chambers, the second control chamber being operable to receive pressurized fluid to create a force to move the pump control ring to increase the volumetric capacity of the pump, and wherein the second control chamber is exposed to a drain by a restricted outlet, and wherein the second control chamber is juxtaposed between and sealed from the outlet and the inlet by a second pressurized seal and a third pressurized seal, and wherein the housing outlet juxtaposes a second circumferential side of the pivot and the second chamber; and a return spring biasing the pump control ring toward a position of maximum volumetric capacity, the return spring acting against the forces created by the pressurized fluid within the first control chamber, the return spring being exposed to the inlet and being in a position sealed from the first and second chambers and wherein a first radial arm defined by a line from the pivot to the first pressurized seal between the first chamber and the inlet is greater in length than a second radial arm defined by a line from the pivot to the second pressurized seal between the second chamber and the inlet and wherein at least 75% of the length of the spring is between projections of the first and second radial arms.
19. An arrangement of a variable capacity vane pump for an automobile including a drivetrain in receipt of a fluid pressurized by the pump, the pump arrangement comprising: a pump housing having an outlet and inlet, the pump housing also mounting a solenoid valve and a check valve; a pump control ring including a cavity and positioned within the housing to move about a pivot in a first pivotal plane, the pivot being formed by a semicircular portion integrally formed on the pump control ring pivoting on a semicircular portion on the housing, the pump control ring includes a first axial top and bottom reduced thickness area to facilitate fluid flow from the pump housing inlet to an interior of the pump control ring, and wherein approximately one half of the inlet is offset from the first pivotal plane, the pump control ring includes a second axial top and bottom reduced thickness area to facilitate fluid flow from the interior of the pump control ring pump to the housing outlet; a vane pump rotor positioned within the cavity of the pump control ring, wherein a position of the pump control ring determines an offset between a center of the pump control ring cavity and an axis of rotation of the vane pump rotor; vanes being driven by the rotor and engaging an inner surface of the pump control ring that surrounds the cavity, the vanes and the inner surface at least partially defining pumping fluid chambers; a first control chamber positioned on a first side of the pivot between the pump housing and a first outer surface of the pump control ring, the first outer surface of the pump control ring being positioned on an opposite side of the pump control ring as the pumping fluid chambers, the first control chamber operable to receive pressurized fluid to create a force to move the pump control ring to reduce a volumetric capacity of the pump, the first control chamber is sealed from an area exposed to the inlet by a first pressurized seal between the first chamber and the inlet; a second control chamber between the pump housing and a second outer surface of the pump control ring, the second outer surface of the pump control ring being positioned on an opposite side of the pump control ring as the pumping fluid chambers, the second control chamber being operable to receive pressurized fluid to create a force to move the pump control ring to increase the volumetric capacity of the pump, and wherein the second control chamber is exposed to a drain by a restricted outlet, and wherein the second control chamber is juxtaposed between and sealed from the outlet and the inlet by a second pressurized seal and a third pressurized seal, and wherein the housing outlet juxtaposes a second circumferential side of the pivot and the second chamber; and a return spring biasing the pump control ring toward a position of maximum volumetric capacity, the return spring acting against the forces created by the pressurized fluid within the first control chamber, the return spring being exposed to the inlet and being in a position sealed from the first and second chambers and wherein a radial arm defined by a line from the pivot to the first pressurized seal between the first chamber and the inlet is greater in length than a radial arm defined by a line from the pivot to the second pressurized seal between the second chamber and the inlet and wherein a line from the second pressurized seal separating the second control chamber from the inlet to the first pressurized seal separating the first control chamber from the inlet bisects the return spring.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention will become more fully understood from the detailed description and the accompanying drawings, wherein:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(9) The following description of the preferred embodiment(s) is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses.
(10) Referring to
(11) A pump control ring 24 is provided having a cavity 28. The control ring 24 is positioned within the housing 10 to move about a pivot 32. The pivot 32 includes a pin 36 fixed to the housing 10, wherein a portion of the pump control ring includes a curved surface 40 engaging a portion 90 of the pin 36. Shown best in
(12) The pump housing 10 has an internally formed fluid line 11 having a port end 13 for fluidly connecting with a main oil gallery (after the fuel filter) of an engine. The line 11 has a port end 15 for connecting to a valve supply and sensing port of the solenoid valve 17 that is mounted in the pump housing 10. The solenoid valve 17 can be a two level or fully variable solenoid valve.
(13) A vane pump rotor 44 is positioned within the cavity of the pump control ring 24. A position of the pump control ring 24 determines an offset between a center of the pump control ring cavity and an axis of rotation of the vane pump rotor 44. Vanes 5 are provided slidably mounted in mushroom shaped radially outward extending stem slots 41. Vanes 5 are driven by the rotor 44 and which engage an inner cylindrical surface 48 of the pump control ring that surrounds the cavity 28. An inner radial tip surface 27 of the vanes 5 make aligning contact with upper and lower vane rings 21 (only one shown). The vanes 5 and the engaged surface 48 at least partially defining pumping fluid chambers 52.
(14) A first control chamber 56 is provided. The first control chamber 56 is exposed to a first circumferential side 60 of the pivot 32 between the pump housing 10 and a first outer surface 64 of the pump control ring. The first outer surface of the pump control ring 64 is positioned on a radially outer side of the pump control ring as the pumping fluid chambers 52. The first control chamber 56 is operable to receive pressurized fluid to create a force to move the pump control ring to reduce a volumetric capacity of the pump 7. The pump housing 10 has internally formed line 23 having a port end 25 for fluidly connecting a control port of the solenoid valve 17 with the first control chamber 56. The pivot 32 acts as a seal at one end (a left end as shown in
(15) A second control chamber 68 is provided between the pump housing 10 and a second outer surface 72 of the pump control ring. The second outer surface 72 of the pump control ring 24 is positioned on a radially outward or opposite side of the pump control ring as the pumping fluid chambers 52. The second control chamber 68 is operable to receive pressurized fluid to create a force to move the pump control ring 24 to increase the volumetric capacity of the pump 7. The second control chamber 68 has a restricted drain 69. The second control chamber 68 receives fluid pressurized in the area of the pump outlet 14 that escapes through the horizontal (as shown in
(16) A major portion if not the entire of the second control chamber 68 is juxtaposed between and the housing outlet 14 and the inlet 20. The housing outlet 14 juxtaposes a second circumferential side 76 of the pivot 32 and a major portion if not the entire of second control chamber 68. A sealing member 87 can be utilized to seal the second control chamber 68 from the outlet 14. In an embodiment of the invention (not shown), a second control chamber extends to and is sealed by the pivot. Thus, the sealing member 87 is not required. The outlet then loops over the control ring and the second control chamber, however a major portion of the second control chamber is juxtaposed from the pivot by this “loop” outlet design.
(17) A return spring 82 is provided biasing the pump control ring 24 toward a position of maximum volumetric capacity. The return spring 82 acts against the forces created by the pressurized fluid within the first control chamber 56. The return spring 82 is exposed to the inlet port 26 (sometimes referred to as suction port) and is in a position sealed from the first and second chambers 56 and 68 by mechanically biased (sometimes referred to as spring biased) seals 88 and 92, respectively. A first radial arm 111 defined by a line from the pivot 32 to a sealing member 88 between the first control chamber 56 and the inlet port 26 is greater in length than a second radial arm 113 defined by a line from the pivot 32 to a sealing member 92 between the second chamber 68 and the inlet port 26 and wherein at least 75% of the length of the spring is between the first 111 and second radial arms 113. A third line 115 defined by a line from sealing member 92 to sealing member 88 bisects the spring 82.
(18) The control ring 24, on the top and bottom has reduced thickness area 93 to facilitate fluid from inlet port 26 entering the pumping chambers 52. The reduced thickness area 93 extends beyond the radial arm 111 to an area 95 that is opposite the first control chamber 56.
(19) Referring to
(20) In operation the pump 7 in
(21) The description of the invention is merely exemplary in nature and, thus, 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.