The present application is a U.S. national stage of and claims priority to and the benefit of International Application No. PCT/US2009/045833, entitled “Hydraulic Crowd System for Electric Mining Shovel,” filed Jun. 1, 2009, which is incorporated herein by reference in its entirety.
This invention relates to mining shovels, and more particularly to hydraulic crowd control mechanisms for a mining shovel.
A typical mining shovel includes a turntable mounted on a crawler truck, and supporting an A-frame and a cab. A boom extending from the turntable has an upper end supported by the A-frame. The boom pivotally supports a dipper handle which pivots in a vertical plane. A dipper fixed to a distal end of the dipper handle is raised and lowered by a hoist cable which extends over a sheave at the top of the boom and down to a padlock on the dipper. The hoist cable provides for the vertical, raising and lowering, movement of the dipper. A crowd mechanism extends and retracts the dipper handle to provide the horizontal component, or crowd, of the dipper's movement.
To provide the crowd mechanism for extending and retracting the dipper handle, many different types of crowd mechanisms have been developed. Prior art systems include rack and pinion crowd mechanisms and rope crowd mechanisms. Rack and pinion systems include a rack fixed to the dipper handle that engages a rotatably driven pinion, or gear, mounted in the boom. Rope crowd mechanisms include metal ropes that are wound and unwound from a crowd drum to extend and retract the dipper handle. While these types of crowd control mechanisms are advantageous in certain respects, they also suffer from certain disadvantages. For example, the rack teeth and ropes are prone to break when excessive force is applied Furthermore, the handles in rack and pinion mechanism which must remain rotatably fixed, and therefore cannot be rotated.
Hydraulic crowd mechanisms, such as the mechanism disclosed in U.S. Pat. No. 3,425,574, are also known. These hydraulic systems typically utilize a large double-acting hydraulic actuator for extending and retracting the dipper handle. Hydraulic crowd mechanisms provide certain advantages over other types of systems because the hydraulic systems can use round tubular handles that are free to rotate. Further, they do not include rack teeth or ropes, which are prone to break when excessive force is applied While hydraulic mechanisms therefore provide certain advantages over other types of crowd controls, particularly with respect to maintenance, the volume of hydraulic fluid necessary to control the crowd of a mining shovel dipper handle requires complex large hoses, designed to carry a large volume of fluid, and at high pressures. Because of the high pressure application, these hoses are subject to significant wear, and requiring a significant degree of maintenance. Accordingly, a need exists for a hydraulic crowd mechanism which responds quickly to operator inputs, and which operates without a significant degree of maintenance.
In one aspect, the present invention provides a mining shovel comprising a crawler truck, a turntable, an A frame, and a hydraulic control unit coupled to the crawler truck. A boom extends form the turntable, having an upper end supported by the A-frame. A sheave is coupled to a distal upper end of the boom. A dipper handle including a dipper at a distal end is pivotally supported by the boom, to pivot the dipper in a vertical plane. A hoist cable is provided over the sheave at the top of the boom and connected to the dipper, for vertically raising and lowering the dipper. A crowd mechanism including a double acting hydraulic cylinder for extending and retracting the dipper handle horizontally is coupled to the boom. A hydraulic power unit is mounted to the turntable and includes a pump and a return tank with separate supply tank for hydraulic fluid. A cylinder control manifold is coupled to the double acting hydraulic cylinder in fluid communications with the pump and the return tank, the cylinder control manifold driving the double acting hydraulic cylinder to extend and retract the crowd mechanism, wherein the crowd pump manifold directs fluid flow in a single direction from the pump to the return tank wherein a supply conduit for providing a high pressure supply to the cylinder actuator is smaller than a return conduit providing a low pressure path to the return tank.
In another aspect of the invention, the cylinder manifold comprises a valve for regenerating hydraulic fluid from a rod end of the hydraulic cylinder during an extend operation for driving the double acting hydraulic cylinder horizontally away from the boom. The manifold comprises a valve for directing fluid from a cap end of the hydraulic cylinder to the return tank during a retract operation for driving the double acting hydraulic cylinder horizontally toward the boom.
In another aspect of the invention, the supply conduit is sized to provide a supply of high pressure fluid half of the size of the return conduit. In one particular embodiment, the supply conduit is sized to provide a supply of 500 gallons per minute, and the return conduit is sized to receive a return of 1000 gallons per minute.
In another aspect of the invention, the cylinder manifold comprises a cap end valve, a rod end valve, and a regenerate valve, and wherein the regenerate valve provides fluid flow to the cap end during an extend operation and to the return tank during a retract operation.
In still another aspect of the invention the pump is a fixed displacement pump driven by a variable speed motor. The pump can be one of a plurality of fixed displacement pumps, each of the plurality of fixed displacement pumps being connected to a pump manifold for combining the output of the pumps, and wherein the output of the pump manifold is directed to the cylinder control manifold.
In yet another aspect of the invention, a supply tank can be coupled to the pump, and the return tank can be elevated above the supply tank.
These and still other advantages of the invention will be apparent from the description which follows. In the detailed description below, the preferred embodiment of the invention will be described in reference to the accompanying drawings. This embodiment does not represent the full scope of the invention. Rather the invention may be employed in other embodiments. Reference should therefore be made to the claims herein for interpreting the breadth of the invention.
Referring to
The A-frame 16 supports a top end 22 of a boom 24, a bottom end 26 of the boom 24 being supported by the turntable 12. A dipper 28 is mounted on the front end 30 of a dipper handle 32 which is slidably supported in a saddle block 34 mounted in the boom 24. The saddle block includes a yoke 36 and a support frame 38 which projects rearwardly from the yoke 36 and encloses the back end of the dipper handle 32. The yoke 36 of the saddle block 34 is pivotally mounted in the boom 24, so as to pivot in a vertical plane. A hoist cable 40 extends upward from a powered hoist drum 42 on the turntable 12, over a sheave 44 at the top end 22 of the boom 24 and down to a padlock 46 on the dipper 28. The hoist cable 40 provides for the vertical, raising and lowering, movement of the dipper 28. A hydraulic crowd mechanism 48 (
Referring now to
In the embodiment disclosed herein, the cap end 58 and the cylinder 52 are fixed relative to the saddle block 34, and the ram 54 is fixed relative to the dipper handle 32. As a result, extension of the ram 54 from a retracted position in the hydraulic actuator 50 toward an extended position urges the dipper handle 32 from a retracted position to an extended position. Conversely, retraction of the ram 54 into the hydraulic actuator 50 from the extended position toward the retracted position urges the dipper handle 32 from the extended position toward the retracted position. Of course, the hydraulic actuator 50 can be fixed relative to the dipper handle 32, and the ram 54 can be fixed relative to the saddle block 34 without departing from the scope of the invention.
Referring now to
Referring still to
Referring still to
Referring now to
To extend the crowd control mechanism 48, the rod end counterbalance valve 134, and the crowd regeneration counterbalance valve 132 are energized, allowing fluid to flow from the pump manifold 112, through the crowd regeneration pilot-operated poppet valve 152, and to the cap end 58. As the hydraulic actuator 50 extends, oil flows from the rod end 60 toward the rod end pilot-operated counterbalance poppet valve 144. Pilot pressure travels along conduit 151 to the rod end counterbalance valve 144 and signals the corresponding counterbalance cartridge 133 to open. As the cartridge 133 opens, the oil from the top of the rod end poppet valve 154 is allowed to vent through the counterbalance cartridge 133 which allows the poppet in the poppet valve 154 to open. Oil then flows through the poppet valve 154 and joins the fluid flow from the pump manifold 112 to the crowd regeneration pilot-operated poppet valve 142 and into the cap end 58 of the hydraulic actuator 50. During the extend action, no oil is directed to the outlet 86 to the tank 68.
To retract the crowd control mechanism 48, the cap end retract counterbalance valve 131 solenoid is energized, and pressure from the pump manifold 112 opens the inlet poppet valve 135 allowing oil to flow to rod end 60 of the cylinder. As the hydraulic actuator 50 retracts, oil flows from the cap end 58 of the hydraulic actuator 50 and towards the cap end poppet valve 150. Pilot flow along conduit 153 signals the counterbalance cartridge 137 to open. As the cartridge 137 opens, the oil from the top of the cap end poppet valve 150 is allowed to vent through the counterbalance cartridge 137, which allows the poppet to open. Oil from the cap end 58 of the hydraulic actuator 50 flows through the cap end poppet valve 150 and back to the upper tank 68. Again, the counterbalance valves provide meter out control of the load.
To provide a hold function, all of the valve solenoids are de-energized, and the rod end counterbalance valve 132 is closed. Pressure at rod end 60 is allowed on top of all three poppet valves 150, 152, and 154, which holds them closed and prevents the hydraulic actuator 50 from extending.
During operation, therefore, oil is drawn from the pump manifold 112 and into the corresponding inlet 84 in the cylinder control manifold 64 during both the extend and retract operations. During the extend operation, the crowd regeneration pilot-operated poppet valve 144 regenerates oil and directs the oil to the cap end 58 of the cylinder. No oil returns to tank through the outlet 86. During the retract operation, oil continues to be drawn from the pump manifold 112, and is directed from the cap end pilot-operated poppet valve 140 and to tank. The regenerative flow path provided by the crowd regenerate pilot-operated poppet valve 140 assures that the extend speed of the cylinder is equal to the retract speed, and that push and pull forces are equal to each other, with a 2:1 cylinder to rod ratio.
Referring now to
Referring now to
A number of advantages, therefore, are provided by the present invention. The fixed displacement pumps with variable speed motor provide a simple variable output flow power unit, while avoiding the complexity and maintenance issues associated with variable displacement pumps and load sense servo controls for variable displacement. Further, when there is no speed demand, there is no power consumption, because the main drive motor and pumps are not turning.
The single direction flow path for the supply and return of plumbing provided by the directional control of the cylinder manifold 64, as discussed above, allows large diameter low pressure return hoses, and small diameter high pressure hoses, allowing commercially available high pressure hoses to be used. In the larger diameter return hose, flow velocity can be kept at a reasonably low magnitude, thereby improving the lifetime of the hose. The cylinder manifold 64 also provides meter out control for over-running loads, and a fail safe lock up and position holding of the cylinder.
Additionally, the dual tank system including a return tank in an elevated position provide a positive head pressure of oil to supply the pumps, which insures long pump service life by minimizing potential for cavitation at the input pumps.
Although specific embodiments have been shown and described, it will be apparent that a number of variations could be made within the scope of the invention. It should be understood therefore that the methods and apparatuses described above are only exemplary and do not limit the scope of the invention, and that various modifications could be made by those skilled in the art that would fall under the scope of the invention. To apprise the public of the scope of this invention, the following claims are made:
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2009/045833 | 6/1/2009 | WO | 00 | 11/18/2011 |
Publishing Document | Publishing Date | Country | Kind |
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WO2010/141007 | 12/9/2010 | WO | A |
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3222866 | Lehman | Dec 1965 | A |
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3425574 | Willgrubs et al. | Feb 1969 | A |
20130318955 | ZHANG et al. | Dec 2013 | A1 |
Number | Date | Country |
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1 044 851 | Oct 1966 | GB |
Entry |
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International Search Report and Written Opinion for International Application No. PCT/US2009/045833, mail date Jan. 7, 2010, 12 pages. |
Number | Date | Country | |
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20120076628 A1 | Mar 2012 | US |