Variable pre and de-compression control mechanism and method for hydraulic displacement pump
10968741 · 2021-04-06
Assignee
Inventors
- Andreas Tonnqvist (Askim, SE)
- Jonas Forssell (Torslanda, SE)
- Jan-Ove Palmberg (Linköping, SE)
- Liselott Ericson (Linköping, SE)
- Anders Hedebjörn (Gothenburg, SE)
Cpc classification
F01B3/0035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F01B3/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/2042
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/2035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F01B3/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A rotary displacement piston pump is disclosed having rotatable single or dual valve/port plate(s). The valve plate, being rotatable forward and/or rearward with respect to the rotation of the piston carrier, alters the phasing of the land area of the pumping action thereby altering the phasing of piston speed inasmuch as the land area can be moved to a position to accelerate the piston(s) in a pre or decompression phase. In this way, pump noise, from colliding pressure fronts within the respective high and low pressure plenums, can be “tuned” out of the pump by adjusting the phasing and position of the valve plate(s) and raising or lowering the pre and decompression pressure(s) as necessary. Pump volume can also be controlled by advancing or retarding the valve plate(s), either in or out of synch, so as to shorten intake/exhaust piston stroke and overlap fluid flow between respective intake/exhaust plenums.
Claims
1. A hydraulic pump, comprising: a rotating piston carrier, having first and second ends, including piston chambers therebetween, supported for rotation in an enclosed pump casing; a plurality of hollow pistons, inserted into respective pistons chambers, from each of the first and second ends, and carried for collective rotation within the pump casing via the piston carrier, the pistons being driven in pumping action via a pair of respective floating piston plates connected to each of the respective pistons opposing each of the first and second ends of the piston carrier; first and second valve plates having openings therethrough, for controlling flow of fluid to each of the plurality of pistons from an aligned respective first intake inlet and discharge outlet associated with the pump casing, the valve plates being suspended for incremental rotation in opposed end sections of the casing and opposed to the pistons, the valve plates including respective land areas, between the openings, wherein when one of the plurality of hollow pistons is passing the corresponding land area, the respective hollow piston is sealed, and fluid flow into and out of the hollow piston is momentarily stopped, the valve plates being configured to increment in rotation with respect to the rotation of the piston carrier in either a forward or rearward aspect, so as to alter the positional phase of the land area of the valve plate with respect to overall pump operation, wherein: the respective first and second valve plates are configured for independent control, enabling shortening and lengthening of the effective land area of valve plate operation and thereby create de and pre-compression of fluid within the piston chambers when compared to fixed position valve plate pump operation.
2. A hydraulic pump as in claim 1, wherein: the independent control of the respective valve plates in opposed directions enables incremental elimination of pump operational noise by reducing pressure differentials within respective piston chambers during pump operation.
3. A hydraulic pump as in claim 2, wherein: control of the respective valves plates uses a worm drive engaging a toothed perimeter of the respective valve plates.
4. A hydraulic pump as in claim 1, wherein: the independent control of the respective valve plates enables control of pump displacement by reducing the effective pumping stroke of the pistons.
5. A hydraulic pump as in claim 4, wherein: when either of the respective valve plates have been rotated forward or in reverse, with respect to pump rotation, beyond normal pumping operation, the respective intake and discharge become fluid connected, and pump displaced volume is reduced to zero.
6. A hydraulic pump as in claim 1, wherein: control of the respective valves plates uses a worm drive engaging a toothed perimeter of the respective valve plates.
7. A method of controlling noise in a hydraulic pump, the pump including a rotating piston carrier including piston chambers and hollow pistons fed through a pair of opposed incrementally rotatable valve plates positioned on either side of the rotating piston carrier, the method comprising the steps of: incrementing the respective valve plates in rotation in opposed directions, one with respect to the other, so as to shorten the effective land area of the valve plates; and, adjusting the incremented position of the valve plates to induce pre and decompression within the respective piston chambers during pump operation.
8. A method as in claim 7, wherein: the incrementing step is accomplished via a pair of worm drives engaging toothed perimeters of the respective valve plates.
9. A method of controlling pumping volume in a hydraulic pump, the pump including a rotating piston carrier including piston chambers and pistons fed through a pair of opposed valve plates positioned on either side of the rotating piston carrier, the method comprising the steps of: incrementing the respective valve plates in rotation in the same direction, one with respect to the other, so as to shorten the pumping stroke of the respective pistons; and, rotating the respective valve plates in opposed directions, when a desired pumping volume has been set in the first incrementing step, so as to reduce effective valve plate land area and corresponding fluid pre-compression during reduced volume operation.
10. A method as in claim 9, wherein: the incrementing step is accomplished via a pair of worm drives engaging toothed perimeters of the respective valve plates.
11. A method as in claim 9, wherein: when said valve plates are rotated in a forward or reverse direction with respect to pump rotation, to a position, wherein respective intake and discharge of the pump become fluid connected, displaced pump volume is reduced to zero.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing background and summary, as well as the following detailed description, will be better understood when read in conjunction with the appended drawings. For the purpose of illustrating the invention, there is shown in the drawings embodiments which are presently preferred. It should be understood, however, that the invention is not limited to the precise arrangements and instrumentalities shown. In the drawings:
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DESCRIPTION OF EMBODIMENTS
(14) The exemplary embodiment of the present invention will now be described with the reference to accompanying drawings. The following description of the preferred embodiment is merely exemplary in nature and is in no way intended to limit the invention, its application, or uses.
(15) For purposes of the following description, certain terminology is used in the following description for convenience only and is not limiting. The characterizations of various components and orientations described herein as being “front,” “back,” “vertical,” “horizontal,” “upright,” “right,” “left,” “side,” “top,” “bottom,” “above,” “below,” or the like designate directions in the drawings to which reference is made and are relative characterizations only based upon the particular position or orientation of a given component as illustrated. These terms shall not be regarded as limiting the invention. The words “downward” and “upward” refer to position in a vertical direction relative to a geometric center of the apparatus of the present invention and designated parts thereof. The terminology includes the words above specifically mentioned, derivatives thereof and words of similar import.
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(17) Each housing end element 15 includes an inlet 12 and an outlet 14, which can be reversed in function depending on the direction of rotation of the axle 20. The respective inlet/outlets are in fluid communication with plenum 25. The plenum 25 directs fluid from behind the valve plate from an inlet 12 to an outlet 14 and through valve plate 24. The fluid passes into and through the hollow pistons 28 into chamber(s) 19. When the volume of this chamber 19 expands via the pistons 28 respectively being pulled outward by action of floating piston plate 26 (biased by springs 21), a negative or vacuum pressure draws fluids from an intake 12/14 through the plenum 25 and valve plate 24 and into the chamber 19. In the same way, when the chamber 19 is reduced in volume by the respective pistons 28 being urged one toward the other toward the center of the chamber 19 by action of the floating piston plate 26 against the tilted valve plate 24, fluid is squeezed from chamber 19 through valve plate 24 and out through the plenum 25.
(18) The plenum 25, as noted, functions to pass fluids to and through the valve plate 24. The valve plate 24 has two arcuate passageways 29 around its perimeter. These passageways 29 and the land areas 27 therebetween, define and separate the low pressure and high pressure sides of the pump 10. As the chamber 19 volume expands, the pistons 28 and associated one of chambers 19 are fed through the low pressure side of plenum 25 as long as the piston(s) respectively align with the associated arcuate passageway 29 in valve plate 24. When the piston(s) 28 reaches top center of the valve plate 24, it has drawn in as much fluid as it can, and is then sealed momentarily against land area 27 of the valve plate 24. Once the piston 28 slides past the land area 27, the piston then begins a compression stroke and high pressure fluid exits the chamber(s) through an opposed arcuate passageway 29 associated with the high pressure side of the plenum 25. When the piston has fully compressed and squeezed fluid to the extent that it can out of chamber 19, having reached bottom center, it will again reach a land area 27 where it is sealed off momentarily from the high and low pressure sides, and then begin the cycle again as it travels along the intake side of plenum 25 again.
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(21) Pump volume control can be affected by rotating the respective valve plates 24 in synch forwardly or rearwardly. Where the respective valve plates 24 are both rotated in synch 90 degrees to the top and bottom center, the pumping action ceases inasmuch as the both low and high pressure sides of the plenum are open one to the other Likewise, if the valve plates are rotated too much out-of-phase, the effective land area is reduced to zero and cross flow from the high to low pressure plenums would occur.
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(24) Although certain presently preferred embodiments of the invention have been specifically described herein, it will be apparent to those skilled in the art to which the invention pertains that variations and modifications of the various embodiments shown and described herein may be made without departing from the spirit and scope of the invention. For example, the foregoing principles of an incrementable valve plate 24 can be applied to a displacement pump 10 using a single valve plate, and pistons fed from one only one side. The preferred embodiment shown includes a dual valve plate control.