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Patent · US11454003B2 · B2 · US

Apparatus with hydraulic machine controller

(11) Publication number
US11454003B2
(21) Application number
17/275,107
(22) Filing date
2019-09-10
(30) Priority date
2018-09-10
(43) Publication date
2022-09-27
(45) Date of grant
2022-09-27
(51) IPC
E02F 9/22; F04B 7/00; F15B 11/16; F15B 11/17
(52) CPC
  • E02F Dredging; soil-shifting: 9/2228, 9/2066, 9/207, 9/2235, 9/2246, 9/2267, 9/2296
  • F02D Controlling combustion engines: 29/04
  • F03C Positive-displacement engines driven by liquids: 1/045, 1/053
  • F04B Positive-displacement machines for liquids; pumps: 1/053, 1/063, 49/06, 49/22, 7/0076
  • F15B Systems acting by means of fluids in general; fluid-pressure actuators, e.g. servomotors; details of fluid-pressure systems, not otherwise provided for: 11/161, 11/165, 11/17, 21/087, 2211/20523, 2211/20553, 2211/3116, 2211/40507, 2211/41554, 2211/45, 2211/6306, 2211/6309, 2211/6313, 2211/633, 2211/6333, 2211/634, 2211/6346, 2211/6652, 2211/6655, 2211/6656, 2211/6658
(73) Assignee
Artemis Intelligent Power Ltd
(72) Inventors
Niall James Caldwell; Jill MACPHERSON; Matthew Green
(54) Title
Apparatus with hydraulic machine controller
(57) Abstract

A prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a high-pressure manifold. The hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select the net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby the net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, wherein the apparatus further comprises a controller configured to calculate the demand signal in response to a measured property of the hydraulic circuit or one or more actuators.

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Claims (14)

  1. An apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve configured to regulate a flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve configured to regulate the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the apparatus comprising a controller configured to calculate the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, wherein the controller is configured to selectively regulate the demand signal to implement a hydraulic machine torque limit, wherein the hydraulic machine torque limit is calculated in dependence on a prime mover speed error, and wherein the controller is configured to reduce the hydraulic machine torque limit at low speed and to increase the hydraulic machine torque limit at high speed.
  2. The apparatus according to claim 1, wherein the prime mover speed error is determined by comparing a measurement of prime mover speed and a prime mover speed setpoint and/or wherein the prime mover comprises a prime mover governor which regulates the prime mover to a target speed determined responsive to an operator input.
  3. The apparatus according to claim 1, wherein the target speed is determined responsive to a torque limit defined in a database and/or wherein the controller is configured to process a hydraulic machine displacement signal and to output a hydraulic machine displacement signal which is selectively restricted to avoid exceeding a torque limit, taking into account a torque limit function and the prime mover speed error.
  4. A method of operating an apparatus, the apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the method comprising calculating the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, the method further comprising selectively regulating the demand signal to implement a hydraulic machine torque limit, where the hydraulic machine torque limit is calculated in dependence on a prime mover speed error, and the method further comprising reducing the hydraulic machine torque limit at low speed and increasing the hydraulic machine torque limit at high speed.
  5. The method according to claim 4, wherein the method further comprising receiving an input hydraulic machine displacement signal and outputting an output hydraulic machine displacement signal which is selectively restricted to avoid exceeding a torque limit, taking into account a torque limit function and prime mover speed error.
  6. An apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve configured to regulate a flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve configured to regulate the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the apparatus comprising a controller configured to calculate the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, wherein the controller is configured to receive a measured pressure and to compare the measured pressure to a pressure limit and to limit displacement by one or more of the plurality of working chambers when the measured pressure is within a margin of the pressure limit, wherein the margin is a margin within a range of the pressure limit and is below the pressure limit.
  7. The apparatus according to claim 6, wherein the pressure limit is a pressure limit of a physical system pressure limiter at which a pressure relief valve is actuated to release pressurised fluid.
  8. The apparatus according to claim 6, wherein the pressure limit is a variable pressure limit configured to be varied in response to a user input.
  9. The apparatus according to claim 6, wherein the pressure limit is a variable pressure limit configured to be varied by the controller.
  10. The apparatus according to claim 6, wherein the controller is configured to determine whether an actuator is in use, and in response to determining that the actuator is in use to vary the pressure limit to a level depending on the actuator, when the actuator is in use.
  11. The apparatus according to claim 6, wherein the controller is configured to determine whether one or more hydraulic machine operating modes has been selected and to vary the pressure limit in response to one of the hydraulic machine operating modes having been selected.
  12. The apparatus according to claim 6, wherein the pressure limit is a pressure at which a pressure relief valve is actuated to release pressurised fluid and/or a predetermined acceptable pressure and/or wherein the pressure is measured at a location in the hydraulic circuit which is not in fluid communication with a pressure relief valve.
  13. A method of operating an apparatus, the apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the method comprising calculating the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, the method further comprising receiving a measured pressure and comparing the measured pressure to a pressure limit and limiting displacement by one or more of the plurality of working chambers when the measured pressure is within a margin of the pressure limit, wherein the margin is a margin within a range of the pressure limit and is below the pressure limit.
  14. The method according to claim 13, wherein the method further comprises taking into account demand and/or user commands when calculating where the measured pressure is within a margin of the pressure limit, and/or wherein the method comprises measuring input from a user to generate a control signal which is used to determine a displacement from the hydraulic machine or the group of one or more working chambers.

Description

The invention relates to industrial machines and vehicles such as excavators, with hydraulic actuators driven by an electronically commutated hydraulic machine driven in turn by a prime mover.

Industrial vehicles with multiple hydraulically powered actuators are in common use around the world. Industrial vehicles such as excavators typically have at least two tracks for movement, a rotary actuator (e.g. a motor) for rotating the cab of the vehicle relative to the base which comprises the tracks, rams for controlling the movement of an arm (e.g. an excavator arm) including at least one ram for the boom, and at least one for the stick (arm), and at least two actuators for controlling movement of a tool such as a bucket.

Each of these actuators represents some hydraulic load on a prime mover (e.g. an engine such as an electric motor, or more typically a diesel engine) of the vehicle and must be supplied by one or more working chambers (e.g. chambers defined by cylinders, within which pistons reciprocate in use) of a hydraulic machine driven by the prime mover.

The invention seeks to provide improved hydraulic control systems for controlling multiple hydraulically powered actuators. Some aspects of the invention seek to provide hydraulic control systems which have advantages of energy efficiency. Advantageously, implementing the improved hydraulic control systems means energy provided by a prime mover is used more efficiently to perform work functions, thus providing fuel savings.

Citations (58)

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Record as JSON
{
  "publication_number": "US11454003B2",
  "country": "US",
  "kind": "B2",
  "title": "Apparatus with hydraulic machine controller",
  "abstract": "A prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a high-pressure manifold. The hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select the net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby the net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, wherein the apparatus further comprises a controller configured to calculate the demand signal in response to a measured property of the hydraulic circuit or one or more actuators.",
  "claims": [
    "1. An apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve configured to regulate a flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve configured to regulate the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the apparatus comprising a controller configured to calculate the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, wherein the controller is configured to selectively regulate the demand signal to implement a hydraulic machine torque limit, wherein the hydraulic machine torque limit is calculated in dependence on a prime mover speed error, and wherein the controller is configured to reduce the hydraulic machine torque limit at low speed and to increase the hydraulic machine torque limit at high speed.",
    "2. The apparatus according to claim 1, wherein the prime mover speed error is determined by comparing a measurement of prime mover speed and a prime mover speed setpoint and/or wherein the prime mover comprises a prime mover governor which regulates the prime mover to a target speed determined responsive to an operator input.",
    "3. The apparatus according to claim 1, wherein the target speed is determined responsive to a torque limit defined in a database and/or wherein the controller is configured to process a hydraulic machine displacement signal and to output a hydraulic machine displacement signal which is selectively restricted to avoid exceeding a torque limit, taking into account a torque limit function and the prime mover speed error.",
    "4. A method of operating an apparatus, the apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the method comprising calculating the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, the method further comprising selectively regulating the demand signal to implement a hydraulic machine torque limit, where the hydraulic machine torque limit is calculated in dependence on a prime mover speed error, and the method further comprising reducing the hydraulic machine torque limit at low speed and increasing the hydraulic machine torque limit at high speed.",
    "5. The method according to claim 4, wherein the method further comprising receiving an input hydraulic machine displacement signal and outputting an output hydraulic machine displacement signal which is selectively restricted to avoid exceeding a torque limit, taking into account a torque limit function and prime mover speed error.",
    "6. An apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve configured to regulate a flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve configured to regulate the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the apparatus comprising a controller configured to calculate the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, wherein the controller is configured to receive a measured pressure and to compare the measured pressure to a pressure limit and to limit displacement by one or more of the plurality of working chambers when the measured pressure is within a margin of the pressure limit, wherein the margin is a margin within a range of the pressure limit and is below the pressure limit.",
    "7. The apparatus according to claim 6, wherein the pressure limit is a pressure limit of a physical system pressure limiter at which a pressure relief valve is actuated to release pressurised fluid.",
    "8. The apparatus according to claim 6, wherein the pressure limit is a variable pressure limit configured to be varied in response to a user input.",
    "9. The apparatus according to claim 6, wherein the pressure limit is a variable pressure limit configured to be varied by the controller.",
    "10. The apparatus according to claim 6, wherein the controller is configured to determine whether an actuator is in use, and in response to determining that the actuator is in use to vary the pressure limit to a level depending on the actuator, when the actuator is in use.",
    "11. The apparatus according to claim 6, wherein the controller is configured to determine whether one or more hydraulic machine operating modes has been selected and to vary the pressure limit in response to one of the hydraulic machine operating modes having been selected.",
    "12. The apparatus according to claim 6, wherein the pressure limit is a pressure at which a pressure relief valve is actuated to release pressurised fluid and/or a predetermined acceptable pressure and/or wherein the pressure is measured at a location in the hydraulic circuit which is not in fluid communication with a pressure relief valve.",
    "13. A method of operating an apparatus, the apparatus comprising a prime mover and a plurality of hydraulic actuators, a hydraulic machine having a rotatable shaft in driven engagement with the prime mover and comprising a plurality of working chambers having a volume which varies cyclically with rotation of the rotatable shaft, a hydraulic circuit extending between a group of one or more working chambers of the hydraulic machine and one or more of the hydraulic actuators, each working chamber of the hydraulic machine comprising a low-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a low-pressure manifold and a high-pressure valve which regulates the flow of hydraulic fluid between the working chamber and a high-pressure manifold, the hydraulic machine being configured to actively control at least the low-pressure valves of the group of one or more working chambers to select a net displacement of hydraulic fluid by each working chamber on each cycle of working chamber volume, and thereby a net displacement of hydraulic fluid by the group of one or more working chambers, responsive to a demand signal, the method comprising calculating the demand signal in response to a measured property of the hydraulic circuit or one or more actuators, the method further comprising receiving a measured pressure and comparing the measured pressure to a pressure limit and limiting displacement by one or more of the plurality of working chambers when the measured pressure is within a margin of the pressure limit, wherein the margin is a margin within a range of the pressure limit and is below the pressure limit.",
    "14. The method according to claim 13, wherein the method further comprises taking into account demand and/or user commands when calculating where the measured pressure is within a margin of the pressure limit, and/or wherein the method comprises measuring input from a user to generate a control signal which is used to determine a displacement from the hydraulic machine or the group of one or more working chambers."
  ],
  "description_excerpt": "The invention relates to industrial machines and vehicles such as excavators, with hydraulic actuators driven by an electronically commutated hydraulic machine driven in turn by a prime mover.\n\nIndustrial vehicles with multiple hydraulically powered actuators are in common use around the world. Industrial vehicles such as excavators typically have at least two tracks for movement, a rotary actuator (e.g. a motor) for rotating the cab of the vehicle relative to the base which comprises the tracks, rams for controlling the movement of an arm (e.g. an excavator arm) including at least one ram for the boom, and at least one for the stick (arm), and at least two actuators for controlling movement of a tool such as a bucket.\n\nEach of these actuators represents some hydraulic load on a prime mover (e.g. an engine such as an electric motor, or more typically a diesel engine) of the vehicle and must be supplied by one or more working chambers (e.g. chambers defined by cylinders, within which pistons reciprocate in use) of a hydraulic machine driven by the prime mover.\n\nThe invention seeks to provide improved hydraulic control systems for controlling multiple hydraulically powered actuators. Some aspects of the invention seek to provide hydraulic control systems which have advantages of energy efficiency. Advantageously, implementing the improved hydraulic control systems means energy provided by a prime mover is used more efficiently to perform work functions, thus providing fuel savings.",
  "cpc": [
    "E02F 9/2228",
    "E02F 9/2066",
    "E02F 9/207",
    "E02F 9/2235",
    "E02F 9/2246",
    "E02F 9/2267",
    "E02F 9/2296",
    "F02D 29/04",
    "F03C 1/045",
    "F03C 1/053",
    "F04B 1/053",
    "F04B 1/063",
    "F04B 49/06",
    "F04B 49/22",
    "F04B 7/0076",
    "F15B 11/161",
    "F15B 11/165",
    "F15B 11/17",
    "F15B 21/087",
    "F15B 2211/20523",
    "F15B 2211/20553",
    "F15B 2211/3116",
    "F15B 2211/40507",
    "F15B 2211/41554",
    "F15B 2211/45",
    "F15B 2211/6306",
    "F15B 2211/6309",
    "F15B 2211/6313",
    "F15B 2211/633",
    "F15B 2211/6333",
    "F15B 2211/634",
    "F15B 2211/6346",
    "F15B 2211/6652",
    "F15B 2211/6655",
    "F15B 2211/6656",
    "F15B 2211/6658"
  ],
  "ipc": [
    "E02F 9/22",
    "F04B 7/00",
    "F15B 11/16",
    "F15B 11/17"
  ],
  "assignees": [
    "Artemis Intelligent Power Ltd"
  ],
  "inventors": [
    "Niall James Caldwell",
    "Jill MACPHERSON",
    "Matthew Green"
  ],
  "filing_date": "2019-09-10",
  "publication_date": "2022-09-27",
  "grant_date": "2022-09-27",
  "priority_date": "2018-09-10",
  "application_number": "US-201917275107-A",
  "family_id": "68771713",
  "cited_by_count": 6,
  "citations": [
    "EP0494236B1",
    "US5155996A",
    "US5452579A",
    "US5303551A",
    "US5525043A",
    "US5671137A",
    "US5429089A",
    "EP0719929A2",
    "US5576962A",
    "US6634450B1",
    "US6010309A",
    "US5873427A",
    "US5951258A",
    "US6385970B1",
    "US6568126B2",
    "US20030006076A1",
    "WO2002088532A2",
    "US7146263B2",
    "US20090123313A1",
    "US10161423B2",
    "JP2008255699A",
    "US20080282583A1",
    "EP2055945A1",
    "US8522543B2",
    "US20100154400A1",
    "US8175790B2",
    "EP2479351A1",
    "GB2477996A",
    "EP2615212A1",
    "US20140054902A1",
    "US20140188373A1",
    "US8887499B2",
    "US20130061588A1",
    "US20130232963A1",
    "WO2013130768A1",
    "US20130325293A1",
    "US20170128388A1",
    "US9644651B2",
    "EP2985390A1",
    "US9494169B2",
    "US20150315766A1",
    "EP2851586A1",
    "DE102013221683A1",
    "WO2015073330A1",
    "US20160340871A1",
    "US20150267697A1",
    "US20160025023A1",
    "WO2016051172A1",
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    "EP3258087A1",
    "US20150240451A1",
    "US20170009753A1",
    "WO2017122024A1",
    "WO2017144875A1",
    "US20170322260A1",
    "US20180100521A1",
    "US20180135605A1",
    "US11105347B2"
  ]
}

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