The present disclosure relates to flow control in a hydraulic circuit.
A hydraulic circuit may be configured to store hydraulic energy for later use. For example, a hydraulic circuit may have one or more accumulators that can store hydraulic energy and subsequently release such hydraulic energy for use in conjunction with one or more functions.
According to the present disclosure, there is provided a hydraulic circuit capable of hydraulic energy storage and subsequent release. The hydraulic circuit comprises a hydraulic cylinder, an accumulator, and a bi-directional variable displacement hydraulic pump. The hydraulic cylinder has head and rod sides. The pump is positioned fluidly between the head side and both of the rod side and the accumulator to manage flow therebetween. The pump is particularly useful for managing such flow “valvelessly,” i.e., without any directional control valve in the hydraulic circuit for managing flow between the head side and both the rod side and the accumulator, thereby avoiding losses typically associated with such valves.
Exemplarily, the pump comprises a piston unit rotatable about a piston unit axis, a swashplate associated with the piston unit and movable about a displacement axis to vary displacement of the pump, and a flow distributor. The flow distributor is configured to control the timing of distribution of flow between a piston of the piston unit (e.g., each piston) and the head side, the rod side, and the accumulator during rotation of the piston unit about the piston unit axis, achieving a torque balance on the swashplate about the displacement axis.
In an example of the flow distributor, the flow distributor has a distributor head port, at least one distributor rod port, and a distributor accumulator port. The distributor head port is fluidly connected to the piston unit and the head side for fluid communication therebetween. The at least one distributor rod port is fluidly connected to the piston unit and the rod side for fluid communication therebetween. Illustratively, the at least one rod port comprises first and second distributor rod ports so fluidly connected. The distributor accumulator port is fluidly connected to the piston unit and the accumulator for fluid communication therebetween.
The flow distributor may be configured as a plate formed to include the distributor head port, the first and second distributor rod ports, and the distributor accumulator port. Exemplarily, the distributor head port is a generally semi-circular arcuate slot formed in the plate, each of the first and second distributor rod ports and the distributor accumulator port is an arcuate slot formed in the plate, and the first and second distributor rod ports and the distributor accumulator port cooperate to define a generally semi-circular shape.
In an exemplary implementation, the hydraulic circuit may be used on a work machine which has a boom. In such a case, the hydraulic cylinder may be attached to the boom for actuation of the boom. It is believed that the hydraulic circuit may be useful in a wide variety of other applications.
The above and other features will become apparent from the following description and the attached drawings.
The detailed description of the drawings refers to the accompanying figures in which:
Referring to
Referring to
Referring to
To satisfy flow continuity between the head and rod sides 12a, 12b, an area ratio defined between the head side 12a and the rod side 12b is substantially equal to an area ratio between the distributor head port 30 and the first and second distributor rod ports 32a, 32b. This area ratio may be selected so as to be suitable for the particular application. Exemplarily, the area ratio may be about 1.5:1.0 such as for a four-wheel drive loader application in which the cylinder 12 is provided for actuation of a boom thereof (
To promote the torque balance of pressures on the swashplate 22, the flow area of the distributor head port 30 is substantially equal to the cumulative flow area of the distributor accumulator port 34 and the distributor rod ports 32a, 32b. Further, the distributor head port 30 has substantially equal flow areas on opposite sides of the displacement axis 24. Likewise, the distributor accumulator port 34 has substantially equal flow areas on opposite sides of the displacement axis 24. In addition, the first distributor rod port 32a and the second distributor rod port 32b are of substantially equal flow area and are positioned on opposite sides of the displacement axis 24. The first and second distributor rod ports 32a, 32b are also positioned on opposite sides of the distributor accumulator port 34. The ports 30, 32a, 32b, and 34 thus define a symmetric arrangement about the displacement axis 24, providing the torque balance on the swashplate 22.
Regarding the port shapes, each of the distributor head port 30, the first and second distributor rod ports 32a, 32b, and the distributor accumulator port 34 is an arcuate slot. The arcuate slots cooperate to define a generally circular shape that matches the circular path followed by the pistons upon rotation of the piston unit 18 about the piston unit axis 20. The distributor head port 30 is large enough so as to be generally semi-circular. Together, the first and second distributor rod ports 32a, 32b and the distributor accumulator port 34 cooperate to define a generally semi-circular shape.
The flow distributor 26 may be configured as a plate. The arcuate slots of the ports 30, 32a, 32b, and 34 may be formed in the plate as a hole therethrough.
Referring to
The housing 36 further comprises internal passageways interconnecting the distributor and housing ports. In particular, a head passageway 44 interconnects the distributor head port 30 and the housing head port 38. First and second rod passageways 46a, 46b leading from the rod distributor ports 32a, 32b, respectively, join at a junction 48 to form a combined rod passageway 46c leading to the housing rod port 40. An accumulator passageway 50 interconnects the distributor accumulator port 34 and the housing accumulator port 42.
Referring to
While the disclosure has been illustrated and described in detail in the drawings and foregoing description, such illustration and description is to be considered as exemplary and not restrictive in character, it being understood that illustrative embodiments have been shown and described and that all changes and modifications that come within the spirit of the disclosure are desired to be protected. It will be noted that alternative embodiments of the present disclosure may not include all of the features described yet still benefit from at least some of the advantages of such features. Those of ordinary skill in the art may readily devise their own implementations that incorporate one or more of the features of the present disclosure and fall within the spirit and scope of the present invention as defined by the appended claims.
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Entry |
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Stewart et al, Fluid Power, Third Edition [1980) pp. 433-439. |
Number | Date | Country | |
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20080223028 A1 | Sep 2008 | US |