Claims
- 1. A piston pump driving mechanism for driving a piston of a piston pump, the mechanism being capable of altering a drive stroke length of the piston pump during dynamic operation of the piston pump and comprising:a connecting rod having an output end constructed and arranged to be connected to the piston, and a driven input end, the piston being driven along a first axis; a connecting rod driving mechanism that drives the input end of the connecting rod along a second axis, the second axis being at a set angle with respect to the first axis, the stroke length of the piston being determined by the set angle between the first and second axes; and a stroke length adjusting mechanism operatively connected to the connecting rod driving mechanism and arranged to change the set angle of the second axis along which the input end of the connecting rod is driven during driven movement of the input end of the connecting rod.
- 2. The piston pump driving mechanism of claim 1, wherein the connecting rod driving mechanism comprises:a housing; a driveshaft mounted to the housing for relative rotation therebetween about a third rotational axis, the driveshaft being constructed and arranged to be drivingly connected to a rotational power source; an inner eccentric having an outer cylindrical surface, the inner eccentric being rotationally fixed to the driveshaft such that a centerline of the outer cylindrical surface of the inner eccentric is offset from the third rotational axis; an outer eccentric having an outer cylindrical surface and an offset inner cylindrical hole, the inner hole of the outer eccentric being mounted over the outer cylindrical surface of the inner eccentric to permit relative rotation therebetween, the inner hole of the outer eccentric being concentric with the outer cylindrical surface of the inner eccentric, the input end of the connecting rod being connected to the outer cylindrical surface of the outer eccentric to permit relative rotation therebetween; and a gearing mechanism that rotates the outer eccentric at a same speed as the inner eccentric, but in an opposite direction.
- 3. The piston pump driving mechanism of claim 2, wherein an offset between the third axis and the centerline of the outer cylindrical surface of the inner eccentric is equal to an offset between the centerlines of the outer cylindrical surface of the outer eccentric and the inner cylindrical hole of the outer eccentric.
- 4. The piston pump driving mechanism of claim 2, wherein the gearing mechanism comprises:a drive gear rotationally fixed to the driveshaft; a pinion having a fourth rotational axis, the pinion meshing with and being rotationally driven by the drive gear, the fourth rotational axis forming a predetermined angle with the second axis about the third axis; a secondary drive gear mounted on the driveshaft to allow relative rotation therebetween about the third rotational axis, the secondary drive gear meshing with and being rotationally driven by the pinion; a stroke locator rotationally fixed to the secondary drive gear, the stroke locator having a radially-extending cam slot; and a cam follower fixed to the outer eccentric, a cam portion of the cam follower being fit into the cam slot such that the outer eccentric rotates in common with the stroke locator, while allowing relative radial movement therebetween.
- 5. The piston pump driving mechanism of claim 4, wherein the predetermined angle between the second and fourth axes is about 90 degrees.
- 6. The piston pump driving mechanism of claim 4, wherein the stroke length adjusting mechanism selectively rotates the fourth axis about the third axis selectively change the set angle of the second axis.
- 7. The piston pump driving mechanism of claim 6, wherein the stroke length adjusting mechanism comprises:a pinion arm bracket mounted to the driveshaft for relative rotation therebetween about the third axis, the pinion being mounted to the pinion arm bracket for relative rotation therebetween about the fourth axis; a first control gear mounted to the pinion arm bracket for common rotation about the third rotational axis; a rotational actuator mounted to the housing and having a second control gear that drives the first control gear such that actuation of the actuator determines the set angle of the second axis.
- 8. The piston pump driving mechanism of claim 7, wherein the first control gear drives the second control gear through at least one intermediate gear.
- 9. A liquid-fertilizer distribution system comprising:a fertilizer-pumping piston pump comprising a body portion having input and output ports, and a piston that is movable along a first axis; a liquid fertilizer supply communicating with the input port of the piston pump; and a piston pump driving mechanism comprising a connecting rod having an output end connected to the piston, and a driven input end, a connecting rod driving mechanism that drives the input end of the connecting rod along a second axis, the second axis being at a set angle with respect to the first axis, the stroke length of the piston being determined by the set angle between the first and second axes, and a stroke length adjusting mechanism operatively connected to the connecting rod driving mechanism and arranged to change the set angle of the second axis along which the input end of the connecting rod is driven during driven movement of the input end of the connecting rod.
- 10. A stroke length adjusting mechanism comprising:a connecting rod having an output end movable along a first line, and an input end movable along a second line; a driving mechanism that oscillates the input end over a predetermined distance along the second line; a stroke length adjusting mechanism that selectively determines a set angle formed between the first and second lines, the set angle determining a stroke length of the output end along the first line.
- 11. The stroke length adjusting mechanism of claim 10, wherein the driving mechanism comprises a mechanism that converts a rotational motion input into a linear oscillation output of the input end of the connecting rod along the second line.
- 12. A driving mechanism for converting rotational movement into linear oscillation, the driving mechanism comprising:a housing; a rotating driveshaft mounted to the housing for relative rotation therebetween about a first rotational axis, the driveshaft being constructed and arranged to be drivingly connected to a rotational power source; an inner eccentric having an outer cylindrical surface, the inner eccentric being rotationally fixed to the driveshaft such that a centerline of the outer cylindrical surface of the inner eccentric is offset from the first rotational axis; an outer eccentric having an outer cylindrical surface and an offset inner cylindrical hole, the inner hole of the outer eccentric being mounted over the outer cylindrical surface of the inner eccentric to permit relative rotation therebetween, the inner hole of the outer eccentric being concentric with the outer cylindrical surface of the inner eccentric; and a gearing mechanism that rotates the outer eccentric at a same speed as the inner eccentric, but in an opposite direction.
CROSS-REFERENCE
This application claims the benefit of priority to U.S. Provisional Patent Application No. 60/248,843, titled “VARIABLE RATE PUMP,” filed on Nov. 16, 2000, which is incorporated herein by reference.
US Referenced Citations (4)
Provisional Applications (1)
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Number |
Date |
Country |
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60/248843 |
Nov 2000 |
US |