Electric switch device having lock function

By incorporating a discontinuity in the magnetic yoke that is closed by the lock member when unlocked, the switch device ensures reliable unlocking and prevents unintended contact closure, addressing the challenge of accidental force application in vehicle structures.

JP7675198B2Active Publication Date: 2025-05-12SCHALTBAU GMBH
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
JP2023549016
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-02-16
Filing Date
2022-02-16
Publication Date
2025-05-12
Estimated Expiration
2042-02-16

AI Technical Summary

Technical Problem

Conventional electromagnetically actuated switch devices face the risk of unintended contact closure due to accidental force application, particularly in vehicle structures, which can lead to erroneous operation.

Method used

The magnetic yoke has a discontinuity when the lock member is in the locked position, and this discontinuity is closed by the lock member when it is in the unlocked position, ensuring reliable unlocking and preventing unintended contact closure.

Benefits of technology

This configuration allows for reliable unlocking of the magnet armature and movable contact, eliminating the risk of unintended contact closure, while also reducing the required strength of the electromagnetic actuator.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007675198000001
    Figure 0007675198000001
  • Figure 0007675198000002
    Figure 0007675198000002
  • Figure 0007675198000003
    Figure 0007675198000003
Patent Text Reader

Abstract

The present invention relates to a switch device comprising at least one fixed contact and a movable contact interacting therewith, and comprising an electromagnetic actuator for driving the movable contact. The electromagnetic actuator comprises an excitation coil for generating a magnetic field, a magnetic yoke for amplifying the magnetic flux density of the magnetic field, and a magnet armature that is attracted by the magnetic field from an initial position to an attraction position and is brought into contact with the movable contact. In addition, the electromagnetic actuator comprises a locking member movable from a locked position to an unlocked position. The locked position is a position where the locking member restricts the movement of the armature, and the unlocked position is a position where the locking member allows the movement of the armature. The locking member is at least partially made of a ferromagnetic material and is configured such that the locking member moves from the unlocked position to the locked position under the effect of a magnetic field. According to the present invention, the magnetic yoke is designed to have a discontinuity when the locking member is in the locked position, and the discontinuity of the magnetic yoke is closed by the locking member when the locking member is in the unlocked position.
Need to check novelty before this filing date? Find Prior Art

Description

[Technical field]

[0001] The invention relates to a switching device according to the preamble of claim 1 . [Background technology]

[0002] A typical switch device includes at least one fixed contact and a movable contact corresponding thereto. The typical switch device also includes an electromagnetic actuator that drives the movable contact. The electromagnetic actuator includes an excitation coil that generates a magnetic field, a magnetic yoke that amplifies the magnetic flux density of the magnetic field, and a magnet armature that is configured to be attracted from an initial position to an attraction position by the magnetic field and is connected to the movable contact. The electromagnetic actuator further includes a locking member that is movable from a locked position to an unlocked position. The locked position is a position where the locking member restricts the movement of the magnet armature and / or the movable contact, and the unlocked position is a position where the locking member allows the movement of the magnet armature and / or the movable contact. At least a portion of the locking member is made of a ferromagnetic material. The locking member is configured to move from the unlocked position to the locked position by the action of a magnetic field of the driving device. Summary of the Invention [Problem to be solved by the invention]

[0003] Typically, a conventional electromagnetically actuated switch device has at least one fixed contact and a movable contact. When an excitation coil of an electromagnetic actuator of the switch device is energized, the movable contact is moved to the fixed contact by a magnet armature. If the switch device is used in a vehicle construction, there is a risk that high forces may occur, for example in the event of an accident, which may lead to an unintentional closing of the contacts without actuating the electromagnetic actuator. An incorrect closing of the contacts must be reliably prevented. This may be achieved, for example, by using a very strong return spring which biases (preloads) the magnet armature to its initial position. A disadvantage of this solution is that the electromagnetic actuator must be correspondingly strong in order to overcome the high spring force of the return spring.

[0004] To address this problem, DE 10 2014 211 735 A1 proposes to lock the magnet armature in an initial position. For example, a ferromagnetic ball can be used as the locking element. The ferromagnetic ball is accommodated in corresponding recesses in the magnet armature and in the magnetic yoke of the excitation coil and generates an active lock between the magnet armature and the magnetic yoke in the locked position. When the excitation coil is energized, the magnetic flux generated thereby attracts the ferromagnetic ball out of the recess in the armature and slightly into the recess in the magnetic yoke, thus allowing the magnet armature to move. Thus, document DE 10 2014 211 735 A1 discloses a switch device in the preamble of independent claim 1.

[0005] The object of the present invention is to further improve the general switch device, more specifically, the switch device according to the invention is simple in structure, inexpensive to manufacture and ensures reliable unlocking. [Means for solving the problem]

[0006] The above problem is solved by the characterizing features of independent claim 1. That is, the solution to the problem according to the present invention is realized if the magnetic yoke has a discontinuity when the locking member is in the locked position, and the discontinuity of the magnetic yoke is closed by the locking member when the locking member is in the unlocked position.

[0007] Thus, according to the invention, the locking element is part of the magnetic yoke. The magnetic flux acting on the magnet armature is amplified when the magnetic yoke is closed. This has the advantage that initially no significant forces act on the magnet armature, making it possible to reliably unlock the magnet armature and / or the movable contact and eliminating the risk of the magnet armature becoming stuck. Only when the magnet armature and / or the movable contact are unlocked and the magnetic yoke is closed by the ferromagnetic locking element, does the magnetic flux acting on the magnet armature increase and the full clamping force can be applied.

[0008] Advantageous embodiments of the invention are the subject matter of the dependent claims.

[0009] According to a particularly preferred embodiment of the invention, the electromagnetic actuator is configured such that when the magnetic yoke is closed, it attracts (pulls out) the magnet armature against the force of the return spring of the electromagnetic actuator, whereas when the magnetic yoke is interrupted, the magnetic flux acting on the magnet armature is insufficient to attract the magnet armature against the force of the return spring.

[0010] According to another particularly preferred embodiment of the invention, the locking member is configured in the manner of a pivoting armature, which embodiment results in a particularly simple and at the same time reliable construction.

[0011] According to a further preferred embodiment of the invention, the locking member is biased into the locked position by a reset member, preferably in the form of a preload spring, so that the locking member is reliably held in the locked position, and thus the magnet armature is also reliably locked, preferably in its initial position. The reset member is preferably realised in the form of a tension or compression spring.

[0012] According to another particularly preferred embodiment of the invention, the direction of movement of the locking member extends transversely to the direction of movement of the magnet armature and is preferably at an angle of at least 70° and ideally 90° to the direction of movement of the magnet armature. This ensures that forces acting in the direction of movement of the magnet armature, which may occur, for example in the case of an accident, do not or do not substantially affect the locking member. If the locking member is configured as a pivoting armature, the direction of movement of the locking member should be understood as the direction of movement of the pivoting end of the locking member (which may vary along the path of movement), which may move along a circular path, for example if the pivoting armature is rotatably connected to a magnetic yoke.

[0013] According to a further preferred embodiment of the invention, the magnet armature is configured as a tie rod which runs through the excitation coil, which results in a particularly simple and compact configuration.

[0014] According to another preferred embodiment of the invention, the magnetic yoke has a U-shaped portion surrounding the excitation coil, and the locking member is arranged at the free end of the U-shaped portion such that the U-shaped portion and the locking member complete the formation of a closed yoke when the locking member is in the unlocked position. This embodiment also contributes to a particularly simple construction.

[0015] According to another preferred embodiment of the present invention, the magnetic yoke includes an upper yoke plate and a lower yoke plate arranged parallel to each other and spaced apart. Both yoke plates are substantially perpendicular to the magnet armature, and an excitation coil is arranged between the two yoke plates. When the locking member is in the unlocked position, the locking member contacts the two yoke plates, thereby completing a U-shape together with the two yoke plates. Thus, in this embodiment, the magnetic yoke is formed by the two yoke plates and the locking member. When the locking member is in the locked position, a discontinuity in the magnetic yoke is formed by an air gap between the locking member and one of the two yoke plates. When the locking member is in the unlocked position, the discontinuity is closed, the locking member contacts both yoke plates, and the magnetic yoke is closed in a U-shape. This allows for a simple and lightweight magnetic yoke construction.

[0016] As an advantageous feature, the locking member may have a protrusion which interacts with a back taper formed on the magnet armature or the movable contact to lock or release the magnet armature and / or the movable contact, thereby ensuring easy and reliable locking or unlocking of the magnet armature or the movable contact.

[0017] The protrusion may be formed on the magnet armature or the movable contact, and the back taper may be formed on the locking member.

[0018] According to yet another preferred embodiment, the projection of the locking member is provided in the form of a protruding nose which cooperates with a back taper provided in the form of a hook for locking the magnet armature and / or the movable contact. The hook is formed on or connected to the magnet armature or the movable contact. The hook is preferably formed in such a way that the protrusion automatically re-engages with the hook when the armature moves from the attracting position to the initial position. The hook is preferably formed on a part which is rigidly connected to the armature, for example a contact carrier which is connected to the armature. However, the hook may also be formed on, for example, the movable contact, which is not rigidly connected to the contact carrier but is connected to the contact carrier via one or more contact biasing springs. In this case, the movable contact is mainly limited in movement by the locking member. The magnet armature is also limited in movement by the locking member, but only after the spring stroke of the contact biasing spring has been utilized. Instead of a protrusion, the locking member may have a corresponding recess that engages with the hook.

[0019] As an advantageous feature, the protrusion in the locking member may be in the form of a slot extending substantially perpendicular to the magnet armature, and the magnet armature may extend through the slot and include an annular groove. The annular groove may form a back taper and interact with the slot in the locking member to lock or unlock the magnet armature. This also allows for simple and reliable locking and unlocking of the magnet armature.

[0020] The locking member is preferably formed in one piece and preferably entirely made of ferromagnetic material. However, the locking member may be made of several parts. For example, the locking member may have a ferromagnetic part which completes the magnetic yoke in the unlocked position and a part which is attached to the ferromagnetic part and which is responsible for the actual locking. In particular, the locking member may include an actuating part and a locking part, the locking part and the actuating part being hinged to each other.

[0021] In yet another embodiment, the actuating part and the locking part are at an angle of 80°-100° to each other, the locking part is arranged substantially parallel to the two yoke plates, and the slots are formed in the locking part, which also allows for a simple and stable design.

[0022] More preferably, when the magnet armature is in the locked position, the locking member locks the magnet armature in the initial position, whereby, more preferably, when the magnet armature is in the initial position, the at least one fixed contact and the at least one movable contact cooperating therewith are open.

[0023] The switching device is preferably a contactor. [Brief description of the drawings]

[0024] [Figure 1] 1 is a schematic cross-sectional view of a switch device according to the present invention, showing a state in which a magnet armature is in an initial position and a locking member is in a locked position; [Diagram 2] 2 shows the switch device according to the invention shown in FIG. 1 with the magnet armature still in the initial position and the locking member in the unlocked position; FIG. [Diagram 3] FIG. 3 shows the switch device according to the invention of FIGS. 1 and 2 after the magnet armature has been unlocked and is in an attracting position; [Figure 4] FIG. 11 is a side view showing a switch device according to a second embodiment of the present invention, with the magnet armature in an initial position and the lock member in a locked position. [Diagram 5] 5 is a perspective view of the switch device of FIG. 4 after the magnet armature has been unlocked and is in an attraction position. FIG. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0025] Hereinafter, embodiments of the present invention will be described in more detail with reference to the drawings.

[0026] In the following embodiments, the same parts are denoted by the same reference numerals. When a figure includes a reference numeral that is not described in detail in the relevant description of the figure, reference is made to the description of the preceding or succeeding figure.

[0027] Figure 1 shows a schematic cross-section of a switch device 1 according to the invention. The switch device 1 has two fixed contacts 2 and one movable contact in the form of a contact bridge 3. In figure 1 the electrical contacts are in the open state.

[0028] The switch device 1 also comprises an electromagnetic actuator for driving the movable contact 3. The electromagnetic actuator comprises an excitation coil 4 which generates a magnetic field acting on a magnet armature 6 configured as a tie rod. The excitation coil 4 is wound on a bobbin 14. The tie rod 6 is connected at its upper end to a contact carrier 11 which is connected to the contact bridge via a corresponding contact biasing spring 13.

[0029] The electromagnetic actuator also has a magnetic yoke, which amplifies the magnetic flux acting on the armature 6. The magnetic yoke has a U-shaped part 5, which surrounds the excitation coil on three sides. The two legs of the U-shaped part 5 cover the two end faces of a hollow cylindrical bobbin 14. The two legs have corresponding holes 15 through which the magnetic armature 6 extends. At one of the open ends of the U-shaped part, a ferromagnetic locking member 7 is hinged at the lower leg of the U-shaped part. The locking member 7 is designed as a pivoting armature and is arranged in the U-shaped part 5 of the magnetic yoke so that it can pivot via a joint 8.

[0030] In the initial position of the magnet armature 6 shown in Fig. 1, when the excitation coil is de-energized, the locking member 7 is initially in the locked position. For this purpose, the locking member 7 has an outwardly projecting projection 10 at its free end, which projection 10 is latched by a hook 12 projecting from a contact carrier 11. When the actuator is de-energized, the locking member 7 is securely held in the locked position by a preload spring 9. In the illustrated example, the preload spring 9 is configured as a tension spring and is fixed to a housing member, not shown.

[0031] When the exciting coil 4 is energized, the locking member 7 configured as a pivoting armature is attracted to the U-shaped part 5 of the magnetic yoke by the magnetic flux, and the free end of the locking member 7 moves toward the free end of the upper leg of the U-shaped part 5. This releases the hook 12, and the magnetic armature is unlocked. At that time, the locking member 7 is in the unlocked position. At the same time, the locking member 7 closes the magnetic yoke of the exciting coil (Fig. 2), increasing the magnetic flux acting on the magnetic armature, which moves from the initial position to the attracted position (Fig. 3) against the force of a return spring (not shown), and the electrical contact is closed.

[0032] FIG. 4 is a side view of a further embodiment of the switch device 1 according to the present invention, with the locking member 7 in the locked position. In this position, the contacts of the switch device 1 are open (OFF position). The structure of the switch device 1 according to this second embodiment basically corresponds to the structure of the switch device shown in FIGS. 1 to 3. Therefore, only the differences will be mentioned below. For components of the switch device 1 according to the second embodiment that have not been described, please refer to the previous description of FIGS. 1 to 3.

[0033] According to the embodiment shown in FIG. 4, the magnetic yoke comprises two yoke plates, namely an upper yoke plate 5.1 and a lower yoke plate 5.2. The two yoke plates 5.1, 5.2 are arranged parallel to each other. Between the yoke plates 5.1, 5.2 are arranged a number of bolts 17 extending perpendicularly to the yoke plates 5.1, 5.2, which hold the yoke plates 5.1, 5.2 apart from each other. The bolts 17 are connected to the two yoke plates 5.1, 5.2. The bolts 17 are preferably made of non-magnetic steel or plastic. Tests have shown that bolts made of magnetic material also show good results. The two yoke plates 5.1, 5.2 extend substantially perpendicular to the longitudinal axis of the magnet armature 6. The excitation coil 4 is arranged between the two yoke plates 5.1, 5.2.

[0034] The locking member 7 is formed in two parts and includes an actuating part 7.1 and a locking part 7.2. The actuating part 7.1 is preferably formed from a ferromagnetic material and is also part of the magnetic yoke. Furthermore, the actuating part 7.1 is configured as a pivoting armature and is pivotally connected to the lower yoke plate 5.2 of the magnetic yoke via a first joint 8. That is, the actuating part 7.1 is connected to the yoke plate 5.2 facing away from the contacts. The locking part 7.2 is pivotally connected to the actuating part 7.1 via a second joint 16. The locking part 7.2 is configured in the form of a slider. The locking part 7.2 extends approximately at a right angle to the actuating part 7.1. Depending on the position of the actuating part 7.1, the locking part 7.2 therefore forms an angle of approximately 80° to 100°, preferably approximately 85° to 95°, with the actuating part 7.1. The locking portion 7.2 extends substantially parallel to the upper yoke plate 5.1 of the magnetic yoke, i.e. the yoke plate facing the contacts. The locking portion 7.2 therefore extends substantially perpendicular to the direction of movement of the magnet armature 6.

[0035] The locking part 7.2 may be guided against the upper yoke plate 5.1. The locking part 7.2 further has a pin 19 extending in the longitudinal direction of the locking part 7.2. The pin 19 extends in the longitudinal direction of the locking part 7.2 starting from the end face of the locking part 7.2 facing away from the actuating part 7.1 as an extension of the locking part 7.2. The upper yoke plate 5.1 is provided with a groove (see FIG. 5) which extends substantially perpendicular to the direction of movement of the magnet armature 6 in the upper yoke plate 5.1. The pin 19 of the locking part 7.2 is guided in a groove 20 of the upper yoke plate 5.1. A preload spring 9 is arranged between the pin 19 of the locking part 7.2 and the opposite end of the groove 20 of the upper yoke plate 5.1. One end of the preload spring 9 is attached to the pin 19 and the other end of the preload spring is attached to the locking part 7.2. The locking part 7.2 is movable relative to the magnet armature 6 parallel to the yoke plates 5.1, 5.2.

[0036] Furthermore, the locking part 7.2 has an elongated hole 21 extending in the longitudinal direction of the locking part 7.2. The elongated hole 21 is clearly visible in FIG. 5. The magnet armature 6 has an anchor rod 6.1. The anchor rod 6.1 starts from a part of the magnet armature 6 arranged in the excitation coil 4 and extends upwards to the contact carrier 11. The anchor rod 6.1 of the magnet armature 6 is substantially cylindrical and passes through the elongated hole 21 of the locking part 7.2. In the region where the anchor rod 6.1 passes through the elongated hole 21 of the locking part 7.2, the anchor rod 6.1 has an annular groove 22. In the vicinity of the annular groove 22, the diameter of the anchor rod 6.1 is smaller due to the annular groove 22 than the parts of the anchor rod 6.1 above and below the locking part 7.2. The width of the annular groove 22 of the anchor rod 6.1 is slightly greater than the thickness of the locking part 7.2. The width of the slot 21 of the locking part 7.2 is slightly larger than the diameter of the anchor rod 6.1 of the magnet armature 6 under the annular groove 21. Therefore, when the locking part 7.2 is not engaged with the annular groove 22 of the anchor rod 6.1, the magnet armature 6 or the anchor rod 6.1 can move vertically up and down relative to the locking part 7.2 through the slot 21 of the locking part 7.2.

[0037] FIG. 4 shows the switch device 1 in the locked position. Now, the actuating part 7.1 rotates outwardly about the joint 8, i.e. away from the excitation coil 4, and an air gap 23 is formed between the upper yoke plate 5.1 of the magnetic yoke and the upper end of the actuating part 7.1. This air gap 23 forms a discontinuity of the magnetic yoke in the locked position. The locking part 7.2 is therefore pulled outwardly, i.e. to the right in FIG. 4, and one end of the slot 21 of the locking part 7.2 hits the bottom of the annular groove 22 of the anchor rod 6.1 of the magnet armature 6. The locking part 7.2 therefore engages with the annular groove 22 of the anchor rod 6.1 of the magnet armature 6, locking the magnet armature 6 in the axial direction. The magnet armature 6 cannot therefore move either upwards or downwards, and the contacts of the switch device 1 are locked in the open position. In order to reliably hold the locking member 7, and in particular the locking part 7.2, in the locked position when the actuating device is switched off, a preload spring 9 is provided. As already mentioned, the preload spring 9 is inserted into the groove 20 in the upper yoke plate 5.1 of the magnetic yoke and is attached to the yoke plate 5.1 and to the locking part 7.2, biasing the locking part 7.2 towards the locked position.

[0038] Figure 5 shows the switch device 1 according to the second embodiment of Figure 4 after the magnet armature has been unlocked and is in the attraction position, in which the contacts of the switch device 1 are closed (ON position).

[0039] To unlock the magnet armature 6, the excitation coil 4 is energized. As a result, the actuating part 7.1 of the locking element 7, designed as a pivoting armature, is attracted by the magnetic flux to the two yoke plates 5.1, 5.2. The upper free end of the actuating part 7.1 moves towards the free end of the upper yoke plate 5.1 and towards the air gap 23, so that the magnetic yoke is closed. At the same time, the locking part 7.2 is moved essentially perpendicular to the direction of movement of the magnet armature 6. The end of the slot 21 of the locking part 7.2 is pushed out of the annular groove 22 of the anchor rod 6.1 of the magnet armature 6. The locking part 7.2 is then in the unlocked position. The magnet armature 6 is thus released, i.e. unlocked. The magnet armature, i.e. the anchor rod 6.1, can now move up and down through the slot 21 of the locking part 7.2.

[0040] As described above, the air gap 23 is also closed at the same time. Thus, the actuating part 7.1 closes the magnetic yoke of the excitation coil 4. In this second embodiment, the magnetic yoke is formed by the two yoke plates 5.1, 5.2 and the locking member, in particular the actuating part 7.1 of the locking member 7. As a result, the magnetic flux acting on the magnet armature 6 is amplified and the magnet armature 6 is moved from the initial position to the attraction position against the force of a return spring (not shown). As a result, the contact carrier 11 on which the contact bridge 3 is arranged moves towards the fixed contact 2 and the electric contact is closed. [Explanation of symbols]

[0041] 1 Switching device 2 Fixed contact 3 Contact bridge (movable contact) 4 Excitation coil 5 U-shaped part of magnetic yoke 5.1 Upper yoke plate 5.2 Lower yoke plate 6 Magnet armature 6.1 Anchor rod 7 Locking member 7.1 Actuating Parts 7.2 Locking section 8 Joint 9 Preload spring 10 Protrusion 11 Contact carrier 12. Hook 13 Contact bias spring 14 Bobbin 15 holes 16 Second Joint 17 Volts 19 pin 20 grooves 21 Slot 22 Annular groove 23 Air Gap

Claims

1. A switch device (1) comprising at least one fixed contact (2) and a movable contact (3) cooperating therewith, The switch device includes an electromagnetic actuator for driving the movable contact (3), The electromagnetic actuator comprises: An excitation coil (4) for generating a magnetic field; a magnetic yoke (5, 5.1, 5.2, 7) for amplifying the magnetic flux density of the magnetic field; a magnet armature (6) configured to be attracted from an initial position to an attraction position by the magnetic field and connected to the movable contact (3); Equipped with The electromagnetic actuator further includes a locking member (7) movable from a locked position to an unlocked position, the locked position being a position where the locking member (7) restricts movement of the magnet armature (6) and / or the movable contactor (3), and the unlocked position being a position where the locking member (7) allows movement of the magnet armature (6) and / or the movable contactor (3); said locking member (7) being at least partially made of a ferromagnetic material; The locking member (7) is configured to be moved from the unlocked position to the locked position by the action of the magnetic field. This is based on the premise that the magnetic yoke (5, 5.1, 5.2, 7) is configured to have a discontinuity when the locking member (7) is in the locked position, the discontinuity of the magnetic yoke is closed by the locking member (7) when the locking member (7) is in the unlocked position; The magnetic yoke (5) comprises an upper yoke plate (5.1) and a lower yoke plate (5.2) arranged parallel to and spaced apart from each other, the upper yoke plate and the lower yoke plate are substantially perpendicular to a moving direction of the magnet armature (6), and the excitation coil (4) is disposed between the upper yoke plate and the lower yoke plate; The locking member (7) is disposed on the upper yoke plate (5.1) and the lower yoke plate (5.2) such that, when the locking member (7) is in the unlocked position, the locking member (7) and the two yoke plates (5.1, 5.2) form a U-shape. A switching device comprising:

2. A switch device (1) according to claim 1, The electromagnetic actuator is configured to amplify the magnetic flux acting on the magnet armature (6) when the discontinuity of the magnetic yoke (5, 5.1, 5.2, 7) is closed by the locking member (7). A switching device comprising:

3. A switch device (1) according to claim 2, The electromagnetic actuator comprises: When the magnetic yoke (5, 5.1, 5.2, 7) is closed, it attracts the magnetic armature (6) against the force of the return spring of the electromagnetic actuator, When the magnetic yoke is disconnected, the magnetic flux acting on the magnet armature (6) is insufficient to attract the magnet armature (6) against the force of the return spring. It is configured as follows: A switching device comprising:

4. In the switch device (1) according to any one of claims 1 to 3, The locking member (7) is in the form of a pivoting armature. A switching device comprising:

5. In the switch device (1) according to any one of claims 1 to 4, The locking member (7) is biased into the locked position by a reset member, preferably in the form of a preload spring (9). A switching device comprising:

6. In the switch device (1) according to any one of claims 1 to 5, The direction of movement of the locking member (7) is transverse to the direction of movement of the magnet armature (6) and preferably forms an angle of 70° to 90° with respect to the direction of movement of the magnet armature (6). A switching device comprising:

7. In the switch device (1) according to any one of claims 1 to 6, The locking member (7) has a protrusion that interacts with a back taper formed on the magnet armature (6) or the movable contact to lock or unlock the magnet armature (6) and / or the movable contact. A switching device comprising:

8. A switch device (1) according to claim 7, the projection of the locking member (7) is in the form of a slot (21) extending substantially perpendicular to the magnet armature (6); The magnet armature (6) extends through the slot (21) and has an annular groove (22); The annular groove (22) forms the back taper and interacts with the slot (21) in the locking member (7) to lock or unlock the magnet armature (6). A switching device comprising:

9. A switch device (1) according to any one of claims 1, 7 and 8, The locking member (7) is formed from multiple parts, The locking member (7) comprises an actuating part (7.1) and a locking part (7.2) hinged to each other. A switching device comprising:

10. A switch device (1) according to claim 9, The actuation portion (7.1) and the lock portion (7.2) form an angle of 80° to 100° with respect to each other, the locking portion (7.2) is arranged substantially parallel to the two yoke plates (5.1, 5.2); The long hole (21) is formed in the locking portion (7.2). A switching device comprising:

11. In the switch device (1) according to any one of claims 1 to 10, The locking member (7) in the locked position locks the magnet armature (6) in the initial position. A switching device comprising:

12. A switch device (1) according to claim 11, At least one of the fixed contacts (2) and at least one of the movable contacts (3) cooperating therewith are in an open state when the magnet armature (6) is in the initial position. A switching device comprising:

Citation Information

Patent Citations

  • electric lifting armature magnet

    DE19625657A1

  • Electric power switching apparatus preventing malfunction

    WO2012033262A1