ELECTROMAGNETIC VALVE AND DIVERT-AIR VALVE
20210025517 · 2021-01-28
Assignee
Inventors
- Klemens Schander (Bad Soden-Salmünster, DE)
- Bjoern Diessl (Bad Soden-Salmünster, DE)
- Stefan Dinges (Bad Soden-Salmünster, DE)
Cpc classification
F16K31/423
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K37/0041
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02B37/16
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0624
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0679
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/0655
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Y02T10/12
GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
F16K31/082
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16K37/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16K31/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
An electromagnetic valve, such as a pilot valve for controlling a main valve or a pilot-operated valve in a divert-air valve, may include at least one valve member in operative connection with a plunger movable along a first axis and at least one coil element. A movement of the plunger or of the valve member is caused by an energization of the coil element, and at least one sensing element by which at least one parameter of the coil element is detectable. The position of the plunger and/or of the valve member can be determined by the parameter. The valve may be part of a divert-air valve system
Claims
1. An electromagnetic valve for controlling a main valve comprising: at least one valve member in operative connection with at least one plunger moveable along a first axis; and at least one coil element, wherein a movement of the at least one plunger or the at least one valve member is caused by an energization of the at least one coil element; wherein the at least one coil element comprises at least one sensing element by which at least one parameter of the coil element can be detected, wherein a position of the at least one plunger or of the at least one vale member can be determined by the at least one parameter.
2. The electromagnetic valve according to claim 1, wherein the coil element at least sectionally coaxially, surrounds the first axis and the plunger.
3. The electromagnetic valve according to claim 2, wherein the coil element comprises at least two single coils, wherein the single coils are arranged behind one another along the first axis and at least one of the single coils surrounds the axis or the plunger at least sectionally coaxially.
4. The electromagnetic valve according to claim 3, wherein at least one permanent magnet is arranged between the two single coils with respect to the first axis, wherein the permanent magnet is at least sectionally formed as a ring magnet and is surrounding the first axis or the plunger at least sectionally coaxially.
5. The electromagnetic valve according to claim 4, wherein the sensing element detects at least one first parameter of a single coil or at least one second parameter of a second one of the single coils, wherein the permanent magnet is arranged between the first one of the single coils and the second one of the single coils.
6. The electromagnetic valve according to claim 1, further comprising at least one open or closed loop control device, wherein the open or closed loop control device is in operative connection with the sensing device, the coil element, or one of the single coils, wherein the plunger and the valve member are moveable into at least two different positions along the first axis by the open or closed loop control device.
7. The electromagnetic valve according to claim 6, wherein the movement of the plunger and of the valve member is performed by actuating the coil element dependent upon a target value provided to the open or closed loop control device via a target-value input.
8. The electromagnetic valve according to claim 7, wherein a comparison is made between the target-value input and an actual value of the plunger or of the vale member that is detected by the sensing device and is performable by the open or closed loop control device.
9. The electromagnetic valve according to claim 6, further comprising: a first position of the plunger or of the valve member corresponds to a closed position, in which the valve member lies on a valve seat and sealingly closing a connection between at least one valve entry and at least one valve exit; and a second position of the plunger or of the valve member corresponds to an open position, in which the valve member is at least sectionally lifted from the valve seat for opening a connection between the valve entry and the valve exit.
10. The electromagnetic valve according to claim 1, wherein the at least one parameter comprises at least an inductivity, at least an ohmic resistance, or at least an impedance of the coil element.
11. The electromagnetic valve according to claim 1 wherein the electromagnetic valve further comprises a pilot valve.
12. The electromagnetic valve according to claim 1 wherein the main valve comprises a pilot valve operated valve in a divert-air valve.
13. A divert-air valve system comprising: at least one main valve; and at least one pilot valve for controlling the main valve, wherein the pilot valve comprises an electromagnetic valve, the electromagnetic valve comprising: at least one valve member in operative connection with at least one plunger moveable along a first axis; and at least one coil element, wherein a movement of the at least one plunger or the at least one valve member is caused by an energization of the at least one coil element; wherein the at least one coil element comprises at least one sensing element by which at least one parameter of the coil element can be detected, wherein a position of the at least one plunger or of the at least one vale member can be determined by the at least one parameter.
14. The divert-air valve system of claim 13, wherein the main valve comprises a pneumatic or hydraulic valve.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Further features and advantages of the embodiments are presented in the subsequent description in which preferred embodiments of the invention are described with the aid of examples shown in the following Figures.
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION
[0025] In
[0026] The pressure P1 acting at the fluid entry 7 is supplied to a valve seat 13 of the pilot valve 5 via a conduit 11 realising a valve entry of the pilot valve 5. By switching the pilot valve 5, the fluid pressure P1 prevailing in the conduit 11 may selectively be conveyed via a conduit 15 realising a valve exit of the pilot valve 5 to a control space 17 of the main valve 3, or via a line 19, which may also be called bypass-conduit, to the fluid exit 9.
[0027] As will be explained below, opening the pilot valve 5 by the actuator 21 causes the pressure P1 prevailing at the fluid entry 7 to be applied to the control space 17 as well. Due to the fact that the same pressure acts in the control space 17, that is onto the upper side of an active surface of a membrane 23 of the main valve as onto the lower side of the active surface of the membrane 23 facing the fluid entry 7, the valve member 25 of the main valve 3 is moved in the direction of the valve seat 27 of the main valve 3 and thereby a connection between the fluid entry 7 and the fluid exit 9 is closed. Due to the equality of the absolute value of the forces acting onto the respective sides of the active area of the membrane 23, closing is performed via a force acting onto the valve member 25 through the spring element 29. Thereby, relatively small forces are necessary such that the spring element 29 can be dimensioned comparatively small.
[0028] In
[0029] According to some embodiments, the actuator 21 is electrically coupled via a connection element 33 to a sensing device which is not shown. The sensing device allows for a parameter of the coil element 35 of the actuator 21 to be detected.
[0030] In
[0031] In
[0032] In comparison to pilot valve 5, the pilot valve 5 has a bistabile actuator 21. Additionally, the coil element 35 comprises the first single coil 41, a second single coil 43, as well as a permanent magnet 45. The single coils 41, 43 as well as the permanent magnet 45 are formed coaxially with respect to the first axis A of the plunger 37 as a ring-permanent-magnet.
[0033] This design provides the advantage that energy must only be spent for the movement of the plunger 37 and thus of the valve member 31. In the corresponding end position, for example the closed position of the pilot valve 5 shown in
[0034] By detecting the parameter of the single coil 41, 43, the position of the plunger 37 and thus of the valve member 31 is reliably detectable by the sensing unit. This is performed by the open loop and/or closed loop control device which is not shown, which on the one hand delivers corresponding control signals to the coil elements 35 or the single coils 41 and 43 via the connection 33 and simultaneously allows for the collection of the parameters of the single coils 41 and 43, in particular the inductivity thereof, and thus allows for a precise position control or position detection.
[0035] For switching the pilot valve 5, i.e. for a switching operation, merely an impulse energization of the respective single coils 41, 43 or coil element 35 for approximately 200 milliseconds is necessary.
[0036] In
[0037] In
[0038] By operating the pilot valve 5, the valve member 31 of the pilot valve can be moved away from the valve seat 13 of the pilot valve such that a connection between the fluid exit 9 and the control space 17 is created through the conduits 19 and 15, through which the pressure P1 can be relieved. After the pressure-relief, the lower pressure P2 of the other fluid exit 9 acts in the control space 17. In this state, the biasing force onto the valve 25 due to the spring element 29 and the pressure P1 predominates against the opposing force acting through the other pressure P2 in the controller 17. Due to this, the valve member 25 of the main valve 3 is moved into the position which is not shown, in which the fluid entry 7 is connected to the further fluid exit 9 and in which the first fluid exit 9 is sealed off from the fluid entry 7.
[0039] Accordingly, some embodiments of a valve can be employed both for main valves in the form of two-way-valves as well as in form of three-way-valves in an advantageous manner.
[0040] This bistabile embodiment is positive for the energy efficiency in so far as an energy requirement as low as 40 wattseconds is necessary for example for a cycle duration of 10 minutes in which the pilot valve is closed for 5 minutes and open for 5 minutes for 6 cycles and a supply current of 12 volt. In comparison to this, for the actuator 21 in
[0041] In particular the reduced energy consumption allows for the valve in accordance with some embodiments to be used in electric drive vehicles in order to switch corresponding fluid streams with an energy demand several powers of 10 lower in comparison to other divert-air valves.
[0042] In particular for an electromagnetic valve in accordance with the embodiments is usable as a pilot valve in a divert-air valve, lesser switching force results such that an actuator with a smaller assembly volume can be employed thus resulting in a more compact design. Furthermore, due to the configuration of the drive as bistabile or bipolar actuator, a reduction of energy consumption is achieved which results in an again significantly reduced weight. Due to the geometry of the main valve it is, however, simultaneously possible to switch high pressures with little energy, and the valve, in particular divert-air valve, can be used for different applications as neither the pressure nor the throughflow of a fluid influences the switching power. Simultaneously, due to the constant monitoring and the position of the pilot valve, an increased operational safety is achieved and it is assured that the divert-air valve can be transferred into a predetermined fail-safe-position in case functional defects occur. Altogether, a more compact design also results due to a simpler position analysis for a bipolar actuator by detecting the parameters of the coil element.
LIST OF REFERENCE NUMERALS
[0043] 1 divert-air valve [0044] 3 divert air valve [0045] 5, 5 pilot valve [0046] 7 fluid entry [0047] 9, 9 fluid exit [0048] 11, 11, 11 conduit [0049] 13,13 valve seat [0050] 15, 15, 15 conduit [0051] 17 control space [0052] 19, 19 conduit [0053] 21, 21 actuator [0054] 23 active area of a membrane [0055] 25, 25 valve member [0056] 27, 27, 27 valve seat [0057] 29, 29, 29 spring element [0058] 31, 31 valve member [0059] 33, 33 connection [0060] 35, 35 coil element [0061] 37, 37 plunger [0062] 39 spring element [0063] 41 single coil [0064] 43 single coil [0065] 45 permanent magnet [0066] 47 valve member housing [0067] 49, 49 sealing means [0068] A, A axis