Pump control system and method
09938966 ยท 2018-04-10
Assignee
Inventors
- David Mark Heathcoat, Jr. (Greeneville, TN, US)
- Jason Lee Emmette (Greeneville, TN, US)
- Roger Paul Gray (Greeneville, TN, US)
- Somer Renee Malone (Chuckey, TN, US)
- Kirk Ayres Lola (Rutherfordton, NC, US)
- Kerry Todd Brock (Forest City, NC, US)
- Eli Cutshall (Mosheim, TN, US)
Cpc classification
F04B2201/12051
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/324
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16H61/435
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D31/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16D39/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16D31/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B49/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B17/03
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B1/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A zero turn mower vehicle 10 includes left and right hydrostatic transmissions 11a, 11b driving wheels 15a, 15b. The transmissions 11a, 11b each include a swashplate type axial piston hydraulic pump 17 having a swashplate 22. A system 12 and method controls each pump 17. A controller 31 receives input signals and provides output signals to electric motors 33a, 33b to control each swashplate 22. Operator interface input devices 30a, 30b provide inputs to controller 31. Angle sensors 35a, 35b provide additional inputs to controller 31. Displacement amplifiers 36a, 36b amplify displacement of each swashplate 22, and torque amplifiers 34a, 34b amplify torque of electric motors 33a, 33b.
Claims
1. A pump control system comprising: an axial piston hydraulic pump having a swashplate tiltable about a swashplate tilt axis, a barrel with axial pistons disposed in the barrel, the barrel and pistons being rotatable about a barrel rotation axis relative to the swashplate, the pistons each being moveable relative to the barrel along a straight line piston path, and the pistons having a stroke determined by the position of the swashplate, an electric motor mounted to a motor shaft and drivingly connected to the swashplate for displacing the swashplate about the swashplate tilt axis in response to electrical command signals, an electrical controller generating the electrical command signals in response to controller inputs, an operator interface connected to the electrical controller and providing one of the controller inputs in response to operator input, an angle sensor mounted to a sensor shaft for providing another of the controller inputs in response to tilting displacement of the swashplate about the swashplate tilt axis, wherein the sensor shaft is different from and parallel to the motor shaft, and a displacement amplifier between the swashplate and the angle sensor, the displacement amplifier amplifying tilting displacement of the swashplate and communicating the amplified tilting displacement to the angle sensor.
2. A pump control system as set forth in claim 1, in which the displacement amplifier transmits displacement and torque between the swashplate and the angle sensor.
3. A pump control system as set forth in claim 1, in which the displacement amplifier transmits driving torque between the electric motor and the swashplate.
4. A pump control system as set forth in claim 1, in which the displacement amplifier is a mechanical displacement amplifier.
5. A pump control system as set forth in claim 1, in which the displacement amplifier includes rotating displacement amplifying components that engage and drive one another.
6. A pump control system as set forth in claim 1, in which the displacement amplifier includes a flexible member.
7. A pump control system as set forth in claim 6, in which the displacement amplifier includes a first sprocket drivingly connected to the angle sensor and a second sprocket driving connected to the swashplate, the flexible member extends between the first and second sprockets, and the first sprocket is substantially smaller than the second sprocket whereby rotation of the second sprocket causes substantially greater rotation of the first sprocket.
8. A pump control system as set forth in claim 1, in which the displacement amplifier includes an arcuate gear segment fixed to the swashplate for tilting displacement with the swashplate, wherein the arcuate gear segment has teeth disposed on an interior peripheral surface thereof.
9. A pump control system as set forth in claim 8, in which the displacement amplifier includes a pinion fixed to the sensor shaft of the angle sensor, wherein the pinion has respective teeth disposed on an exterior peripheral surface thereof and configured to operatively mesh with corresponding teeth disposed on the interior peripheral surface of the arcuate gear segment, the arcuate gear segment and the pinion each have a tooth root diameter, and the root diameter of the arcuate gear segment is substantially greater than the root diameter of the pinion.
10. A pump control system as set forth in claim 9, in which the angle sensor includes a string sensor and a pulley, and the pulley transmits torque between the pinion and the string sensor.
11. A pump control system as set forth in claim 1, in which the angle sensor includes a string sensor.
12. A pump control system as set forth in claim 1, in which the swashplate type axial piston hydraulic pump is an over center swashplate type pump.
13. A pump control system as set forth in claim 1, further including a zero turn vehicle having prime mover and a hydrostatic transmission, the hydrostatic transmission includes the swashplate type axial piston hydraulic pump, and the prime mover is drivingly connected to rotate the barrel of the pump.
14. A pump control system as set forth in claim 1, wherein the displacement amplifier is configured to amplify a torque output of the electric motor that displaces the swashplate, such that a torque amplification ratio is different from a displacement amplification ratio.
15. A method of controlling an axial piston hydraulic pump having a swashplate, the method comprising the steps: providing an electric motor drivingly connected to the swashplate of the pump to tilt the swashplate about a swashplate tilt axis, providing an electrical controller generating command signals in response to controller inputs and communicating the command signals to the electric motor to control the electric motor, communicating operator input to the controller to provide one of the controller inputs, amplifying swashplate tilting displacement via a displacement amplifier, wherein the displacement amplifier includes (i) an arcuate gear segment fixed to the swashplate, wherein the arcuate gear segment has teeth disposed on an interior peripheral surface thereof, and (ii) a pinion fixed to a sensor shaft of an angle sensor, wherein the pinion has respective teeth disposed on an exterior peripheral surface thereof and configured to operatively mesh with corresponding teeth disposed on the interior peripheral surface of the arcuate gear segment, generating an amplified swashplate tilt signal proportional to the amplified swashplate tilting displacement, and communicating the amplified swashplate tilt signal to the controller to provide another one of the controller inputs.
16. A method as set forth in claim 15, which includes the step of transmitting driving torque between the electric motor and the swashplate using a first sprocket drivingly connected to the electric motor, a second sprocket drivingly connected to the swashplate, and a flexible member extending between the first and second sprockets.
17. A method as set forth in claim 15, in which generating the amplified swashplate tilt signal further includes converting a mechanical amplified swashplate tilt signal to an electrical signal proportional to the mechanical amplified swashplate tilting displacement.
18. A method as set forth in claim 15, wherein the arcuate gear segment and the pinion each have a tooth root diameter, and the root diameter of the arcuate gear segment is greater than the root diameter of the pinion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) Embodiments of this invention will now be described in further detail with reference to the accompanying drawings, in which:
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DETAILED DESCRIPTION OF THE DRAWINGS
(9) Referring now to the drawings in greater detail,
(10) The vehicle 10 may be any type of suitable vehicle, and in the illustrated embodiment the vehicle 10 is, for example, a zero turn landscape grass mower which carries an operator (not shown) to drive the mower. The vehicle 10 includes a rigid frame 13 and a prime mover 14, which, for example, may be an internal combustion engine. The prime mover 14 is drivingly connected to each hydrostatic transmission 11a and 11b. The hydrostatic transmissions 11a and 11b are substantially identical transmissions that may be mirror images of one another in the preferred embodiment. Transmission 11a is drivingly connected to left rear wheel 15a to drive wheel 15a in a forward or reverse direction, and transmission 11b is drivingly connected to right rear wheel 15b to drive wheel 15b in a forward or reverse direction, all in a known manner. The vehicle 10 also includes left front wheel 16a and right front wheel 16b, which may be caster wheels in the preferred embodiment.
(11) Each hydrostatic transmission 11a and 11b includes a conventional over center swashplate type axial piston hydraulic pump 17, one of which is illustrated in
(12) Referring now to
(13) A left displacement angle sensor 35a provides another of the controller 31 inputs through hard wire or wireless connection, in response to tilting displacement of swashplate 22 of left hydrostatic transmission 11a about its swashplate tilt axis 23. Specifically, angle sensor 35a converts a mechanical signal to an electrical signal and communicates to controller 31 an input signal indicating tilting displacement of its associated swashplate 22. A left displacement amplifier 36a is arranged between swashplate 22 of left hydrostatic transmission 11a and associated angle sensor 35a. The displacement amplifier 36a amplifies the tilting displacement of its associated swashplate 22 and communicates the amplified tilting displacement to its associated angle sensor 35a. In this manner, relatively small angular displacement of swashplate 22 of left hydrostatic transmission 11a is amplified and communicated as an amplified angular displacement input signal to controller 31, to increase accuracy and resolution of the angular displacement signal and increase controllability of swashplate 22.
(14) In a similar manner, control system 12 includes a right input device 30b, a right motor driver 32b, a right electric stepper motor 33b, a right motor torque amplifier 34b, a right angle sensor 35b, and a right displacement amplifier 36b. These right side components are the same as and operate the same as the corresponding left side components described above, although certain components may be mirror images of one another as is known in the art. Also, the right input device 30b and the left input device 30a may be incorporated into a single component, such as for example a single joystick, if desired.
(15) Turning now to
(16) Referring now to
(17) Referring now to
(18) Referring now to
(19) Referring now to
(20) As illustrated in
(21) Although the principles, embodiments and operation of the present invention have been described in detail herein, this is not to be construed as being limited to the particular illustrative forms disclosed. For example, the synchronous belt and sprockets and the gears and pinions described herein may in alternative embodiments not illustrated in the drawings be replaced with other suitable or equivalent displacement amplifying and/or torque amplifying components, including other rotating displacement amplifying components that engage and drive one another. It will thus become apparent to those skilled in the art that various modifications of the embodiments herein can be made without departing from the spirit or scope of the invention.