The present invention relates generally to hydraulic systems. It relates more particularly to open center hydraulic systems.
Many work vehicles have elongate members or linkages that are controlled by hydraulic actuators. When the hydraulic actuators are filled with fluid, typically under the control of hydraulic spool valves, the members move with respect to the work vehicle.
One way to increase the craning and breakout specifications on the work vehicle, such as a loader-backhoe, would be to increase the operating pressure of the hydraulic system. However, increasing the operating pressure poses a number of problems. First, the vehicle structure may not be able to withstand dynamic loads that may be encountered during operation at an increased hydraulic pressure and full operating speed. Second, maintaining an increased operating pressure would require increased power requirements if the flow of hydraulic fluid remains constant. In each instance, an increase in weight and power results in increased cost of the vehicle.
What is needed is a hydraulic system having a “boost” mode that provides additional lifting or breakout forces by virtue of selectively increased hydraulic pressure, i.e., selected as needed by the vehicle operator, with the system simultaneously operating at a reduced flow rate of hydraulic fluid. The reduced flow rate of hydraulic fluid would result in slower movement of the vehicle components, similarly reducing the dynamic loads and also reducing the power requirements associated with operation of the vehicle.
The present invention relates to an open center hydraulic system including a variable displacement pump having an inlet, an outlet and a sensing port, the pump configured to provide reduced fluid flow in response to a predetermined fluid pressure differential between the outlet and the sensing port. A first fluid circuit and a second fluid circuit are in selective fluid communication with the pump. A first controlled pressure reduction device is in fluid communication with the pump outlet and each of the first fluid circuit and the second fluid circuit. A flow regulating device is in fluid communication with the sensing port in each of the first fluid circuit and the second fluid circuit. The first fluid circuit includes a second controlled pressure reduction device and a first maximum pressure limiting device. The second controlled pressure reduction device and the first maximum pressure limiting device are in fluid communication with the pump sensing port during operation of the first fluid circuit. The first maximum pressure limiting device is configured to permit up to a first predetermined fluid pressure value between the pump sensing port downstream of the second controlled pressure reduction device and the first fluid circuit during operation of the first fluid circuit. The second fluid circuit includes a third controlled pressure reduction device, a fourth controlled pressure reduction device and a second maximum pressure limiting device. The third controlled pressure reduction device, the fourth controlled pressure reduction device and the second maximum pressure limiting device are in fluid communication with the pump sensing port during operation of the second fluid circuit. The second maximum pressure limiting device is configured to permit up to a second predetermined fluid pressure value downstream of the fourth controlled pressure reduction device between the pump sensing port and the second fluid circuit during operation of the second fluid circuit. The first controlled fluid pressure reduction device is configured to introduce a first induced fluid pressure reduction between the pump outlet and the first fluid circuit during operation of the first fluid circuit. The first controlled pressure reduction device is configured to introduce a first induced fluid pressure reduction between the pump outlet and the second fluid circuit during operation of the second fluid circuit. The fourth controlled pressure reduction device is configured to introduce a second induced fluid pressure reduction in the second fluid circuit during operation of the second fluid circuit. During operation of the second fluid circuit, reduced fluid flow from the pump outlet is achieved as a result of the sum of the first induced fluid pressure reduction of the first controlled pressure reduction device and the second induced fluid pressure reduction of the fourth controlled pressure reduction device approaching the predetermined pump fluid pressure differential.
The present invention further relates to an open center hydraulic system including a variable displacement pump having an inlet, an outlet and a sensing port, the pump configured to provide reduced fluid flow in response to a predetermined fluid pressure differential between the outlet and the sensing port. A first fluid circuit and a second fluid circuit are in selective fluid communication with the pump. A flow regulating device is in fluid communication with the sensing port in each of the first fluid circuit and the second fluid circuit. A solenoid valve selectively switches between the first fluid circuit and the second fluid circuit. A first controlled pressure reduction device is in fluid communication with the pump outlet and each of the first fluid circuit and the second fluid circuit. The first fluid circuit includes a second controlled pressure reduction device and a first maximum pressure limiting device. The second controlled pressure reduction device and the first maximum pressure limiting device are in fluid communication with the pump sensing port during operation of the first fluid circuit. The first maximum pressure limiting device is configured to permit up to a first predetermined fluid pressure value between the pump sensing port downstream of the second controlled pressure reduction device and the first fluid circuit during operation of the first fluid circuit. The second fluid circuit includes a third controlled pressure reduction device, a fourth controlled pressure reduction device and a second maximum pressure limiting device. The third controlled pressure reduction device, the fourth controlled pressure reduction device and the second maximum pressure limiting device are in fluid communication with the pump sensing port during operation of the second fluid circuit. The second maximum pressure limiting device is configured to permit up to a second predetermined fluid pressure value downstream of the fourth controlled pressure reduction device between the pump sensing port and the second fluid circuit during operation of the second fluid circuit. The first controlled fluid pressure reduction device is configured to introduce a first induced fluid pressure reduction between the pump outlet and the first fluid circuit during operation of the first fluid circuit. The first controlled pressure reduction device is configured to introduce a first induced fluid pressure reduction between the pump outlet and the second fluid circuit during operation of the second fluid circuit. The fourth controlled pressure reduction device is configured to introduce a second induced fluid pressure reduction in the second fluid circuit during operation of the second fluid circuit. During operation of the second fluid circuit, reduced fluid flow from the pump outlet is achieved as a result of the sum of the first induced fluid pressure reduction of the first controlled pressure reduction device and the second induced fluid pressure reduction of the fourth controlled pressure reduction device approaching the predetermined pump fluid pressure differential.
Other features and advantages of the present invention will be apparent from the following more detailed description of the preferred embodiment, taken in conjunction with the accompanying drawings which illustrate, by way of example, the principles of the invention.
Wherever possible, the same reference numbers will be used throughout the drawings to refer to the same or like parts.
Variable displacement pump 12 includes a sensing port 18 that is in selectable fluid communication with either of fluid circuits 20, 22. As shown in
As further shown in
First MPLD 28 is configured to permit up to a first predetermined fluid pressure value, shown as 205 Bar (2973 psi) downstream of orifice 24 and fluid circuit 20, for example, downstream of line juncture 48, during operation of fluid circuit 20. In other words, first MPLD 28, which may be a relief valve of fixed or variable pressure value, places an upper limit on the fluid pressure in fluid circuit 20 (205 Bar (2973 psi)), but permits reduced fluid pressure levels in fluid circuit 20, each of which is provided to sensing port 18 of variable displacement pump 12. For a variable displacement pump 12 having a predetermined fluid pressure differential (ΔP) or margin of 20 Bar (290 psi), as shown by equation [0001]:
P16−P8=ΔP [0001]
where P18 represents the fluid pressure from fluid circuit 20 at sensing port 18 and P16 represents the fluid pressure produced at outlet 16 of variable displacement pump 12. Therefore, it can be calculated that P16 is (225 Bar (3255 psi) at its maximum fluid pressure value.
In contrast, as schematically shown in
As further shown in
Second MPLD 38 is configured to permit up to a second predetermined fluid pressure value, shown as 245 Bar (3553 psi) downstream of orifice 34 and fluid circuit 22, for example downstream of line juncture 48, during operation of fluid circuit 22. In other words, second MPLD 38, which may be a relief valve of fixed or of variable pressure value, places an upper limit on the fluid pressure in fluid circuit 22 (245 Bar (3553 psi)), but permits reduced fluid pressure levels in fluid circuit 22, each of which is provided to sensing port 18 of variable displacement pump 12. For a variable displacement pump 12 having a predetermined fluid pressure differential (ΔP) or margin of 20 Bar (290 psi), as previously shown by equation [0002]:
P16−P18=ΔP [0002]
where P18 represents the fluid pressure from fluid circuit 22 at sensing port 18 and P16 represents the fluid pressure produced at outlet 16 of variable displacement pump 12. Therefore, it can be calculated that P16 is 265 Bar (3844 psi) at its maximum fluid pressure value.
It is to be understood that by employing components having different or adjustable fluid pressure reductions, different combinations of maximum pump flow and maximum pump output pressures may be achieved.
While the invention has been described with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims.
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Number | Date | Country | |
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20110030363 A1 | Feb 2011 | US |