US2921439A - Pump control - Google Patents

Pump control Download PDF

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Publication number
US2921439A
US2921439A US668215A US66821557A US2921439A US 2921439 A US2921439 A US 2921439A US 668215 A US668215 A US 668215A US 66821557 A US66821557 A US 66821557A US 2921439 A US2921439 A US 2921439A
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Prior art keywords
pump
fluid
pressure
valve
operable area
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US668215A
Inventor
Frederick G Krafft
Ernst Walter
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Thompson Grinder Co
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Thompson Grinder Co
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Priority to US668215A priority Critical patent/US2921439A/en
Priority to US863279A priority patent/US3015212A/en
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04CROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; ROTARY-PISTON, OR OSCILLATING-PISTON, POSITIVE-DISPLACEMENT PUMPS
    • F04C14/00Control of, monitoring of, or safety arrangements for, machines, pumps or pumping installations
    • F04C14/18Control of, monitoring of, or safety arrangements for, machines, pumps or pumping installations characterised by varying the volume of the working chamber
    • F04C14/22Control of, monitoring of, or safety arrangements for, machines, pumps or pumping installations characterised by varying the volume of the working chamber by changing the eccentricity between cooperating members
    • F04C14/223Control of, monitoring of, or safety arrangements for, machines, pumps or pumping installations characterised by varying the volume of the working chamber by changing the eccentricity between cooperating members using a movable cam
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B24GRINDING; POLISHING
    • B24BMACHINES, DEVICES, OR PROCESSES FOR GRINDING OR POLISHING; DRESSING OR CONDITIONING OF ABRADING SURFACES; FEEDING OF GRINDING, POLISHING, OR LAPPING AGENTS
    • B24B47/00Drives or gearings; Equipment therefor
    • B24B47/02Drives or gearings; Equipment therefor for performing a reciprocating movement of carriages or work- tables
    • B24B47/06Drives or gearings; Equipment therefor for performing a reciprocating movement of carriages or work- tables by liquid or gas pressure only
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F04POSITIVE - DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS FOR LIQUIDS OR ELASTIC FLUIDS
    • F04BPOSITIVE-DISPLACEMENT MACHINES FOR LIQUIDS; PUMPS
    • F04B49/00Control, e.g. of pump delivery, or pump pressure of, or safety measures for, machines, pumps, or pumping installations, not otherwise provided for, or of interest apart from, groups F04B1/00 - F04B47/00
    • F04B49/08Regulating by delivery pressure
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B11/00Servomotor systems without provision for follow-up action; Circuits therefor
    • F15B11/16Servomotor systems without provision for follow-up action; Circuits therefor with two or more servomotors
    • F15B11/161Servomotor systems without provision for follow-up action; Circuits therefor with two or more servomotors with sensing of servomotor demand or load
    • F15B11/165Servomotor systems without provision for follow-up action; Circuits therefor with two or more servomotors with sensing of servomotor demand or load for adjusting the pump output or bypass in response to demand
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/20Fluid pressure source, e.g. accumulator or variable axial piston pump
    • F15B2211/205Systems with pumps
    • F15B2211/2053Type of pump
    • F15B2211/20546Type of pump variable capacity
    • F15B2211/20553Type of pump variable capacity with pilot circuit, e.g. for controlling a swash plate
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/30Directional control
    • F15B2211/305Directional control characterised by the type of valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/30Directional control
    • F15B2211/305Directional control characterised by the type of valves
    • F15B2211/30505Non-return valves, i.e. check valves
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/30Directional control
    • F15B2211/305Directional control characterised by the type of valves
    • F15B2211/30525Directional control valves, e.g. 4/3-directional control valve
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/30Directional control
    • F15B2211/315Directional control characterised by the connections of the valve or valves in the circuit
    • F15B2211/3157Directional control characterised by the connections of the valve or valves in the circuit being connected to a pressure source, an output member and a return line
    • F15B2211/31576Directional control characterised by the connections of the valve or valves in the circuit being connected to a pressure source, an output member and a return line having a single pressure source and a single output member
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/30Directional control
    • F15B2211/32Directional control characterised by the type of actuation
    • F15B2211/321Directional control characterised by the type of actuation mechanically
    • F15B2211/324Directional control characterised by the type of actuation mechanically manually, e.g. by using a lever or pedal
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/40Flow control
    • F15B2211/42Flow control characterised by the type of actuation
    • F15B2211/421Flow control characterised by the type of actuation mechanically
    • F15B2211/423Flow control characterised by the type of actuation mechanically manually, e.g. by using a lever or pedal
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/40Flow control
    • F15B2211/46Control of flow in the return line, i.e. meter-out control
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F15FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
    • F15BSYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
    • F15B2211/00Circuits for servomotor systems
    • F15B2211/70Output members, e.g. hydraulic motors or cylinders or control therefor
    • F15B2211/71Multiple output members, e.g. multiple hydraulic motors or cylinders

Definitions

  • This invention relates to pump controls and to hydraulic circuits embodying such controls and to a combination pump and control unit. More particularly still, the present invention relates to speed controls for hydraulically driven machine elements and to delivery control arrangements for variable delivery hydraulic pumps.
  • a great many machines such as machine tools, are provided with hydraulic drives in which a hydraulic pump, usually driven at constant speed by an electric motor, supplies fluid to a hydraulic motor which, in turn, is connected to the machine element that is to be driven.
  • This arrangement provides for a convenient means of delivering power to the desired location and provides for a flexible driving means in that the speed of the driven element can readily be adjusted. While the speed of the driven element can be adjusted, however, the maintaining of the speed of the driven element constant within relatively close limits is not so easily accomplished and, where the element meets a varying load, it undergoes speed changes accordingly.
  • One manner in which the speed of a driven element is varied is by throttling the delivery of fluid to the driven elements, or by bypassing a portion of the pump delivery to exhaust. Since the pumping unit must be so devised that it can deliver the maximum pressure required and must be capable of delivering the maximum quantity required, it follows that either the throttling of the pump discharge, or the bypassing of a portion of the delivery thereof, is accompanied by considerable power loss, which power loss is converted into heat directly within the hydraulic medium that is being employed.
  • the heating of the hydraulic medium is never desirable and is particularly objectionable in the case of precision machine tools, such as grinding machines and the like, wherein the creation of heat in certain areas of the machine is apt to lead to warping of the machine frame and subsequent inaccuracies in the finished workpieces.
  • a still further object of this invention is the provision of a hydraulic system for a machine tool, such as a grinding machine, in which the hydraulically-driven machine element can be operated at constant speed throughout its travel and in which the said speed can readily be predetermined and which will be maintained without loss of power or heating of the hydraulic medium.
  • a still further object is the provision of a combination pump and control therefor in which the rate of delivery from the pump can be maintained constant at substantially any quantity between the minimum and maximum capacities of the pump and without substantial loss of power or heating-of the hydraulic medium.
  • a still further object of the present invention is the 2 provision of a control unit adapted for being mounted in association with a variable delivery pump having a shiftable flow control member and which unit is capable of maintaining the rate of discharge from the pump substantially constant under varying load.
  • a still further object of this invention is the provision of a control system for a variable delivery pump which will maintain the delivery of the pump substantially constant regardless of the discharge pressure of the pump but which system includes protection against excessive pressures being developed by the pump.
  • Another object of this invention is the provision of a constant delivery control arrangement for a variable delivery pump in which the pump is arranged to idle under a substantially zero discharge-zero pressure conditions when under no load.
  • Figure 1 is a rather diagrammatic view showing a surface grinder having a bed reciprocating motor connected with a variable delivery hydraulic pump in which the present invention is embodied.
  • Figure 2 is a view showing at enlarge scale the control unit associated with the pump
  • FIG. 3 is a view showing a modified form which a control unit according to the present invention can take;
  • Figure 4 is a diagrammatic view showing a further modification of the control unit and also showing a circuit adapted for use with any of the control units disclosed herein;
  • Figure 5 is a diagrammatic view showing how a single pump can be arranged to supply a plurality of motors and having a fiow control arrangement according to the present invention
  • Figure 1 shows a grinding wheel table 10 adapted for reciprocating beneath a grinding wheel 12 so that the workpiece 14 on the table can be ground by the wheel.
  • Table 10 has connected thereto piston rod 16 that has thereon a piston 18 located in cylinder 20.
  • cylinder 20 The opposite ends of cylinder 20 are connected by the conduits 22 with the service ports of a reversing valve 24.
  • a valve member 26 in the valve is movable for alternately connecting the conduits 22 with the pressure supply conduit 28 while connecting the other of the conduits 22 with exhaust conduit 29.
  • Conduit 28 leads to the discharge side of a variable delivery pump 30 which has ashiftable flow control member 32 therein.
  • the suction side of the pump is connected by conduit 34 with reservoir 36.
  • the flow control member 32 is adapted for being normally biased rightwardly toward maximum stroke position by a spring 38 on the left side of the pump.
  • the initial bias of spring 38 is adapted for being adjusted by adjustable cap 40.
  • the opposite side of the pump shift ring 32 is engaged by a plunger 42 that extends through a central aperture in a plate 44 into a cylinder 46.
  • a piston 48 mounted with cylinder 46 is a piston 48 that engages the outer end of plunger 42.
  • the aforementioned conduit 28 includes therein a throttle valve 50 and the upstream side of this throttle valve, and which is the discharge side of the pump, is connected by conduit 52 with the right side of piston 48.
  • the conduit 52 may be connected with the right end of cylinder 46 by passage 54 formed in the plate 56 that is the closure member for the right end of the cylinder.
  • the connection of the right end of cylinder 46 with the discharge side of the pump may be accomplished internally of the pump, as illustrated in Figure 2, where it will be seen that passage 54 in plate 56 is closed by a plug 58 at its outer end while a passage 60 extends from passage 54 lengthwise through the wall of the cylinder portion and then' through plate 44 to the body of the pump and therein is connected with the pump discharge.
  • the passage 60 is surrounded by O-rings 62 where the cylinder meets the plates, and where plate 44 engages the body of the pump.
  • the O-rings 64 are provided between the aforementioned plates and the cylinder and the pump casing thereby sealing the entire assembly against leakage.
  • the arrangement described provides for maintaining a substantially constant rate of discharge from the pump with a small pressure drop across valve 50.
  • the downstream side of the aforementioned throttle valve 50 is connected by conduit 66 with a passag leading through the wall of the cylinder to the extreme left end of the cylinder. This supplies to the left side of piston 48 a pressure that is the same as the pressure supplied to the load and which pressure is less than the pump dis charge pressure by the pressure developed across the throttle valve.
  • the arrangement described above provides for substantially constant speed of travel of table independent of system pressure and substantially independent of fluctuations in system pressure.
  • the table speed is thus substantially independent of load and can be depended on to maintain the table 10 at a constant rate of speed throughout the work operation, particularly where the load on the table does not vary widely as in the case of the grinding machine illustrated.
  • control pressure is a function of the pressure drop across the throttle valve, this control pressure is substantially independent of system pressure and instead depends merely on the rate of fluid flow through the throttle valve and which rate of fluid flow corresponds to the rate of movement of the driven member that is being controlled.
  • Figure 3 The structure of Figure 3 is similar to the one already described, except that in Figure 3, the cylinder 70 is formed integrally with the portion thereof that attaches to the pump and the closure member at the outer end of the cylinder at 72 is telescopically fit into the end of the cylinder.
  • the member 72 also carries a threaded sleeve 74 in which is threaded an abutment screw"76 that limits the maximum stroke of the pump.
  • Nut 78 locks screw 76 in position and cap 80 mounted on the end of sleeve 74 seals the unit against leakage.
  • the circuit of Figure 4 discloses an arrangement for compensating for the load on the pump. This is accomplished by providing the control piston 82 with a tail rod 84 of such a size that the difierence in area between the tail rod 84 and the plunger 86 is just suflicient to compensate for the tendency of the pump to move off stroke due to its internal pressure.
  • this is accomplished by providing a relief valve 92 connected between the conduit leading to the left face ofpiston 82 and exhaust and which relief valve will open at a predetermined pres-H sure to exhaust'the left face of piston 8'2fwhereby;v the. pump'willrnove quickly toward'neutrah 'A throttle valve 94 in the conduit leading from the downstream side of throttle valve 88 to the controL unit, provides for a pressure'dropj as soon as reliefvalve '92 opens, thus permitting the pump to move quickly toward neutral against substantially no resistance.
  • Relief valve 92 may be bypassed by the manual. valve 96 so that the pump can be manually. unloaded and-upon opening of valve 96 the pump will idle at substantially zero pressure and displacement.
  • valves 92, 94 and 96 could be utilized with any of the systems illustrated for ob-v taining the same added control features described in con; nection with Figure 4.
  • FIG. 5 illustrates the manner in which the present in vention can be practiced with more than one motor, and wherein a speed control is had with each of the motors and whi ch speed controls are selective as to the individual motors.
  • 100 represents a pump corresponding to, pump 30 in Figure 1. This pump discharges pressure fluid to a conduit 102 leading through a choke valve. 104 to a reversing valve 106 connected with a first fluid motor M1.
  • Conduit 102 leads through a secondchoke valve 108 to a second reversing valve 110 to which is connecteda second fluid motor M2.
  • choke valve 104 The downstream side of choke valve 104 is connected by conduit 112 through check valve 114 to aconduit 116 leading to the leftside of control piston 118.
  • conduit 120 connected by conduit 120, through a. check valvef122, with conduit 116.
  • a connection is, conduit motor.
  • control piston 118 is either drained continuously through the bleed connection 130, or is drained by opening of relief valve 128.
  • a pressure drop will occur across the pertaining choke valve 104 or 108 and set into operation the stroke control system previously described.
  • one or the other of the check valves 114 and 122 will isolate the circuit pertaining to the idle motor so that the speed control eflected on the motor being actuated depends entirely upon the choke valve pertaining thereto whereby the speed controls for the separate motors are selective and individual.
  • FIG. 1 illustrates the manner in which the present invention can be practiced where more than one motor is to be actuated.
  • one motor would be the motor that reciprocates the bed of the machine as illustrated in Figure l, and the other motor could be the wheel head elevating motor or the motor for reciprocating the wheel head transversely of the table.
  • the present invention provides for a novel pump control that maintains the pump discharge substantially constant at all times without wasteful loss of power or overheating of the fluid in the system.
  • the control unit may be supplied separately for mounting on existing pumps of the nature referred to or can be combined with the pump at the time of manufacture thereof.
  • a variable delivery pump having a shiftable flow control member, a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased stroke position, a second fluid operable area operatively connected to the flow control member arranged in opposition to said first fluid operable area, said second fluid operable area being connected with the discharge side of said pump to receive fluid pressure therefrom, a plurality of fluid motors for being driven by the fluid from said pump, a choke valve between said pump and each of said motors, a conduit leading from the downstream side of each said choke valves to the said first fluid operable area, and a check valve in each of said conduits opening toward the said first fluid operable area, there being resilient means acting on said flow control member urging it toward increased stroke position.
  • a variable delivery pump having a shiftable flow control member, resilient means a 6 continuously urging said flow control member toward in: creased stroke position, a first fluid operable area op-, eratively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased strokeposition, a second fluid operable area also operatively connected to the flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a reversing valve connected with each said motor, a difl'erent conduit leading from the discharge side of said pump to the inlet of each of said reversing valves, a choke valve in each of said conduits, a connection from the downstream side of each choke valve to said first fluid operable area and each connection including a check valve opening toward the said first fluid operable area, and means for exhausting said first fluid operable area.
  • a variable delivery pump having a shiftable flow control member, resilient means continuously urging said flow control member toward increased stroke position, a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased stroke position, a second fluid operable area operatively connected to said flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a reversing valve connected with each said motor, a different conduit leading from the discharge side of said pump to the inlet of each of said reversing valves, achoke valve in each of said conduits, a connection from the downstream side of each choke valve to said first fluid operable area and each connection including a check valve opening toward the said first fluid operable area, and means for exhausting said first fluid operable area, said means comprising a bleeding connection from said first fluid operable area to exhaust.
  • a variable delivery pump having a shiftable flow control member, resilient means continuously urging said flow control member toward increased stroke position; a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased stroke position, a second fluid operable area operatively connected to said flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a reversing valve connected with each said motor, a different conduit leading from the discharge side of said pump to the inlet of each of said reversing valves, a choke valve in each of said conduits, a connection from the downstream side of each choke valve to said first fluid operable area and each connection including a check valve opening toward the said first fluid operable area, and means for exhausting said first fluid operable area, said means comprising a relief valve connected between said first fluid operable area and exhaust.
  • a variable delivery pump having a shiftable flow control member, resilient means continuously urging said flow control member toward increased stroke position, a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urgingthe flow control member toward increased stroke position, a second fluid operable area also operatively connected to said flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a closed center reversing valve hydraulically connected to each motor, a different conduit leading from the discharge side of said pump to the inlet of each 7 of said reversing valve, a choke valve in each of said References Cited in the file of this patent conduits, a from the downstream side of .7 H ea'ch choke valve to said first fluid operable area and each SFA 'E PA EN S! 4 cnneetin including? check valve p nin wwafd 2 8 Kendrickma first

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • General Engineering & Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Fluid-Pressure Circuits (AREA)

Description

Jan. 19, 1960 F ErAL 2,921,439
PUMP CONTROL;
Filed June 26', 1957 3 Sheets-Sheet l WMI/ INVEN RS maven/ax a KRAFFT WAL ERA/$7 Mag/1A;
Jan. 19, 1960 F. G. KRAFFT EI'AL 2,921,439
PUMP CONTROL 3 Sheets-Sheet 2 Filed June 26, 1957 3o Fig.2
INVENTORS FREDERICK G. KRAFFT WALTER ERNST ATTORNEYS Jan. 19, 1960 F, KRAFFT EIAL 2,921,439
PUMP CONTROL Filed Juhe 26, 1957 s Sheets-Sheet 5 INVENTOR. FREDERICK 6. KRAFF 7' A T TOWVE YS United States Patent Ofifice 2,921,439 Patented Jan. 19, 1960 PUMP CONTROL Frederick G. Kralft, Springfield, and Walter Ernst, Dayton, Ohio, assignors to The Thompson Grinder Compony, Springfield, Ohio, a corporation of Ohio Application June 26, 1957, Serial No. 668,215
' s Claims. on. 60-52) This invention relates to pump controls and to hydraulic circuits embodying such controls and to a combination pump and control unit. More particularly still, the present invention relates to speed controls for hydraulically driven machine elements and to delivery control arrangements for variable delivery hydraulic pumps.
A great many machines, such as machine tools, are provided with hydraulic drives in which a hydraulic pump, usually driven at constant speed by an electric motor, supplies fluid to a hydraulic motor which, in turn, is connected to the machine element that is to be driven. This arrangement provides for a convenient means of delivering power to the desired location and provides for a flexible driving means in that the speed of the driven element can readily be adjusted. While the speed of the driven element can be adjusted, however, the maintaining of the speed of the driven element constant within relatively close limits is not so easily accomplished and, where the element meets a varying load, it undergoes speed changes accordingly.
One manner in which the speed of a driven element is varied is by throttling the delivery of fluid to the driven elements, or by bypassing a portion of the pump delivery to exhaust. Since the pumping unit must be so devised that it can deliver the maximum pressure required and must be capable of delivering the maximum quantity required, it follows that either the throttling of the pump discharge, or the bypassing of a portion of the delivery thereof, is accompanied by considerable power loss, which power loss is converted into heat directly within the hydraulic medium that is being employed.
The heating of the hydraulic medium is never desirable and is particularly objectionable in the case of precision machine tools, such as grinding machines and the like, wherein the creation of heat in certain areas of the machine is apt to lead to warping of the machine frame and subsequent inaccuracies in the finished workpieces.
Having the foregoing in mind, it is an object of the present invention to provide a control arrangement for a hydraulic pump which will maintain a substantially constant rate of discharge therefrom but which will do so without causing excessive heating of the hydraulic medium being pumped and without the loss of any substantial amount of power.
A still further object of this invention is the provision of a hydraulic system for a machine tool, such as a grinding machine, in which the hydraulically-driven machine element can be operated at constant speed throughout its travel and in which the said speed can readily be predetermined and which will be maintained without loss of power or heating of the hydraulic medium.
A still further object is the provision of a combination pump and control therefor in which the rate of delivery from the pump can be maintained constant at substantially any quantity between the minimum and maximum capacities of the pump and without substantial loss of power or heating-of the hydraulic medium.
A still further object of the present invention is the 2 provision of a control unit adapted for being mounted in association with a variable delivery pump having a shiftable flow control member and which unit is capable of maintaining the rate of discharge from the pump substantially constant under varying load.
A still further object of this invention is the provision of a control system for a variable delivery pump which will maintain the delivery of the pump substantially constant regardless of the discharge pressure of the pump but which system includes protection against excessive pressures being developed by the pump.
Another object of this invention is the provision of a constant delivery control arrangement for a variable delivery pump in which the pump is arranged to idle under a substantially zero discharge-zero pressure conditions when under no load.
These and other objects and advantages will become more apparent upon reference to the accompanying drawings in which:
Figure 1 is a rather diagrammatic view showing a surface grinder having a bed reciprocating motor connected with a variable delivery hydraulic pump in which the present invention is embodied.
Figure 2 is a view showing at enlarge scale the control unit associated with the pump;
Figure 3 is a view showing a modified form which a control unit according to the present invention can take;
Figure 4 is a diagrammatic view showing a further modification of the control unit and also showing a circuit adapted for use with any of the control units disclosed herein; and
Figure 5 is a diagrammatic view showing how a single pump can be arranged to supply a plurality of motors and having a fiow control arrangement according to the present invention;
Referring to the drawings more in detail, Figure 1 shows a grinding wheel table 10 adapted for reciprocating beneath a grinding wheel 12 so that the workpiece 14 on the table can be ground by the wheel.
Table 10 has connected thereto piston rod 16 that has thereon a piston 18 located in cylinder 20.
The opposite ends of cylinder 20 are connected by the conduits 22 with the service ports of a reversing valve 24. A valve member 26 in the valve is movable for alternately connecting the conduits 22 with the pressure supply conduit 28 while connecting the other of the conduits 22 with exhaust conduit 29. Conduit 28 leads to the discharge side of a variable delivery pump 30 which has ashiftable flow control member 32 therein. The suction side of the pump is connected by conduit 34 with reservoir 36.
The flow control member 32 is adapted for being normally biased rightwardly toward maximum stroke position by a spring 38 on the left side of the pump. The initial bias of spring 38 is adapted for being adjusted by adjustable cap 40.
The opposite side of the pump shift ring 32 is engaged by a plunger 42 that extends through a central aperture in a plate 44 into a cylinder 46. Mounted with cylinder 46 is a piston 48 that engages the outer end of plunger 42.
The aforementioned conduit 28 includes therein a throttle valve 50 and the upstream side of this throttle valve, and which is the discharge side of the pump, is connected by conduit 52 with the right side of piston 48. As illustrated in Figure 1, the conduit 52 may be connected with the right end of cylinder 46 by passage 54 formed in the plate 56 that is the closure member for the right end of the cylinder. However, the connection of the right end of cylinder 46 with the discharge side of the pump may be accomplished internally of the pump, as illustrated in Figure 2, where it will be seen that passage 54 in plate 56 is closed by a plug 58 at its outer end while a passage 60 extends from passage 54 lengthwise through the wall of the cylinder portion and then' through plate 44 to the body of the pump and therein is connected with the pump discharge.
As will also be seen in Figure 2, the passage 60 is surrounded by O-rings 62 where the cylinder meets the plates, and where plate 44 engages the body of the pump. Similarly, the O-rings 64 are provided between the aforementioned plates and the cylinder and the pump casing thereby sealing the entire assembly against leakage.
The arrangement described provides for maintaining a substantially constant rate of discharge from the pump with a small pressure drop across valve 50.
The downstream side of the aforementioned throttle valve 50 is connected by conduit 66 with a passag leading through the wall of the cylinder to the extreme left end of the cylinder. This supplies to the left side of piston 48 a pressure that is the same as the pressure supplied to the load and which pressure is less than the pump dis charge pressure by the pressure developed across the throttle valve.
The arrangement described above provides for substantially constant speed of travel of table independent of system pressure and substantially independent of fluctuations in system pressure. The table speed is thus substantially independent of load and can be depended on to maintain the table 10 at a constant rate of speed throughout the work operation, particularly where the load on the table does not vary widely as in the case of the grinding machine illustrated.
The foregoing action comes about in response to a relatively'small pressure drop across throttle valve 50 whereby substantially little poweris lost and also whereby there is minimum amount of heat developed in the hydraulic medium.
Referenceto Figure 1 will show that the pressure on the upstream side of the throttlevalve is delivered to" the right face of piston 48, thus urging the piston left: wardly' in a'direction to reduce the stroke of the pump. Simultaneously, the pressure on the downstream side or the pump is delivered to the left face of piston 48 and this pressure tends to hold the pump in maximum stroke position. The actual, thrust developed is measured by the area of piston 48, minus the area of plunger 42, m'ul; tiplied by the pressure drop across the throttle valve. It will be apparent that a selection of piston 48 can be made. such that the pressure drop across the throttle valve is quite small. The power loss accompanying the throttling of the pump delivery is thus relatively small and 'the" pump will shift toward neutral'when the control pressure reaches a predetermined amount thereby decreasing the load on the motor instead of converting the excess power into heat.
It will be apparent, that since the control pressure is a function of the pressure drop across the throttle valve, this control pressure is substantially independent of system pressure and instead depends merely on the rate of fluid flow through the throttle valve and which rate of fluid flow corresponds to the rate of movement of the driven member that is being controlled.
The structure of Figure 3 is similar to the one already described, except that in Figure 3, the cylinder 70 is formed integrally with the portion thereof that attaches to the pump and the closure member at the outer end of the cylinder at 72 is telescopically fit into the end of the cylinder. The member 72 also carries a threaded sleeve 74 in which is threaded an abutment screw"76 that limits the maximum stroke of the pump. Nut 78 locks screw 76 in position and cap 80 mounted on the end of sleeve 74 seals the unit against leakage. a
The two modifications described above are substantially identical and both are applicable to practically all.
circumstances. It is possible, however, that under certain conditions where the pump discharge pressure will vary widely, or extremely high pressures are encountered, that added compensation will be required tootfset the tendencies of the pump to shift toward neutral under load. This is a characteristic of a vane pump of the type illustrated in Figure 1, and of certain other typesof pumps, such as radial piston pumps. These pumps have a thrust developed therein tending to move them off stroke and which thrust varies directly with the discharge pressure of the pump. a
The circuit of Figure 4 discloses an arrangement for compensating for the load on the pump. This is accomplished by providing the control piston 82 with a tail rod 84 of such a size that the difierence in area between the tail rod 84 and the plunger 86 is just suflicient to compensate for the tendency of the pump to move off stroke due to its internal pressure.
In the Figure 4 arrangement the pressure upstream of the throttle valve 88 is thus impressed on an area equal to the ditference in the areas of piston 82 and plunger 84. The pressure downstream of the throttle valve is impressed on an area equal to the area of piston 82 minus the area of plunger 86 and which plunger is smaller than tail rod 84 by a predetermined amount; The Figure 4, arrangement is entirely independent of system pressures and fluctuations thereof and will maintain the pump at a fixed stroke entirely independent of the load on the'motor even though the pump pressure rises to its For that reason it is desirable to provide means for relieving excessive pressure in the system. According to this invention, this is accomplished by providing a relief valve 92 connected between the conduit leading to the left face ofpiston 82 and exhaust and which relief valve will open at a predetermined pres-H sure to exhaust'the left face of piston 8'2fwhereby;v the. pump'willrnove quickly toward'neutrah 'A throttle valve 94 in the conduit leading from the downstream side of throttle valve 88 to the controL unit, provides for a pressure'dropj as soon as reliefvalve '92 opens, thus permitting the pump to move quickly toward neutral against substantially no resistance.
Relief valve 92 may be bypassed by the manual. valve 96 so that the pump can be manually. unloaded and-upon opening of valve 96 the pump will idle at substantially zero pressure and displacement.
It will be evident that the valves 92, 94 and 96 could be utilized with any of the systems illustrated for ob-v taining the same added control features described in con; nection with Figure 4.
The arrangement describedpreviously is entirely ado. quate where only a single motor is to be driven. How ever, in a great many instances, the pump will be em ployed to supply actuating fluid to more than one motor and these motors quite often will operate at different times.
Withthe arrangement previously described, thehalting of either of the motors would cause the pump to go to neutral whereby no pressure fluid would be available.
for the other motor. The circuit arrangement of Figure 5 illustrates the manner in which the present in vention can be practiced with more than one motor, and wherein a speed control is had with each of the motors and whi ch speed controls are selective as to the individual motors.
In Figure 5, 100 represents a pump corresponding to, pump 30 in Figure 1. This pump discharges pressure fluid to a conduit 102 leading through a choke valve. 104 to a reversing valve 106 connected with a first fluid motor M1.
Conduit 102 leads through a secondchoke valve 108 to a second reversing valve 110 to which is connecteda second fluid motor M2.
The downstream side of choke valve 104 is connected by conduit 112 through check valve 114 to aconduit 116 leading to the leftside of control piston 118.
Similarly, the downstream side of choke valve 108 is;
connected by conduit 120, through a. check valvef122, with conduit 116. A connection is, conduit motor.
This comes about because the left side of control piston 118 is either drained continuously through the bleed connection 130, or is drained by opening of relief valve 128. Thus, when either of the reversing valves is shifted so that the pertaining motor commences to move, a pressure drop will occur across the pertaining choke valve 104 or 108 and set into operation the stroke control system previously described.
During the operation of either of the motors, one or the other of the check valves 114 and 122 will isolate the circuit pertaining to the idle motor so that the speed control eflected on the motor being actuated depends entirely upon the choke valve pertaining thereto whereby the speed controls for the separate motors are selective and individual.
The Figure arrangement illustrates the manner in which the present invention can be practiced where more than one motor is to be actuated. In a grinding machine, for example, one motor would be the motor that reciprocates the bed of the machine as illustrated in Figure l, and the other motor could be the wheel head elevating motor or the motor for reciprocating the wheel head transversely of the table.
It will be apparent that the system according to the present invention could be extended to more than two motors, and it will, therefore, be understood that as many motors as necessary could be connected with the pump and be individually controlled according to this invention. From the foregoing, it will be seen that the present invention provides for a novel pump control that maintains the pump discharge substantially constant at all times without wasteful loss of power or overheating of the fluid in the system.
The control unit may be supplied separately for mounting on existing pumps of the nature referred to or can be combined with the pump at the time of manufacture thereof.
It will be understood that this invention is susceptible to modification in order to adapt it to different usages and conditions; and, accordingly, it is desired to comprehend such modifications within this invention as may fallwithin the scope of the appended claims.
We claim:
1. In a hydraulic circuit; a variable delivery pump having a shiftable flow control member, a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased stroke position, a second fluid operable area operatively connected to the flow control member arranged in opposition to said first fluid operable area, said second fluid operable area being connected with the discharge side of said pump to receive fluid pressure therefrom, a plurality of fluid motors for being driven by the fluid from said pump, a choke valve between said pump and each of said motors, a conduit leading from the downstream side of each said choke valves to the said first fluid operable area, and a check valve in each of said conduits opening toward the said first fluid operable area, there being resilient means acting on said flow control member urging it toward increased stroke position.
2. In a hydraulic circuit; a variable delivery pump having a shiftable flow control member, resilient means a 6 continuously urging said flow control member toward in: creased stroke position, a first fluid operable area op-, eratively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased strokeposition, a second fluid operable area also operatively connected to the flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a reversing valve connected with each said motor, a difl'erent conduit leading from the discharge side of said pump to the inlet of each of said reversing valves, a choke valve in each of said conduits, a connection from the downstream side of each choke valve to said first fluid operable area and each connection including a check valve opening toward the said first fluid operable area, and means for exhausting said first fluid operable area.
3. In a hydraulic circuit; a variable delivery pump having a shiftable flow control member, resilient means continuously urging said flow control member toward increased stroke position, a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased stroke position, a second fluid operable area operatively connected to said flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a reversing valve connected with each said motor, a different conduit leading from the discharge side of said pump to the inlet of each of said reversing valves, achoke valve in each of said conduits, a connection from the downstream side of each choke valve to said first fluid operable area and each connection including a check valve opening toward the said first fluid operable area, and means for exhausting said first fluid operable area, said means comprising a bleeding connection from said first fluid operable area to exhaust.
4. In a hydraulic circuit; a variable delivery pump having a shiftable flow control member, resilient means continuously urging said flow control member toward increased stroke position; a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urging the flow control member toward increased stroke position, a second fluid operable area operatively connected to said flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a reversing valve connected with each said motor, a different conduit leading from the discharge side of said pump to the inlet of each of said reversing valves, a choke valve in each of said conduits, a connection from the downstream side of each choke valve to said first fluid operable area and each connection including a check valve opening toward the said first fluid operable area, and means for exhausting said first fluid operable area, said means comprising a relief valve connected between said first fluid operable area and exhaust.
5. In a hydraulic circuit; a variable delivery pump having a shiftable flow control member, resilient means continuously urging said flow control member toward increased stroke position, a first fluid operable area operatively connected to the flow control member responsive to fluid pressure for urgingthe flow control member toward increased stroke position, a second fluid operable area also operatively connected to said flow control member arranged in opposition to said first fluid operable area, a connection from the discharge side of said pump to said second fluid operable area, a plurality of fluid motors, a closed center reversing valve hydraulically connected to each motor, a different conduit leading from the discharge side of said pump to the inlet of each 7 of said reversing valve, a choke valve in each of said References Cited in the file of this patent conduits, a from the downstream side of .7 H ea'ch choke valve to said first fluid operable area and each SFA 'E PA EN S! 4 cnneetin including? check valve p nin wwafd 2 8 Kendrickma first fluid operable means for exhausting 5 2,408,303 Ernst .'...h= l e Sept. 24, 1946
US668215A 1957-06-26 1957-06-26 Pump control Expired - Lifetime US2921439A (en)

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Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3015212A (en) * 1957-06-26 1962-01-02 Thompson Grinder Co Pump control
US3054263A (en) * 1960-07-05 1962-09-18 Budzich Tadeusz Hydraulic transmission
US3137235A (en) * 1960-09-26 1964-06-16 Kobe Inc Vane-type variable delivery pump
US3233691A (en) * 1962-10-17 1966-02-08 Biasi Charles P De Hydraulic system, apparatus and arrangement for driving and steering vehicles
US3987622A (en) * 1976-02-02 1976-10-26 Caterpillar Tractor Co. Load controlled fluid system having parallel work elements
DE3538643A1 (en) * 1985-10-30 1987-05-14 Rexroth Mannesmann Gmbh Device for controlling the pressure of a hydrostatic drive
US20100296956A1 (en) * 2009-05-20 2010-11-25 Hoehn Richard T Variable displacement pumps and vane pump control systems

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2238061A (en) * 1938-05-12 1941-04-15 Manly Corp Fluid pressure system and control therefor
US2408303A (en) * 1943-05-10 1946-09-24 Hydraulic Dev Corp Inc Control system
US2600632A (en) * 1945-11-14 1952-06-17 Heil Co Variable capacity vane-type rotary pump including automatic means for maintaining uniform delivery

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2238061A (en) * 1938-05-12 1941-04-15 Manly Corp Fluid pressure system and control therefor
US2408303A (en) * 1943-05-10 1946-09-24 Hydraulic Dev Corp Inc Control system
US2600632A (en) * 1945-11-14 1952-06-17 Heil Co Variable capacity vane-type rotary pump including automatic means for maintaining uniform delivery

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3015212A (en) * 1957-06-26 1962-01-02 Thompson Grinder Co Pump control
US3054263A (en) * 1960-07-05 1962-09-18 Budzich Tadeusz Hydraulic transmission
US3137235A (en) * 1960-09-26 1964-06-16 Kobe Inc Vane-type variable delivery pump
US3233691A (en) * 1962-10-17 1966-02-08 Biasi Charles P De Hydraulic system, apparatus and arrangement for driving and steering vehicles
US3987622A (en) * 1976-02-02 1976-10-26 Caterpillar Tractor Co. Load controlled fluid system having parallel work elements
DE3538643A1 (en) * 1985-10-30 1987-05-14 Rexroth Mannesmann Gmbh Device for controlling the pressure of a hydrostatic drive
US20100296956A1 (en) * 2009-05-20 2010-11-25 Hoehn Richard T Variable displacement pumps and vane pump control systems

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