De-aeration device for a hydraulically actuated variable valve actuation system
09782695 · 2017-10-10
Assignee
Inventors
Cpc classification
F15B21/044
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B01D19/0057
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A hydraulic fluid de-aeration device for a hydraulically actuated variable valve actuation system is provided. The device includes a de-aeration bridge having a first end and a second end. The device includes a conical de-aeration chamber having an outer wall and a generally vertical center axis. The second end of the de-aeration bridge is offset from the center axis of the de-aeration chamber such that hydraulic fluid flowing from the de-aeration bridge is directed towards the outer wall of the de-aeration chamber. The device includes a cover with a vent hole for air that is expelled from the hydraulic fluid. A passage connected to the de-aeration chamber supplies the hydraulic fluid to a hydraulic fluid gallery of the variable valve actuation system.
Claims
1. A hydraulic fluid de-aeration device for a hydraulically actuated variable valve actuation system, the device comprising: an inlet port; a first passage having a first and second end, the first end of the first passage is connected to the inlet port; a de-aeration bridge having a first and second end, and the first end of the de-aeration bridge is connected to the second end of the first passage; a conical de-aeration chamber having an outer wall, a generally vertical center axis, and a top and bottom portion, the top portion of the de-aeration chamber is connected to the second end of the de-aeration bridge, the second end of the de-aeration bridge is offset from the center axis of the de-aeration chamber such that hydraulic fluid flowing from the de-aeration bridge is directed towards the outer wall of the de-aeration chamber; a cover including a vent hole located on a top surface of the de-aeration chamber; a holding chamber including a top and a bottom portion is connected via the top portion of the holding chamber to the bottom portion of the de-aeration chamber; a second passage including a first end that is connected to the holding chamber, and a second end that supplies the hydraulic fluid to a hydraulic fluid gallery of the variable valve actuation system; and a gasket arranged between the cover and the top surface of the de-aeration chamber, the gasket including an opening that is aligned with the vent hole of the cover.
2. The hydraulic fluid de-aeration device of claim 1, wherein the inlet port includes a check valve.
3. The hydraulic fluid de-aeration device of claim 1, wherein the holding chamber is conical.
4. The hydraulic fluid de-aeration device of claim 1, wherein a cross-sectional area of the top portion of the de-aeration chamber is larger than a cross-sectional area of the bottom portion of the de-aeration chamber.
5. The hydraulic fluid de-aeration device of claim 1, wherein the inlet port is located on a bottom surface of the de-aeration device.
6. The hydraulic fluid de-aeration device of claim 1, wherein the vent hole of the cover includes a first end that is cylindrical, and a second end that is frustoconical and has an opening.
7. The hydraulic fluid de-aeration device of claim 1, further comprising a first fill chamber connected to the de-aeration chamber via an inlet.
8. The hydraulic fluid de-aeration device of claim 1, wherein a cross sectional area of the de-aeration bridge decreases between the first end and the second end.
9. A method for de-aerating hydraulic fluid for a hydraulically actuated variable valve actuation system, the method comprising: providing a de-aeration device for feeding the hydraulic fluid to the variable valve actuation system, the de-aeration device comprising: an inlet port; a first passage having a first and second end, the first end of the first passage is connected to the inlet port; a de-aeration bridge having a first and second end, and the first end of the de-aeration bridge is connected to the second end of the first passage; a conical de-aeration chamber having an outer wall, a generally vertical center axis, and a top and bottom portion, the top portion of the de-aeration chamber is connected to the second end of the de-aeration bridge, the second end of the de-aeration bridge is offset from the center axis of the de-aeration chamber such that hydraulic fluid flowing from the de-aeration bridge is directed towards the outer wall of the de-aeration chamber; a cover including a vent hole located on a top surface of the de-aeration chamber; a holding chamber including a top and a bottom portion is connected via the top portion of the holding chamber to the bottom portion of the de-aeration chamber; a second passage including a first end that is connected to the holding chamber, and a second end that supplies the hydraulic fluid to a hydraulic fluid gallery of the variable valve actuation system; and a gasket arranged between the cover and the top surface of the de-aeration chamber, the gasket including an opening that is aligned with the vent hole of the cover; supplying the hydraulic fluid to the inlet port of the de-aeration device such that the hydraulic fluid flows from the first passage to the de-aeration bridge, de-aerating the hydraulic fluid by providing an accelerated flow of the hydraulic fluid from the de-aeration bridge to the outer wall of the de-aeration chamber, such that hydraulic fluid with lower mass is forced to a center of the de-aeration chamber compared to hydraulic fluid with higher mass which is turned by the wall of the de-aeration chamber, expelling air from the hydraulic fluid radially inwardly towards the center axis of the de-aeration chamber, and axially upwards towards the vent hole of the cover, collecting de-aerated hydraulic fluid from the de-aeration chamber in the holding chamber, and supplying the de-aerated hydraulic fluid to the hydraulic fluid gallery of the variable valve actuation system via the second passage.
10. The hydraulic fluid de-aeration device of claim 1, wherein the opening of the gasket extends over a periphery of the de-aeration bridge.
11. A hydraulic fluid de-aeration device for a hydraulically actuated variable valve actuation system, the device comprising: an inlet port; a first passage having a first and second end, the first end of the first passage is connected to the inlet port; a de-aeration bridge having a first and second end, and the first end of the de-aeration bridge is connected to the second end of the first passage; a conical de-aeration chamber having an outer wall, a generally vertical center axis, and a top and bottom portion, the top portion of the de-aeration chamber is connected to the second end of the de-aeration bridge, the second end of the de-aeration bridge is offset from the center axis of the de-aeration chamber such that hydraulic fluid flowing from the de-aeration bridge is directed towards the outer wall of the de-aeration chamber; a cover including a vent hole located on a top surface of the de-aeration chamber; a holding chamber including a top and a bottom portion is connected via the top portion of the holding chamber to the bottom portion of the de-aeration chamber; a second passage including a first end that is connected to the holding chamber, and a second end that supplies the hydraulic fluid to a hydraulic fluid gallery of the variable valve actuation system; and a first fill chamber connected to the de-aeration chamber via an inlet.
12. The hydraulic fluid de-aeration device of claim 11, wherein the inlet port includes a check valve.
13. The hydraulic fluid de-aeration device of claim 11, further comprising a gasket arranged between the cover and the top surface of the de-aeration chamber, the gasket including an opening that is aligned with the vent hole of the cover.
14. The hydraulic fluid de-aeration device of claim 11, wherein the holding chamber is conical.
15. The hydraulic fluid de-aeration device of claim 11, wherein a cross-sectional area of the top portion of the de-aeration chamber is larger than a cross-sectional area of the bottom portion of the de-aeration chamber.
16. The hydraulic fluid de-aeration device of claim 11, wherein the inlet port is located on a bottom surface of the de-aeration device.
17. The hydraulic fluid de-aeration device of claim 11, wherein the vent hole of the cover includes a first end that is cylindrical, and a second end that is frustoconical and has an opening.
18. The hydraulic fluid de-aeration device of claim 11, wherein a cross sectional area of the de-aeration bridge decreases between the first end and the second end.
19. The hydraulic fluid de-aeration device of claim 13, wherein the opening of the gasket extends over a periphery of the de-aeration bridge.
20. The hydraulic fluid de-aeration device of claim 11, wherein the outer wall of the de-aeration chamber includes the inlet to the first fill chamber.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing Summary as well as the following Detailed Description will be best understood when read in conjunction with the appended drawings. In the drawings:
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(10) Certain terminology is used in the following description for convenience only and is not limiting. The words “inner,” “outer,” “inwardly,” and “outwardly” refer to directions towards and away from the parts referenced in the drawings. A reference to a list of items that are cited as “at least one of a, b, or c” (where a, b, and c represent the items being listed) means any single one of the items a, b, c or combinations thereof. The terminology includes the words specifically noted above, derivates thereof, and words of similar import.
(11) As shown in
(12) The hydraulic fluid travels from the de-aeration bridge 12 to the de-aeration chamber 18, and the hydraulic fluid is forced against the outer wall 20 of the de-aeration chamber 18. Due to a mass differential and centrifugal forces acting on the hydraulic fluid, air is separated in a transition region at an intersection of the de-aeration bridge 12 and de-aeration chamber 18 and is forced toward a center of the de-aeration chamber 18, while the hydraulic fluid is forced radially outwardly. As a result, air is expelled from the hydraulic fluid due to inertia and momentum effects experienced by the hydraulic fluid transitioning from the de-aeration bridge 12 to the de-aeration chamber 18 and rotating around the outer wall 20 of the de-aeration chamber 18. Air is displaced radially inwardly due to inertia and momentum of the hydraulic fluid, and is also forced axially upwardly due to buoyancy.
(13) A cover 26 including a vent hole 28 is located on a top surface 30 of the de-aeration chamber 18. As shown in
(14) As shown in
(15) A second passage 38 includes a first end 40 connected to the holding chamber 32, and a second end 42 that supplies the de-aerated hydraulic fluid to a hydraulic fluid gallery 44 of the variable valve actuation system 100. The hydraulic fluid exiting the hydraulic fluid gallery 44 has lower air content is more suitable for use in the hydraulically actuated variable valve actuation system 100.
(16) A method of de-aerating hydraulic fluid for a hydraulically actuated variable valve actuation system 100 is also provided. The method includes providing hydraulic fluid to the de-aeration device 1 described above. The hydraulic fluid is supplied to the inlet port 2 of the de-aeration device 1 such that the hydraulic fluid flows from the first passage 6 to the de-aeration bridge 12. The hydraulic fluid is de-aerated by providing an accelerated flow of the hydraulic fluid from the de-aeration bridge 12 to the outer wall 20 of the de-aeration chamber 18, such that hydraulic fluid with lower mass (i.e., with entrained or trapped air) is forced to the center of the conical chamber compared to hydraulic fluid with higher mass which is turned by the wall of the de-aeration chamber. Air is expelled from the hydraulic fluid radially inwardly towards the center axis (X) of the de-aeration chamber 18, and axially upwards towards the vent hole 28 of the cover 26. De-aerated hydraulic fluid from the de-aeration chamber 18 is collected in the holding chamber 32, and the de-aerated hydraulic fluid is supplied to the hydraulic fluid gallery 44 of the variable valve actuation system 100 via the second passage 38.
(17) Referring now to
(18) Referring now to
(19) Having thus described various embodiments of the present de-aeration device in detail, it is to be appreciated and will be apparent to those skilled in the art that many changes, only a few of which are exemplified in the detailed description above, could be made in the device without altering the inventive concepts and principles embodied therein. The present embodiments are therefore to be considered in all respects as illustrative and not restrictive, the scope of the invention being indicated by the appended claims rather than by the foregoing description, and all changes which come within the meaning and range of equivalency of the claims are therefore to be embraced therein.
Log To Reference Numbers
(20) 1, 1′. De-aeration device
(21) 1A. Bottom surface of de-aeration device
(22) 2. Inlet port
(23) 4. Check valve
(24) 6. First passage
(25) 8. First end of first passage
(26) 10. Second end of first passage
(27) 12. De-aeration bridge
(28) 14. First end of de-aeration bridge
(29) 16. Second end of de-aeration bridge
(30) 18, 18′. De-aeration chamber
(31) 20, 20′. Outer wall of de-aeration chamber
(32) 22. Top portion of de-aeration chamber
(33) 24. Bottom portion of de-aeration chamber
(34) 26, 26′, 26″. Cover
(35) 28, 28′, 28″. Vent hole
(36) 28A. First end of vent hole
(37) 28B. Second end of vent hole
(38) 29. Opening of second end of vent hole
(39) 30. Top surface of de-aeration chamber
(40) 32. Holding chamber
(41) 34. Top portion of holding chamber
(42) 36. Bottom portion of holding chamber
(43) 38. Second passage
(44) 40. First end of second passage
(45) 42. Second end of second passage
(46) 44. Hydraulic fluid gallery
(47) 46, 46′, 46″. Gasket
(48) 48, 48′, 48″. Opening of gasket
(49) 49. Second opening
(50) 50. First fill chamber
(51) 52. Inlet of first fill chamber
(52) 100. Hydraulically actuated variable valve actuation system
(53) 104. First fill check valve
(54) 128, 128′. First fill hole
(55) 128a. First portion of first fill hole
(56) 128b. Second portion of fill hole