US20030085615A1 - Hydraulic circuit for traveling - Google Patents
Hydraulic circuit for traveling Download PDFInfo
- Publication number
- US20030085615A1 US20030085615A1 US10/324,675 US32467502A US2003085615A1 US 20030085615 A1 US20030085615 A1 US 20030085615A1 US 32467502 A US32467502 A US 32467502A US 2003085615 A1 US2003085615 A1 US 2003085615A1
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- US
- United States
- Prior art keywords
- computer
- hydraulic
- traveling
- braking force
- skidding
- Prior art date
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- Abandoned
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H61/00—Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
- F16H61/38—Control of exclusively fluid gearing
- F16H61/40—Control of exclusively fluid gearing hydrostatic
- F16H61/4157—Control of braking, e.g. preventing pump over-speeding when motor acts as a pump
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T13/00—Transmitting braking action from initiating means to ultimate brake actuator with power assistance or drive; Brake systems incorporating such transmitting means, e.g. air-pressure brake systems
- B60T13/10—Transmitting braking action from initiating means to ultimate brake actuator with power assistance or drive; Brake systems incorporating such transmitting means, e.g. air-pressure brake systems with fluid assistance, drive, or release
- B60T13/66—Electrical control in fluid-pressure brake systems
- B60T13/68—Electrical control in fluid-pressure brake systems by electrically-controlled valves
- B60T13/686—Electrical control in fluid-pressure brake systems by electrically-controlled valves in hydraulic systems or parts thereof
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T8/00—Arrangements for adjusting wheel-braking force to meet varying vehicular or ground-surface conditions, e.g. limiting or varying distribution of braking force
- B60T8/32—Arrangements for adjusting wheel-braking force to meet varying vehicular or ground-surface conditions, e.g. limiting or varying distribution of braking force responsive to a speed condition, e.g. acceleration or deceleration
- B60T8/34—Arrangements for adjusting wheel-braking force to meet varying vehicular or ground-surface conditions, e.g. limiting or varying distribution of braking force responsive to a speed condition, e.g. acceleration or deceleration having a fluid pressure regulator responsive to a speed condition
- B60T8/48—Arrangements for adjusting wheel-braking force to meet varying vehicular or ground-surface conditions, e.g. limiting or varying distribution of braking force responsive to a speed condition, e.g. acceleration or deceleration having a fluid pressure regulator responsive to a speed condition connecting the brake actuator to an alternative or additional source of fluid pressure, e.g. traction control systems
- B60T8/4809—Traction control, stability control, using both the wheel brakes and other automatic braking systems
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60W—CONJOINT CONTROL OF VEHICLE SUB-UNITS OF DIFFERENT TYPE OR DIFFERENT FUNCTION; CONTROL SYSTEMS SPECIALLY ADAPTED FOR HYBRID VEHICLES; ROAD VEHICLE DRIVE CONTROL SYSTEMS FOR PURPOSES NOT RELATED TO THE CONTROL OF A PARTICULAR SUB-UNIT
- B60W10/00—Conjoint control of vehicle sub-units of different type or different function
- B60W10/18—Conjoint control of vehicle sub-units of different type or different function including control of braking systems
- B60W10/184—Conjoint control of vehicle sub-units of different type or different function including control of braking systems with wheel brakes
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H61/00—Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
- F16H61/38—Control of exclusively fluid gearing
- F16H61/40—Control of exclusively fluid gearing hydrostatic
- F16H61/42—Control of exclusively fluid gearing hydrostatic involving adjustment of a pump or motor with adjustable output or capacity
- F16H61/421—Motor capacity control by electro-hydraulic control means, e.g. using solenoid valves
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60K—ARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
- B60K17/00—Arrangement or mounting of transmissions in vehicles
- B60K17/04—Arrangement or mounting of transmissions in vehicles characterised by arrangement, location or kind of gearing
- B60K17/10—Arrangement or mounting of transmissions in vehicles characterised by arrangement, location or kind of gearing of fluid gearing
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60K—ARRANGEMENT OR MOUNTING OF PROPULSION UNITS OR OF TRANSMISSIONS IN VEHICLES; ARRANGEMENT OR MOUNTING OF PLURAL DIVERSE PRIME-MOVERS IN VEHICLES; AUXILIARY DRIVES FOR VEHICLES; INSTRUMENTATION OR DASHBOARDS FOR VEHICLES; ARRANGEMENTS IN CONNECTION WITH COOLING, AIR INTAKE, GAS EXHAUST OR FUEL SUPPLY OF PROPULSION UNITS IN VEHICLES
- B60K28/00—Safety devices for propulsion-unit control, specially adapted for, or arranged in, vehicles, e.g. preventing fuel supply or ignition in the event of potentially dangerous conditions
- B60K28/10—Safety devices for propulsion-unit control, specially adapted for, or arranged in, vehicles, e.g. preventing fuel supply or ignition in the event of potentially dangerous conditions responsive to conditions relating to the vehicle
- B60K28/16—Safety devices for propulsion-unit control, specially adapted for, or arranged in, vehicles, e.g. preventing fuel supply or ignition in the event of potentially dangerous conditions responsive to conditions relating to the vehicle responsive to, or preventing, spinning or skidding of wheels
-
- B—PERFORMING OPERATIONS; TRANSPORTING
- B60—VEHICLES IN GENERAL
- B60T—VEHICLE BRAKE CONTROL SYSTEMS OR PARTS THEREOF; BRAKE CONTROL SYSTEMS OR PARTS THEREOF, IN GENERAL; ARRANGEMENT OF BRAKING ELEMENTS ON VEHICLES IN GENERAL; PORTABLE DEVICES FOR PREVENTING UNWANTED MOVEMENT OF VEHICLES; VEHICLE MODIFICATIONS TO FACILITATE COOLING OF BRAKES
- B60T2270/00—Further aspects of brake control systems not otherwise provided for
- B60T2270/20—ASR control systems
- B60T2270/203—ASR control systems hydraulic system components
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H59/00—Control inputs to control units of change-speed-, or reversing-gearings for conveying rotary motion
- F16H59/68—Inputs being a function of gearing status
- F16H2059/6838—Sensing gearing status of hydrostatic transmissions
- F16H2059/6876—Sensing gearing status of hydrostatic transmissions the motor speed
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H63/00—Control outputs from the control unit to change-speed- or reversing-gearings for conveying rotary motion or to other devices than the final output mechanism
- F16H63/02—Final output mechanisms therefor; Actuating means for the final output mechanisms
- F16H63/30—Constructional features of the final output mechanisms
- F16H63/3023—Constructional features of the final output mechanisms the final output mechanisms comprising elements moved by fluid pressure
- F16H63/3026—Constructional features of the final output mechanisms the final output mechanisms comprising elements moved by fluid pressure comprising friction clutches or brakes
- F16H2063/3033—Constructional features of the final output mechanisms the final output mechanisms comprising elements moved by fluid pressure comprising friction clutches or brakes the brake is actuated by springs and released by a fluid pressure
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16H—GEARING
- F16H61/00—Control functions within control units of change-speed- or reversing-gearings for conveying rotary motion ; Control of exclusively fluid gearing, friction gearing, gearings with endless flexible members or other particular types of gearing
- F16H61/38—Control of exclusively fluid gearing
- F16H61/40—Control of exclusively fluid gearing hydrostatic
- F16H61/44—Control of exclusively fluid gearing hydrostatic with more than one pump or motor in operation
Definitions
- the present invention relates to a hydraulic circuit for traveling in which two hydraulic motors for driving the traveling wheels can be rotated by employing one hydraulic pump.
- a related hydraulic circuit for traveling in which two hydraulic motors for driving the traveling wheels are rotated by one hydraulic pump is, for example, shown in FIG. 3.
- This hydraulic circuit comprises: a hydraulic pump 11 ; two hydraulic motors 14 , 15 for driving and rotating the traveling wheels 12 , 13 , respectively; a pumping passage 16 ; a flow dividing valve 17 ; and an opening-closing valve 19 .
- the pumping passage 16 comprises one end connected to the hydraulic motor pump 11 and is bifurcated halfway to provide other ends respectively connected to the hydraulic motors 14 , 15 so as to supply a high pressure fluid discharged from the hydraulic pump 11 to the two hydraulic motors 14 , 15 .
- the flow dividing valve 17 serving to supply an equal amount of fluid to the hydraulic motors 14 , 15 is provided at the branch portion of the pumping passage 16 .
- the opening-closing valve 19 is interposed halfway in a connection passage 18 for connecting the bifurcate portions 16 a, 16 b in the pumping passage 16 .
- the flow dividing valve 17 is used to supply an equal amount of high pressure fluid to the hydraulic motors 14 , 15 .
- this flow dividing valve 17 produces a great pressure loss when the fluid passes through it, the hydraulic motors 14 , 15 have the lower pressure applied.
- the rotational torque traction force
- the invention is characterized by having the following arrangement.
- a hydraulic circuit for traveling comprising: a hydraulic pump; two hydraulic motors for driving and rotating the traveling wheels, respectively; a pumping passage for supplying a high pressure fluid discharged from the hydraulic pump to the two hydraulic motors, the pumping passage including one end connected to said hydraulic pump and bifurcated halfway to provide the other ends being connected to the hydraulic motors, respectively; two rotation detectors for detecting the rotational speeds of the hydraulic motors, respectively; a detection controller for detecting whether or not any traveling wheel is skidding by comparing the rotational speeds detected by the rotation detectors; and two braking force applying members for applying a braking force only to the hydraulic motor of the skidding traveling wheel on the basis of the result of detection from the detection controller, the braking force applying members being installed in each of the hydraulic motors.
- the braking force applying member comprises a piston for applying a braking force to the hydraulic motors when a fluid is supplied, and a control valve for controlling the fluid conducted to the piston on the basis of a signal from the detection controller.
- the braking force applying member comprises a friction plate type negative brake having a rotational friction plate connected to a rotational portion of each hydraulic motor, and a stationary counterpart plate, connected to a stationary portion of each hydraulic motor, for applying a braking force to the rotational portion of said hydraulic motor when the stationary counterpart plate is brought into frictionally contact with the rotational friction plate, and the rotational friction plate and the stationary counterpart plate are brought into frictional contact with each other by the movement of the piston.
- a traction control system for a traveling vehicle having at least two traveling wheels driven by a single hydraulic pump through respective hydraulic motors comprising: rotation detectors for respectively detecting rotation speeds of the traveling wheels; a computer, connected to the rotation detectors, for comparing the rotational speeds of the traveling wheels; and computer-controlled brake units respectively provided to the traveling wheels, and independently controlled by the computer.
- the traction control system according to (6) further comprising a parking brake for applying braking force to both of the traveling wheels when the hydraulic pump is not driven or the hydraulic pump does not provide sufficient hydraulic pressure to the hydraulic motors.
- a brake system for a traveling vehicle having at least two traveling wheels driven by a single hydraulic pump through respective hydraulic motors comprising: a parking brake for applying braking force to both of the traveling wheels when the hydraulic pump is not driven or the hydraulic pump does not provide sufficient hydraulic pressure to the hydraulic motors; and an auxiliary brake for applying braking force to only one of the traveling wheels independently of the parking brake.
- the parking brake includes first pistons for respectively applying the braking force to both of the traveling wheels when the sufficient hydraulic pressure does not act on the first pistons; and the auxiliary brake includes second pistons for the respective traveling wheel so that the respective second piston supplies the braking force to the corresponding traveling wheel when a predetermined hydraulic pressure acts on the second piston.
- each of the hydraulic motors includes a friction plate connected to a rotational portion for driving the traveling wheel and a stationary counterpart plate connected to a stationary portion thereof for applying the braking force to the rotational portion when the stationary counterpart plate is brought into frictionally contact with the rotational friction plate.
- the brake system according to (12) further comprising: rotation detectors for detecting rotational speeds of the traveling wheels, respectively; and a computer, connected to the rotation detectors, for comparing the rotational speeds of the traveling wheels, wherein the computer controls the auxiliary brake based on a result of comparison.
- the detection controller activates one braking force applying member to apply a braking force to one hydraulic motor alone, and balance the load of one hydraulic motor with that of the other hydraulic motor. Thereby, the high pressure fluid is also supplied to the other hydraulic motor, which is then rotated to continue the traveling. And if the other hydraulic motor is rotated, all the fluid discharge from the hydraulic pump is not supplied to one hydraulic motor, whereby it is possible to prevent one hydraulic motor from being damaged due to over speed.
- the braking force can be applied to the hydraulic motors in a simple constitution.
- the negative brakes installed in the hydraulic motors can be directly employed to apply the braking force to the traveling wheels that are skidding.
- the braking force applied to the hydraulic motors can be easily controlled.
- FIG. 1 is a circuit diagram showing one embodiment of the present invention.
- FIG. 2 is a cross-sectional view around a negative brake.
- FIG. 3 is a circuit diagram showing one example of the related hydraulic circuit for traveling.
- reference numeral 21 denotes a variable displacement hydraulic pump, and this hydraulic pump 21 , when driven by an engine 22 , discharges a high pressure fluid through a flow inlet-outlet opening 21 a or 21 b.
- Reference numerals 23 , 24 denote two variable displacement hydraulic motors having the flow inlet-output openings 23 a, 23 b and the flow inlet-outlet openings 24 a, 24 b, respectively.
- a pumping passage 25 includes one end connected to the flow inlet-outlet opening 21 a of the hydraulic pump 21 , and is bifurcated halfway to provide other ends respectively connected to the flow inlet-outlet openings 23 a, 24 a of these hydraulic motors 23 , 24 .
- a pumping passage 26 includes one end connected to the flow inlet-outlet opening 21 b of the hydraulic pump 21 and is bifurcated halfway to provide other ends respectively connected to the flow inlet-outlet openings 23 b, 24 b of these hydraulic motors 23 , 24 .
- the hydraulic motors 23 , 24 employs a swash plate type hydraulic motor having a swash plate 31 capable of changing the angle of inclination thereof, as shown in FIG. 2. Also, one or more ring-like stationary counterpart plates 33 are connected axially movably on a stationary portion of the hydraulic motor 23 , 24 (the inner peripheries of the stationary casing 32 of the hydraulic motor 23 , 24 in this embodiment) by spline connection or mating at two positions.
- one or more ring-like rotational friction plates 35 are connected axially movably on the rotational portion of the hydraulic motor 23 , 24 (the outer peripheries of a cylinder block 34 of the hydraulic motor 23 , 24 in this embodiment) by spline connection or mating at two positions to be rotatable integrally with the cylinder block 34 .
- the stationary counterpart plate 33 and the rotational friction plate 35 are disposed alternately in the axial direction.
- Reference numeral 37 denotes a plurality of springs disposed on one side of the rotational friction plate 35 , these springs 37 bring the stationary counterpart plate 33 and the rotational friction plate 35 into frictional contact with each other via a substantially cylindrical braking piston 38 , providing a braking force to the rotational portion of the hydraulic motors 23 , 24 .
- Reference numeral 39 denotes a cylinder chamber formed between the stationary casing 32 and the braking piston 38 , in which if a high pressure fluid is supplied into the cylinder chamber 39 , the braking piston 38 is moved to one side against the springs 37 . Thereby, the braking piston 38 is separated from the stationary counterpart plate 33 and the rotational friction plate 35 to disengage them from the frictional contact, so as to release the braking for the rotational portion.
- the braking piston 38 is urged by the springs 37 and brings the stationary counterpart plate 33 and the rotational friction plate 35 into frictional contact with each other.
- the stationary counterpart plate 33 , the rotational friction plate 35 , the springs 37 and the braking piston 38 constitute a pair of negative brakes 40 , 41 to provide a braking force to the hydraulic motors 23 , 24 .
- Reference numeral 45 denotes a hydraulic pump which is driven with the hydraulic pump 21 by the engine 22 to discharge a high pressure fluid, a suction opening 45 a of this hydraulic pump 45 being connected through a suction passage 47 to a tank 46 .
- a discharge opening 45 b of the hydraulic pump 45 is connected to one end of a supply passage 48 , which is bifurcated halfway, the other ends of the supply passage 48 being connected to the cylinder chambers 39 of the negative brakes 40 , 41 , respectively.
- a directional control valve 49 is interposed in the supply passage 48 between the hydraulic pump 45 and the branch portion.
- this directional control valve 49 is switched to an oblique flow position, a high pressure fluid discharged from the hydraulic pump 45 is supplied to the cylinder chambers 39 of the negative brakes 40 , 41 .
- the directional control valve 49 is switched to a parallel flow position, a fluid from the cylinder chambers 39 of the negative brakes 40 , 41 is exhausted into the tank 46 .
- Reference numeral 51 denotes a make-up feed passage having one end connected to the supply passage 48 between the hydraulic pump 45 and the directional control valve 49 , bifurcated halfway, with the other ends connected to the pumping passages 25 , 26 , respectively.
- the bifurcate portions 51 a, 51 b of this make-up feed passage 51 are provided with the check valves 52 , 53 for permitting only a flow of fluid to the pumping passages 25 , 26 , respectively.
- a high pressure fluid discharged from the hydraulic pump 45 is refilled through the make-up feed passage 51 to the pumping passage 25 or 26 on the lower pressure side, when the check valve 52 or 53 is opened.
- Reference numerals 54 , 55 denotes a relief valve provided in the make-up feed passage 51 , these relief valves 54 , 55 being arranged in parallel to the check valves 52 , 53 , respectively.
- Reference numeral 56 denotes a relief passage having one end connected to the supply passage 48 between the hydraulic pump 45 and the directional control valve 49 , with the other end being connected to the tank 46 , a relief valve 57 being interposed halfway in this relief passage 56 .
- Reference numeral 59 denotes a flushing valve, which is connected to the other ends of the first and second passages 60 , 61 having one ends connected to the pumping passages 25 , 26 , respectively. If this flushing valve 59 is turn open by a pilot pressure from the first or second passage 60 or 61 on the high pressure side, a fluid in the first or second passage 60 , 61 on the low pressure side is flowed out through a flow-out passage 62 to a drain chamber of the hydraulic pump 21 , refreshing the fluid within the pumping passages 25 , 26 continuously and cooling the hydraulic pump 21 .
- Reference numeral 63 denotes a low pressure relief valve interposed halfway in the flow-out passage 62 .
- Reference numerals 66 , 67 denote the rotation detectors such as rotary encoder for detecting the rotational speed of the hydraulic motors 23 , 24 . These two rotation detectors 66 , 67 detect the rotational speed of the traveling wheels 27 , 28 or the rotational shafts 23 c, 24 c, thereby detecting the rotational speed of the hydraulic motors 23 , 24 , and output its detection result to detection controller 68 connected to the rotation detectors 66 , 67 and composed of a CPU.
- the detection controller 68 compares the rotational speeds of the hydraulic motors 23 , 24 detected by the rotation detectors 66 , 67 , and determines that either the traveling wheel 27 or 28 is skidding if the difference is greater than or equal to a predetermined value.
- Reference numeral 71 denotes a cylindrical piston disposed in a superposed state radially inside the braking piston 38 constituting the negative brakes 40 , 41 .
- This cylindrical piston 71 is moved to the other side and brings the stationary counterpart plate 33 and the rotational friction plate 35 into frictional contact with each other to provide a braking force to the hydraulic motors 23 , 24 , if a high pressure fluid is supplied to a cylinder chamber 72 formed between the stationary casing 32 and the piston 71 .
- Reference numeral 74 denotes a fluid passage having one end connected to the supply passage 48 between the hydraulic pump 45 and the directional control valve 49 , bifurcated halfway, with the other ends being connected to the cylinder chambers 72 of the negative brakes 40 , 41 .
- the control valves (the pressure reducing valves 75 , 76 in this embodiment) for controlling the high pressure fluid to be led to the piston 71 in accordance with a control signal from the detection controller 68 are interposed.
- the detection controller 68 controls the pressure reducing valve 75 or 76 by outputting a control signal to the coil of corresponding pressure reducing valve 75 or 76 if detecting that either of the traveling wheels 27 , 28 is skidding. Thereby, a high pressure fluid is supplied from the hydraulic pump 45 to the cylinder chamber 72 of the hydraulic motor 23 or 24 to provide a braking force to the hydraulic motor 23 or 24 .
- the piston 71 and the pressure reducing valves 75 , 76 are installed in the hydraulic motors 23 , 24 , respectively, and constitute two braking force applying members 77 , 78 for applying a braking force only to the skidding hydraulic motors 23 , 24 of the traveling wheel 27 , 28 in accordance with the detection result of the detection controller 68 . If each braking force applying members 77 , 78 is constituted by the piston 71 and the pressure reducing valves 75 , 76 , it is possible to apply a braking force to the hydraulic motors 23 , 24 in a simple construction.
- the detection controller 68 is connected to a foot brake 80 of the civil construction machine, more particularly, a detection sensor for detecting the amount of treading the foot brake 80 , the amount of treading the foot brake 80 detected by the detection sensor 81 is input into the detection controller 68 , and a control signal from the detection controller 68 in accordance with the amount of treading the foot brake 80 is output to the coil (particularly a proportional coil) of the pressure reducing valve 75 or 76 , increasing or decreasing the secondary pressure of the pressure reducing valve 75 or 76 .
- the pressure of the fluid supplied to the cylinder chamber 72 of the hydraulic motor 23 or 24 in other words, a braking force provided from the negative brakes 40 , 41 to the hydraulic motors 23 , 24 can be easily controlled in a range of appropriate values.
- the detection controller 68 is connected to the steering system 83 , for example, the detection sensor 84 for detecting the steering angle (motion amount) of a steering shaft, to input the steering angle of the steering system 83 detected by the detection sensor 84 into the detection controller 68 .
- the high pressure fluid discharged from the fluid pump 45 pushes open the check valve 53 to be always refilled to the pumping passage 26 on the low pressure side, so that the fluid within the circuit is replaced successively, thereby preventing the deterioration.
- the fluid is refilled to the pumping passage 26 , the amount of fluid within the circuit increases to raise the circuit pressure, but at this time, excess fluid is exhausted through the flushing valve 59 and the relief valve 63 to a drain chamber of the hydraulic pump 21 . Thereby, the circuit pressure is prevented from rising. And the hydraulic pump 21 is cooled.
- the detection controller 68 determines that any traveling wheels 27 , 28 are not skidding. In such case, the detection controller 68 controls the pressure reducing valves 75 , 76 so that the secondary pressure of the pressure reducing valves 75 , 76 becomes zero by outputting a control signal to the coil of the pressure reducing valves 75 , 76 . Thereby, no high pressure fluid is supplied to the cylinder chamber 72 of the negative brakes 40 , 41 , so that no braking force is provided to the rotational portion of any of the hydraulic motors 23 , 24 .
- the hydraulic motor 23 is released from skidding, and the hydraulic motors 23 , 24 are rotated at the approximately same rotational speed, as described below. That is, the rotational speeds of the hydraulic motors 23 , 24 are detected by the rotation detectors 66 , 67 , and the detection result are output to the detection controller in the same manner as described previously.
- the detection controller 68 compares the detection results, since the differential value from the rotational speed of the hydraulic motor 23 subtracted by the rotational speed of the hydraulic motor 24 is greater than or equal to the predetermined value, the traveling wheel 23 is detected to be skidding.
- the detection controller 68 outputs a control signal in accordance with the amount of treading the foot brake 80 to the coil (proportional coil) of corresponding pressure reducing valve 75 , and increases the secondary pressure of the pressure reducing valve 75 in accordance with the value of the control signal.
- the fluid at an appropriate pressure is supplied to the cylinder chamber 72 of the hydraulic motor 23 , so that the piston 71 is moved to the other side.
- the stationary counterpart plate 33 and the rotational friction plate 35 for the negative brake 40 are brought into frictional contact with each other to provide a braking force of appropriate value only to the hydraulic motor 23 .
- a piston 71 different from the braking piston 38 for the negative brakes 40 , 41 is provided, and the stationary counterpart plate 33 and the rotational friction plate 35 for the negative brakes 40 , 41 are brought into frictional contact with each other by the piston 71 .
- the fluid from the control valve may be led to the braking piston of the negative brake, to bring the stationary counterpart plate and the rotational friction plate into frictional contact with each other.
- the pressure of the fluid led to the piston 71 of the braking force applying members 77 , 78 is adjusted by changing the secondary pressure of the pressure reducing valves 75 , 76 in accordance with the amount of treading the foot brake 80 .
- the control valve may be a simple opening-closing valve so that the fluid at equal pressure to that within the fluid passage is led to the piston of braking force applying members.
- the braking piston 38 and the piston 71 are separately provided.
- the braking piston 38 and the piston 71 may be formed integrally so as to form an integral piston.
- the cylinder chamber 39 and the cylinder chamber 72 are respectively formed at the opposite sides of the integral piston so that the braking force is applied when the high pressure fluid is not supplied into the cylinder chamber 39 or when the high pressure fluid is supplied into the cylinder chamber 72 , and so that the braking force is not applied when the high pressure fluid is supplied into the cylinder chamber 39 or when the high pressure fluid is not supplied into the cylinder chamber 72 .
- the piston 38 and the piston 71 act on the same stationary counterpart plate 33 and the rotational friction plate 35 to generate the braking force.
- an individual set off the stationary counterpart plate and the rotational friction plate may be provided, each being driven by a respective piston 38 or 71 .
- the present invention has been described with reference to the construction of the hydraulic circuit.
- the present invention is also featured by a traction control system for the traveling vehicle which includes: rotation detectors for respectively detecting rotation speeds of the traveling wheels 27 , 28 ; a computer, connected to the rotation detectors, for comparing the rotational speeds of the traveling wheels; and computer-controlled brake units respectively provided to the traveling wheels, and independently controlled by the computer.
- the rotation detectors correspond to the rotation detectors 66 , 67
- the computer corresponds to the detection controller 68
- the computer-controlled brake units correspond to the braking force applying members 77 , 78 and the pressure reducing valves 75 , 76 in the above embodiment.
- the computer-controlled brake units can be suitably controlled by the computer. For example, when the computer detects, based on the output from the rotation detectors, that the one of traveling wheels is skidding, the computer outputs a control signal to the computer-controlled brake unit, with which the skidding traveling wheel is associated, for applying a braking force to the skidding traveling wheel. Therefore, the skidding traveling wheel stops skidding and all of the traveling wheels are normally rotated.
- the computer may be further connected to the foot brake and the steering system.
- the computer can control the computer-controlled brake units based on the outputs from the rotation detectors and further the foot brake and the steering system as mentioned above. Therefore, braking controllability of the computer is enhanced.
- a parking brake corresponding to the negative brakes 40 , 41 in the above embodiment may be employed in the traction control system.
- the parking brake is adapted to apply the braking force to all of the traveling wheels when the hydraulic pump is not driven or the hydraulic pump does not provide sufficient hydraulic pump to the hydraulic motors and is separately controlled from the computer-controlled brake units. Therefore, the traveling wheels can be controlled by both of the computer-controlled brake units and the parking brake depending on the purpose of brake.
- a brake system for the traveling vehicle includes: a parking brake for applying braking force to the traveling wheels 27 , 28 when the hydraulic pump is not driven or the hydraulic pump does not provide sufficient hydraulic pressure to the hydraulic motors; and an auxiliary brake for applying braking force to only one of the traveling wheels independently of the parking brake.
- the parking brake corresponds to the negative brakes 40 , 41
- the auxiliary brake corresponds to the braking force applying members 77 , 78 and the pressure reducing valves 75 , 76 in the above embodiment.
- the parking brake is adapted to apply the braking force to the traveling wheels 27 , 28 so that the braking force for the traveling wheels 27 , 28 is substantially same with each other, and the auxiliary brake is adapted to apply the braking force only one of the traveling wheels. Therefore, the suitable braking force for each traveling wheel can be applied by combining the parking brake and the auxiliary brake. Particularly, when one of the traveling wheels is skidding, the auxiliary brake applies the braking force to the skidding traveling wheel, so that the skidding traveling wheel stops skidding and all of the traveling wheels can be normally rotated.
- a computer corresponding to the detection controller 68 in the above embodiment may be connected to the auxiliary brake to control it.
- the computer is connected to the rotation detectors 66 , 67 for detecting rotational speeds of the traveling wheels, so that the computer can control the auxiliary brake based on the rotational speeds of the traveling wheels.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Transportation (AREA)
- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Chemical & Material Sciences (AREA)
- Combustion & Propulsion (AREA)
- Regulating Braking Force (AREA)
- Control Of Fluid Gearings (AREA)
Abstract
If a hydraulic motor (23) (traveling wheel (27)) is rotated (or skidding) at high rate, and a hydraulic motor (24) is hardly rotated, a detection controller (68) compares the rotational speeds of both hydraulic motors (23, 24). Then the rotation detected by the rotation detectors (66, 67) to detect the traveling wheel (27) to be skidding, and moves a piston (71) to allow a negative brake (40) to give a braking force to the hydraulic motor (23), and rotate the hydraulic motor (24). In this way, this invention can release the traveling wheel from skidding without the use of a flow dividing valve.
Description
- This application is a divisional application of co-pending U.S. application Ser. No. 09/968,205, filed Oct. 1, 2001.
- The present invention relates to a hydraulic circuit for traveling in which two hydraulic motors for driving the traveling wheels can be rotated by employing one hydraulic pump.
- A related hydraulic circuit for traveling in which two hydraulic motors for driving the traveling wheels are rotated by one hydraulic pump is, for example, shown in FIG. 3.
- This hydraulic circuit comprises: a
hydraulic pump 11; twohydraulic motors traveling wheels pumping passage 16; aflow dividing valve 17; and an opening-closing valve 19. Thepumping passage 16 comprises one end connected to thehydraulic motor pump 11 and is bifurcated halfway to provide other ends respectively connected to thehydraulic motors hydraulic pump 11 to the twohydraulic motors flow dividing valve 17 serving to supply an equal amount of fluid to thehydraulic motors pumping passage 16. The opening-closing valve 19 is interposed halfway in aconnection passage 18 for connecting thebifurcate portions pumping passage 16. - And in this hydraulic circuit, if anyone of the traveling wheel, for example, a
traveling wheel 12, may float due to the rough road surface, the load exerting on thehydraulic motor 14 becoming quite small, almost all amount of the high pressure fluid discharged from thehydraulic pump 11 is supplied to thehydraulic motor 14, so that thetraveling wheel 12 is skidding to make traveling impossible. - In this case, by switching the opening-
closing valve 19 from an open to closed state, the flow passing areas of thebifurcate portions flow dividing valve 17 in accordance with the loads applied on thehydraulic motors hydraulic motors - In the related hydraulic circuit, the
flow dividing valve 17 is used to supply an equal amount of high pressure fluid to thehydraulic motors flow dividing valve 17 produces a great pressure loss when the fluid passes through it, thehydraulic motors - It is an object of this invention to provide a hydraulic circuit for traveling that can rotate two hydraulic motors with a great rotational torque and at almost equal speed, even if different loads are applied on both hydraulic motors.
- In order to solve the aforesaid object, the invention is characterized by having the following arrangement.
- (1) A hydraulic circuit for traveling comprising: a hydraulic pump; two hydraulic motors for driving and rotating the traveling wheels, respectively; a pumping passage for supplying a high pressure fluid discharged from the hydraulic pump to the two hydraulic motors, the pumping passage including one end connected to said hydraulic pump and bifurcated halfway to provide the other ends being connected to the hydraulic motors, respectively; two rotation detectors for detecting the rotational speeds of the hydraulic motors, respectively; a detection controller for detecting whether or not any traveling wheel is skidding by comparing the rotational speeds detected by the rotation detectors; and two braking force applying members for applying a braking force only to the hydraulic motor of the skidding traveling wheel on the basis of the result of detection from the detection controller, the braking force applying members being installed in each of the hydraulic motors.
- (2) The hydraulic circuit according to (1), wherein the braking force applying member comprises a piston for applying a braking force to the hydraulic motors when a fluid is supplied, and a control valve for controlling the fluid conducted to the piston on the basis of a signal from the detection controller.
- (3) The hydraulic circuit according to (2), wherein the braking force applying member comprises a friction plate type negative brake having a rotational friction plate connected to a rotational portion of each hydraulic motor, and a stationary counterpart plate, connected to a stationary portion of each hydraulic motor, for applying a braking force to the rotational portion of said hydraulic motor when the stationary counterpart plate is brought into frictionally contact with the rotational friction plate, and the rotational friction plate and the stationary counterpart plate are brought into frictional contact with each other by the movement of the piston.
- (4) The hydraulic circuit according to (2), wherein the control valve comprises a pressure reducing valve, the detection controller is connected to a foot brake, and secondary pressure of the pressure reducing valve is increased or decreased in accordance with amount of treading the foot brake under the control of the detection controller.
- (5) The hydraulic circuit according to (1), wherein the detection controller is connected to a steering system for inputting a steering angle of the steering system into the detection controller, and when the traveling wheel is steered by an operation of the steering system, the detection controller does not judge that the traveling wheel is skidding even if there is a difference in rotational speed between said both hydraulic motors due to turning.
- (6) A traction control system for a traveling vehicle having at least two traveling wheels driven by a single hydraulic pump through respective hydraulic motors, comprising: rotation detectors for respectively detecting rotation speeds of the traveling wheels; a computer, connected to the rotation detectors, for comparing the rotational speeds of the traveling wheels; and computer-controlled brake units respectively provided to the traveling wheels, and independently controlled by the computer.
- (7) The traction control system according to (6), wherein when the computer detects that one of the traveling wheels skids, the associated computer-controlled brake unit applies a braking force to the skidding traveling wheel.
- (8) The traction control system according to (7), wherein the computer is connected to a steering system for inputting a steering angle of the steering system into the computer, so as to detect the skidding traveling wheel based on the detected rotation speeds and the inputted steering angle.
- (9) The traction control system according to (6), wherein the computer is connected to a foot brake, and controls the computer-controlled brake units according to an operation of the foot brake.
- (10) The traction control system according to (6) further comprising a parking brake for applying braking force to both of the traveling wheels when the hydraulic pump is not driven or the hydraulic pump does not provide sufficient hydraulic pressure to the hydraulic motors.
- (11) The traction control system according to (10), wherein the computer controls the computer-controlled brake units based on the difference between the rotation speeds of the traveling wheel.
- (12) A brake system for a traveling vehicle having at least two traveling wheels driven by a single hydraulic pump through respective hydraulic motors, comprising: a parking brake for applying braking force to both of the traveling wheels when the hydraulic pump is not driven or the hydraulic pump does not provide sufficient hydraulic pressure to the hydraulic motors; and an auxiliary brake for applying braking force to only one of the traveling wheels independently of the parking brake.
- (13) The brake system according to (12), wherein the parking brake includes first pistons for respectively applying the braking force to both of the traveling wheels when the sufficient hydraulic pressure does not act on the first pistons; and the auxiliary brake includes second pistons for the respective traveling wheel so that the respective second piston supplies the braking force to the corresponding traveling wheel when a predetermined hydraulic pressure acts on the second piston.
- (14) The brake system according to (13), wherein the first piston and the second piston are formed integrally with each other with respect to each traveling wheel.
- (15) The brake system according to (13), wherein the first piston and the second are formed individually with each other with respect to each traveling wheel.
- (16) The brake system according to (13), wherein each of the hydraulic motors includes a friction plate connected to a rotational portion for driving the traveling wheel and a stationary counterpart plate connected to a stationary portion thereof for applying the braking force to the rotational portion when the stationary counterpart plate is brought into frictionally contact with the rotational friction plate.
- (17) The brake system according to (14), wherein the rotational friction plate and the stationary counterpart plate are brought into frictional contact with each other by being urged by the first piston or the second piston.
- (18) The brake system according to (12) further comprising: rotation detectors for detecting rotational speeds of the traveling wheels, respectively; and a computer, connected to the rotation detectors, for comparing the rotational speeds of the traveling wheels, wherein the computer controls the auxiliary brake based on a result of comparison.
- (19) The brake system according to (18), wherein when the computer detects that one of the traveling wheels skids, the auxiliary brake unit applies a braking force to the skidding traveling wheel.
- For example, suppose that one traveling wheel floats from the road surface, and one hydraulic motor for driving the traveling wheel has a quite small load. In such a case, the high pressure fluid from the hydraulic pump is substantially supplied to one hydraulic motor, so that one hydraulic motor is rotating (skidding) at high speed and the other hydraulic motor hardly rotates. Herein, the rotational speeds of the hydraulic motors are detected by the rotation detector, respectively, and the results of detection are output to detection controller. At this time, the detection controller detects that one traveling wheel is skidding by comparing the results of detection.
- In this way, if one traveling wheel is detected to be skidding, the detection controller activates one braking force applying member to apply a braking force to one hydraulic motor alone, and balance the load of one hydraulic motor with that of the other hydraulic motor. Thereby, the high pressure fluid is also supplied to the other hydraulic motor, which is then rotated to continue the traveling. And if the other hydraulic motor is rotated, all the fluid discharge from the hydraulic pump is not supplied to one hydraulic motor, whereby it is possible to prevent one hydraulic motor from being damaged due to over speed.
- Since there is no need of employing the flow dividing valve to release the skidding, the high pressure fluid supplied to both hydraulic motors produces less pressure loss, so that both hydraulic motors can be easily rotated with a great rotational torque and at almost equal speed.
- Also, the braking force can be applied to the hydraulic motors in a simple constitution.
- Further, the negative brakes installed in the hydraulic motors can be directly employed to apply the braking force to the traveling wheels that are skidding.
- Also, the braking force applied to the hydraulic motors can be easily controlled.
- Moreover, even if there is a difference in rotational speed between both hydraulic motors at the time of turning, it is possible to prevent the false recognition that the traveling wheel is skidding.
- The present disclosure relates to the subject matter contained in Japanese Patent Application No. 2000-302642 (filed on Oct. 2, 2000), which is expressly incorporated herein by reference in its entirety.
- FIG. 1 is a circuit diagram showing one embodiment of the present invention.
- FIG. 2 is a cross-sectional view around a negative brake.
- FIG. 3 is a circuit diagram showing one example of the related hydraulic circuit for traveling.
- One embodiment of the present invention will be described below with reference to the accompanying drawings.
- In FIGS. 1 and 2,
reference numeral 21 denotes a variable displacement hydraulic pump, and thishydraulic pump 21, when driven by anengine 22, discharges a high pressure fluid through a flow inlet-outlet opening 21 a or 21 b.Reference numerals output openings 23 a, 23 b and the flow inlet-outlet openings pumping passage 25 includes one end connected to the flow inlet-outlet opening 21 a of thehydraulic pump 21, and is bifurcated halfway to provide other ends respectively connected to the flow inlet-outlet openings 23 a, 24 a of thesehydraulic motors pumping passage 26 includes one end connected to the flow inlet-outlet opening 21 b of thehydraulic pump 21 and is bifurcated halfway to provide other ends respectively connected to the flow inlet-outlet openings hydraulic motors - Consequently, a high pressure fluid discharged from the
hydraulic pump 21 is supplied through thepumping passage hydraulic motors hydraulic motors remaining pumping passage hydraulic pump 21, so that thehydraulic motors rotational shafts 23 c, 24 c in a forward or backward direction. Since thetraveling wheels rotational shafts 23 c, 24 c, respectively, thesetraveling wheels rotational shafts 23 c, 24 c, whereby the civil construction machine can travel. - Herein, the
hydraulic motors swash plate 31 capable of changing the angle of inclination thereof, as shown in FIG. 2. Also, one or more ring-like stationary counterpart plates 33 are connected axially movably on a stationary portion of thehydraulic motor 23, 24 (the inner peripheries of thestationary casing 32 of thehydraulic motor rotational friction plates 35 are connected axially movably on the rotational portion of thehydraulic motor 23, 24 (the outer peripheries of acylinder block 34 of thehydraulic motor cylinder block 34. The stationary counterpart plate 33 and therotational friction plate 35 are disposed alternately in the axial direction. -
Reference numeral 37 denotes a plurality of springs disposed on one side of therotational friction plate 35, thesesprings 37 bring the stationary counterpart plate 33 and therotational friction plate 35 into frictional contact with each other via a substantiallycylindrical braking piston 38, providing a braking force to the rotational portion of thehydraulic motors Reference numeral 39 denotes a cylinder chamber formed between thestationary casing 32 and thebraking piston 38, in which if a high pressure fluid is supplied into thecylinder chamber 39, thebraking piston 38 is moved to one side against thesprings 37. Thereby, thebraking piston 38 is separated from the stationary counterpart plate 33 and therotational friction plate 35 to disengage them from the frictional contact, so as to release the braking for the rotational portion. - On one hand, if a fluid is exhausted from the
cylinder chamber 39, thebraking piston 38 is urged by thesprings 37 and brings the stationary counterpart plate 33 and therotational friction plate 35 into frictional contact with each other. The stationary counterpart plate 33, therotational friction plate 35, thesprings 37 and thebraking piston 38, as a whole, constitute a pair ofnegative brakes hydraulic motors -
Reference numeral 45 denotes a hydraulic pump which is driven with thehydraulic pump 21 by theengine 22 to discharge a high pressure fluid, a suction opening 45 a of thishydraulic pump 45 being connected through asuction passage 47 to atank 46. Adischarge opening 45 b of thehydraulic pump 45 is connected to one end of asupply passage 48, which is bifurcated halfway, the other ends of thesupply passage 48 being connected to thecylinder chambers 39 of thenegative brakes directional control valve 49 is interposed in thesupply passage 48 between thehydraulic pump 45 and the branch portion. If thisdirectional control valve 49 is switched to an oblique flow position, a high pressure fluid discharged from thehydraulic pump 45 is supplied to thecylinder chambers 39 of thenegative brakes directional control valve 49 is switched to a parallel flow position, a fluid from thecylinder chambers 39 of thenegative brakes tank 46. -
Reference numeral 51 denotes a make-up feed passage having one end connected to thesupply passage 48 between thehydraulic pump 45 and thedirectional control valve 49, bifurcated halfway, with the other ends connected to thepumping passages bifurcate portions feed passage 51 are provided with thecheck valves pumping passages hydraulic pump 45 is refilled through the make-upfeed passage 51 to thepumping passage check valve -
Reference numerals feed passage 51, theserelief valves check valves Reference numeral 56 denotes a relief passage having one end connected to thesupply passage 48 between thehydraulic pump 45 and thedirectional control valve 49, with the other end being connected to thetank 46, arelief valve 57 being interposed halfway in thisrelief passage 56. -
Reference numeral 59 denotes a flushing valve, which is connected to the other ends of the first andsecond passages pumping passages valve 59 is turn open by a pilot pressure from the first orsecond passage second passage passage 62 to a drain chamber of thehydraulic pump 21, refreshing the fluid within thepumping passages hydraulic pump 21.Reference numeral 63 denotes a low pressure relief valve interposed halfway in the flow-outpassage 62. -
Reference numerals hydraulic motors rotation detectors wheels rotational shafts 23 c, 24 c, thereby detecting the rotational speed of thehydraulic motors detection controller 68 connected to therotation detectors detection controller 68 compares the rotational speeds of thehydraulic motors rotation detectors wheel -
Reference numeral 71 denotes a cylindrical piston disposed in a superposed state radially inside thebraking piston 38 constituting thenegative brakes cylindrical piston 71 is moved to the other side and brings the stationary counterpart plate 33 and therotational friction plate 35 into frictional contact with each other to provide a braking force to thehydraulic motors cylinder chamber 72 formed between thestationary casing 32 and thepiston 71. - On the other hand, if the supply of high pressure fluid to the
cylinder chamber 72 is stopped, thepiston 71 is separated from the stationary counterpart plate 33 and therotational friction plate 35 to disengage them from the frictional contact, so that the rotational portion of thehydraulic motors rotational friction plate 35 of thenegative brakes piston 71, thenegative brakes hydraulic motors wheels -
Reference numeral 74 denotes a fluid passage having one end connected to thesupply passage 48 between thehydraulic pump 45 and thedirectional control valve 49, bifurcated halfway, with the other ends being connected to thecylinder chambers 72 of thenegative brakes bifurcate portion pressure reducing valves piston 71 in accordance with a control signal from thedetection controller 68 are interposed. - The
detection controller 68 controls thepressure reducing valve pressure reducing valve wheels hydraulic pump 45 to thecylinder chamber 72 of thehydraulic motor hydraulic motor - The
piston 71 and thepressure reducing valves hydraulic motors force applying members hydraulic motors wheel detection controller 68. If each brakingforce applying members piston 71 and thepressure reducing valves hydraulic motors - In this embodiment, the
detection controller 68 is connected to afoot brake 80 of the civil construction machine, more particularly, a detection sensor for detecting the amount of treading thefoot brake 80, the amount of treading thefoot brake 80 detected by thedetection sensor 81 is input into thedetection controller 68, and a control signal from thedetection controller 68 in accordance with the amount of treading thefoot brake 80 is output to the coil (particularly a proportional coil) of thepressure reducing valve pressure reducing valve - Thereby, the pressure of the fluid supplied to the
cylinder chamber 72 of thehydraulic motor negative brakes hydraulic motors - Herein, if the civil construction machine turns while traveling, the rotational speed of the inward traveling wheel is slower than the rotational speed of the outward traveling wheel, thereby bringing about the danger that the
detection controller 68 detects the outward traveling wheel to be skidding even if the traveling wheel is not actually skidding. - Therefore, in this embodiment, the
detection controller 68 is connected to thesteering system 83, for example, the detection sensor 84 for detecting the steering angle (motion amount) of a steering shaft, to input the steering angle of thesteering system 83 detected by the detection sensor 84 into thedetection controller 68. Thereby, when the civil construction machine is turning by the operation of thesteering system 83, even though there is a difference in rotational speed between thehydraulic motors hydraulic motors - The operation of this embodiment of this invention will be set forth below.
- When the
engine 22 is started, thehydraulic pumps hydraulic pumps pumping passage 25 and thesupply passage 48, the high pressure fluid discharged from thehydraulic pump 21 is flowed into thehydraulic motors rotational shafts 23 c, 24 c of thehydraulic motors wheels hydraulic motors pumping passage 26 to thehydraulic pump 21, but if the fluid is circulating between thehydraulic pump 21 and thehydraulic motors - However, in this embodiment, the high pressure fluid discharged from the
fluid pump 45 pushes open thecheck valve 53 to be always refilled to thepumping passage 26 on the low pressure side, so that the fluid within the circuit is replaced successively, thereby preventing the deterioration. And if the fluid is refilled to thepumping passage 26, the amount of fluid within the circuit increases to raise the circuit pressure, but at this time, excess fluid is exhausted through the flushingvalve 59 and therelief valve 63 to a drain chamber of thehydraulic pump 21. Thereby, the circuit pressure is prevented from rising. And thehydraulic pump 21 is cooled. - At this time, since the
directional control valve 49 is switched to the oblique flow position, the high pressure fluid discharged from thehydraulic pump 45 is supplied through thesupply passage 48 to thecylinder chamber 39 of thenegative brakes braking pistons 38 of thenegative brakes rotational friction plate 35 to disengage them from the frictional contact, and release the rotational portion of thehydraulic motors - When the machine moves in the forward direction, the rotational speeds of the traveling
wheels rotation detectors detection controller 68. However, since the rotational speeds of the travelingwheels detection controller 68 determines that any travelingwheels detection controller 68 controls thepressure reducing valves pressure reducing valves pressure reducing valves cylinder chamber 72 of thenegative brakes hydraulic motors - For example, suppose that the traveling
wheel 27 floats from the road surface, and the load of thehydraulic motor 23 for driving the travelingwheel 27 is quite small. At such time, since almost all the high pressure fluid from thehydraulic pump 21 is supplied to thehydraulic motor 23, thehydraulic motor 23 is rotated (skidding) at high rate, bringing about the danger that thehydraulic motor 24 can be hardly rotated. - However, in this embodiment, the
hydraulic motor 23 is released from skidding, and thehydraulic motors hydraulic motors rotation detectors detection controller 68 compares the detection results, since the differential value from the rotational speed of thehydraulic motor 23 subtracted by the rotational speed of thehydraulic motor 24 is greater than or equal to the predetermined value, the travelingwheel 23 is detected to be skidding. - In this way, if the traveling
wheel 23 is detected to be skidding, thedetection controller 68 outputs a control signal in accordance with the amount of treading thefoot brake 80 to the coil (proportional coil) of correspondingpressure reducing valve 75, and increases the secondary pressure of thepressure reducing valve 75 in accordance with the value of the control signal. Thereby, the fluid at an appropriate pressure is supplied to thecylinder chamber 72 of thehydraulic motor 23, so that thepiston 71 is moved to the other side. As a result, the stationary counterpart plate 33 and therotational friction plate 35 for thenegative brake 40 are brought into frictional contact with each other to provide a braking force of appropriate value only to thehydraulic motor 23. - Consequently, the load exerting on the
hydraulic motor 23 approaches to the load on thehydraulic motor 24, so that the high pressure fluid from thehydraulic pump 21 is supplied to thehydraulic motor 24. Thereby, thehydraulic motor 24 and the travelingwheel 28 are rotated, whereby the civil construction machine can travel continuously. And if thehydraulic motor 24 is rotated, as described previously, all the fluid discharged from thehydraulic pump 21 is not supplied to thehydraulic motor 23, thereby preventing thehydraulic motor 23 from being damaged due to over speed. - Since there is no need of employing the flow dividing valve to release the skidding, the high pressure fluid supplied to the
hydraulic motors hydraulic motors - In the above embodiment, a
piston 71 different from thebraking piston 38 for thenegative brakes rotational friction plate 35 for thenegative brakes piston 71. However, the fluid from the control valve may be led to the braking piston of the negative brake, to bring the stationary counterpart plate and the rotational friction plate into frictional contact with each other. - In the above embodiment, the pressure of the fluid led to the
piston 71 of the brakingforce applying members pressure reducing valves foot brake 80. However, in this invention, the control valve may be a simple opening-closing valve so that the fluid at equal pressure to that within the fluid passage is led to the piston of braking force applying members. - Further, in the above embodiment, the
braking piston 38 and thepiston 71 are separately provided. However, thebraking piston 38 and thepiston 71 may be formed integrally so as to form an integral piston. In this case, thecylinder chamber 39 and thecylinder chamber 72 are respectively formed at the opposite sides of the integral piston so that the braking force is applied when the high pressure fluid is not supplied into thecylinder chamber 39 or when the high pressure fluid is supplied into thecylinder chamber 72, and so that the braking force is not applied when the high pressure fluid is supplied into thecylinder chamber 39 or when the high pressure fluid is not supplied into thecylinder chamber 72. That is, when the sum of the spring force of thespring 37 and the pressure in thecylinder chamber 72 is larger than the pressure in thecylinder chamber 39, the braking force is applied, and when the sum of the spring force of thespring 37 and the pressure in thecylinder chamber 72 is smaller than the pressure in thecylinder chamber 39, the braking force is not applied. Consequently, the construction of the cylinder is simplified. - Further, in the above embodiment, the
piston 38 and thepiston 71 act on the same stationary counterpart plate 33 and therotational friction plate 35 to generate the braking force. However, an individual set off the stationary counterpart plate and the rotational friction plate may be provided, each being driven by arespective piston - In the above embodiment, the present invention has been described with reference to the construction of the hydraulic circuit. The present invention is also featured by a traction control system for the traveling vehicle which includes: rotation detectors for respectively detecting rotation speeds of the traveling
wheels - The rotation detectors correspond to the
rotation detectors detection controller 68, and the computer-controlled brake units correspond to the brakingforce applying members pressure reducing valves - Since the computer is connected to the rotation detectors and is capable of processing the outputs from the rotation detectors and individually controlling the computer-controlled brake units, the computer-controlled brake units can be suitably controlled by the computer. For example, when the computer detects, based on the output from the rotation detectors, that the one of traveling wheels is skidding, the computer outputs a control signal to the computer-controlled brake unit, with which the skidding traveling wheel is associated, for applying a braking force to the skidding traveling wheel. Therefore, the skidding traveling wheel stops skidding and all of the traveling wheels are normally rotated.
- The computer may be further connected to the foot brake and the steering system. In this case, the computer can control the computer-controlled brake units based on the outputs from the rotation detectors and further the foot brake and the steering system as mentioned above. Therefore, braking controllability of the computer is enhanced.
- Further, a parking brake corresponding to the
negative brakes - The present invention is also featured by a brake system for the traveling vehicle includes: a parking brake for applying braking force to the traveling
wheels - The parking brake corresponds to the
negative brakes force applying members pressure reducing valves - The parking brake is adapted to apply the braking force to the traveling
wheels wheels - A computer corresponding to the
detection controller 68 in the above embodiment may be connected to the auxiliary brake to control it. The computer is connected to therotation detectors - As described above, with this invention, even if two hydraulic motors have different loads, the hydraulic motors can be rotated with a large rotational torque and at almost equal speed.
Claims (6)
1. A traction control system for a traveling vehicle having at least two traveling wheels driven by a single hydraulic pump through respective hydraulic motors, comprising:
rotation detectors for respectively detecting rotation speeds of the traveling wheels;
a computer connected to the rotation detectors for comparing the rotational speeds of the traveling wheels; and
computer-controlled brake units respectively provided to the traveling wheels, and independently controlled by the computer.
2. The traction control system according to claim 1 , wherein when the computer detects that one of the traveling wheels skids, the associated computer-controlled brake unit applies a braking force to the skidding traveling wheel.
3. The traction control system according to claim 2 , wherein the computer is connected to a steering system for inputting a steering angle of the steering system into the computer, so as to detect the skidding traveling wheel based on the detected rotation speeds and the steering angle.
4. The traction control system according to claim 1 , wherein the computer is connected to a foot brake, and controls the computer-controlled brake units according to an operation of the foot brake.
5. The traction control system according to claim 1 further comprising a parking brake for applying braking force to both of the traveling wheels when the hydraulic pump is not driven or the hydraulic pump does not provide sufficient hydraulic pressure to the hydraulic motors.
6. The traction control system according to claim 5 , wherein the computer controls the computer-controlled brake units based on the difference between the rotation speeds of the traveling wheel.
Priority Applications (1)
Application Number | Priority Date | Filing Date | Title |
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US10/324,675 US20030085615A1 (en) | 2000-10-02 | 2002-12-20 | Hydraulic circuit for traveling |
Applications Claiming Priority (4)
Application Number | Priority Date | Filing Date | Title |
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JP2000302642A JP2002106711A (en) | 2000-10-02 | 2000-10-02 | Fluid circuit for traveling |
JPP2000-302642 | 2000-10-02 | ||
US09/968,205 US6648091B2 (en) | 2000-10-02 | 2001-10-01 | Hydraulic circuit for traveling |
US10/324,675 US20030085615A1 (en) | 2000-10-02 | 2002-12-20 | Hydraulic circuit for traveling |
Related Parent Applications (1)
Application Number | Title | Priority Date | Filing Date |
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US09/968,205 Division US6648091B2 (en) | 2000-10-02 | 2001-10-01 | Hydraulic circuit for traveling |
Publications (1)
Publication Number | Publication Date |
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US20030085615A1 true US20030085615A1 (en) | 2003-05-08 |
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US09/968,205 Expired - Fee Related US6648091B2 (en) | 2000-10-02 | 2001-10-01 | Hydraulic circuit for traveling |
US10/324,675 Abandoned US20030085615A1 (en) | 2000-10-02 | 2002-12-20 | Hydraulic circuit for traveling |
US10/324,204 Expired - Fee Related US6874857B2 (en) | 2000-10-02 | 2002-12-20 | Hydraulic circuit for traveling |
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Application Number | Title | Priority Date | Filing Date |
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US09/968,205 Expired - Fee Related US6648091B2 (en) | 2000-10-02 | 2001-10-01 | Hydraulic circuit for traveling |
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US10/324,204 Expired - Fee Related US6874857B2 (en) | 2000-10-02 | 2002-12-20 | Hydraulic circuit for traveling |
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US20030089543A1 (en) * | 2000-10-02 | 2003-05-15 | Teijin Seiki Co., Ltd. | Hydraulic circuit for traveling |
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US20030089543A1 (en) * | 2000-10-02 | 2003-05-15 | Teijin Seiki Co., Ltd. | Hydraulic circuit for traveling |
US6874857B2 (en) * | 2000-10-02 | 2005-04-05 | Teijin Seiki Co., Ltd. | Hydraulic circuit for traveling |
Also Published As
Publication number | Publication date |
---|---|
EP1193152A2 (en) | 2002-04-03 |
EP1193152A3 (en) | 2003-01-15 |
US20020038735A1 (en) | 2002-04-04 |
US6874857B2 (en) | 2005-04-05 |
US6648091B2 (en) | 2003-11-18 |
US20030089543A1 (en) | 2003-05-15 |
JP2002106711A (en) | 2002-04-10 |
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Legal Events
Date | Code | Title | Description |
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STCB | Information on status: application discontinuation |
Free format text: ABANDONED -- FAILURE TO RESPOND TO AN OFFICE ACTION |