WO2015132029A1 - Soupape équipée de deux moyens de soupape - Google Patents

Soupape équipée de deux moyens de soupape Download PDF

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Publication number
WO2015132029A1
WO2015132029A1 PCT/EP2015/052147 EP2015052147W WO2015132029A1 WO 2015132029 A1 WO2015132029 A1 WO 2015132029A1 EP 2015052147 W EP2015052147 W EP 2015052147W WO 2015132029 A1 WO2015132029 A1 WO 2015132029A1
Authority
WO
WIPO (PCT)
Prior art keywords
valve
valve means
flow
actuator
driver
Prior art date
Application number
PCT/EP2015/052147
Other languages
German (de)
English (en)
Inventor
Jerome Thiery
Ralph Engelberg
Original Assignee
Robert Bosch Gmbh
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Robert Bosch Gmbh filed Critical Robert Bosch Gmbh
Publication of WO2015132029A1 publication Critical patent/WO2015132029A1/fr

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Classifications

    • 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
    • F16K3/00Gate valves or sliding valves, i.e. cut-off apparatus with closing members having a sliding movement along the seat for opening and closing
    • F16K3/02Gate valves or sliding valves, i.e. cut-off apparatus with closing members having a sliding movement along the seat for opening and closing with flat sealing faces; Packings therefor
    • F16K3/029Gate valves or sliding valves, i.e. cut-off apparatus with closing members having a sliding movement along the seat for opening and closing with flat sealing faces; Packings therefor with two or more gates
    • 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
    • F16K31/0644One-way valve
    • F16K31/0668Sliding valves

Definitions

  • the invention relates to a valve according to the species of the independent claims.
  • liquid valve having a housing, a first valve means and a first actuator, wherein the first actuator and the first valve means cooperate, known.
  • valve according to the invention in particular fluid valve with the features of the main claim has the advantage that the flow through the valve can be controlled improved by a medium. Another advantage is to be considered that in a valve according to the invention, in particular the flow through the valve can be released and locked by a medium more precisely.
  • valve has a guide element.
  • the guide element serves to guide the valve means.
  • the guide element improves the guidance of the valve means in the housing.
  • Guide element allows a defined guidance of the valve means in the valve. It is also advantageous that the valve means by the guide element be stored defined. Due to the defined storage, the leadership can be improved. Also, friction and type of leadership can be through the
  • Guide means can be customized application-specific.
  • valve has a valve plate.
  • a flow through the valve is controlled, in particular blocked or release.
  • Valve means to each other and / or the position of the first valve means and the second valve means relative to the valve plate, a flow channel enabled or blocked.
  • the size of the flow channel is dependent on the position of the first and second valve means to each other and / or the position of the valve means relative to the valve plate.
  • Regulate flow channel in particular regulate. Depending on the position of the valve means, a flow is released, throttled or blocked.
  • Valve plate have openings.
  • the first valve means has at least one opening.
  • the second valve means has at least one opening.
  • the valve plate has in particular at least one opening.
  • the openings of the valve means and the valve plate form depending on the position of the openings to one another or more flow passages or block one or more flow channels.
  • the formed flow channel allows the passage of the valve. If no flow channel is formed, then a flow through the valve is not possible and the valve is locked.
  • the volume flow is dependent on the shape and the position of the openings to each other. The volume flow can thus be easily determined.
  • a development of the invention is that the size, in particular the
  • the volume flow in particular the size of the volume flow through the valve is dependent on the position of the valve means to each other.
  • the volume flow, in particular the size of the volume flow is dependent on the position of the valve means relative to the position of a valve plate.
  • the volume flow is adjustable.
  • the at least one restoring element counteracts at least one of the adjusting elements.
  • Resetting element associated with an actuating element The return element allows a provision of the actuating element in a defined
  • At least one valve means of the valve assumes a defined position, in particular in the event of a fault.
  • the actuating element has an actuator and a driver.
  • the actuator acts on the driver, in particular moves,
  • the driver cooperates with at least one of the valve means, in particular is connected to a valve means, preferably the driver is the movement of the actuator to the, or the valve means on.
  • At least one actuator has a bobbin and an armature.
  • the anchor can with the driver and / or the
  • the anchor can with the driver
  • the armature is moved or held in a first active position, in particular energized end position.
  • the coil carrier and the anchor represent a very simple, inexpensive and compact way, the driver, or the To move valve means in the housing, in particular with respect to the valve plate, in particular to move, or to keep in an activated or energized position.
  • At least one actuator is designed as a motor.
  • the engine acts on a converter, in particular drives it.
  • the transducer acts directly on a valve element and / or on the driver.
  • the converter is connected to the driver.
  • the converter preferably converts the rotational movement of the motor into a translatory movement of the driver.
  • Valve means and the second valve means presses against each other.
  • the spring element presses the valve means against the guide element and / or the
  • valve plate The valve plate and at least one of the valve means are in constant contact.
  • the pressing by the spring element minimizes the distances between the valve means, in particular between the valve means and the valve plate and / or the guide element.
  • the distances can act as potential leaks.
  • the sealing effect of the valve is improved.
  • At least one seal is arranged on at least one valve means, in particular at least one seal is arranged between the first and the second valve means.
  • the seal additionally improves the sealing of the valve.
  • the seal minimizes or prevents flow due to leakage even though the valve is locked.
  • the valve is a flat slide valve and the first and second valve means are designed as a slide, in particular as a flat slide. Flat slide valves can be easily and inexpensively manufactured.
  • the driver is designed as a coupling.
  • a coupling allows a rigid, resilient, movable or releasable connection between the actuator and the valve means.
  • FIG. 1 shows a valve 1 according to the invention
  • FIG. 2 shows a valve 1 according to the invention in a side view
  • Figure 3 shows an inventive valve 1 in a side view with an altered position of the first valve means
  • Figure 4 shows an inventive valve 1 in a side view with an altered position of the first and second valve means.
  • FIG. 1 shows a valve 1 according to the invention, in particular a fluid valve, preferably a liquid valve.
  • the valve 1 has a
  • Valve housing 5, which is referred to below as the housing 5, on.
  • the valve 1 is used to control or shut off the flow through a fluid, in particular a flowing medium, preferably a gas or a liquid.
  • the housing 5 comprises at least one first connection 7 and one second connection 8.
  • the connections 7, 8 are designed in particular as inlet and outlet.
  • the connections 7, 8 can in particular be connected to a circuit, preferably to a cooling circuit of a motor vehicle.
  • the valve 1 is thus in circulation and can in interrupting the circuit flowing medium or regulate the flow, in particular the flow rate.
  • the valve 1 has a first and a second valve means 20, 30 insbeosondere a movable closure element, preferably one
  • valve means 20 covers the second valve means 30.
  • the valve 1 has a guide element 15.
  • the valve means 20, 30 are movable, in particular displaceable, preferably arranged displaceably in or against a displacement direction 90 on the guide element 15, in particular in the guide element 15.
  • the guide element 15 is in particular as a frame for guiding the valve means 20, 30th
  • the displacement direction 90 of the valve means 20, 30 extends in Figure 1 perpendicular to the axis between the terminals 7 and 8. Die
  • Valve means 20, 30 each have openings 21, 31.
  • the first valve means 20 has at least one opening 21.
  • the second valve means 30 has at least one opening 31.
  • the guide member 15 and the housing 5 may be integrally formed.
  • the valve 1 has a valve plate 10.
  • the valve plate 10 is connected to the
  • the valve plate 10 has openings 11.
  • Valve plate 10 forms a contact surface, or a guide for the valve means 20, 30 in the housing 5.
  • valve plate 10 and the guide member 15 are integrally formed.
  • the valve means 20, 30 are movable relative to the valve plate 10, in particular displaceably mounted.
  • valve plate 10 and the housing 5 are integrally formed.
  • the valve plate 10 is disposed within the housing 5 of the valve 1.
  • the valve plate 10 is in the medium
  • valve means 20, 30 are also arranged substantially in the flow-through region between the terminals 7, 8.
  • the valve plate 10 is additionally designed as a valve means guide 15. The valve plate 10 thus additionally serves to guide the valve means 20, 30 in the housing 5 of the valve 1.
  • the openings 11, 21, 31 of the valve means 20, 30 and the valve plate 10 may be arbitrary, or application-dependent.
  • the design, in particular the shape, size, position of the openings 21, 31 is dependent on the medium flowing through the valve 1 and the desired controllability or controllability of the flow.
  • the openings 11, 21, 31 can cover each other and lock the valve or one
  • the opening 21 of the first valve means 20 has at least one first sealing edge 22.
  • the opening 31 of the second valve means 30 has at least one second sealing edge 32. If the first sealing edge 22 of the first valve means 20 and the second sealing edge 32 of the second valve means 30 overlap, then the valve 1 is blocked.
  • the valve means 20, 30 are movable relative to each other, in particular arranged displaceably.
  • the valve means 20, 30 are arranged movably with respect to the at least one valve plate 10.
  • a flow, or a flow channel through the valve 1 is blocked or released, in particular regulated, preferably regulated.
  • Throughflow channel allows the passage of the valve 1 from one port 7, 8 to the other port 7, 8. It can form any number of flow channels. The number of released
  • Flow channels is dependent on the number of openings 11, 21, 31 in the valve means 20, 30 and the valve plate 10, as well as the position of the valve means 20, 30 and the valve plate 10, and the position of the openings 11, 21, 31 relative to each other, depending.
  • the amount that flows through the valve is controlled depending on the position of the valve means 20, 30 to each other and the position of the valve means 20, 30 relative to the valve plate 10.
  • the valve 1 has a first and a second control element 25, 35.
  • the first control element 25 acts on the first valve means 20.
  • the first control element 25 acts on the first valve means 20.
  • Actuator 25 in particular a first driver 27.
  • Driver 27 connects the first actuator 25 with the first valve means 20.
  • the first actuator 25 has an actuator 26.
  • the actuator 26 moves the first driver 27 and thus the first valve means 20.
  • the actuator 26 acts on the valve means 20.
  • the second control element 35 acts on the second valve means 30.
  • the second control element 35 in particular a second
  • the second driver 37 connects the second control element 35 with the second valve means 30.
  • the second control element 35 additionally has a second actuator 36.
  • the second actuator 36 moves or displaces the second driver 37 and thus the second valve means 30.
  • the second actuator 36 acts on the second valve means 30.
  • the actuator 26 of the first control element 25 is designed as an electric machine 60, in particular as a motor 60, preferably as an electric motor 60.
  • the electric machine 60 is referred to as a motor 60.
  • the engine is shown in detail.
  • the motor 60 has a stator 66 and a rotor 67.
  • the stator 66 of the motor 60 has at least one phase, which in turn comprises at least one coil, in particular a winding (not shown).
  • the stator 66 includes any number of phases, with any number of coils, with any number of windings.
  • Windings will depend on the position and the desired
  • the stator 66 has, in particular, three phases which each comprise at least one coil with at least one winding.
  • the windings of the phases generate a magnetic field due to a current flow.
  • the magnetic field in turn leads to a force on the rotor 67, which leads to a rotation of the rotor 67.
  • Circuit depends on the number of phases, the type of interconnection of the phases (star or delta connection), the desired functionality as a bridge circuit, inverter circuit or circuit for generating a Multi-phase system with one, two, four, six, etc. power semiconductor, in particular a circuit for driving a three-phase EC motor formed.
  • the motor can be used in particular as a brush motor, stepping motor, brushless motor, asynchronous motor, synchronous motor, EC motor or as
  • Stepper motor to be executed.
  • the motor 60 has a shaft 68.
  • the rotor 67 is rotatably connected to the shaft 68.
  • the rotor 67 is rotatably mounted relative to the stator 66.
  • the rotor 67 has at least one element, wherein the element consists, for example, of a ferromagnetic, a magnetic material, a material which has magnetic properties or is injected from a plastic in which ferromagnetic or magnetic elements, in particular magnets, are injected.
  • the magnetic or magnetic field interacting elements are thus of one
  • the transducer 69 converts the rotational movement of the motor 60 into a translational motion.
  • the transducer 69 includes, for example, a spindle 62, in particular a threaded spindle 62 and a spindle nut 63.
  • the threaded spindle 62 consists of a threaded rod on the one
  • the external thread is designed in particular as a trapezoidal or flat thread.
  • the spindle nut 63 has a thread as an internal thread.
  • the thread of the spindle nut 63 and the thread of the threaded rod 62 cooperate, or interlock.
  • the transducer 69 cooperates with one of the drivers 27, 37 and the shaft 68 of the motor 60.
  • the shaft 68 of the motor 60 is rotatably connected to the threaded spindle 62.
  • Threaded spindle 62 may also be formed in one piece. The thread of the spindle 62 can thus be attached directly to the shaft 68.
  • the spindle nut 63 is rotatably connected to the driver 27.
  • the valve 1 comprises a second control element 35.
  • the second control element 35 has an actuator 36 and a driver 37.
  • the second actuator 36 acts on the second driver 37.
  • the driver 37 acts on the second valve means 30.
  • the second driver 37 and the valve means 30 may be integrally formed.
  • the actuator 36 has a bobbin 74 and an armature 75.
  • the armature 75 has at least one element, wherein the element consists, for example, of a ferromagnetic, a magnetic material, a material which has magnetic properties or is injected from a plastic in which ferromagnetic or magnetic elements, in particular magnets, are injected.
  • a current flow in the bobbin 74 generates a magnetic field which acts with a force on the element of the armature 75.
  • the force on the armature 75 depending on the position of the armature 75 relative to the bobbin 74 to a movement of the armature 75.
  • the armature 75 is connected to the driver 37. By a current flow in the actuator 36, a movement of the third valve means 30 is achieved.
  • the second control element 35 may also include a motor 60. Accordingly, the movement of the second valve means 30 is dependent on a motor 60.
  • the motor 60 and the connection of the motor 60 to the second valve means 30 is the same as the already described connection of the motor 60 to the first valve means 20 and the already described operation.
  • the first control element 25 has an actuator 26 with a coil body 74.
  • the first control element 25 then acts according to the previously described second control element 35 with coil carrier 74 on the first valve means 20.
  • both control elements 25, 35 have a motor 60 or both control elements 25, 35 an actuator 26, 36 with a Spool 74 and an armature 75 have.
  • the movement of the valve means 20, 30 via a motor 60 or an actuator with a coil carrier 74 can take place.
  • the valve 1 has a spring element 80.
  • the spring element 80 presses the first and the second valve means 20, 30 on the Valve plate 10, and holds the valve means 20, 30 in the guide element provided for them 15.
  • the valve means 20, 30 and the valve plate 10 are in contact.
  • at least one seal 82 can be used in the area of the valve means 20, 30.
  • the seal 82 is arranged in particular on one of the valve means 20, 30, preferably between the valve plate 10 and one of the valve means 20, 30.
  • the seal 82 and the spring element 80 can also be designed as an element which fulfills both functions.
  • the seal 82 and the spring element 80 may be formed in one piece in particular.
  • FIG. 2 shows a valve 1 with a housing 5.
  • the housing 5 has two ports 7, 8 for admitting and discharging a medium in and out of the valve 1.
  • a valve plate 10 Within the housing 5 of the valve 1, a valve plate 10, a first valve means 20 with a first driver 27 and a second valve means 30 with a second driver 37 are arranged.
  • the driver 27 and the first valve means 20 are in particular one-piece
  • the driver 37 and the second valve means 30 are in particular formed in one piece.
  • the valve plate 10 is fixed in the housing fifth
  • valve plate 10 is fixedly connected to the housing 5.
  • the valve plate 10 is fixed in position by adhesion or positive engagement with the housing 5.
  • the valve plate 10 and the housing 5 are integrally formed.
  • a spring element 80 presses the first valve means 20 against the second valve means 30.
  • the spring element 80 presses both valve means 20, 30 against the valve plate 10.
  • the valve means 20, 30 and the valve plate 10 have openings 11, 21, 31.
  • the openings 11, 21, 31 allow a flow through the valve means 20, 30 and the valve plate 10. According to the position, ie the position of
  • the valve means 20, 30 and the valve plate 10 each have two openings 11, 21, 31. However, there are any number of openings 11, 21, 31 in the valve means 20, 30 and the valve plate 10 possible. It is also possible that the valve means 20, 30 due to its size and its position relative to the second valve means 20, 30 and / or the valve plate 10 and / or the housing 5 does not flow through but is flowed around.
  • the valve means 20, 30 are arranged movable relative to each other. According to the figure 2 are the
  • the valve 1 can be flowed through by a fluid.
  • the valve 1 is open.
  • the valve 1 is flowed through.
  • the openings 11, 21, 31 have sealing edges 12, 22, 32.
  • the openings 11 of the valve plate 10 have at least one sealing edge 12.
  • the openings 22 of the first valve means 20 have at least one sealing edge 22.
  • the openings 32 of the second valve means 30 have at least one sealing edge 32.
  • the sealing edges 12, 22, 32 of the openings 11, 21, 31 of the valve means 20, 30 and the valve plate 10 are arranged in Figure 2, the one
  • the first valve means 20 cooperates with the first control element 25.
  • the first driver 27 cooperates with the first actuator 26.
  • the first actuator 26 moves the valve means 20 along the vertical axis, or along the displacement direction 90 of the valve 1.
  • the valve means 20, 30 is guided by the housing 5 or the valve plate 10 or the guide element 15.
  • the first actuator 26 is exemplified as a motor 60 accepted. But it is also conceivable within the scope of the invention to form the first actuator 26 as a bobbin 74. Wherein the bobbin 74 generates a magnetic field during a current flow and the magnetic field acts with a force on an armature 75.
  • the motor 60 has a motor housing 61 in which a stator 66, a shaft 68 and a rotor 67 are arranged.
  • the motor housing 61 also has two bearing elements 64.
  • the shaft 68 is through the two bearing elements 64th rotatably mounted relative to the motor housing 61.
  • the shaft 68 is rotatably connected to the rotor 67, non-positively and / or positively.
  • the valve 1 has a transducer 69.
  • the transducer 69 comprises a spindle 62 and a spindle nut 63.
  • the spindle 62 and the shaft 68 are in particular formed in one piece or in one piece.
  • the spindle 62 cooperates with the spindle nut 63, wherein the spindle nut 63 and the spindle 62, the rotational movement of the motor 60, and the rotor 67 converts into a translational movement.
  • the thread of the spindle 62 acts on the
  • the spindle nut 63 is connected to the first driver 27.
  • the spindle nut 63 and the driver 27 are made in one piece, or in one piece.
  • the second actuator 36 has a bobbin 74 and an armature 75.
  • the armature 75 includes at least one member made of, for example, a ferromagnetic, a magnetic material, a material having magnetic properties or a plastic in the
  • ferromagnetic or magnetic elements in particular magnets are injected, there is.
  • a magnetic field is generated.
  • the magnetic field acts with a force on the armature 75 and attracts or repels it.
  • the bobbin 74 is traversed by a current and thus ensures an attraction of the armature 75 to the
  • the armature 74 is connected via the second driver 37 with the second valve means 30.
  • the armature 75 and the driver 37 are made in one piece.
  • the second control element 35 may also have a motor 60.
  • the second actuator 36 may be formed as a motor 60.
  • the first control element 25 may also have an actuator 26 with a bobbin 74 and an armature 75.
  • valve 1 has a return element 40.
  • the restoring element 40 counteracts the second actuating element 35. Is the second control element 35 is not De activated, the return element 40 moves the second valve means 30 in a starting position, in particular an end position.
  • the restoring element 40 can be designed in particular as a spring or as an elastic element. The force of the return element 40 counteracts the force by the magnetic field of the bobbin 74. The return element 40 is opposite to one
  • armature 75 Direction of action of the armature 75 is arranged by the magnetic field.
  • a return element 40 in particular a return spring, the
  • the first valve means 20 has a driver element 99.
  • Driver element 99 engages in a driving groove 100 of the second valve means 30 a.
  • the driving element 99 and the driving groove 100 allow, depending on their design to each other, a movement of the valve means 20 through the valve means 30 and vice versa.
  • Mituralelements 99 and the cam groove 100 can be selected from the desired functionality of the valve 1.
  • the cam groove according to FIGS. 2 to 4 does not form an opening in the valve means 30.
  • the cam groove 100 can form an additional opening.
  • Valve means 20 changed.
  • the motor 60 has performed a rotational movement.
  • the rotational movement was converted by the spindle 62 and the spindle nut 63 of the transducer 69 in a translational movement.
  • Valve means 20 was along the vertical axis, or along the
  • Moving direction 90 of the valve 1 moves, in particular moved down.
  • the first valve means 20 has been moved in the direction of the second control element 35, in particular displaced.
  • the openings 11, 21, 31 do not overlap.
  • the valve 1 is locked. There is no flow cross section is formed. No medium can flow through the valve 1. A flow channel is not released. All flow channels are blocked.
  • the opening 21 of the valve means 20 is covered by the valve means 30.
  • the openings 31 of the Valve means 30 is covered by the valve means 20.
  • the sealing edges 22 and 32 overlap so that no flow cross-section is formed.
  • the bobbin 74 of the actuator 36 of the second control element 35 is not energized.
  • the armature 75 is not attracted by the bobbin 74.
  • the force of the return element 40 on the armature 75 is thus greater than the force by the magnetic field.
  • the armature 74 is moved down along an axis, in particular the vertical axis, or along the displacement direction 90 of the valve 1.
  • the armature 74 is from the first
  • Actuator 25 moves away. Two flow channels are released. Through the two flow channels, a medium can flow through the valve 1.
  • the valve 1 is open. A flow through the valve 1 is possible.
  • a flow channel is enabled or disabled.
  • the size of the flow channel and the number of flow channels is dependent on the arrangement and the position of the openings 11, 21, 31 to each other.
  • Depending on the arrangement and position of the openings 11, 21, 31 is also the size, in particular the cross section of the flow channel and the number of flow channels. It is thus possible to easily regulate the flow rate with the valve according to the invention.
  • valve 1 more than two valve means 20, 30. Also, the number of openings 11, 21, 31 of the valve
  • Valve means 20, 30 and the valve plate 10 is not limited to two. Any number of openings are possible. The shape can also be selected depending on the use or the field of application.
  • the valve 1 may have a failsafe function. This means that the valve 1 in the case of a malfunction, in particular a power failure or a software error in the control has a previously defined flow through the valve 1 or completely blocks the flow through the valve, or prevents.
  • the second control element 35 can map a failsafe function. If the second control element 35 is activated, in particular energized, then, for example, a flow through the valve 1 is possible.
  • the restoring element 40 moves the valve means into a position, whereby the flow through the valve 1 is interrupted. It is also conceivable to limit the flow through the valve 1 to a desired amount. Or, in the case of a fault, to allow the maximum flow through the valve 1, in particular as shown in FIGS. 2 to 4.
  • the valve means 20, 30 can be designed as a flat slide according to FIG.
  • the valve 1 is then called a flat slide valve.
  • embodiments with rotation-shaped, in particular cylindrical and / or annular valve means are possible.
  • the valve may have any number of valve means 20, 30. Any number of valve means 20, 30 can be moved by adjusting elements, such as actuators with bobbins 74, motors 60 or simply reset elements 40. It is also possible in an actuating element 26, 35 an actuator, consisting of a
  • Coil carrier 74 a motor 60 and / or a return element 40 to combine.
  • the operation of a motor 60 as an actuating element and the effect on the associated valve means has been previously described in detail. Also, the operation of an actuator with a bobbin 74 as
  • valve means 20, 30 depending on the position of the valve means 20, 30 relative to one another, a flow through the valve 1 past one of the valve means 20, 30 is possible. There will be a flow channel on one in particular formed on both valve means 20, 30 past. One or in particular both valve means 20, 30 are flowed around.

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  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Magnetically Actuated Valves (AREA)
  • Electrically Driven Valve-Operating Means (AREA)

Abstract

L'invention concerne une soupape (1) qui comporte un boîtier (5), un premier moyen de soupape (20) et un premier élément de réglage (25), le premier élément de réglage (25) et le premier moyen de soupape (20) coopérant, en particulier le premier élément de réglage (25) déplaçant le premiers moyen de soupape (20). Selon l'invention, la soupape (1) comprend au moins un deuxième élément de réglage (35) et un deuxième moyen de soupape (30), le deuxième élément de réglage (35) et le deuxième moyen de soupape (30) coopérant, en particulier le deuxième élément de réglage (25) déplaçant le deuxième moyen de soupape (20), le premier moyen de soupape (20) et le deuxième moyen de soupape (30) étant disposés de façon mobile l'un par rapport à l'autre dans le boîtier (5), un écoulement à travers la soupape (1) étant régulé, notamment bloqué ou libéré, en fonction de la position du premier moyen de soupape (20) et de la position du deuxième moyen de soupape (30) l'une par rapport à l'autre et/ou de la position du premier moyen de soupape (20) et du deuxième moyen de soupape (30) par rapport au boîtier (5).
PCT/EP2015/052147 2014-03-06 2015-02-03 Soupape équipée de deux moyens de soupape WO2015132029A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
DE102014204120.1A DE102014204120A1 (de) 2014-03-06 2014-03-06 Ventil mit zwei Ventilmitteln
DE102014204120.1 2014-03-06

Publications (1)

Publication Number Publication Date
WO2015132029A1 true WO2015132029A1 (fr) 2015-09-11

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Application Number Title Priority Date Filing Date
PCT/EP2015/052147 WO2015132029A1 (fr) 2014-03-06 2015-02-03 Soupape équipée de deux moyens de soupape

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WO (1) WO2015132029A1 (fr)

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US20230235833A1 (en) * 2022-01-21 2023-07-27 Hamilton Sundstrand Corporation Flow control devices
CN217927406U (zh) * 2022-07-01 2022-11-29 鹤山市沐加智能卫浴科技有限公司 一种双稳态电磁水开关

Citations (6)

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US2749940A (en) * 1952-03-20 1956-06-12 Exxon Research Engineering Co Slide valve
FR2549929A1 (fr) * 1983-07-29 1985-02-01 Doris Dev Richesse Sous Marine Vanne a obturateurs independants
EP0339211A2 (fr) * 1988-04-23 1989-11-02 Hermann Brennecke Tiroir pour canalisations de fluides
US5094270A (en) * 1991-03-14 1992-03-10 Dril-Quip Inc. Double gated valve
US20050062007A1 (en) * 2003-09-19 2005-03-24 Vat Holding Ag Regulating vacuum valve
WO2008035091A1 (fr) * 2006-09-21 2008-03-27 Enovate Systems Limited Vanne de régulation de forage de puits améliorée

Patent Citations (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2749940A (en) * 1952-03-20 1956-06-12 Exxon Research Engineering Co Slide valve
FR2549929A1 (fr) * 1983-07-29 1985-02-01 Doris Dev Richesse Sous Marine Vanne a obturateurs independants
EP0339211A2 (fr) * 1988-04-23 1989-11-02 Hermann Brennecke Tiroir pour canalisations de fluides
US5094270A (en) * 1991-03-14 1992-03-10 Dril-Quip Inc. Double gated valve
US20050062007A1 (en) * 2003-09-19 2005-03-24 Vat Holding Ag Regulating vacuum valve
WO2008035091A1 (fr) * 2006-09-21 2008-03-27 Enovate Systems Limited Vanne de régulation de forage de puits améliorée

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