Claims
- 1. A material handling apparatus comprising:
- a hydraulic pump;
- a hydraulic motor;
- an electrical generator including a rotatable armature operatively connected to be rotatably driven by the motor; and,
- a hydraulic manifold for communicating pressurized hydraulic fluid from the pump to the motor to rotate the armature of the generator, said manifold comprising:
- an inlet for connection to an outlet of a hydraulic pump to receive a flow of hydraulic fluid from the pump,
- a pressure compensated flow control valve assembly downstream relative to said inlet and including: (i) a flow control valve; and, (ii) a pressure compensator for maintaining a select hydraulic pressure drop from an upstream side of the flow control valve to a downstream side of the flow control valve, and,
- an outlet port connecting said pressure compensated flow control valve assembly to the hydraulic motor.
- 2. The apparatus as set forth in claim 1, further comprising a pressure relief valve assembly selectively set to divert all fluid flow entering said manifold from said pump to a reservoir.
- 3. The apparatus as set forth in claim 1, further comprising:
- a second flow control valve having an inlet positioned between said output port and said pressure compensated flow control valve assembly for bleeding a select amount of hydraulic fluid from said manifold downstream relative to said pressure compensated flow control valve assembly.
- 4. The apparatus as set forth in claim 1, further comprising:
- an anti-cavitation valve having an inlet in fluid communication with a fluid return port of the motor and having an outlet in fluid communication with said outlet port.
- 5. The apparatus as set forth in claim 1 further comprising:
- a surge suppression valve having an inlet in fluid communication with the manifold inlet upstream relative to said pressure compensated flow control valve assembly for selectively diverting a portion of the flow of hydraulic fluid received from the pump away from the pressure compensated flow control valve assembly.
- 6. A method of controlling a flow of hydraulic fluid from a pump to a motor to drive said motor at an essentially constant speed, said method comprising:
- (a) fluidically connecting said pump to said motor through a hydraulic circuit;
- (b) passing a flow of pressurized hydraulic fluid from said pump into said circuit;
- (c) for a select duration, opening a surge suppression valve in said circuit to divide said flow of fluid from said pump into first and second flows and diverting one of said first and second flows to an outlet of said circuit;
- (d) communicating the other of the first and second flows to a pressure compensated flow control valve assembly which outputs a select essentially constant flow of hydraulic fluid;
- (e) communicating hydraulic fluid output by the pressure compensated flow control valve to the motor to drive the motor; and,
- (f) after the select duration, closing the surge suppression valve so that at least substantially all of the flow of pressurized hydraulic fluid from said pump is communicated to the motor through the pressure compensated flow control valve assembly.
- 7. The method as set forth in claim 6, further comprising:
- bleeding a select portion of hydraulic fluid output by the pressure compensated flow control valve from the circuit upstream relative to the motor to facilitate balancing of the pressure compensated flow control valve.
- 8. The method as set forth in claim 6 wherein step (d) comprises:
- unventing a relief valve fluidically connected between an upstream side of said pressure compensated flow control valve assembly and a downstream side of said motor so that said unvented relief valve blocks a bypass passage around the motor for the other of the first and second flows of hydraulic fluid so that the other of the first and second flows is delivered to the motor.
- 9. A method of selectively supplying electrical power to a lifting magnet of a materials handling machine, said method comprising:
- (a) connecting the lifting magnet to a voltage output of a generator;
- (b) using an internal combustion engine to drive a hydraulic pump so that the hydraulic pump outputs a flow of hydraulic fluid;
- (c) selectively passing the flow of hydraulic fluid from the hydraulic pump through a pressure compensated flow control valve assembly to provide an essentially constant flow of hydraulic fluid at an output of the pressure compensated flow control valve assembly;
- (d) fluidically connecting a hydraulic motor to the output of the pressure compensated flow control valve assembly so that the hydraulic motor is driven by the essentially constant flow of hydraulic fluid at an essentially constant speed; and,
- (e) driving an armature of the generator with the hydraulic motor so that an electrical voltage is established at the output of the generator.
- 10. The method as set forth in claim 9 wherein step (c) comprises:
- (c-1) communicating the flow of hydraulic fluid from the pump through an open on/off valve assembly connecting an upstream side of the pressure compensated flow control valve assembly with a downstream side of the motor so that the flow of hydraulic fluid from the pump bypasses the pressure compensated flow control valve assembly and the motor;
- (c-2) selectively closing the on/off valve assembly so that the flow of hydraulic fluid from the pump is delivered to the flow control valve assembly and the motor.
- 11. The method as set forth in claim 10 wherein step c) further comprises, prior to step (c-2):
- for a select duration, opening a surge suppression valve having an inlet in fluid communication with an upstream side of the on/off valve assembly and an outlet in fluid communication with a downstream side of the motor so that a portion of the flow of pressurized hydraulic fluid from the pump bypasses the pressure compensated flow control valve assembly during said select duration, wherein said on/off valve assembly is closed in step (c-2) while said surge suppression valve is open so that less than 100% of the flow of hydraulic fluid from the pump is communicated to the pressure compensated flow control valve assembly during a start-up period of said motor.
- 12. The method as set forth in claim 11 wherein said surge suppression valve is opened for a duration in the range of approximately 2-10 seconds.
- 13. The method as set forth in claim 9, wherein step (d) comprises:
- diverting a portion of the output flow of the pressure compensated flow control valve assembly to a location downstream relative to said motor so that said motor is driven by less than 100% of the output flow of the pressure compensated flow control valve assembly.
- 14. A materials handling apparatus comprising:
- a hydraulic pump having an input fluidically connected to a reservoir of hydraulic fluid;
- means for driving said hydraulic pump so that said hydraulic pump inputs hydraulic fluid from the reservoir and outputs a variable flow of hydraulic fluid;
- flow control means for receiving the variable flow of hydraulic fluid from the pump and outputting an essentially constant flow of hydraulic fluid;
- a hydraulic motor having an input connected to the flow control means so that the motor is driven by the essentially constant flow of hydraulic fluid; and,
- a generator including an armature rotatably driven by said motor.
- 15. The materials handling apparatus as set forth in claim 14 further comprising:
- means for preventing a surge of hydraulic fluid from the pump to the flow control means, said surge preventing means selectively operable during an initial start-up period of said hydraulic motor.
CROSS REFERENCE TO RELATED APPLICATION
This application is a continuation in-part of U.S. application Ser. No. 08/813,563, filed on Mar. 7, 1997, entitled "Method and Apparatus for Controlling a Lifting Magnet of a Materials Handling Machine."
The disclosure of commonly owned U.S. application Ser. No. 09/127,267, entitled "Method and Apparatus for Controlling a Lifting Magnet of a Materials Handling Machine," filed Jul. 31, 1998, in the name of Clutter, et al. is expressly incorporated by reference herein.
US Referenced Citations (7)
Continuation in Parts (1)
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Number |
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813563 |
Mar 1997 |
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