WORK MACHINE AND METHOD FOR CALIBRATING AN ELECTROHYDRAULIC PUMP IN AN OPEN CENTER HYDRAULIC SYSTEM
20230265870 · 2023-08-24
Inventors
- Justin Sticksel (Galena, IL, US)
- Aaron R. Kenkel (East Dubuque, IL, US)
- Jeff Dobchuk (Saskatchewan, CA)
- Bryan J. Rausch (Durango, IA, US)
- Madeline T. Oglesby (Asbury, IA, US)
Cpc classification
F15B2211/8646
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B19/002
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B21/087
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B11/165
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
G05B2219/41246
PHYSICS
International classification
F15B19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A work machine and method for a work machine with an open center hydraulic system for controlling actuation of an implement includes an implement control valve, an electro-hydraulically controlled pump, a hydraulic circuit coupled to the implement actuator, and a pressure transducer positioned for measuring a pressure in the hydraulic circuit between the pump and the implement control valve. A calibration system for calibrating the pump includes a controller having a non-transitory computer readable medium having a program instruction for causing a processor to calibrate a first threshold for the pump in a pump-flow curve wherein the first threshold including a minimum current command to actuate the pump; determine a hysteresis band in the pump-flow curve; and calibrate a second threshold for the pump in the pump-flow curve wherein the second threshold including a maximum current command to actuate the pump below a relief setpoint.
Claims
1. A work machine with an implement coupled to the work machine, the work machine comprising: an open center hydraulic system for controlling actuation of the implement, the open center hydraulic system including an implement control valve configured to control a flow of a fluid to and from an implement actuator in response to a first control signal, an electro-hydraulically controlled pump for controlling the outlet flow of the fluid through a hydraulic circuit in response to a second control signal, the hydraulic circuit coupled to the implement actuator, and a pressure transducer positioned for measuring a pressure in the hydraulic circuit between the pump and the implement control valve; and a calibration system for calibrating the pump for controlling the flow of the fluid through the open center hydraulic system, the calibration system including a controller having a non-transitory computer readable medium having a program instruction for causing a processor to calibrate a first threshold for the pump in a pump-flow curve, the first threshold including a minimum current command to actuate the pump; determine a hysteresis band in the pump-flow curve; and calibrate a second threshold for the pump in the pump-flow curve, the second threshold including a maximum current command to actuate the pump below a relief setpoint.
2. The work machine of claim 1, wherein the program instructions for calibrating the first threshold for the pump in the pump-flow curve comprises: setting the pump at a constant flowrate; identifying an implement control valve command for a restriction setting; recording the pump pressure; initializing a pump calibration step point; ramping the first control signal until the pressure changes to a predetermined value; correlating a pressure change to a change in the flow of fluid to the implement actuator to identify a given point on the pump-flow curve; outputting an adjustment signal for adjusting the first threshold; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the first control signal until the adjustment signal falls within a predetermined range.
3. The work machine of claim 1, wherein the program instructions for calibrating the second threshold for the pump in the pump-flow curve comprises: setting the pump at a constant flowrate; identifying an implement control valve command for a restriction setting; ramping the second control signal beyond a nominal full stroke actuation of the implement; recording the pump pressure; ramping the first control; outputting an adjustment signal for adjusting the second threshold; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the second control signal until the adjustment signal falls within a predetermined range.
4. The work machine of claim 1, wherein the program instructions for determining the hysteresis band in the pump-flow curve comprises: ramping the second control signal until the pressure drops; determining a pressure drop target by correlating the pressure to a change in the flow of fluid to the implement actuator; outputting an adjustment signal for adjusting the pressure drop target; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the second control signal until the adjustment signal falls within a predetermined range.
5. The work machine of claim 1, wherein the fluid is within an operating temperature range prior to calibrating.
6. The work machine of claim 1, wherein an engine speed is within an operating speed range prior to calibrating.
7. A computer readable medium for a work machine with an implement mechanically coupled to the work machine wherein an open center hydraulic system controls actuation of the implement, the open center hydraulic system including an implement control valve configured to control a flow of a fluid to and from an implement actuator in response to a first control signal and a pump for controlling the outlet flow of the fluid through a hydraulic circuit in response to a second control signal, the computer readable medium comprising a program instruction for causing a processor of a controller to: calibrate a first threshold in a pump-flow curve for a pump in the open center hydraulic system, the first threshold including a minimum current command to actuate the pump; determine a hysteresis band in the pump-flow curve; and calibrate a second threshold in the pump-flow curve for the pump, the second threshold including a maximum current command to actuate the pump below a relief setpoint.
8. The computer readable medium of claim 7, wherein the program instructions for calibrating the first threshold for the pump in the pump-flow curve comprises: setting the pump at a constant flowrate; identifying an implement control valve command for a restriction setting; recording a current pump pressure; initializing a pump calibration step point; ramping the first control signal until the pressure changes a predetermined value; correlating a pressure change to a change in the flow of fluid to the implement actuator to identify a given point on the pump-flow curve; outputting an adjustment signal for adjusting the first threshold; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the first control signal until the adjustment signal falls within a predetermined range.
9. The computer readable medium of claim 7, wherein the program instructions for calibrating the second threshold for the pump in the pump-flow curve comprises: setting the pump at a constant flowrate; identifying an implement control valve command for a restriction stetting; ramping the second control signal beyond a nominal full stroke actuation of the implement; recording the pump pressure; ramping the first control signal; outputting an adjustment signal for adjusting the second threshold; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the second control signal until the adjustment signal falls within a predetermined range.
10. The computer readable medium of claim 7, wherein the program instructions for determining a hysteresis band in the pump-flow curve comprises: ramping the second control signal until the pressure drops; determining a pressure drop target by correlating the pressure to a change in the flow of fluid to the implement actuator; outputting an adjustment signal for adjusting the pressure drop target; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the second control signal until the adjustment signal falls within a predetermined range.
11. The computer readable medium of claim 7, wherein the program instructions further comprise: confirming the fluid is within an operating temperature range prior to calibrating.
12. The computer readable medium of claim 7, wherein the program instructions further comprise: confirming an engine speed is within an operating speed range prior to calibrating.
13. A method of calibrating a pump in an open center hydraulic system for controlling actuation of an implement coupled to a work machine, the open center hydraulic system including an implement control valve configured to control a flow of a fluid to and from an implement actuator in response to a first control signal and a pump for controlling the outlet flow of the fluid through a hydraulic circuit in response to a second control signal, the method comprising: calibrating a first threshold in a pump-flow curve for a pump in the open center hydraulic system, the first threshold including a minimum current command to actuate the pump; determining a hysteresis band in the pump-flow curve; and calibrating a second threshold in the pump-flow curve for the pump, the second threshold including a maximum current command to actuate the pump below a relief setpoint.
14. The method of claim 13, wherein calibrating the first threshold for the pump in a pump-flow curve comprises: setting the pump at a constant flowrate; identifying an implement control valve command for a restriction setting; recording a current pump pressure; initializing a pump calibration step point; ramping the first control signal until the pressure changes a predetermined value; correlating a pressure change to a change in the flow of fluid to the implement actuator to identify a given point on the pump-flow curve; outputting an adjustment signal for adjusting the first threshold; iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the first control signal until the adjustment signal falls within a predetermined range.
15. The method of claim 13, wherein calibrating the second threshold for the pump in a pump-flow curve comprises: setting the pump at a constant flowrate; identifying an implement control valve command for a restriction stetting; ramping the second control signal beyond a nominal full stroke actuation of the implement; recording the pump pressure; ramping the first control signal; outputting an adjustment signal for adjusting the second threshold; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the second control signal until the adjustment signal falls within a predetermined range.
16. The method of claim 13, wherein determining a hysteresis band in the pump-flow curve comprises: ramping the second control signal until the pressure drops; determining a pressure drop target by correlating the pressure to a change in the flow of fluid to the implement actuator; outputting an adjustment signal for adjusting the pressure drop target; and iteratively repeating the outputting of the adjustment signal based on a repeated ramping of the second control signal until the adjustment signal falls within a predetermined range.
17. The method of claim 13, wherein the method further comprises: confirming the fluid is within an operating temperature range prior to calibrating.
18. The method of 13, wherein the method further comprises: confirming an engine speed is within an operating speed range prior to calibrating.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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[0018] Before any embodiments are explained in detail, it is to be understood that the disclosure is not limited in its application to the details of construction and the arrangement of components set forth in the following description or illustrated in the following drawings. The disclosure is capable of supporting other embodiments and of being practiced or of being carried out in various ways. Also, it is to be understood that the phraseology and terminology used herein is for the purpose of description and should not be regarded as limiting.
DETAILED DESCRIPTION
[0019] As used herein, unless otherwise limited or modified, lists with elements that are separated by conjunctive terms (e.g., “and”) and that are also preceded by the phrase “one or more of” or “at least one of” indicate configurations or arrangements that potentially include individual elements of the list, or any combination thereof. For example, “one or more of A, B, and C” or “at least one of A, B, and C” indicates the possibilities of only A, only B, only C, or any combination of two or more of A, B, and C (e.g., A and B; B and C; A and C; or A, B, and C).
[0020] As used herein, the term “controller” is a computing device including a processor and a memory. The “controller” may be a single device or alternatively multiple devices. The controller may further refer to any hardware, software, firmware, electronic control component, processing logic, processing device, individually or in any combination, including without limitation: application specific integrated circuit (ASIC), an electronic circuit, a processor (shared, dedicated, or group) and memory that executes one or more software or firmware programs, a combinational logic circuit, and/or other suitable components that provide the described functionality.
[0021] The term “processor” is described and shown as a single processor. However, two or more processors can be used according to particular needs, desires, or particular implementations of the controller and the described functionality. The processor may be a component of the controller, a sub-controller for actuation, or alternatively a part of another device. Generally, the processor can execute program instructions and can manipulate data to perform the operations of the controller, including operations using algorithms, methods, functions, processes, flows, and procedures as described in the present disclosure.
[0022] With references to
[0023] In the open center hydraulic valve 120, the center passage 155 is typically closed off at some rate as one of the work circuit passages 160 is opened up. The timing of this transition can vary from valve to valve, but typically the center passage 155 is not completely closed off until the work circuit passages 160 are at least partially opened. This ensures that there is always a path for flow, and the ratio of the orifices formed in the center passage 155 and the work circuit passage 160 dictate the flow split. There is, however, a point in the valve spool travel range wherein the center passage 155 starts to restrict (often substantially) before the work circuit passage 160 opens up. This “restriction setting” 307 can be used to create a known restrictive path for pump flow, which provides a method for calibrating the “minimum” calibration point 222a for the hydraulic pump 105. Pump calibration establishes an area opening downstream of the pump 105. If that area remains consistent for the duration of the calibration, a precise change in flow is identifiable as a function of a change in pressure.
[0024] Now referencing
[0025] The flow diagram for calibrating the “minimum current” command 222a to actuate the pump is shown in
[0026] Now turning to
[0027] Once the hysteresis band 212 is determined, a final calibration identifies the second threshold 210 (or true max flow for the pump).
[0028] One or more of the steps or operations in any of the methods, processes, or systems discussed herein may be omitted, repeated, or re-ordered and are within the scope of the present disclosure.
[0029] While the above describes example embodiments of the present disclosure, these descriptions should not be viewed in a restrictive or limiting sense. Rather, there are several variations and modifications which may be made without departing from the scope of the appended claims.