Hydraulic control device, hydraulic circuit control method, and hydraulic device

The hydraulic control device addresses actuator operation deviations by comparing virtual and required bleed information to determine a target control value, ensuring stable actuator performance and operator control through adaptive hydraulic pump operation.

JP7797355B2Active Publication Date: 2026-01-13KUBOTA CORP
View PDF 6 Cites 0 Cited by

Patent Information

Application Number
JP2022161867
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-10-06
Publication Date
2026-01-13
Estimated Expiration
2042-10-06

AI Technical Summary

Technical Problem

Existing hydraulic control systems fail to accurately control the operation of actuators due to fluctuations in pressure oil discharge caused by virtual bleed flow rates, leading to deviations in actuator operation.

Method used

A hydraulic control device and method that includes a virtual bleed information output unit, a required bleed information output unit, and a target control value determination unit to compare and determine a target control value for the hydraulic pump, ensuring accurate supply of hydraulic oil based on load conditions.

Benefits of technology

The system accurately controls hydraulic pump operation according to load states, maintaining actuator performance and operator control, regardless of pressure conditions, by adjusting discharge flow rates based on virtual and required bleed information.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007797355000003
    Figure 0007797355000003
  • Figure 0007797355000004
    Figure 0007797355000004
  • Figure 0007797355000005
    Figure 0007797355000005
Patent Text Reader

Abstract

To control operation of an actuator accurately.SOLUTION: A hydraulic control device includes: a virtual bleeding information output unit which outputs virtual bleeding information 75 indicating a state of a hydraulic oil flowing in a virtual bleeding circuit based on a control input to an operation tool 35, a discharge pressure of a hydraulic pump 22, and preset virtual bleeding characteristics which are characteristics of the virtual bleeding circuit formed by virtualizing a circuit in which a control valve and a hydraulic oil tank are connected by a bypass line; a demanded bleeding information output unit which outputs demanded bleeding information 77 indicating a state of the hydraulic oil flowing in the virtual bleeding circuit which is demanded to cause a hydraulic actuator to conduct a desired operation according to the control input; a targe control value determination unit which determines a target control value of the hydraulic pump 22 according to a comparison result between the virtual bleeding information 75 and the demanded bleeding information 77; and a pump control unit which controls the hydraulic pump 22 according to the target control value.SELECTED DRAWING: Figure 3
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a hydraulic control device that controls a hydraulic pump that operates an actuator, a control method for a hydraulic circuit, and a hydraulic device equipped with the hydraulic control device. [Background technology]

[0002] As shown in Patent Document 1, in agricultural machinery and construction machinery, actuators such as cylinders that operate working devices are controlled by pressurized oil (hydraulic oil) generated by a hydraulic pump in response to operation. The pressurized oil generated by the hydraulic pump is supplied from a tank, and the direction and flow rate are adjusted by a control valve in the hydraulic circuit, before being divided between the actuator and the tank.

[0003] Furthermore, from the viewpoint of energy saving, the flow rate of the pressure oil diverted to the tank is virtualized as a virtual bleed flow rate, and the flow rate actually discharged from the hydraulic pump is calculated using a flow rate obtained by subtracting this virtual bleed flow rate from the pump discharge flow rate, and the hydraulic pump is controlled based on the calculated flow rate. As a result, only the pressure oil at a flow rate excluding the pressure oil diverted to the tank is supplied from the hydraulic pump to the hydraulic circuit, and the flow rate supplied to the hydraulic circuit is suppressed. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Application Laid-Open No. 2012-140763 Summary of the Invention [Problem to be solved by the invention]

[0005] However, when the flow rate supplied to the hydraulic circuit is controlled taking the virtual bleed flow rate into consideration, the amount of pressure oil discharged from the hydraulic pump may fluctuate depending on the pressure conditions and load state within the hydraulic circuit.Furthermore, fluctuations in the amount of pressure oil discharged (discharge flow rate) may cause the actual operation of the actuator to deviate from the operation of the actuator.

[0006] An object of the present invention is to accurately control the operation of an actuator in a hydraulic control device that controls the flow rate supplied to a hydraulic circuit in consideration of a virtual bleed flow rate. [Means for solving the problem]

[0007] In order to achieve the above object, a hydraulic control device according to one embodiment of the present invention is a hydraulic control device that controls a hydraulic circuit including a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches a supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator in accordance with an operation amount for an operating tool, and includes: a virtual bleed information output unit that outputs virtual bleed information that indicates a state of hydraulic oil flowing through the virtual bleed circuit based on the operation amount for the operating tool, the discharge pressure of the hydraulic pump, and a preset virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to have the control valve and a hydraulic oil tank connected by a bypass line; a required bleed information output unit that outputs required bleed information that indicates a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation in accordance with the operation amount; a target control value determination unit that determines a target control value for the hydraulic pump in accordance with a result of comparing the virtual bleed information with the required bleed information; and a pump control unit that controls the hydraulic pump in accordance with the target control value. The virtual bleed information output unit outputs the virtual bypass opening area corresponding to the operation amount based on a correspondence relationship between the operation amount set in advance and a virtual bypass opening area which is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, and outputs a virtual bleed flow rate which is a flow rate of hydraulic oil flowing through the virtual bleed circuit output based on the virtual bypass opening area corresponding to the operation amount and the discharge pressure as the virtual bleed information, the required bleed information output unit outputs the required bleed flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount set in advance and a required bleed flow rate which is a flow rate of hydraulic oil that needs to be flowed into the virtual bleed circuit to cause the hydraulic actuator to perform a desired operation according to the operation amount, and the target control value determination unit outputs the target control value based on the larger of the virtual bleed flow rate output by the virtual bleed information output unit and the required bleed flow rate output by the required bleed information output unit. .

[0008] In order to achieve the above object, a hydraulic device according to one embodiment of the present invention includes a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, a control valve that switches the supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator depending on the amount of operation of an operating tool, and the hydraulic control device that controls the hydraulic pump.

[0009] In order to achieve the above object, a control method for a hydraulic circuit according to one embodiment of the present invention is a control method for a hydraulic circuit including a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches a supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator in accordance with an operation amount for an operating tool, the control method including: a virtual bleed information output step that outputs virtual bleed information indicating a state of hydraulic oil flowing through the virtual bleed circuit based on the operation amount for the operating tool, the discharge pressure of the hydraulic pump, and a preset virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to have the control valve and a hydraulic oil tank connected by a bypass line; a required bleed information output step that outputs required bleed information that indicates a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation in accordance with the operation amount; a target control value determination step that determines a target control value for the hydraulic pump in accordance with a result of comparing the virtual bleed information with the required bleed information; and a pump control step that controls the hydraulic pump in accordance with the target control value. the virtual bleed information output step outputs the virtual bypass opening area corresponding to the manipulated variable based on a correspondence relationship between the manipulated variable and a virtual bypass opening area that is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, and outputs a virtual bleed flow rate that is a flow rate of hydraulic oil flowing through the virtual bleed circuit, which is output based on the virtual bypass opening area that is corresponding to the manipulated variable and the discharge pressure, as the virtual bleed information; the required bleed information output step outputs the required bleed flow rate corresponding to the manipulated variable as the required bleed information, based on a correspondence relationship between the manipulated variable that is set in advance and a required bleed flow rate that is a flow rate of hydraulic oil that needs to be flowed through the virtual bleed circuit to cause the hydraulic actuator to perform a desired operation according to the manipulated variable; and the target control value determination step outputs the target control value based on the larger of the virtual bleed flow rate output in the virtual bleed information output step and the required bleed flow rate output in the required bleed information output step. .

[0010] According to such a hydraulic control device, hydraulic device, and control method for a hydraulic circuit, the hydraulic pump is controlled in accordance with the result of comparison between the virtual bleed information and the required bleed information.

[0011] Therefore, when the load condition, such as the pressure conditions in the hydraulic circuit, changes, the hydraulic pump is controlled taking the load condition into consideration when the load condition is high, and when the load condition is low, the hydraulic pump is controlled based on the required flow rate in response to the operation of the operating tool regardless of the load condition. As a result, hydraulic oil at an appropriate discharge flow rate is supplied to the hydraulic pump in response to the operation of the operating tool.

[0012] Furthermore, when the load state is lower than the pump pressure condition output based on the virtual bleed characteristics, the control of the discharge flow rate is more likely to be directly affected by the operation of the operating tool. On the other hand, when the load state is higher than the pump pressure condition output based on the virtual bleed characteristics, the discharge flow rate is controlled taking into account a larger bleed flow rate corresponding to the load state, and the discharge flow rate is reduced. As a result, the operability of the operating tool changes depending on the load state, the discharge flow rate is reduced, and the operating speed of the hydraulic actuator is suppressed, allowing the operator to control the hydraulic actuator with good operability while feeling the load state. Furthermore, virtual bleed information can be output easily and accurately. Furthermore, by comparing the virtual bleed flow rate and the required bleed flow rate and outputting a target control value using the larger bleed flow rate, the operation of the hydraulic pump can be controlled using a target control value according to the load state. As a result, the target control value according to the load state can be easily determined, and the operation of the hydraulic pump can be easily and accurately controlled according to the load state and operation.

[0013]

[0014]

[0015]

[0016]

[0017] Furthermore, the virtual bleed information output unit may output the virtual bypass opening area corresponding to the operation amount based on a correspondence relationship between the operation amount and the virtual bypass opening area that is set in advance, and may output the virtual bleed flow rate corresponding to the virtual bypass opening area and the discharge pressure output from the operation amount, which is output based on the correspondence relationship between the virtual bypass opening area, the discharge pressure, and the virtual bleed flow rate, as the virtual bleed information.

[0018] With this configuration, the virtual bleed flow rate can be easily calculated from the opening area and discharge pressure output in accordance with the operation amount.

[0019] Furthermore, the required bleed information output unit may output the required flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required flow rate that is a flow rate of hydraulic oil that needs to be supplied to the hydraulic actuator in order for the hydraulic actuator to perform a desired operation according to the operation amount, and may output the required bleed flow rate that corresponds to the required flow rate output from the operation amount based on a correspondence relationship between the operation amount that is set in advance and the required bleed flow rate that is a flow rate of hydraulic oil that needs to be flowed into the virtual bleed circuit in order to supply hydraulic oil at the required flow rate.

[0020] With this configuration, the required bleed flow rate can be easily determined from the required flow rate output in accordance with the manipulated variable.

[0021] Also, A hydraulic control device according to one embodiment of the present invention is a hydraulic control device for controlling a hydraulic circuit including a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches a supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator in accordance with an operation amount for an operating tool, and includes a virtual bleed information output unit that outputs virtual bleed information that indicates a state of hydraulic oil flowing through the virtual bleed circuit based on an operation amount for the operating tool, a discharge pressure of the hydraulic pump, and a virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to have the control valve and a hydraulic oil tank connected by a bypass line, and a control valve that outputs virtual bleed information that indicates a state of hydraulic oil flowing through the virtual bleed circuit in accordance with the operation amount. a required bleed information output unit that outputs required bleed information indicating a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation based on the required bleed information; a target control value determination unit that determines a target control value of the hydraulic pump in accordance with a comparison result between the virtual bleed information and the required bleed information; and a pump control unit that controls the hydraulic pump in accordance with the target control value, wherein the virtual bleed information output unit outputs the virtual bypass opening area that corresponds to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a virtual bypass opening area that is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, The virtual bleed information output unit may output, as the virtual bleed information, the virtual bypass opening area corresponding to the manipulated variable specified based on a correspondence relationship between the virtual bypass opening area corresponding to the manipulated variable that is set in advance, the discharge pressure, and a virtual bleed differential pressure that is a differential pressure across a throttling resistor provided in the virtual bleed circuit, and the virtual bleed differential pressure that is a differential pressure across the throttling resistor provided in the virtual bleed circuit; the required bleed information output unit may output, as the required bleed information, the required bleed differential pressure that corresponds to the manipulated variable that is output based on a correspondence relationship between the manipulated variable that is set in advance and a required bleed differential pressure that is a differential pressure across the throttling resistor required to cause the hydraulic actuator to perform a desired operation according to the manipulated variable; and the target control value determination unit may output the target control value based on the larger of the virtual bleed differential pressure output by the virtual bleed information output unit and the required bleed differential pressure output by the required bleed information output unit.

[0022] With this configuration, the virtual bleed differential pressure and the required bleed differential pressure are compared, and the target control value is determined using the larger bleed differential pressure, thereby controlling the operation of the hydraulic pump in accordance with the load state. In this case, the virtual bleed differential pressure can be easily determined from the manipulated variable and the discharge pressure, and the required bleed differential pressure can be easily determined from the manipulated variable.

[0023] Furthermore, the virtual bleed information output unit may identify the virtual bypass opening area corresponding to the operation amount and the virtual bleed flow rate corresponding to the discharge pressure based on a correspondence relationship between the virtual bypass opening area corresponding to the operation amount that is set in advance, the discharge pressure, and a virtual bleed flow rate which is the flow rate of hydraulic oil flowing through the virtual bleed circuit, and output the virtual bleed differential pressure corresponding to the virtual bleed flow rate identified based on the correspondence relationship between the virtual bleed flow rate and the virtual bleed differential pressure as the virtual bleed information.

[0024] With this configuration, the virtual bleed differential pressure can be easily output using the virtual bleed flow rate determined from the manipulated variable, thereby making it possible to easily control the operation of the hydraulic pump in accordance with the load state.

[0025] Furthermore, the required bleed information output unit may output the required bleed flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required bleed flow rate that is a flow rate of hydraulic oil that needs to be flowed into the virtual bleed circuit in order for the hydraulic actuator to perform a desired operation in accordance with the operation amount, and output the required bleed differential pressure that corresponds to the required bleed flow rate output from the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required flow rate that is a flow rate of hydraulic oil that should be supplied to the hydraulic actuator in order for the hydraulic actuator to perform a desired operation in accordance with the operation amount, and output the required bleed flow rate that corresponds to the operation amount based on the correspondence relationship between the operation amount that is set in advance and the required bleed flow rate, and output the required bleed differential pressure that corresponds to the required bleed flow rate output from the operation amount based on the correspondence relationship between the operation amount that is set in advance and the required bleed flow rate.

[0026] With this configuration, the required bleed differential pressure can be easily output, and the operation of the hydraulic pump can be easily controlled in accordance with the load state.

[0027] Also, A hydraulic control device according to one embodiment of the present invention is a hydraulic control device for controlling a hydraulic circuit including a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches a supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator in accordance with an operation amount for an operating tool, and includes a virtual bleed information output unit that outputs virtual bleed information that indicates a state of hydraulic oil flowing through the virtual bleed circuit based on an operation amount for the operating tool, a discharge pressure of the hydraulic pump, and a virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to have the control valve and a hydraulic oil tank connected by a bypass line, and a control valve that outputs virtual bleed information that indicates a state of hydraulic oil flowing through the virtual bleed circuit in accordance with the operation amount. a required bleed information output unit that outputs required bleed information indicating a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation based on the required bleed information; a target control value determination unit that determines a target control value of the hydraulic pump in accordance with a comparison result between the virtual bleed information and the required bleed information; and a pump control unit that controls the hydraulic pump in accordance with the target control value, wherein the virtual bleed information output unit outputs the virtual bypass opening area that corresponds to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a virtual bypass opening area that is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, The virtual bleed information output unit may output, as the virtual bleed information, the operation amount output based on a correspondence relationship between the virtual bypass opening area corresponding to the operation amount that is set in advance, the discharge pressure, and a virtual pump flow rate that is a flow rate of hydraulic oil discharged from the hydraulic pump when the virtual bleed circuit is assumed, and the virtual pump flow rate that corresponds to the discharge pressure; the required bleed information output unit may output, as the required bleed information, the required pump flow rate that is output based on a correspondence relationship between the operation amount that is set in advance and a required pump flow rate that is a flow rate of hydraulic oil that needs to be discharged from the hydraulic pump in order to supply hydraulic oil to the hydraulic actuator for operating the hydraulic actuator in accordance with the operation amount; and the target control value determination unit may output the target control value based on the smaller of the virtual pump flow rate output by the virtual bleed information output unit and the required pump flow rate that is output by the required bleed information output unit.

[0028] With this configuration, the virtual pump flow rate and the required pump flow rate can be easily calculated, the virtual pump flow rate can be compared with the required pump flow rate, and the smaller pump flow rate can be used to calculate the target control value, thereby easily controlling the operation of the hydraulic pump according to the load condition.

[0029] In addition, the pump control unit may output a target pump displacement based on the target control value determined by the target control value determination unit, and control the hydraulic pump so that the displacement of the hydraulic pump approaches the target pump displacement.

[0030] With this configuration, the hydraulic pump can be controlled with higher precision so that the hydraulic oil is supplied from the hydraulic pump in accordance with the load.

[0031] The hydraulic pump control unit may also include an actual pump capacity acquisition unit that acquires the actual pump capacity of the hydraulic pump or information that can identify the actual pump capacity, and the pump control unit may control the hydraulic pump so as to reduce the difference between the actual pump capacity of the hydraulic pump and the target pump capacity.

[0032] With this configuration, the hydraulic pump can be controlled based on the actual pump displacement of the actual hydraulic pump, and therefore the hydraulic pump can be controlled with high precision.

[0033] In addition, the pump control unit may control the hydraulic pump by outputting a pump control command pressure required when the hydraulic pump discharges hydraulic oil corresponding to the target control value determined by the target control value determination unit, by making a correction according to the difference between the actual pump displacement and the target pump displacement.

[0034] With this configuration, the pump control command pressure is corrected in accordance with the differential displacement, which is the difference between the actual pump displacement and the target pump displacement, and the hydraulic pump is controlled using the pump control command pressure, thereby making it possible to control the hydraulic pump more easily and accurately. [Brief explanation of the drawings]

[0035] [Figure 1] FIG. 2 is a left side view illustrating the tractor. [Figure 2] FIG. 2 is a schematic diagram illustrating an example of the configuration of a control valve unit. [Figure 3] FIG. 3 is a diagram illustrating an example of a data flow in the control of a hydraulic circuit. [Figure 4] FIG. 2 is a diagram illustrating the configuration of a control device for a hydraulic circuit. [Figure 5] FIG. 3 is a diagram illustrating a control flow of a hydraulic circuit. [Figure 6] FIG. 10 is a diagram illustrating the configuration of a control device for a hydraulic circuit in another embodiment. [Figure 7] FIG. 10 is a diagram illustrating a control flow of a hydraulic circuit in another embodiment. [Figure 8]FIG. 10 is a diagram illustrating the configuration of a control device for a hydraulic circuit in another embodiment. [Figure 9] FIG. 10 is a diagram illustrating a control flow of a hydraulic circuit in another embodiment. [Figure 10] FIG. 10 is a diagram illustrating the configuration of a control device for a hydraulic circuit in another embodiment. [Figure 11] FIG. 10 is a diagram illustrating a control flow of a hydraulic circuit in another embodiment. [Figure 12] FIG. 10 is a diagram illustrating the data flow in the output of the target indicated pressure. [Figure 13] FIG. 10 is a diagram illustrating a configuration for outputting a target command pressure. [Figure 14] FIG. 10 is a diagram illustrating an example of an output flow of a target command pressure. [Figure 15] FIG. 10 is a diagram illustrating a pump flow rate according to a bleed amount. DETAILED DESCRIPTION OF THE INVENTION

[0036] Hereinafter, a hydraulic circuit for controlling a front loader mounted on a tractor, which is an example of a working machine or equipment such as an agricultural machine or a construction machine, will be described.

[0037] (Overall configuration of the tractor) First, the configuration of the tractor will be explained using Figure 1. The tractor has a body 3 supported by left and right front wheels 1 and left and right rear wheels 2. An engine 4 is supported at the front of the body 3, and a driver's section 5 is provided on the body 3. A driver's seat 6 and a steering wheel 7 for steering the front wheels 1 are provided on the driver's section 5.

[0038] The tractor also includes a front loader 13 (corresponding to a work device) supported on the machine body 3. Left and right support frames 14 are connected to the right and left parts of the machine body 3 and extend upward, and the front loader 13 is supported on the support frames 14. The front loader 13 includes left and right booms 15 and a bucket 16. The left and right booms 15 are supported on the upper parts of the support frames 14 so as to be able to swing up and down and extend forward, and the bucket 16 is supported on the front ends of the left and right booms 15 so as to be able to swing up and down.

[0039] Left and right double-acting boom cylinders 17 (corresponding to hydraulic actuators) are connected across the support frame 14 and the boom 15. Left and right double-acting bucket cylinders 18 (corresponding to hydraulic actuators) are connected across the boom 15 and the bucket 16. The boom 15 is raised and lowered by extending and contracting the boom cylinders 17. The bucket 16 is swung up and down by extending and contracting the bucket cylinder 18. Operation of the boom 15 and bucket 16 is accepted by an operating lever 35 (see Figure 4, corresponding to the operating tool) provided on the driver's unit 5.

[0040] (Overall configuration of the control valve unit) The configuration of the control valve unit 8 that supplies and discharges hydraulic oil (pressurized oil) to the boom cylinder 17 and the bucket cylinder 18 will be described below with reference to Figure 2. The hydraulic circuit is configured to include the control valve unit 8, a hydraulic actuator, and a hydraulic pump 22.

[0041] The control valve unit 8 has a block-shaped valve case 9, and the control valves 10, 11, three relief valves 19, four check valves 21, etc. are housed in the valve case 9. Furthermore, the control valve unit 8 has a pump port 20, a tank port 24, a first port 31, a second port 32, a third port 33, and a fourth port 34 in the valve case 9.

[0042] A variable displacement hydraulic pump 22 mounted on the machine body 3 is connected to the control valve unit 8, and the hydraulic pump 22 is driven by the engine 4 or an arbitrary drive unit (power source). The discharge flow rate of the hydraulic pump 22 is changed by controlling the angle of the swash plate of the hydraulic pump 22 with an operating cylinder 25.

[0043] That is, the control valve unit 8 controls the discharge flow rate and discharge pressure 74 (see FIG. 3) of the hydraulic oil discharged from the hydraulic pump 22 in response to the operation of the operating lever 35 .

[0044] The transmission case 23 functions as a hydraulic oil tank. The hydraulic pump 22 discharges (supplies) lubricating oil from the transmission case 23 mounted on the machine body 3 to the pump port 20 as hydraulic oil. The tank port 24 is connected to the transmission case 23.

[0045] (Configuration of control valve in control valve unit) 2, the control valve 10 has four positions: a first position 10U, a second position 10D, a third position 10F, and a neutral position 10N. The control valve 11 has four positions: a first position 11U, a second position 11H, a third position 11D, and a neutral position 11N.

[0046] When the operating lever 35, which is configured to be operable in the forward / backward and left / right directions, is operated, the control valves 10 and 11 are operated to switch the supply / discharge state of the hydraulic oil supplied from the hydraulic pump 22, and the angle of the swash plate of the hydraulic pump 22 is controlled by a control signal 80 (see FIG. 3). When the operating lever 35 is operated in the forward / backward direction, the control valve 10 is operated, and when the operating lever 35 is operated in the left / right direction, the control valve 11 is operated.

[0047] The control valve unit 8 is provided with an oil passage 26, an oil passage 28, an oil passage 29, an oil passage 30, an oil passage 41, an oil passage 42, an oil passage 43, and an oil passage 44.

[0048] An oil passage 26 is connected between the control valves 10, 11 and the pump port 20. An oil passage 28 is connected between the control valves 10, 11 and the tank port 24.

[0049] Oil passage 41 connects control valve 10 to first port 31, and oil passage 42 connects control valve 10 to second port 32. Oil passage 43 connects control valve 11 to third port 33, and oil passage 44 connects control valve 11 to fourth port 34.

[0050] Oil passage 29 is hydraulically connected between oil passage 41 and oil passage 28, and is also connected between oil passage 42 and oil passage 28, and a relief valve 19 and a check valve 21 are provided in oil passage 29. Oil passage 30 is hydraulically connected between oil passage 43 and oil passage 28, and is also connected between oil passage 44 and oil passage 28, and a relief valve 19 and a check valve 21 are provided in oil passage 30.

[0051] Outside the control valve unit 8, a hydraulic hose 37 is connected between the first port 31 and the bottom-side oil chamber 17a of the boom cylinder 17, and is also connected between the second port 32 and the rod-side oil chamber 17b of the boom cylinder 17. A hydraulic hose 38 is connected between the third port 33 and the rod-side oil chamber 18a of the bucket cylinder 18, and is also connected between the fourth port 34 and the bottom-side oil chamber 18b of the bucket cylinder 18.

[0052] Hereinafter, a configuration in which the operation of the boom cylinder 17 and the bucket cylinder 18 is controlled by the hydraulic oil discharged from the transmission case 23 by the hydraulic pump 22 using the control valve unit 8 as described above will be described with reference to FIG.

[0053] (Operational state of the boom cylinder control valve) 2 shows a state in which control valve 10 is operated to neutral position 10N. In this state, oil passages 41 and 42 are blocked by neutral position 10N of control valve 10, so that hydraulic oil is not supplied from hydraulic pump 22 to boom cylinder 17, and boom cylinder 17 stops.

[0054] When control valve 10 is operated to first position 10U, hydraulic oil supplied from transmission case 23 to oil passage 26 by hydraulic pump 22 passes through first position 10U of control valve 10, and is supplied to oil chamber 17a of boom cylinder 17 via oil passage 41, first port 31, and hydraulic hose 37. At the same time, hydraulic oil in oil chamber 17b of boom cylinder 17 is discharged to transmission case 23 via hydraulic hose 37, second port 32, oil passage 42, first position 10U of control valve 10, oil passage 28, and tank port 24.

[0055] This causes the boom cylinder 17 to extend, raising the boom 15. When the load on the boom cylinder 17 increases and the pressure in the oil passage 41 exceeds a set value, the relief valve 19 in the oil passage 29 is operated to the open position to discharge the hydraulic oil, thereby reducing the load on the boom cylinder 17.

[0056] When control valve 10 is operated to second position 10D, hydraulic oil supplied from transmission case 23 to oil passage 26 by hydraulic pump 22 passes through second position 10D of control valve 10, and is supplied to oil chamber 17b of boom cylinder 17 via oil passage 42, second port 32, and hydraulic hose 37. At the same time, hydraulic oil in oil chamber 17a of boom cylinder 17 is discharged to transmission case 23 via hydraulic hose 37, first port 31, oil passage 41, second position 10D of control valve 10, oil passage 28, and tank port 24. This causes boom cylinder 17 to contract and lowers boom 15.

[0057] When control valve 10 is operated to third position 10F, third position 10F of control valve 10 connects oil passage 26 to oil passage 28, and connects oil passages 41 and 42 to oil passage 28. This places boom cylinder 17 in a floating state in which it can freely extend and retract.

[0058] (Operational state of the bucket cylinder control valve) 2 shows a state in which the control valve 11 is operated to the neutral position 11N. In this state, the neutral position 11N of the control valve 11 blocks the oil passages 43 and 44, preventing the supply of hydraulic oil from the hydraulic pump 22 to the bucket cylinder 18, and the bucket cylinder 18 stops.

[0059] When the control valve 11 is operated to the first position 11U, the hydraulic oil supplied from the transmission case 23 to the oil passage 26 by the hydraulic pump 22 passes through the first position 11U of the control valve 11, and is supplied to the oil chamber 18a of the bucket cylinder 18 via the oil passage 43, the third port 33, and the hydraulic hose 38. At the same time, the hydraulic oil in the oil chamber 18b of the bucket cylinder 18 is discharged to the transmission case 23 via the hydraulic hose 38, the fourth port 34, the oil passage 44, the first position 11U of the control valve 11, the oil passage 28, and the tank port 24.

[0060] This causes the bucket cylinder 18 to contract, lifting (scooping) the bucket 16. When the load on the bucket cylinder 18 increases and the pressure in the oil passage 43 exceeds the set value, the relief valve 19 in the oil passage 30 is operated to the open position, the hydraulic oil is discharged, and the load on the bucket cylinder 18 is reduced.

[0061] When the control valve 11 is operated to the second position 11H, the hydraulic oil supplied from the transmission case 23 to the oil passage 26 by the hydraulic pump 22 passes through the second position 11H of the control valve 11, and is supplied to the oil chamber 18b of the bucket cylinder 18 via the oil passage 44, the fourth port 34, and the hydraulic hose 38. The second position 11H of the control valve 11 connects the oil passage 43 and the oil passage 44.

[0062] As a result, bucket cylinder 18 is extended at a relatively high speed, and bucket 16 is lowered (dumped) at a relatively high speed. When the load on bucket cylinder 18 increases and the pressure in oil passage 44 exceeds the set value, relief valve 19 in oil passage 30 is operated to the open position, and the load on bucket cylinder 18 is reduced.

[0063] When the control valve 11 is operated to the third position 11D, the hydraulic oil supplied from the transmission case 23 to the oil passage 26 by the hydraulic pump 22 passes through the third position 11D of the control valve 11, and is supplied to the oil chamber 18b of the bucket cylinder 18 via the oil passage 44, the fourth port 34, and the hydraulic hose 38. At the same time, the hydraulic oil in the oil chamber 18a of the bucket cylinder 18 is discharged to the transmission case 23 via the hydraulic hose 38, the third port 33, the oil passage 43, the third position 11D of the control valve 11, the oil passage 28, and the tank port 24.

[0064] This causes the bucket cylinder 18 to extend, lowering (dumping) the bucket 16. When the load on the bucket cylinder 18 increases and the pressure in the oil passage 44 exceeds the set value, the relief valve 19 in the oil passage 30 is operated to the open position, and the load on the bucket cylinder 18 is reduced.

[0065] [Overview of hydraulic circuit control] Referring to FIG. 2, an outline of hydraulic circuit control will be described using FIG. 3 and FIG.

[0066] The control valve unit 8, which is a hydraulic circuit, is controlled by a hydraulic circuit control device (hydraulic control device). The hydraulic circuit control device controls the control valves 10 and 11 of the control valve unit 8 and the angle of the swash plate of the hydraulic pump 22 in accordance with the operation received by the operating lever 35. The hydraulic circuit control device outputs a control signal 80 to adjust the angle of the swash plate of the hydraulic pump 22 to control the discharge flow rate of hydraulic oil discharged from the hydraulic pump 22, and also hydraulically controls the boom cylinder 17 and the bucket cylinder 18 by controlling the operation of the control valves 10 and 11 (adjusting the amount of hydraulic oil supplied).

[0067] That is, the hydraulic pump 22 discharges (supplies) hydraulic oil to hydraulically control the boom cylinder 17 and the bucket cylinder 18 (hereinafter, sometimes collectively referred to as hydraulic actuators). The control valves 10 and 11 of the control valve unit 8 adjust the hydraulic oil supplied from the hydraulic pump 22 to the hydraulic actuators. At this time, bleed-off control is performed to adjust the amount of hydraulic oil discharged from the hydraulic pump 22, taking into account the amount of hydraulic oil discharged (bleed flow rate) returned (discharged) to the transmission case 23 via a virtual bleed circuit, which is a discharge oil path and is assumed to connect the control valves 10 and 11 to the hydraulic oil tank via a bypass line. In addition, a table describing the correspondence between the virtual bleed flow rate 75 or virtual bleed differential pressure 81 (see FIG. 6 ) and the pump displacement is set in advance, thereby determining the relationship between the virtual bleed flow rate 75 or virtual bleed differential pressure 81 and the pump displacement. The hydraulic pump 22 adjusts the amount of hydraulic oil discharged based on this relationship.

[0068] The operating lever 35 is equipped with an operating amount sensor 35a that detects an operating amount 72 (operating position) when operated. The hydraulic pump 22 is equipped with a discharge pressure sensor 22a that detects a discharge pressure 74 of the hydraulic oil being discharged. The control device for the hydraulic circuit is equipped with a control unit 46, which outputs a target pump flow rate 86 (see FIG. 10 ) for the hydraulic actuator that takes the bleed flow rate into consideration, according to the operating amount 72 of the operating lever 35, and generates a control signal 80 according to the target pump flow rate 86 to control the angle of the swash plate of the hydraulic pump 22. The control unit 46 also determines the amount of movement of the control valve 10 or the control valve 11 according to the operating position of the operating lever 35. The control unit 46 then outputs a signal according to the amount of movement of the control valve 10 or the control valve 11 to control the control valve 10 or the control valve 11.

[0069] The control unit 46 outputs virtual bleed information such as a virtual bleed flow rate 75 (a virtual bleed information output process). The virtual bleed information indicates the state of the hydraulic oil flowing through the virtual bleed circuit, and is output, for example, using a discharge pressure 74 and the characteristics (virtual bleed characteristics) of the virtual bleed circuit, and is information calculated taking into account the bleed flow rate. The virtual bleed information is output using the discharge pressure 74 of the hydraulic oil discharged from the hydraulic pump 22, and is therefore information that takes into account the load (pressure) in the oil passage (hydraulic circuit) that is in a loaded state. The control unit 46 also outputs requested bleed information such as a requested bleed flow rate 77 (a requested bleed information output process). The requested bleed information indicates the state of the hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform the desired operation corresponding to the manipulated variable 72. In other words, the requested bleed information is output from the manipulated variable 72, and is information calculated taking into account the actual flow rate of the hydraulic oil required to operate the hydraulic actuator, taking into account the bleed flow rate. The control unit 46 compares the virtual bleed information with the required bleed information (comparison step), determines a target control value according to the comparison result, and generates a control signal 80 according to the target control value (target control value determination step). The control unit 46 controls the hydraulic pump 22 according to the control signal 80 (target control value) (pump control step). The virtual bleed information is output by, for example, a virtual bleed information output unit, and the required bleed information is output by, for example, a required bleed information output unit.

[0070] Generally, in the case of a bleed-controlled pump circuit, the operating speed of the boom cylinder 17 or bucket cylinder 18 may change depending on the load conditions.

[0071] According to this embodiment, the virtual bleed information is compared with the required bleed information, and a control signal 80 is generated in accordance with the comparison result, taking the load condition into consideration. This makes it possible to change the characteristics of the discharge flow rate of hydraulic oil discharged from the hydraulic pump 22 in accordance with the load condition. In other words, when the load condition is light, the hydraulic pump 22 can discharge hydraulic oil at a discharge flow rate based on the required flow rate 76 in accordance with the operation amount 72 of the operation lever 35. When the load condition is heavy, the discharge flow rate discharged from the hydraulic pump 22 can be reduced in accordance with the load.

[0072] Furthermore, when the load state is light, the control signal 80 is generated based on the required flow rate 76 corresponding to the operation amount 72, without depending on the discharge pressure 74, so the operation speed is stabilized and operability is improved. Furthermore, when the load state is heavy, the pump discharge flow rate is reduced according to the load, so the operation speeds of the boom cylinder 17 and bucket cylinder 18 are suppressed.

[0073] [Hydraulic circuit control] Next, a specific hydraulic circuit control device and control method will be described with reference to FIG. 2 and using FIGS.

[0074] The control device for the hydraulic circuit includes a control unit 46 and a memory unit 47, and is connected in a state capable of data communication with the operation amount sensor 35a of the operating lever 35, the discharge pressure sensor 22a of the hydraulic pump 22, the hydraulic pump 22, the control valve 10, and the control valve 11. The operation amount sensor 35a detects an operation amount 72 (operation position) of the operating lever 35, and stores the operation amount 72 in the memory unit 47. The discharge pressure sensor 22a detects a discharge pressure 74 of the hydraulic pump 22, and stores the discharge pressure 74 in the memory unit 47. The control device may be provided as a standalone device, or part or all of it may be provided in the operating lever 35 or the hydraulic pump 22.

[0075] The memory unit 47 stores various tables indicating predetermined correspondence relationships and various values ​​(information, acquired and output values). The amount of hydraulic oil (required flow rate 76) that needs to be discharged from the hydraulic pump 22 in response to the operation amount 72 of the operating lever 35 can be predicted in advance by considering the bleed flow rate. The opening area 73 (virtual bypass opening area) of the virtual bleed circuit is the opening area of ​​a virtual control valve provided on the inlet side of the virtual bleed circuit (closer to the hydraulic pump 22 than a virtual throttle resistor described below), and the bleed flow rate is determined by the opening area 73 and the differential pressure conditions before and after the opening area 73. In addition, the virtual bleed differential pressure 81 (see FIG. 6), which is the differential pressure before and after the virtual throttle resistor provided on the outlet side of the virtual bleed circuit (closer to the hydraulic oil tank than the virtual control valve), is also determined according to the bleed flow rate. Note that the virtual throttle resistor may be a fixed throttle with a constant opening area 73 or a variable throttle whose opening area 73 can be changed. Taking the above into consideration, various tables are determined in advance and stored in the memory unit 47. The storage unit 47 is not limited to storing various tables, and may store information indicating an arbitrary correspondence relationship instead of at least some of the tables. The control unit 46 can also operate using information indicating an arbitrary correspondence relationship instead of various tables described below.

[0076] An opening area table 49 stored in the memory unit 47 describes the correspondence relationship between an opening area 73 of the virtual bleed circuit and an operation amount 72 corresponding to the operation lever 35. A required flow rate table 50 stored in the memory unit 47 describes the correspondence relationship between the operation amount 72 and a required flow rate 76, which is the flow rate of hydraulic oil that takes into account the bleed flow rate discharged from the hydraulic pump 22 and that needs to be supplied to the hydraulic actuator to cause the hydraulic actuator to perform a desired operation according to the operation amount 72. Furthermore, a bleed flow rate table 51 stored in the memory unit 47 describes the correspondence relationship between the pump capacity and the bleed flow rate, and therefore the required flow rate 76 is output as a required pump capacity based on the rotation speed of the pump drive source (engine 4, electric motor, etc.).

[0077] The control unit 46 in this embodiment includes a pump control unit 48, an opening area output unit 57, a virtual bleed flow rate output unit 58, a required flow rate output unit 59, a required bleed flow rate output unit 60, a flow rate comparison unit 61, and a target control value determination unit 63. The respective functions may be integrated into the target control value determination unit 63.

[0078] The opening area output unit 57 determines the opening area 73 according to the detected operation amount 72 corresponding to the operation lever 35 based on the opening area table 49 (step #1 in FIG. 5, opening area output step).

[0079] Virtual bleed flow rate output unit 58, which is an example of a virtual bleed information output unit, outputs virtual bleed flow rate 75, which is the flow rate of hydraulic oil flowing through the virtual bleed circuit, as virtual bleed information based on opening area 73 and discharge pressure 74 (step #2 in Figure 5, virtual bleed flow rate output process).

[0080] For example, if the virtual bleed flow rate 75 is Q, the virtual bleed flow rate 75 is output from equation (1).

number

[0081] Here, the virtual bleed flow rate 75 takes into consideration the load conditions of the hydraulic circuit because it takes into consideration the opening area 73, the discharge pressure 74, and the virtual bleed differential pressure 81. Furthermore, the discharge pressure 74 corresponds to the actual pump pressure of the hydraulic pump 22. Note that the virtual bleed flow rate 75 is not limited to being output from the opening area 73 and the discharge pressure 74, and may be output using a table indicating the correspondence relationship between the opening area 73, the discharge pressure 74, and the virtual bleed flow rate 75.

[0082] The required flow rate output unit 59 determines a required flow rate 76 corresponding to the detected operation amount 72 for the operating lever 35 based on the required flow rate table 50 (step #3 required flow rate output process in FIG. 5). The required flow rate 76 is determined according to the operation amount 72 for the operating lever 35, and is a flow rate determined in advance in association with the operation amount 72 as the flow rate of hydraulic oil that takes into account the bleed flow rate discharged from the hydraulic pump 22.

[0083] A required bleed flow rate output unit 60, which is an example of a required bleed information output unit, calculates a required bleed flow rate 77 from the required flow rate 76 calculated by the required flow rate output unit 59, based on the bleed flow rate table 51 (step #4, required bleed flow rate output process, in FIG. 5 ). The required bleed flow rate 77 is the flow rate of hydraulic oil that needs to be flowed through the virtual bleed circuit in order to cause the hydraulic actuator to perform the desired operation according to the manipulated variable 72. The required bleed flow rate 77 corresponds to a flow rate specified as the bleed flow rate when hydraulic oil is discharged from the hydraulic pump 22 at the required flow rate 76. Note that, although the required bleed flow rate 77 is calculated using the required flow rate table 50 and the bleed flow rate table 51, the required bleed flow rate 77 may also be calculated from the manipulated variable 72 using a table in which a correspondence relationship between the manipulated variable 72 and the required bleed flow rate 77 is predetermined.

[0084] The flow rate comparison unit 61 compares the virtual bleed flow rate 75 with the required bleed flow rate 77 (step #5 in FIG. 5, bleed flow rate comparison process), and outputs the larger flow rate as the target bleed flow rate 78 (step #6 in FIG. 5, target bleed flow rate output process).

[0085] The target control value determination unit 63 outputs a target pump flow rate corresponding to the target bleed flow rate 78 based on the bleed flow rate table 51 as a control signal 80 so that the working oil is discharged from the hydraulic pump 22 and supplied to the boom cylinder 17 and the bucket cylinder 18 (#7 control signal output step).

[0086] The angle of the swash plate of the hydraulic pump 22 is controlled via the pump control unit 48 in accordance with the target pump flow rate 86 which is the control signal 80 .

[0087] In this way, by comparing the virtual bleed flow rate 75, which is virtual bleed information, with the requested bleed flow rate 77, which is requested bleed information, to determine the target bleed flow rate 78 and generate the control signal 80, when the load state is light, the hydraulic pump 22 can discharge hydraulic oil at a discharge flow rate based on the requested flow rate 76 corresponding to the operation amount 72 of the operating lever 35. When the load state is heavy, the discharge flow rate discharged from the hydraulic pump 22 can be reduced according to the load. As a result, a flow rate corresponding to the lever operation amount is supplied, achieving an appropriate operation speed and improving operability. Furthermore, under load conditions where the virtual bleed flow rate 75 is equal to or greater than the requested bleed flow rate 77, the operating speeds of the boom cylinder 17 and the bucket cylinder 18 are suppressed.

[0088] [Pump control command pressure output section] Next, a specific example of the pump control command pressure output unit 62 will be described using FIGS. 12 to 14 while also referring to FIGS. 2 and 4. FIG.

[0089] The target pump displacement output unit 89 outputs a target pump displacement 95 from the target bleed flow rate 78 (step #71 in FIG. 14, target pump displacement output step). The target pump displacement 95 is the pump displacement of the hydraulic pump 22 when hydraulic oil at an appropriate discharge flow rate is supplied from the hydraulic pump 22 as a result of bleed-off control. The pump control unit 48 may also control the hydraulic pump 22 so that the displacement of the hydraulic pump 22 approaches the target pump displacement 95.

[0090] The actual pump displacement acquisition unit 90 outputs an actual pump displacement 97 based on a swash plate angle 96 of the hydraulic pump 22 detected by a swash plate angle sensor 87 (step #72, actual pump displacement acquisition process, in FIG. 14). The hydraulic pump 22 is equipped with a swash plate angle sensor 87, and the swash plate angle 96 is detected by the swash plate angle sensor 87. The swash plate angle 96 is the angle of the swash plate of the hydraulic pump 22. When the angle of the swash plate is changed, the pump volume (pump displacement) of the hydraulic pump 22 is changed, and the hydraulic pump 22 discharges hydraulic oil at a discharge flow rate corresponding to the pump displacement. Therefore, if the swash plate angle 96 is known, the pump displacement of the hydraulic pump 22 is uniquely determined. Note that the actual pump displacement 97 may be output based on the swash plate angle 96, but the actual pump displacement 97 may also be acquired by any method.

[0091] The difference output unit 91 outputs a differential displacement 98, which is the difference between the target pump displacement 95 and the actual pump displacement 97 (step #73 in FIG. 14: difference output process). Note that the pump control unit 48 may control the hydraulic pump 22 so as to reduce the differential displacement 98.

[0092] When the angle of the swash plate is controlled in accordance with the target pump flow rate 86, which is the target control value, the pump control command pressure output unit 62 corrects the pump control command pressure output by any method in accordance with the differential capacity 98 between the actual pump capacity 97 and the target pump capacity 95, and outputs the corrected pressure as a new pump control command pressure.

[0093] The pump control command pressure output unit 62 receives the opening area 73, the target bleed flow rate 78, and the swash plate angle 96, and outputs a target command pressure 79.

[0094] The pump control command pressure output unit 62 includes a virtual bypass differential pressure output unit 88, a target pump displacement output unit 89, an actual pump displacement acquisition unit 90, a difference output unit 91, a virtual bypass differential pressure adjustment unit 92, and a target command pressure output unit 93.

[0095] The virtual bypass differential pressure output unit 88 outputs a virtual bypass differential pressure 94 from the opening area 73 and the target bleed flow rate 78 (step #74 in FIG. 14: virtual bypass differential pressure output process). The virtual bypass differential pressure 94 is the pressure of the hydraulic oil that is virtually discharged (bled) from the hydraulic circuit during bleed-off control. Specifically, if the virtual bypass differential pressure 94 is ΔP, the virtual bypass differential pressure 94 is output by the following equation (2).

number

[0096] The virtual bypass differential pressure adjusting unit 92 adjusts the virtual bypass differential pressure 94 using the differential capacity 98 and outputs a target virtual bypass differential pressure 99 (step #75, virtual bypass differential pressure adjusting step, in FIG. 14 ). Specifically, the virtual bypass differential pressure adjusting unit 92 corrects the virtual bypass differential pressure 94 by feedback-controlling the virtual bypass differential pressure 94 using the differential capacity 98. The target pump displacement 95 is the control signal 80 output by the target control value determining unit 63, and the swash plate angle 96 of the hydraulic pump 22 is set to the target swash plate angle. The actual pump displacement 97 reflects the actual swash plate angle. Therefore, the differential capacity 98 reflects the difference between the target swash plate angle and the actual swash plate angle. As a result, the target virtual bypass differential pressure 99 becomes a differential pressure obtained by feedback-controlling the virtual bypass differential pressure 94 so that the difference between the target swash plate angle and the actual swash plate angle is eliminated (reduced).

[0097] The target command pressure output unit 93 outputs the target command pressure 79 from the target virtual bypass differential pressure 99 (step #76 in FIG. 14, target command pressure output process). Specifically, the target command pressure 79 is output by adding the virtual bleed differential pressure 81 at the virtual bleed circuit outlet generated by the target bleed flow rate 78 to the target virtual bypass differential pressure 99. In addition, back pressure conditions such as the pressure in a hydraulic oil tank downstream may also be taken into consideration.

[0098] The target virtual bypass differential pressure 99 is a differential pressure obtained by feedback-controlling the virtual bypass differential pressure 94 based on the target swash plate angle and the actual swash plate angle, and therefore the target command pressure 79 calculated from the target virtual bypass differential pressure 99 is a command pressure in which the deviation between the target swash plate angle and the actual swash plate angle is suppressed. As a result, by controlling the hydraulic pump 22 using the target command pressure 79, the discharge flow rate of the hydraulic oil discharged from the hydraulic pump 22 in accordance with the operation amount 72 of the control lever 35 becomes the target pump flow rate 86.

[0099] In addition, instead of the virtual bypass differential pressure 94, the pump control unit 48 may control the hydraulic pump 22 by making a correction according to the difference (differential capacity 98) between the actual pump capacity 97 and the target pump capacity 95 relative to the discharge pressure 74 of the hydraulic pump 22 when the hydraulic pump 22 discharges hydraulic oil corresponding to the target control value (control signal 80), or the immediately preceding target command pressure 79 (hydraulic pump control command pressure).

[0100] [Bleed flow rate table] As described above, the relationship between the pump capacity and the bleed flow rate can be set in advance using the bleed flow rate table 51. In other words, the relationship between the pump capacity and the bleed flow rate can be arbitrarily adjusted in advance.

[0101] In conventional bleed-off control, the relationship between the discharge flow rate (pump capacity) actually discharged from the hydraulic pump 22 and the bleed flow rate is uniquely determined, as shown by the dashed line in FIG.

[0102] In this embodiment, since the bleed circuit is virtualized, the flow rate characteristics of the hydraulic pump 22 for the load conditions can be easily changed by adjusting the bleed flow rate table 51. It is also easy to change the sensitivity of the pump capacity (pump volume) to changes in the virtual bleed flow rate 75 for only a specific operation.

[0103] [Another embodiment] (1) The virtual bleed information is not limited to the virtual bleed flow rate 75 but may be a virtual bleed differential pressure 81, and the required bleed information is not limited to the required bleed flow rate 77 but may be a required bleed differential pressure 82. The virtual bleed differential pressure 81 is a differential pressure across a virtual throttle resistance set at the outlet of the virtual bleed circuit. The required bleed differential pressure 82 is a differential pressure across the virtual throttle resistance required to cause the hydraulic actuator to perform the desired operation according to the manipulated variable 72.

[0104] Hereinafter, a control device for a hydraulic circuit that compares a virtual bleed differential pressure 81 with a required bleed differential pressure 82 to generate a control signal 80 will be described using Figures 6 and 7, with reference to Figure 2. Note that a description of the same configuration as in the above embodiment may be omitted.

[0105] As in the above embodiment, the control device for the hydraulic circuit includes a control unit 46 and a storage unit 47 , and generates a control signal 80 in response to an operation amount 72 and a discharge pressure 74 .

[0106] The storage unit 47 stores in advance the above-mentioned opening area table 49, the above-mentioned required flow rate table 50, the virtual bleed differential pressure table 52, and the required bleed differential pressure table 53 as various tables.

[0107] The virtual bleed differential pressure table 52 shows the correspondence relationship between the virtual bleed flow rate 75 and the virtual bleed differential pressure 81. The required bleed differential pressure table 53 describes the correspondence relationship between the required flow rate 76 and the required bleed differential pressure 82. The bleed differential pressure is the differential pressure across the virtual throttling resistance of the bled hydraulic oil. The required bleed differential pressure 82 is the differential pressure across the virtual throttling resistance of the bled hydraulic oil that is predetermined in consideration of bleed-off control and corresponds to the operation amount 72 of the operating lever 35.

[0108] The control unit 46 includes the opening area output unit 57, the virtual bleed flow rate output unit 58, the virtual bleed differential pressure output unit 64, the required flow rate output unit 59, the required bleed differential pressure output unit 65, the bleed differential pressure comparison unit 66, the target control value determination unit 63, and the pump control unit 48. Each function may be integrated into the target control value determination unit 63 as appropriate.

[0109] As described above, the opening area output unit 57 determines the opening area 73 corresponding to the detected operation amount 72 of the operating lever 35 based on the opening area table 49 (step #1 in FIG. 7, opening area output step).

[0110] As described above, the virtual bleed flow rate output unit 58 outputs the virtual bleed flow rate 75 from the opening area 73 and the discharge pressure 74 (Step #2 in FIG. 7: virtual bleed flow rate output step). Note that the virtual bleed flow rate output unit 58 (control unit 46) may output the virtual bleed flow rate 75 from the manipulated variable 72 and the discharge pressure 74 using a table indicating the correspondence relationship between the manipulated variable 72, the discharge pressure 74, and the virtual bleed flow rate 75.

[0111] A virtual bleed differential pressure output unit 64, which is an example of a virtual bleed information output unit, outputs a virtual bleed differential pressure 81 calculated from the virtual bleed flow rate 75 as virtual bleed information (step #3 in FIG. 7, virtual bleed differential pressure output step).

[0112] For example, the virtual bleed differential pressure output unit 64 outputs the virtual bleed differential pressure 81 from the virtual bleed flow rate 75 using the virtual bleed differential pressure table 52 that indicates the correspondence between the virtual bleed flow rate 75 and the virtual bleed differential pressure 81 .

[0113] The virtual bleed differential pressure 81 is a differential pressure across a virtual throttle resistor provided in the virtual bleed circuit, and takes into account the actual pump pressure (load conditions).

[0114] As described above, the required flow rate output unit 59 determines the required flow rate 76 according to the detected operation amount 72 corresponding to the operating lever 35 based on the required flow rate table 50 (step #4 in FIG. 7, required flow rate output step).

[0115] A required bleed differential pressure output unit 65, which is an example of a required bleed information output unit, calculates a required bleed differential pressure 82 as required bleed information from the required flow rate 76 calculated by the required flow rate output unit 59, based on the required bleed differential pressure table 53 (step #5 in FIG. 7: required bleed differential pressure output process). The required bleed differential pressure 82 is a differential pressure across the virtual throttling resistance of hydraulic oil bled when hydraulic oil is discharged from the hydraulic pump 22 at the required flow rate 76. The required bleed differential pressure output unit 65 (control unit 46) may calculate the required bleed differential pressure 82 using a required bleed flow rate 77, which is the flow rate of hydraulic oil that needs to be flowed through the virtual bleed circuit to cause the hydraulic actuator to perform the desired operation corresponding to the manipulated variable 72, without using the required flow rate table 50 and the required bleed differential pressure table 53. In this case, the required bleed flow rate 77 may be determined from the operation amount 72 using a table indicating the correspondence relationship between the operation amount 72 and the required bleed flow rate 77, or may be determined from the required flow rate 76 using a table indicating the correspondence relationship between the required flow rate 76 and the required bleed flow rate 77. The required bleed differential pressure output unit 65 (control unit 46) then determines the required bleed differential pressure 82 from the required bleed flow rate 77 using a table indicating the correspondence relationship between the required bleed flow rate 77 and the required bleed differential pressure 82.

[0116] The bleed differential pressure comparison unit 66 compares the virtual bleed differential pressure 81 with the required bleed differential pressure 82 (step #6 in FIG. 7), and outputs the larger bleed differential pressure as the target bleed differential pressure 83 (step #7 in FIG. 7, bleed differential pressure comparison process).

[0117] As described above, the target control value determination unit 63 generates the control signal 80 for controlling the angle of the swash plate of the hydraulic pump 22 from the target bleed differential pressure 83 so that work oil corresponding to the target bleed differential pressure 83 is discharged from the hydraulic pump 22 and supplied to the boom cylinder 17 and the bucket cylinder 18 (step #8 in FIG. 7: generation process).

[0118] The angle of the swash plate of the hydraulic pump 22 is controlled via the pump control unit 48 in response to the control signal 80 .

[0119] In this manner, even with a configuration in which the target bleed differential pressure 83 is determined by comparing the virtual bleed differential pressure 81, which is virtual bleed information, with the required bleed differential pressure 82, which is required bleed information, to generate the control signal 80, similarly to the above embodiment, when the load state is small, hydraulic oil can be discharged from the hydraulic pump 22 at a discharge flow rate based on the required flow rate 76, which corresponds to the operation amount 72 of the operating lever 35. As a result, a flow rate corresponding to the lever operation amount is supplied, achieving an appropriate operation speed and improving operability. Furthermore, under load conditions in which the virtual bleed flow rate 75 is equal to or greater than the required bleed flow rate 77, the operation speeds of the boom cylinder 17 and the bucket cylinder 18 are suppressed.

[0120] (2) The virtual bleed differential pressure 81, which is virtual bleed information, may be determined from the virtual bleed flow rate 75, or may be determined from the discharge pressure 74 or the like.

[0121] Hereinafter, a control device for a hydraulic circuit that compares a virtual bleed differential pressure 81 calculated from the discharge pressure 74 and the like with a required bleed differential pressure 82 to generate a control signal 80 will be described using Figures 8 and 9, while also referring to Figure 2. Note that a description of the same configuration as in the above embodiment or another embodiment (1) may be omitted.

[0122] As in the above embodiment and the alternative embodiment (1), the control device for the hydraulic circuit includes a control unit 46 and a storage unit 47, and generates a control signal 80 in response to an operation amount 72 and a discharge pressure 74.

[0123] The storage unit 47 stores in advance the above-mentioned opening area table 49, virtual bleed differential pressure table 55, required flow rate table 50, and required bleed differential pressure table 53 as various tables.

[0124] The virtual bleed differential pressure table 55 describes the correspondence relationship between the opening area 73, the discharge pressure 74, and the virtual bleed differential pressure 81. The virtual bleed differential pressure 81 is the differential pressure across the virtual throttle resistor provided in the virtual bleed circuit. The virtual bleed differential pressure 81 takes into account the actual pump pressure (load conditions).

[0125] The control unit 46 includes the opening area output unit 57, the virtual bleed differential pressure output unit 68, the required flow rate output unit 59, the required bleed differential pressure output unit 65, the bleed differential pressure comparison unit 66, the target control value determination unit 63, and the pump control unit 48. The respective functions may be integrated into the target control value determination unit 63 as appropriate.

[0126] As described above, the opening area output unit 57 determines the opening area 73 corresponding to the detected operation amount 72 of the operating lever 35 based on the opening area table 49 (step #1 in FIG. 9, opening area output process).

[0127] A virtual bleed differential pressure output unit 68, which is an example of a virtual bleed information output unit, determines, as virtual bleed information, a virtual bleed differential pressure 81 corresponding to the opening area 73 and discharge pressure 74 determined by the opening area output unit 57, based on the virtual bleed differential pressure table 55 (step #2 in FIG. 9: virtual bleed differential pressure output process). Note that, without using the opening area table 49 and the virtual bleed differential pressure table 55, the virtual bleed differential pressure output unit 68 (control unit 46) may output the virtual bleed differential pressure 81 from the operation amount 72 and the discharge pressure 74, using a table indicating the correspondence relationship between the operation amount 72, the discharge pressure 74, and the virtual bleed differential pressure 81.

[0128] As described above, the required flow rate output unit 59 determines the required flow rate 76 corresponding to the detected operation amount 72 of the operating lever 35 based on the required flow rate table 50 (step #3 in FIG. 9, required flow rate output step).

[0129] As described above, the required bleed differential pressure output unit 65, which is an example of a required bleed information output unit, calculates the required bleed differential pressure 82 as required bleed information from the required flow rate 76 calculated in the required flow rate output unit 59, based on the required bleed differential pressure table 53 (step #4 in FIG. 9: required bleed differential pressure output step). Note that, without using the required flow rate table 50 and the required bleed differential pressure table 53, the required bleed differential pressure output unit 65 (control unit 46) may output the required bleed differential pressure 82 from the operation amount 72 by using a table indicating the correspondence relationship between the operation amount 72 and the required bleed differential pressure 82.

[0130] As described above, the bleed differential pressure comparison unit 66 compares the virtual bleed differential pressure 81 with the required bleed differential pressure 82 (step #5 in FIG. 9), and outputs the larger bleed differential pressure as the target bleed differential pressure 83 (step #6 in FIG. 9, bleed differential pressure comparison process).

[0131] As described above, the target control value determination unit 63 generates the control signal 80 for controlling the angle of the swash plate of the hydraulic pump 22 from the target bleed differential pressure 83 so that work oil corresponding to the target bleed differential pressure 83 is discharged from the hydraulic pump 22 and supplied to the boom cylinder 17 and the bucket cylinder 18 (step #7 in FIG. 9: generation process).

[0132] The angle of the swash plate of the hydraulic pump 22 is controlled via the pump control unit 48 in response to the control signal 80 .

[0133] Even in a configuration in which a target bleed differential pressure 83 is determined by comparing a virtual bleed differential pressure 81, which is virtual bleed information, with a required bleed differential pressure 82, which is required bleed information, as in alternative embodiment (2), and a control signal 80 is generated, when the load state is small, hydraulic oil can be discharged from the hydraulic pump 22 at a discharge flow rate based on a required flow rate 76 corresponding to an operation amount 72 of the operating lever 35, as in the above embodiment and alternative embodiment (1). As a result, a flow rate corresponding to the lever operation amount is supplied, an appropriate operation speed can be achieved, and operability is improved. Furthermore, under load conditions in which the virtual bleed flow rate 75 is equal to or greater than the required bleed flow rate 77, the operating speeds of the boom cylinder 17 and the bucket cylinder 18 are suppressed.

[0134] (3) The virtual bleed information may be the virtual pump flow rate 84, and the required bleed information may be the required pump flow rate 85.

[0135] Hereinafter, a hydraulic circuit control device that generates a control signal 80 by comparing a virtual pump flow rate 84 with a required pump flow rate 85 will be described using Figures 10 and 11, with reference to Figure 2. Note that a description of the same configuration as in the above embodiment or other embodiments (1) and (2) may be omitted.

[0136] As in the above embodiment, the control device for the hydraulic circuit includes a control unit 46 and a storage unit 47 , and generates a control signal 80 in response to an operation amount 72 and a discharge pressure 74 .

[0137] The storage unit 47 stores in advance the above-mentioned opening area table 49, virtual pump flow rate table 56, and required flow rate table 50 as various tables.

[0138] The virtual pump flow rate table 56 describes the correspondence relationship between the opening area 73, the discharge pressure 74, and the virtual pump flow rate 84. The virtual pump flow rate 84 is a pump flow rate that takes into account bleed-off control according to the operation amount 72 of the control lever 35 and the actual pump pressure (load condition).

[0139] The control unit 46 includes the aforementioned opening area output unit 57, virtual pump flow rate output unit 69, the aforementioned required flow rate output unit 59, a pump flow rate comparison unit 70, the aforementioned target control value determination unit 63, and the aforementioned pump control unit 48. The respective functions may be integrated into the target control value determination unit 63 as appropriate.

[0140] As described above, the opening area output unit 57 determines the opening area 73 corresponding to the detected operation amount 72 of the operating lever 35 based on the opening area table 49 (step #1 in FIG. 11, opening area output process).

[0141] A virtual pump flow rate output unit 69, which is an example of a virtual bleed information output unit, calculates a virtual pump flow rate 84 corresponding to the opening area 73 and discharge pressure 74 calculated by the opening area output unit 57, based on the virtual pump flow rate table 56 (step #2 in FIG. 11 , virtual pump flow rate output process). Note that the virtual pump flow rate output unit 69 (control unit 46) may output the virtual pump flow rate 84 from the operation amount 72 and the discharge pressure 74, without using the opening area table 49 and the virtual pump flow rate table 56, but using a table indicating the correspondence between the operation amount 72, the discharge pressure 74, and the virtual pump flow rate 84, which is the flow rate of hydraulic oil discharged from the hydraulic pump 22 when a virtual bleed circuit is assumed.

[0142] As described above, the required flow rate output unit 59, which is an example of a required bleed information output unit, calculates the required flow rate 76 corresponding to the detected operation amount 72 of the operating lever 35 as the required pump flow rate 85 based on the required flow rate table 50 (step #3 in FIG. 11: required flow rate output process).

[0143] The pump flow rate comparison unit 70 compares the virtual pump flow rate 84 with the required pump flow rate 85 (step #4 in FIG. 11), and outputs the smaller flow rate as the target pump flow rate 86 (step #5 in FIG. 11, pump flow rate comparison step).

[0144] As described above, the target control value determination unit 63 generates the control signal 80 for controlling the angle of the swash plate of the hydraulic pump 22 from the target pump flow rate 86 so that work oil corresponding to the target pump flow rate 86 is discharged from the hydraulic pump 22 and supplied to the boom cylinder 17 and the bucket cylinder 18 (step #6 in FIG. 11: generation process).

[0145] The angle of the swash plate of the hydraulic pump 22 is controlled via the pump control unit 48 in response to the control signal 80 .

[0146] In this manner, even with a configuration in which the target pump flow rate 86 is determined by comparing the virtual pump flow rate 84, which is virtual bleed information, with the required pump flow rate 85, which is required bleed information, and the control signal 80 is generated, as in the above embodiment and alternative embodiments (1) and (2), when the load state is light, hydraulic oil can be discharged from the hydraulic pump 22 at a discharge flow rate based on the required flow rate 76 corresponding to the operation amount 72 of the operation lever 35. When the load state is heavy, the discharge flow rate discharged from the hydraulic pump 22 can be reduced according to the load. As a result, a flow rate corresponding to the lever operation amount is supplied, an appropriate operation speed can be achieved, and operability is improved. Furthermore, under load conditions in which the virtual bleed flow rate 75 is equal to or greater than the required bleed flow rate 77, the operation speeds of the boom cylinder 17 and the bucket cylinder 18 are suppressed.

[0147] (4) In the above-described other embodiments (1) to (3), the target bleed flow rate 78 and the target command pressure 79 may be output from the target bleed differential pressure 83 or the target pump flow rate 86, and the target control value determination unit 63 may generate the control signal 80 from the target command pressure 79. This makes it possible to generate the control signal 80 with higher accuracy and control the operation of the hydraulic pump 22.

[0148] Alternatively, the flow rate may be determined from the swash plate angle 96 of the hydraulic pump 22, and the target pump flow rate 86 may be feedback-controlled using this flow rate. This allows the control signal 80 to be generated with higher accuracy.

[0149] (5) In the above embodiment or the other embodiments (1) to (3), the control signal 80 may be obtained from the virtual bleed information or the required bleed information by any method.

[0150] (6) In each of the above embodiments, the configuration of the control valve unit 8 is not limited to the configuration shown in Fig. 2 as long as it can control the supply of hydraulic oil to each hydraulic actuator. For example, the configuration of the oil passages, the configuration of the control valves 10 and 11, and the presence or absence and configuration of the relief valve 19 can be any configuration depending on the configuration of the working device.

[0151] (7) In the above embodiment or each of the other embodiments, the operating lever 35 is not limited to a lever but may be an operating tool of any configuration, such as a switch. Furthermore, the configuration is not limited to one operating lever 35 (operating tool) accepting operations for multiple hydraulic actuators, and an operating tool may be provided for each of one or multiple hydraulic actuators.

[0152] (8) In the above embodiment or each of the other embodiments, the hydraulic actuator is not limited to two, the boom cylinder 17 and the bucket cylinder 18, but may be one or three or more. For example, the front loader 13 may be configured to be able to swing an arm in addition to the boom 15 and the bucket 16, and may be provided with an arm cylinder in addition to the boom cylinder 17 and the bucket cylinder 18. A control valve for controlling the arm cylinder may be provided in the control valve unit 8, and this control valve may be controlled in the same way as the control valves 10 and 11.

[0153] (9) The hydraulic actuator is not limited to one that operates the front loader 13, and may be configured to operate various types of work implements. Furthermore, the work implements may be mounted on various types of equipment, including agricultural machinery, construction machinery, and other work machines.

[0154] (10) In each of the above embodiments, the information output using various tables is not limited to the format of a table, and may be output in any manner based on the correspondence relationships shown in the tables. (11) In each of the above embodiments, the configuration is not limited to one in which only one virtual bleed circuit is provided, and multiple virtual bleed circuits may be provided. For example, a virtual bleed circuit may be provided for each actuator.

[0155] (12) In each of the above embodiments, the control unit 46 is not limited to being configured with the above-described functional blocks, but may be configured with any functional blocks. For example, each functional block of the control unit 46 may be further subdivided, or conversely, some or all of the functional blocks may be combined. Furthermore, the functions of the control unit 46 are not limited to the above-described functional blocks, and may be realized by a method executed by any functional block. Furthermore, some or all of the functions of the control unit 46 may be configured with software. A program related to the software is stored in any storage device such as the storage unit 47, and is executed by a processor such as a CPU included in the control unit 46 or a separately provided processor. [Industrial Applicability]

[0156] The present invention can be applied to the control of a hydraulic circuit that controls a hydraulic actuator that operates any working device. [Explanation of symbols]

[0157] 10. Control valve 11 Control valve 17 Boom cylinder (hydraulic actuator) 18 Bucket cylinder (hydraulic actuator) 22 Hydraulic pump 23 Transmission case (hydraulic oil tank) 35 Operating lever (operating tool) 48 Pump control section 63 Target control value determination unit 72 Manipulated amount 73 Opening area (A virtual bypass opening area) 74 Discharge pressure (Pd) 75 Virtual bleed flow rate (Q Virtual bleed information) 76 Demand flow rate 77 Required bleed flow rate (required bleed information) 81 Virtual bleed differential pressure (virtual bleed information) 82 Required bleed differential pressure (required bleed information) 84 Virtual pump flow rate (virtual bleed information) 85 Required pump flow rate (required bleed information) 90 Actual pump capacity acquisition section 95 Target pump capacity 97 Actual pump capacity

Claims

1. A hydraulic control device for controlling a hydraulic circuit including a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches a supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator in accordance with an operation amount of an operating tool, a virtual bleed information output unit that outputs virtual bleed information indicating a state of the hydraulic oil flowing through the virtual bleed circuit based on an operation amount of the operating tool, a discharge pressure of the hydraulic pump, and a preset virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to connect the control valve and a hydraulic oil tank via a bypass line; a required bleed information output unit that outputs required bleed information indicating a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation according to the operation amount; a target control value determination unit that determines a target control value of the hydraulic pump in accordance with a comparison result between the virtual bleed information and the required bleed information; a pump control unit that controls the hydraulic pump in accordance with the target control value, the virtual bleed information output unit outputs the virtual bypass opening area corresponding to the manipulated variable based on a correspondence relationship between the manipulated variable and a virtual bypass opening area, which is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, and outputs a virtual bleed flow rate, which is a flow rate of hydraulic oil flowing through the virtual bleed circuit, output based on the virtual bypass opening area corresponding to the manipulated variable and the discharge pressure, as the virtual bleed information; the required bleed information output unit outputs, as the required bleed information, the required bleed flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required bleed flow rate that is a flow rate of hydraulic oil that needs to be flowed through the virtual bleed circuit in order to cause the hydraulic actuator to perform a desired operation according to the operation amount; The target control value determination unit outputs the target control value based on the larger of the virtual bleed flow rate output by the virtual bleed information output unit and the requested bleed flow rate output by the requested bleed information output unit.

2. The virtual bleed information output unit 2. The hydraulic control device according to claim 1, wherein the virtual bypass opening area corresponding to the manipulated variable is output based on a correspondence relationship between the manipulated variable and the virtual bypass opening area that is set in advance, and the virtual bleed flow rate corresponding to the virtual bypass opening area and the discharge pressure output from the manipulated variable, which is output based on a correspondence relationship between the virtual bypass opening area, the discharge pressure, and the virtual bleed flow rate, is output as the virtual bleed information.

3. 2. The hydraulic control device according to claim 1, wherein the required bleed information output unit outputs the required flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required flow rate that is a flow rate of hydraulic oil that needs to be supplied to the hydraulic actuator in order for the hydraulic actuator to perform a desired operation according to the operation amount, and outputs the required bleed flow rate that corresponds to the required flow rate output from the operation amount based on the correspondence relationship between the operation amount that is set in advance and the required bleed flow rate that is a flow rate of hydraulic oil that needs to be flowed into the virtual bleed circuit in order to supply hydraulic oil at the required flow rate.

4. A hydraulic control device that controls a hydraulic circuit having a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches the supply and discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator depending on the amount of operation of an operating tool, a virtual bleed information output unit that outputs virtual bleed information indicating a state of the hydraulic oil flowing through the virtual bleed circuit based on an operation amount of the operating tool, a discharge pressure of the hydraulic pump, and a preset virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to connect the control valve and a hydraulic oil tank via a bypass line; a required bleed information output unit that outputs required bleed information indicating a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation according to the operation amount; a target control value determination unit that determines a target control value of the hydraulic pump in accordance with a comparison result between the virtual bleed information and the required bleed information; a pump control unit that controls the hydraulic pump in accordance with the target control value, the virtual bleed information output unit outputs the virtual bypass opening area corresponding to the manipulated variable based on a correspondence relationship between the manipulated variable and a virtual bypass opening area, which is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, which is set in advance; the virtual bleed information output unit outputs, as the virtual bleed information, the virtual bypass opening area corresponding to the operation amount specified based on a correspondence relationship between the virtual bypass opening area corresponding to the predetermined operation amount, the discharge pressure, and a virtual bleed differential pressure which is a pressure difference between before and after a throttling resistor provided in the virtual bleed circuit, and the virtual bypass opening area corresponding to the discharge pressure; The requested bleed information output unit outputting, as the required bleed information, the required bleed differential pressure corresponding to the manipulated variable that is output based on a correspondence relationship between the manipulated variable that is set in advance and a required bleed differential pressure that is a differential pressure across the throttling resistance that is necessary to cause the hydraulic actuator to perform a desired operation according to the manipulated variable; The target control value determination unit outputs the target control value based on the larger of the virtual bleed differential pressure output by the virtual bleed information output unit and the required bleed differential pressure output by the required bleed information output unit.

5. 5. The hydraulic control device according to claim 4, wherein the virtual bleed information output unit specifies the virtual bypass opening area corresponding to the operation amount and the virtual bleed flow rate corresponding to the discharge pressure based on a correspondence relationship between the virtual bypass opening area corresponding to the operation amount that is set in advance, the discharge pressure, and a virtual bleed flow rate which is a flow rate of hydraulic oil flowing through the virtual bleed circuit, and outputs the virtual bleed differential pressure corresponding to the virtual bleed flow rate specified based on the correspondence relationship between the virtual bleed flow rate and the virtual bleed differential pressure that is set in advance as the virtual bleed information.

6. the required bleed information output unit outputs the required bleed flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required bleed flow rate that is a flow rate of hydraulic oil that needs to be flowed through the virtual bleed circuit in order for the hydraulic actuator to perform a desired operation according to the operation amount, and outputs the required bleed differential pressure that corresponds to the required bleed flow rate output from the operation amount based on a correspondence relationship between the required bleed flow rate and the required bleed differential pressure that is set in advance, or 5. The hydraulic control device according to claim 4, wherein the hydraulic control device outputs the required flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required flow rate that is a flow rate of hydraulic oil to be supplied to the hydraulic actuator in order to cause the hydraulic actuator to perform a desired operation corresponding to the operation amount, outputs the required bleed flow rate corresponding to the required flow rate output from the operation amount based on the correspondence relationship between the required flow rate and the required bleed flow rate that is set in advance, and outputs the required bleed differential pressure corresponding to the required bleed flow rate output from the operation amount based on the correspondence relationship between the required bleed flow rate and the required bleed differential pressure that is set in advance.

7. A hydraulic control device that controls a hydraulic circuit having a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches the supply and discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator depending on the amount of operation of an operating tool, a virtual bleed information output unit that outputs virtual bleed information indicating a state of the hydraulic oil flowing through the virtual bleed circuit based on an operation amount of the operating tool, a discharge pressure of the hydraulic pump, and a preset virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to connect the control valve and a hydraulic oil tank via a bypass line; a required bleed information output unit that outputs required bleed information indicating a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation according to the operation amount; a target control value determination unit that determines a target control value of the hydraulic pump in accordance with a comparison result between the virtual bleed information and the required bleed information; a pump control unit that controls the hydraulic pump in accordance with the target control value, the virtual bleed information output unit outputs the virtual bypass opening area corresponding to the manipulated variable based on a correspondence relationship between the manipulated variable and a virtual bypass opening area, which is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, which is set in advance; the virtual bleed information output unit outputs, as the virtual bleed information, the virtual pump flow rate corresponding to the operation amount and the discharge pressure that is output based on a correspondence relationship between the virtual bypass opening area corresponding to the predetermined operation amount, the discharge pressure, and a virtual pump flow rate that is a flow rate of hydraulic oil discharged from the hydraulic pump when the virtual bleed circuit is imagined, and the required bleed information output unit outputs, as the required bleed information, the required pump flow rate that is output based on a correspondence relationship between the preset operation amount and a required pump flow rate that is a flow rate of hydraulic oil that needs to be discharged from the hydraulic pump in order to supply hydraulic oil to the hydraulic actuator for operating the hydraulic actuator in accordance with the operation amount, The target control value determination unit outputs the target control value based on the smaller of the virtual pump flow rate output by the virtual bleed information output unit and the required pump flow rate corresponding to the operation amount output by the required bleed information output unit.

8. 8. The hydraulic control device according to claim 1, wherein the pump control unit outputs a target pump displacement based on the target control value determined by the target control value determination unit, and controls the hydraulic pump so that the displacement of the hydraulic pump approaches the target pump displacement.

9. an actual pump displacement acquisition unit that acquires an actual pump displacement of the hydraulic pump or information that can identify the actual pump displacement; The hydraulic control device according to claim 8, wherein the pump control unit controls the hydraulic pump so as to reduce a difference between an actual pump displacement of the hydraulic pump and the target pump displacement.

10. 10. The hydraulic control device according to claim 9, wherein the pump control unit outputs a pump control command pressure required when the hydraulic pump discharges hydraulic oil corresponding to the target control value determined by the target control value determination unit by performing a correction in accordance with a difference between the actual pump displacement and the target pump displacement, and controls the hydraulic pump.

11. 8. A hydraulic system comprising: a hydraulic actuator; a hydraulic pump that discharges hydraulic oil; a control valve that switches a supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator in accordance with an operation amount of an operating tool; and the hydraulic control device according to any one of claims 1 to 7 that controls the hydraulic pump.

12. A control method for a hydraulic circuit including a hydraulic actuator, a hydraulic pump that discharges hydraulic oil, and a control valve that switches a supply / discharge state of hydraulic oil from the hydraulic pump to the hydraulic actuator in accordance with an operation amount of an operating tool, a virtual bleed information output step of outputting virtual bleed information indicating a state of the hydraulic oil flowing through the virtual bleed circuit based on an operation amount of the operating tool, a discharge pressure of the hydraulic pump, and a preset virtual bleed characteristic that is a characteristic of a virtual bleed circuit that is assumed to connect the control valve and a hydraulic oil tank via a bypass line; a required bleed information output step of outputting required bleed information indicating a state of hydraulic oil flowing through the virtual bleed circuit that is required to cause the hydraulic actuator to perform a desired operation according to the operation amount; a target control value determination step of determining a target control value of the hydraulic pump in accordance with a comparison result between the virtual bleed information and the required bleed information; a pump control step of controlling the hydraulic pump in accordance with the target control value, the virtual bleed information output step outputs the virtual bypass opening area corresponding to the manipulated variable based on a correspondence relationship between the manipulated variable and a virtual bypass opening area, which is an opening area of ​​a virtual control valve provided in the virtual bleed circuit, and outputs a virtual bleed flow rate, which is a flow rate of hydraulic oil flowing through the virtual bleed circuit, based on the virtual bypass opening area corresponding to the manipulated variable and the discharge pressure, as the virtual bleed information; the required bleed information output step outputs, as the required bleed information, the required bleed flow rate corresponding to the operation amount based on a correspondence relationship between the operation amount that is set in advance and a required bleed flow rate that is a flow rate of hydraulic oil that needs to be flowed through the virtual bleed circuit in order to cause the hydraulic actuator to perform a desired operation corresponding to the operation amount; The target control value determination step outputs the target control value based on the larger of the virtual bleed flow rate output in the virtual bleed information output step and the requested bleed flow rate output in the requested bleed information output step.

Citation Information

Patent Citations

  • Bleedoff control method using variable displacement pump

    JP1998047306A

  • Pump control apparatus for construction machine

    JP2011094687A

  • Hydraulic system for working machine

    JP2012140763A

  • Work machine

    JP2021156064A

  • Load-dependent hydraulic fluid flow control system

    US20190024677A1