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CN113566011B - A four-module linkage distribution flow electromagnetic direct drive pump - Google Patents

A four-module linkage distribution flow electromagnetic direct drive pump Download PDF

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Publication number
CN113566011B
CN113566011B CN202110769611.2A CN202110769611A CN113566011B CN 113566011 B CN113566011 B CN 113566011B CN 202110769611 A CN202110769611 A CN 202110769611A CN 113566011 B CN113566011 B CN 113566011B
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valve
linkage
pump
module
port
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CN113566011A (en
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高仁璟
王赓
黄现国
刘书田
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Dalian University of Technology
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Dalian University of Technology
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    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/06Actuating devices; Operating means; Releasing devices electric; magnetic using a magnet, e.g. diaphragm valves, cutting off by means of a liquid
    • F16K31/0603Multiple-way 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
    • 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
    • F15B11/17Servomotor systems without provision for follow-up action; Circuits therefor with two or more servomotors using two or more pumps
    • 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
    • F15B13/00Details of servomotor systems ; Valves for servomotor systems
    • F15B13/02Fluid distribution or supply devices characterised by their adaptation to the control of servomotors
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F16ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
    • F16KVALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
    • F16K31/00Actuating devices; Operating means; Releasing devices
    • F16K31/02Actuating devices; Operating means; Releasing devices electric; magnetic
    • F16K31/06Actuating devices; Operating means; Releasing devices electric; magnetic using a magnet, e.g. diaphragm valves, cutting off by means of a liquid
    • F16K31/08Actuating devices; Operating means; Releasing devices electric; magnetic using a magnet, e.g. diaphragm valves, cutting off by means of a liquid using a permanent magnet
    • F16K31/082Actuating devices; Operating means; Releasing devices electric; magnetic using a magnet, e.g. diaphragm valves, cutting off by means of a liquid using a permanent magnet using a electromagnet and a permanent magnet

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Fluid Mechanics (AREA)
  • Electromagnetism (AREA)
  • Details Of Reciprocating Pumps (AREA)

Abstract

The invention relates to the technical field of hydraulic pumps, and provides a four-module linkage flow distribution type electromagnetic direct-drive pump which comprises four linkage pump modules with the same structure and an oil way for connecting the four linkage pump modules; the linkage pump modules respectively comprise moving-coil electromagnetic linear actuators, valve units and pump units; the oil circuit for connecting the four linkage pump modules comprises full linkage connection and half linkage connection. The four-module linkage flow distribution type electromagnetic direct-drive pump simultaneously and jointly drives flow distribution work under the control of four sinusoidal displacement signals with the same amplitude and the sequential phase difference of 90 degrees, so that continuous oil suction and discharge can be realized, and the pulsation of output flow is reduced; meanwhile, the size, the direction and the frequency of output flow can be conveniently adjusted, and the working efficiency and the flexibility of the direct drive pump are improved.

Description

Four-module linkage flow distribution type electromagnetic direct drive pump
Technical Field
The invention relates to the technical field of hydraulic pumps, in particular to a four-module linkage flow distribution type electromagnetic direct-drive pump.
Background
The electromagnetic direct drive pump cancels a motion conversion mechanism of rotation-straight line in the middle of the traditional swash plate type plunger pump, shortens a power transmission route, has the advantages of small volume, simple structure, high power density and the like, is convenient for highly integrated design, and can be widely applied to the fields of aerospace hydrostatic actuators, engineering hydraulic machines, walking hydraulic pressure and the like.
At present, most of common electromagnetic direct-drive pumps work together with an active valve to ensure the continuity of oil pumping and oil discharging, although the flow of pump oil can be changed by adjusting the reciprocating motion amplitude and the actuating frequency of an oil suction and discharge plunger, the additional active valve increases the complexity of the structure, and meanwhile, the problems of serious pump flow pulsation, limited system flow and pressure adjusting capacity and the like still exist.
A multi-piezoelectric driven circulation type active flow distribution pump with patent number CN 103133322B proposes an active flow distribution pump driven by a plurality of piezoelectric ceramic drivers, which can effectively degrade flow pulsation and realize continuous oil suction and discharge, but is limited by the micro-stroke of the piezoelectric ceramic drivers, the rated load of the pump is small, and when a high load is running, the piezoelectric ceramic drivers need an ultra-high frequency running condition, which can generate high-temperature irreversible loss and reduce the working efficiency.
Disclosure of Invention
In order to effectively improve the power density of an electromagnetic direct drive servo, improve the robustness of a system and reduce the nonlinear output of unnecessary flow in work, on the basis of fully considering the high-frequency bidirectional driving characteristic of a moving coil type electromagnetic linear actuator and improving the integration level of an electromagnetic direct drive pump, the invention provides a complete machine structure of a four-module linkage flow distribution type electromagnetic direct drive pump. The invention can effectively improve the power transmission efficiency of the whole electromechanical-hydraulic integration, improve the output power of the system, realize the continuous oil suction and discharge of low-flow pulsation and ensure the working coordination and the application universality of the electromagnetic direct drive pump.
In order to achieve the purpose, the invention adopts the following technical scheme:
a four-module linkage flow distribution type electromagnetic direct drive pump comprises four linkage pump modules with the same structure and oil paths for connecting the four linkage pump modules, wherein the four linkage pump modules are a linkage pump module A, a linkage pump module B, a linkage pump module C and a linkage pump module D respectively;
the linkage pump modules respectively comprise moving-coil electromagnetic linear actuators, valve units and pump units; the moving-coil electromagnetic linear actuator includes: the valve pump comprises an outer yoke 2, a permanent magnet array 4 bonded on the inner surface of the outer yoke 2, a first end cover 1 and a second end cover 7 coaxially fixedly connected at two ends of the permanent magnet array 4 through an inner yoke 3, the outer end part of the second end cover 7 is coaxially fixedly connected with a valve pump fixing flange 8, an electromagnetic coil group 6 is wound in a groove of a coil framework 5, the coil framework 5 is sleeved between the outer surface of the inner yoke 3 and the inner surface of the permanent magnet array 4, extending teeth of the coil framework 5 are arranged in an inner cavity of the valve pump fixing flange 8 through the groove of the second end cover 7, and a coil framework connecting plate 9 is fixedly connected with the coil framework 5 through threaded holes on the extending teeth of the coil framework 5; the valve unit is a two-position three-way slide valve and comprises a first valve cover 10, a valve body 11 and a valve core 12And the second valve cover 13, the first valve cover 10, the valve body 11 and the second valve cover 13 are coaxially fixedly connected to the outer end part of the valve pump fixing flange 8 in sequence, the valve core 12 penetrates through the valve body 11, the valve core close to the end of the valve pump fixing flange 8 is coaxially and threadedly connected with the coil framework connecting plate 9, a valve cavity is formed between the valve core 12 and the valve body 11, and a first valve port A is arranged on the wall of the valve cavityVA second valve port P and a third valve port BV(ii) a The pump unit comprises a cylinder 14 and a piston 15, the cylinder 14 is coaxially and fixedly connected with the outer end part of a second valve cover 13, an extension rod of the piston 15 is coaxially and threadedly connected with a valve core 12, the piston 15 is positioned in the cylinder 14, an oil suction and discharge working cavity is formed between the outer end part of the piston 15 and the cylinder 14, and an oil suction and discharge port A is arranged on the wall of the oil suction and discharge working cavityP
The oil circuit for connecting the four linkage pump modules comprises full linkage connection and half linkage connection; the full linkage connection is the oil suction and discharge port A of the linkage pump module APAn oil suction and discharge port A connected with a second valve port P of the linkage pump module B and used for the linkage pump module BPAn oil suction and discharge port A connected with the second valve port P of the linkage pump module C and used for the linkage pump module CPAn oil suction and discharge port A connected with a second valve port P of the linkage pump module D and used for the linkage pump module DPIs connected with the second valve port P of the linkage pump module A, and the first valve port A of the linkage pump module AVFirst valve port A of linkage pump module BVFirst valve port A of linkage pump module CVAnd a first valve port A of a linkage pump module DVAre all communicated with the oil port X and linked with a third valve port B of the pump module AVAnd a third valve port B of the linkage pump module BVAnd a third valve port B of the linkage pump module CVAnd a third valve port B of the linkage pump module DVAre all communicated with the oil port Y; the semi-linkage connection is an oil suction and discharge port A of a linkage pump module APAn oil suction and discharge port A connected with a second valve port P of the linkage pump module B and used for the linkage pump module BPAn oil suction and discharge port A connected with a second valve port P of the linkage pump module A and of the linkage pump module CPAn oil suction and discharge port A connected with a second valve port P of the linkage pump module D and used for the linkage pump module DPA third valve port B of the linkage pump module A is connected with a second valve port P of the linkage pump module CVFirst valve port A of linkage pump module BVAnd a third valve port of the linkage pump module CBVAnd a first valve port A of a linkage pump module DVAre all communicated with an oil port X and linked with a first valve port A of a pump module AVAnd a third valve port B of the linkage pump module BVFirst valve port A of linkage pump module CVAnd a third valve port B of the linkage pump module DVAre all communicated with the oil port Y.
Further, the permanent magnet array 4 is formed by m axially magnetized permanent magnets 4.1 and n radially magnetized permanent magnets 4.2 which are tightly attached to each other, wherein m and n are positive integers, and m is equal to n + 1.
Further, the electromagnetic coil group 6 is composed of a forward coil windings 6.1 and b reverse coil windings 6.2, the winding directions of the coils of the adjacent windings are opposite, wherein a and b are positive integers, and a-b or a-b is ± 1.
Furthermore, the number of windings of the electromagnetic coil group 6 and the number of radial magnetizing permanent magnets 4.2 satisfy n ═ a + b.
Furthermore, a hollow hole is formed in the end portion, close to the valve body 11, of the first valve cover 10, a first linear bearing 17 is installed in the hollow hole, a hollow hole is formed in the end portion, close to the valve body 11, of the second valve cover 13, and a second linear bearing 19 is installed in the hollow hole.
Further, a seal ring a16 and a seal ring b18 are provided between the first linear bearing 17 and the first valve cover 10, and a seal ring c20 and a seal ring e22 are provided between the second linear bearing 19 and the second valve cover 13.
Further, the outer surface of the valve core 12 is provided with a sealing ring 1, and the outer surface of the piston 15 is provided with a sealing ring f 23.
Compared with the existing active flow distribution servo pump, the invention has the following advantages:
1. the four-module linkage flow distribution type electromagnetic direct-drive pump adopts the four modules to jointly drive flow distribution, can realize continuous flow output of the pump, reduce flow pulsation, eliminate flow dead zones and improve the flexibility and output power of the pump.
2. The four-module linkage flow distribution type electromagnetic direct drive pump is directly driven by a moving coil type electromagnetic linear actuator based on a permanent magnet array (Halbach permanent magnet array), a rotation-linear motion conversion device is omitted, power transmission efficiency is high, and dynamic response is rapid.
3. The four-module linkage flow distribution type electromagnetic direct drive pump adopts an integrated design, and the moving coil type electromagnetic linear actuator drives the active flow distribution valve to work while driving the piston of the pump unit to work, so that the number of driving elements is reduced, and the structural compactness of the pump is improved.
4. The four-module linkage flow distribution type electromagnetic direct-drive pump can provide different parameter indexes aiming at different performance requirements and application targets, ensures the design flexibility of the electromagnetic direct-drive pump, and has wider application range.
Drawings
FIG. 1 is a schematic diagram of the structure and semi-linkage connection oil circuit of the present invention;
FIG. 2 is a schematic diagram of a single ganged pump module configuration of the present invention;
FIG. 3 is a schematic diagram of the single ganged pump module drive concept of the present invention;
FIG. 4 is a schematic diagram of the structure and full linkage connection oil path of the present invention;
FIG. 5 is a schematic illustration of the displacement of each of the linkage pump modules for a first flow output condition of the present invention;
FIG. 6 is a schematic view of the port X and port Y flow curves for the first flow output condition of the present invention;
FIG. 7 is a schematic displacement diagram of the respective linkage pump modules for a second flow output condition of the present invention;
fig. 8 is a graphical representation of port X and port Y flow curves for a second flow output condition of the present invention.
In the figure: 1 a first end cap; 2 an outer yoke; 3 an inner yoke; 4, permanent magnet array; 5, a coil framework; 6, a solenoid coil group; 7 a second end cap; 8, a valve pump fixing flange; 9, connecting a coil framework; 10 a first valve cover; 11 a valve body; 12 a valve core; 13 a second valve cover; 14 cylinder bodies; 15 a piston; 16, a sealing ring a; 17 a first linear bearing; 18 sealing ring b; 19 a second linear bearing; 20 a sealing ring c; 21, a sealing ring d; 22 a sealing ring e; 23, a sealing ring f;
4.1 axially magnetizing the permanent magnet; 4.2 radial magnetizing permanent magnet;
6.1 forward coil winding; 6.2 reversing the coil winding.
Detailed Description
The present invention will be described in further detail with reference to the accompanying drawings and specific embodiments.
As shown in fig. 1, a four-module linkage flow distribution type electromagnetic direct drive pump comprises four linkage pump modules with the same structure and an oil path for connecting the four linkage pump modules, wherein the four linkage pump modules are a linkage pump module a, a linkage pump module B, a linkage pump module C and a linkage pump module D respectively;
the linkage pump modules respectively comprise moving-coil electromagnetic linear actuators, valve units and pump units; taking a linkage pump module a as an example, as shown in fig. 2, the moving-coil electromagnetic linear actuator includes an outer yoke 2, a permanent magnet array 4 bonded to an inner surface of the outer yoke 2, a first end cap 1 and a second end cap 7 coaxially connected to two ends of the permanent magnet array 4 through an inner yoke 3, a valve pump fixing flange 8 coaxially connected to an outer end of the second end cap 7, an electromagnetic coil group 6 wound in a groove of a coil frame 5, the coil frame 5 sleeved between an outer surface of the inner yoke 3 and an inner surface of the permanent magnet array 4, protruding teeth of the coil frame 5 disposed in an inner cavity of the valve pump fixing flange 8 through a groove of the second end cap 7, and a coil frame connecting plate 9 fixedly connected to the coil frame 5 through threaded holes on the protruding teeth of the coil frame 5; the valve unit is a two-position three-way slide valve and comprises a first valve cover 10 and a valve body 11, the valve comprises a valve core 12 and a second valve cover 13, wherein the first valve cover 10, the valve body 11 and the second valve cover 13 are sequentially and coaxially fixedly connected to the outer end part of a valve pump fixing flange 8, a hollow hole is formed in the end part of the first valve cover 10 close to the valve body 11, a first linear bearing 17 is installed in the hollow hole, a sealing ring a16 and a sealing ring b18 are arranged between the first linear bearing 17 and the first valve cover 10, a hollow hole is formed in the end part of the second valve cover 13 close to the valve body 11, a second linear bearing 19 is installed in the hollow hole, a sealing ring c20 and a sealing ring e22 are arranged between the second linear bearing 19 and the second valve cover 13, the valve core 12 penetrates through a valve unit, a sealing ring d21 is arranged on the outer surface of the valve core 12, the valve core 12 close to the end of the valve pump fixing flange 8 is coaxially and in threaded connection with a coil framework connecting plate 9, a valve cavity is formed between the valve core 12 and the valve body 11, and a first valve port A is arranged on the wall of the valve cavity.VA second valve port P and a third valve port BV(ii) a The pump unit comprises a cylinder 14 and a piston 15, wherein the cylinder 14 is coaxially fixedThe extension rod of the piston 15 is coaxially and threadedly connected with the valve core 12, the outer surface of the piston 15 is provided with a sealing ring f23, an oil suction and discharge working cavity is formed between the outer end of the piston 15 and the cylinder body 14, and an oil suction and discharge port A is arranged on the wall of the oil suction and discharge working cavityP(ii) a The permanent magnet array 4 is formed by mutually clinging m axial magnetized permanent magnets 4.1 and n radial magnetized permanent magnets 4.2, wherein m and n are positive integers, and m is n + 1; the electromagnetic coil group 6 is composed of a forward coil windings 6.1 and b reverse coil windings 6.2, the winding directions of the coils of the adjacent windings are opposite, wherein a and b are positive integers, and a-b or a-b is +/-1; the number of the windings of the electromagnetic coil group 6 and the number of the radial magnetizing permanent magnets 4.2 meet n which is a + b.
The working principle of the linkage pump module A is shown in fig. 3, a coil framework 5, an electromagnetic coil group 6, a coil framework connecting plate 9, a valve core 12, a piston 15 and a sealing ring jointly form a pump rotor of the linkage pump module A, the current-carrying electromagnetic coil group 6 is subjected to Lorentz force in a stable magnetic field provided by a permanent magnet array 4 and acts on the pump rotor, the valve core 12 and the piston 15 are pushed to generate axial displacement in a stroke, driving force output in different directions can be realized by adjusting different current directions through a controller, and driving force output in different sizes can be realized by adjusting different current amplitudes through the controller; FIG. 3 (a) shows the pump mover at the negative end of its stroke, where the valve chamber is simultaneously with the third valve port BVIs communicated with the second valve port P, and oil can be discharged from the third valve port BVFlows into the valve chamber and is discharged from the second port P, or the second port P may flow into the valve chamber and is discharged from the third port BVWhen the pump mover moves to the right under the current shown in FIG. 3 (a), the valve chamber passes through the second valve port P and the third valve port BVThe communication area is gradually reduced, the volume of the oil suction and discharge working cavity is reduced, and oil inside the oil suction and discharge working cavity passes through the oil suction and discharge port APIs pressed out; when the pump rotor moves to the stroke middle position, as shown in fig. 3 (b), the valve cavity is only communicated with the second valve port P, the pump rotor continues to move rightwards under the current shown in fig. 3 (b), the volume of the oil suction and discharge working cavity is continuously reduced, and oil in the oil suction and discharge working cavity passes through the oil suction and discharge port aPIs pressed out and the valve cavity is communicated withThe second valve port P and the first valve port AVThe communication area of (a) is gradually increased; when the pump rotor continues to move rightwards to the positive end of the stroke under the current as shown in (c) of fig. 3, the volume of the oil suction and discharge working chamber reaches the minimum, the oil suction and discharge work is stopped, and at the moment, the valve chamber and the first valve port A simultaneouslyVIs communicated with the second valve port P, and oil can be discharged from the first valve port AVFlows into the valve chamber and is discharged from the second valve port P, or the second valve port P flows into the valve chamber and is discharged from the first valve port AVDischarging; then, the current direction in the electromagnetic coil group 6 is changed by the control signal, the pump rotor generates reverse displacement and moves leftwards, and the valve cavity passes through the second valve port P and the first valve port AVWhen the pump rotor moves to the stroke middle position, the valve cavity and the first valve port A are connectedVSeparated and then gradually separated from the third valve port B through the second valve port PVThe oil is communicated until the pump rotor reaches the negative end of the stroke, the volume of the oil suction and discharge working cavity is gradually increased in the process, and external oil passes through the oil suction and discharge port APIs sucked into the oil suction and discharge working cavity.
The oil circuit for connecting the four linkage pump modules comprises full linkage connection and half linkage connection; the full linkage connection is the oil suction and discharge port A of the linkage pump module APAn oil suction and discharge port A connected with a second valve port P of the linkage pump module B and used for the linkage pump module BPAn oil suction and discharge port A connected with the second valve port P of the linkage pump module C and used for the linkage pump module CPAn oil suction and discharge port A connected with a second valve port P of the linkage pump module D and used for the linkage pump module DPIs connected with the second valve port P of the linkage pump module A, and the first valve port A of the linkage pump module AVFirst valve port A of linkage pump module BVFirst valve port A of linkage pump module CVAnd a first valve port A of a linkage pump module DVAre all communicated with the oil port X and linked with a third valve port B of the pump module AVAnd a third valve port B of the linkage pump module BVAnd a third valve port B of the linkage pump module CVAnd a third valve port B of the linkage pump module DVAre all communicated with an oil port Y as shown in figure 1; the semi-linkage connection is an oil suction and discharge port A of a linkage pump module APAn oil suction and discharge port A connected with a second valve port P of the linkage pump module B and used for the linkage pump module BPAn oil suction and discharge port A connected with a second valve port P of the linkage pump module A and of the linkage pump module CPAn oil suction and discharge port A connected with a second valve port P of the linkage pump module D and used for the linkage pump module DPA third valve port B of the linkage pump module A is connected with a second valve port P of the linkage pump module CVFirst valve port A of linkage pump module BVAnd a third valve port B of the linkage pump module CVAnd a first valve port A of a linkage pump module DVAre all communicated with an oil port X and linked with a first valve port A of a pump module AVAnd a third valve port B of the linkage pump module BVFirst valve port A of linkage pump module CVAnd a third valve port B of the linkage pump module DVAre all communicated with the oil port Y as shown in fig. 4.
The full linkage connection and the half linkage connection of the oil way have the same principle, but the pipeline connection mode is different. The pump unit of each linkage pump module in the full linkage connection works under the valve unit joint driving distribution flow of the adjacent linkage pump module, namely, the pump unit of the linkage pump module A works under the valve unit joint driving distribution flow of the linkage pump module B, the pump unit of the linkage pump module B works under the valve unit joint driving distribution flow of the linkage pump module C, the pump unit of the linkage pump module C works under the valve unit joint driving distribution flow of the linkage pump module D, and the pump unit of the linkage pump module D works under the valve unit joint driving distribution flow of the linkage pump module A; valve units and pump units of every two adjacent linkage pump modules in the semi-linkage connection are mutually combined to drive flow distribution to work, namely, the pump units and the valve units in the adjacent linkage pump modules A and B are mutually combined to drive flow distribution to work, and the pump units and the valve units in the adjacent linkage pump modules C and D are mutually combined to drive flow distribution to work; the working principle of each linkage pump module is completely the same, the four linkage pump modules simultaneously and jointly drive flow distribution work under the control of four paths of sine displacement signals with the same amplitude and the sequential phase difference of 90 degrees, oil is absorbed from one of an oil port X and an oil port Y, and oil is discharged from the other oil port; the output flow of the four-module linkage flow distribution type electromagnetic direct drive pump can be controlled by controlling the amplitude of the four-way displacement signals, and the flow output direction of the four-module linkage flow distribution type electromagnetic direct drive pump can be controlled by controlling the phase relation of the four-way displacement signals.
The four-module linkage flow distribution type electromagnetic direct drive pump is a bidirectional pump, comprises two flow output working conditions, takes semi-linkage connection of an oil way as an example, and describes the working method of the four-module linkage flow distribution type electromagnetic direct drive pump in detail, and the specific process is as follows:
(1) first flow output condition: oil port X discharges oil and oil port Y sucks oil
The four linkage pump modules in the pump jointly drive flow distribution to work simultaneously according to the principle, and the displacement of the four linkage pump modules is shown in figure 5. For convenience of description, the initial positions of the pump rotors in the four linkage pump modules are set to be sequentially 90-degree-different phases, namely the pump rotor of the linkage pump module A is located at a stroke middle position, the pump rotor of the linkage pump module B is located at a stroke positive end part, the pump rotor of the linkage pump module C is located at a stroke middle position, and the pump rotor of the linkage pump module D is located at a stroke negative end part; at the time of 0 to T/4, the pump rotor of the linkage pump module A moves from the stroke middle position to the stroke positive end part, the piston 15 of the pump rotor in the linkage pump module A compresses the oil suction and discharge working cavity, and oil passes through the second valve port P of the linkage pump module B and is discharged from the first valve port AVConverging the oil port X, discharging the pump from the oil port X, moving the pump rotor of the linkage pump module D from the positive end of the stroke to the middle position of the stroke, compressing a suction and discharge oil working cavity by a piston 15 of the pump rotor in the linkage pump module D, and passing oil through a second valve port P of the linkage pump module C and then through a third valve port BVAn oil inlet X is converged, and the pump is discharged from the oil inlet X; similarly, the oil port Y absorbs oil, and the oil liquid simultaneously drives the oil suction and discharge working cavity of the linkage pump module B in a linkage manner through the linkage pump module A and the linkage pump module B, and simultaneously drives the oil suction and discharge working cavity of the linkage pump module C in a linkage manner through the linkage pump module C and the linkage pump module D; the movement and position relations of the four linkage pump modules are integrated, the flow curves of the oil port X and the oil port Y of the four-module linkage flow-distribution type electromagnetic direct-drive pump in the whole period T are shown in fig. 6, the flow is positive and represents oil discharge, and the flow is negative and represents oil absorption.
(2) Second flow output condition: oil is absorbed by the oil port X and discharged by the oil port Y
The four linkage pump modules in the pump jointly drive flow distribution to work simultaneously according to the principle, and the displacement of the four linkage pump modules is shown in fig. 7. At the time of 0 to T/4, oil is simultaneously driven by the linkage pump module C and the linkage pump module D in a linkage manner to be discharged from an oil suction and discharge working cavity of the linkage pump module C, meanwhile, the oil is simultaneously driven by the linkage pump module C and the linkage pump module D in a linkage manner to be discharged from the oil suction and discharge working cavity of the linkage pump module D, and the discharged oil is converged into an oil port Y and discharged out of the pump from the oil port Y; similarly, the oil port X absorbs oil, and the oil liquid simultaneously drives the oil suction and discharge working cavity of the linkage pump module A in a linkage manner through the linkage pump module A and the linkage pump module B and simultaneously drives the oil suction and discharge working cavity of the linkage pump module B in a linkage manner through the linkage pump module A and the linkage pump module B; the movement and position relations of the four linkage pump modules are integrated, the flow curves of the oil port X and the oil port Y of the four-module linkage flow-distribution type electromagnetic direct-drive pump in the whole period T are shown in fig. 8, the flow is positive and represents oil discharge, and the flow is negative and represents oil absorption.
The above description is only of the preferred embodiments of the present invention, and it should be noted that: it will be apparent to those skilled in the art that various modifications and adaptations can be made without departing from the principles of the invention and these are intended to be within the scope of the invention.

Claims (10)

1.一种四模块联动配流式电磁直驱泵,其特征在于,所述的四模块联动配流式电磁直驱泵包括四个结构相同的联动泵模块和连接四个联动泵模块的油路,四个联动泵模块分别为联动泵模块A、联动泵模块B、联动泵模块C和联动泵模块D;1. a four-module linkage distribution flow electromagnetic direct drive pump, is characterized in that, the described four-module linkage distribution flow electromagnetic direct drive pump comprises four structurally identical linkage pump modules and the oil circuit connecting four linkage pump modules, The four linked pump modules are linked pump module A, linked pump module B, linked pump module C and linked pump module D; 所述联动泵模块均包括动圈式电磁直线执行器、阀单元和泵单元;所述动圈式电磁直线执行器包括:外磁轭(2),粘接于外磁轭(2)内表面的永磁阵列(4),通过内磁轭(3)同轴固连于永磁阵列(4)两端的第一端盖(1)和第二端盖(7),第二端盖(7)的外端部同轴固连阀泵固定法兰(8),电磁线圈组(6)绕制于线圈骨架(5)的凹槽内,线圈骨架(5)套装于内磁轭(3)外表面和永磁阵列(4)内表面间,线圈骨架(5)的伸出齿通过第二端盖(7)的凹槽置于阀泵固定法兰(8)的内腔中,线圈骨架连接板(9)通过线圈骨架(5)伸出齿上的螺纹孔与线圈骨架(5)固定连接;所述阀单元为两位三通滑阀,包括第一阀盖(10)、阀体(11)、阀芯(12)和第二阀盖(13),第一阀盖(10)、阀体(11)和第二阀盖(13)依次同轴固连于阀泵固定法兰(8)外端部,阀芯(12)贯穿阀体(11),靠近阀泵固定法兰(8)端的阀芯(12)与线圈骨架连接板(9)同轴螺纹联接,阀芯(12)与阀体(11)间形成阀腔,阀腔壁上设有第一阀口AV、第二阀口P和第三阀口BV;所述泵单元包括缸体(14)和活塞(15),缸体(14)同轴固连于第二阀盖(13)外端部,活塞(15)的伸出杆与阀芯(12)同轴螺纹联接,活塞(15)位于缸体(14)内,活塞(15)外端部与缸体(14)间形成吸排油工作腔,吸排油工作腔壁上设有吸排油口APEach of the linkage pump modules includes a moving coil electromagnetic linear actuator, a valve unit and a pump unit; the moving coil electromagnetic linear actuator includes: an outer magnetic yoke (2), which is bonded to the inner surface of the outer magnetic yoke (2). The permanent magnet array (4) is coaxially fixed to the first end cover (1) and the second end cover (7) at both ends of the permanent magnet array (4) through the inner magnetic yoke (3), and the second end cover (7) The outer end of the ) is coaxially fixed to the valve pump fixing flange (8), the electromagnetic coil group (6) is wound in the groove of the coil bobbin (5), and the coil bobbin (5) is sleeved on the inner yoke (3) Between the outer surface and the inner surface of the permanent magnet array (4), the protruding teeth of the coil bobbin (5) are placed in the inner cavity of the valve pump fixing flange (8) through the groove of the second end cover (7). The connecting plate (9) is fixedly connected to the coil bobbin (5) through threaded holes on the protruding teeth of the coil bobbin (5); the valve unit is a two-position three-way slide valve, including a first valve cover (10), a valve body (11), the valve core (12) and the second valve cover (13), the first valve cover (10), the valve body (11) and the second valve cover (13) are sequentially and coaxially connected to the valve pump fixing flange (8) At the outer end, the valve core (12) penetrates the valve body (11), and the valve core (12) near the end of the valve pump fixing flange (8) is coaxially threaded with the coil bobbin connecting plate (9). 12) A valve cavity is formed between the valve body (11), and the wall of the valve cavity is provided with a first valve port A V , a second valve port P and a third valve port B V ; the pump unit includes a cylinder block (14) and The piston (15), the cylinder (14) is coaxially fixed to the outer end of the second valve cover (13), the extension rod of the piston (15) is coaxially threaded with the valve core (12), and the piston (15) is located at the outer end of the second valve cover (13). In the cylinder body (14), an oil suction and discharge working cavity is formed between the outer end of the piston (15) and the cylinder body (14), and an oil suction and discharge port AP is provided on the wall of the oil suction and discharge working cavity; 所述连接四个联动泵模块的油路包括全联动连接和半联动连接;所述全联动连接为联动泵模块A的吸排油口AP与联动泵模块B的第二阀口P连接、联动泵模块B的吸排油口AP与联动泵模块C的第二阀口P连接、联动泵模块C的吸排油口AP与联动泵模块D的第二阀口P连接、联动泵模块D的吸排油口AP与联动泵模块A的第二阀口P连接,联动泵模块A的第一阀口AV、联动泵模块B的第一阀口AV、联动泵模块C的第一阀口AV和联动泵模块D的第一阀口AV均与油口X连通,联动泵模块A的第三阀口BV、联动泵模块B的第三阀口BV、联动泵模块C的第三阀口BV和联动泵模块D的第三阀口BV均与油口Y连通;所述半联动连接为联动泵模块A的吸排油口AP与联动泵模块B的第二阀口P连接、联动泵模块B的吸排油口AP与联动泵模块A的第二阀口P连接、联动泵模块C的吸排油口AP与联动泵模块D的第二阀口P连接、联动泵模块D的吸排油口AP与联动泵模块C的第二阀口P连接,联动泵模块A的第三阀口BV、联动泵模块B的第一阀口AV、联动泵模块C的第三阀口BV和联动泵模块D的第一阀口AV均与油口X连通,联动泵模块A的第一阀口AV、联动泵模块B的第三阀口BV、联动泵模块C的第一阀口AV和联动泵模块D的第三阀口BV均与油口Y连通。The oil circuit connecting the four linkage pump modules includes a full linkage connection and a semi linkage connection; the full linkage connection is that the suction and discharge oil port A P of the linkage pump module A is connected and linked with the second valve port P of the linkage pump module B. The suction and discharge ports A P of the pump module B are connected to the second valve port P of the linked pump module C, the suction and discharge ports AP of the linked pump module C are connected to the second valve port P of the linked pump module D, and the The oil suction and discharge port AP is connected to the second valve port P of the linked pump module A, the first valve port AV of the linked pump module A, the first valve port AV of the linked pump module B, and the first valve of the linked pump module C Port AV and the first valve port AV of the linked pump module D are both connected to the oil port X, the third valve port B V of the linked pump module A, the third valve port B V of the linked pump module B, and the linked pump module C The third valve port B V of the linkage pump module D and the third valve port B V of the linkage pump module D are both communicated with the oil port Y; The valve port P is connected, the suction and discharge port A P of the linked pump module B is connected with the second valve port P of the linked pump module A, and the suction and discharge oil port A P of the linked pump module C is connected with the second valve port P of the linked pump module D , The suction and discharge oil port AP of the linkage pump module D is connected with the second valve port P of the linkage pump module C, the third valve port B V of the linkage pump module A, the first valve port AV of the linkage pump module B, and the linkage pump The third valve port B V of the module C and the first valve port AV of the linked pump module D are both connected to the oil port X, and the first valve port AV of the linked pump module A and the third valve port B of the linked pump module B V , the first valve port AV of the linked pump module C and the third valve port B V of the linked pump module D are both communicated with the oil port Y. 2.根据权利要求1所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述永磁阵列(4)由m个轴向充磁永磁体(4.1)和n个径向充磁永磁体(4.2)相互紧贴组成,其中m、n均为正整数,m=n+1。2 . The four-module linkage distribution type electromagnetic direct drive pump according to claim 1 , wherein the permanent magnet array ( 4 ) consists of m axial magnetized permanent magnets ( 4.1 ) and n radial The magnetized permanent magnets (4.2) are formed in close contact with each other, wherein m and n are both positive integers, and m=n+1. 3.根据权利要求1或2所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述电磁线圈组(6)由a个正向线圈绕组(6.1)和b个反向线圈绕组(6.2)组成,相邻绕组的线圈缠绕方向相反,其中a、b均为正整数,a=b或a-b=±1。3. A four-module linkage distribution type electromagnetic direct drive pump according to claim 1 or 2, characterized in that the electromagnetic coil group (6) consists of a forward coil windings (6.1) and b reverse It consists of coil windings (6.2), and the winding directions of adjacent windings are opposite, wherein a and b are both positive integers, a=b or a-b=±1. 4.根据权利要求3所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述电磁线圈组(6)的绕组个数与径向充磁永磁体(4.2)个数满足n=a+b。4. A four-module linkage distribution type electromagnetic direct drive pump according to claim 3, characterized in that the number of windings of the electromagnetic coil group (6) and the number of radially magnetized permanent magnets (4.2) satisfy n=a+b. 5.根据权利要求1、2或4所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述第一阀盖(10)靠近阀体(11)的端部设有空孔,空孔内安装第一直线轴承(17),第二阀盖(13)靠近阀体(11)的端部设有空孔,空孔内安装第二直线轴承(19)。The four-module linkage distribution flow electromagnetic direct drive pump according to claim 1, 2 or 4, characterized in that, the end of the first valve cover (10) close to the valve body (11) is provided with a hollow space The first linear bearing (17) is installed in the empty hole, the end of the second valve cover (13) close to the valve body (11) is provided with an empty hole, and the second linear bearing (19) is installed in the empty hole. 6.根据权利要求3所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述第一阀盖(10)靠近阀体(11)的端部设有空孔,空孔内安装第一直线轴承(17),第二阀盖(13)靠近阀体(11)的端部设有空孔,空孔内安装第二直线轴承(19)。6 . The four-module linkage distribution type electromagnetic direct drive pump according to claim 3 , wherein the end of the first valve cover ( 10 ) close to the valve body ( 11 ) is provided with a hole, and the hole is empty. 7 . The first linear bearing (17) is installed inside, the end of the second valve cover (13) close to the valve body (11) is provided with an empty hole, and the second linear bearing (19) is installed in the empty hole. 7.根据权利要求5所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述第一直线轴承(17)与第一阀盖(10)间设有密封圈a(16)和密封圈b(18),第二直线轴承(19)与第二阀盖(13)间设有密封圈c(20)和密封圈e(22)。7. The four-module linkage distribution type electromagnetic direct drive pump according to claim 5, characterized in that a sealing ring a (a) is provided between the first linear bearing (17) and the first valve cover (10). 16) and sealing ring b (18), a sealing ring c (20) and a sealing ring e (22) are arranged between the second linear bearing (19) and the second valve cover (13). 8.根据权利要求6所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述第一直线轴承(17)与第一阀盖(10)间设有密封圈a(16)和密封圈b(18),第二直线轴承(19)与第二阀盖(13)间设有密封圈c(20)和密封圈e(22)。8 . The four-module linkage distribution type electromagnetic direct drive pump according to claim 6 , wherein a sealing ring a ( 16) and sealing ring b (18), a sealing ring c (20) and a sealing ring e (22) are arranged between the second linear bearing (19) and the second valve cover (13). 9.根据权利要求1、2、4、6、7或8所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述阀芯(12)的外表面设有密封圈d(21),活塞(15)的外表面设有密封圈f(23)。9. A four-module linkage distribution electromagnetic direct drive pump according to claim 1, 2, 4, 6, 7 or 8, characterized in that, the outer surface of the valve core (12) is provided with a sealing ring d (21), the outer surface of the piston (15) is provided with a sealing ring f (23). 10.根据权利要求3所述的一种四模块联动配流式电磁直驱泵,其特征在于,所述阀芯(12)的外表面设有密封圈d(21),活塞(15)的外表面设有密封圈f(23)。10. The four-module linkage distribution type electromagnetic direct drive pump according to claim 3, characterized in that, the outer surface of the valve core (12) is provided with a sealing ring d (21), and the outer surface of the piston (15) is provided with a sealing ring d (21). The surface is provided with a sealing ring f(23).
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