Switching device

The gas-filled switching device with isolated auxiliary contacts and a mechanical drive mechanism addresses contact adhesion issues by ensuring reliable state detection and insulation, improving durability and sensitivity in contactors.

JP7839746B2Active Publication Date: 2026-04-02TDK ELECTRONICS AG
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-05-11
Publication Date
2026-04-02

AI Technical Summary

Technical Problem

Existing switching devices, particularly contactors, struggle to reliably detect and prevent contact adhesion or welding of contacts due to arc formation, which is not adequately addressed in hermetically sealed ceramic discharge spaces, and require complex wiring for monitoring, leading to insulation issues and limited lifespan of monitoring switches.

Method used

A gas-filled switching device with a movable contact and fixed contacts, utilizing a mechanical drive mechanism with a magnet armature, where auxiliary contacts and spring contacts are isolated within a gas atmosphere, allowing for reliable detection of switching states through electrical resistance measurements, and insulating the movable contact and contact plate from the drive mechanism.

Benefits of technology

The design ensures reliable detection of contactor states, prevents arc-induced contact welding, and maintains insulation integrity, enhancing the switching device's durability and sensitivity to mechanical shocks and vibrations.

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Abstract

A switching device (100) is presented, comprising at least two fixed contacts (2, 3), one movable contact (4) in a switching chamber (11), at least two auxiliary contacts (25) in the switching chamber, two spring contacts (30) and a contact plate (31), each of the spring contacts contacting one of the auxiliary contacts at a first contact area (301) and having a second contact area (302), the contact plate being movable together with the movable contact, the contact plate contacting the second contact area of ​​the spring contacts in a first switching state of the switching device and being spaced apart from the second contact area of ​​the spring contacts in a second switching state.
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Description

Technical Field

[0001] A switching device is presented.

Background Art

[0002] The switching device is designed, in particular, as a remotely operated switch that can be driven by current and operates electromagnetically. The switching device can be operated via a control circuit and can switch a load circuit. In particular, the switching device can be designed as a relay or as a contactor, in particular as a power contactor. Particularly preferably, the switching device can be designed as a gas-filled power contactor.

[0003] One possible use of such a switching device, in particular of a power contactor, is the opening and disconnection of a battery circuit in a motor vehicle with a motor, such as an electrically or partly electrically driven motor vehicle, or in an application in the field of renewable energy.

[0004] In its function as a safety component, for example, a contactor is usually additionally monitored, and such contactor monitoring is regulated in the standard IEC 60947-5-1. Contactor monitoring is intended, for example, to detect the most frequent faults of contactors, relays and switches, namely the sticking or welding of the main contacts. Such a fault, also known as contactor adhesion, can be caused, for example, by an arc that forms between the contacts during a switching operation under load and causes such a high temperature on the contact surfaces that the contact surfaces are welded to each other. Furthermore, it is advantageous if, for example, a further fault condition can be detected when the contacts are mechanically blocked in the open position or an intermediate state.

[0005] A typical contactor is designed as a so-called overstroke system. This means that after the main contacts are interconnected by a switching bridge and thus electrically closed, the movement of the closing system continues, increasing the normally spring-loaded pressure of the switching bridge on the main contacts. In the case of contactor adhesion, this overstroke is released again, but the switching bridge remains attached to at least one main contact. Thus, the mechanical system remains in an intermediate state, neither fully open nor fully closed.

[0006] Monitoring or contactor adhesion detection can be performed, for example, by measuring the voltage across the main contact(s) of the contactor. If there is voltage between the main contacts, it can be inferred that the contactor is open. If there is no voltage, it can be inferred that the contactor is short-circuited and therefore closed. This method is very reliable, but it is also expensive to use because it requires the installation of wiring that is loaded with a high voltage potential and is properly insulated. Monitoring is usually performed by a high-level system, such as an AD converter controlled by a microcontroller.

[0007] For example, it is known to use a microswitch operated by a small cantilever on a switching bridge within the switching chamber of a contactor. The cantilever operates the switch just before the switching bridge is pressed against the main contacts. In this case, the switch can be designed as a closer (closes when pressed) or an opener (opens when pressed). Thus, the signal of the microswitch can also be designed inversely to be compared with the switching state of the contactor. The drawback of this solution is that the microswitch must be placed close to the main contacts inside the switching chamber. This can sometimes affect arc extinguishing or result in insulation defects. Furthermore, the monitoring contact formed by the cantilever and microswitch must be pre-formed. This means that the monitoring contact changes its state before the main contacts close. This is because if the overstroke has already reached its limit at the time of contact, the microswitch must still indicate the "closed" state. Thus, intermediate states or blockages cannot be detected. A further drawback is the lifespan of a typical microswitch, which, depending on the design, can only reach a few hundred thousand switching cycles. Furthermore, wiring to the switch must be laid, which limits the use of a completely hermetically sealed ceramic discharge space.

[0008] Furthermore, as shown in Patent Document 1, for example, an auxiliary switch operated via a cantilever on a switching bridge is known, in which, for example, two overlapping contacts may be pressed against each other. This solution is certainly simple, inexpensive, and virtually wear-free. However, this solution has the disadvantage that the overlapping contacts are mounted between the main contacts, which can lead to insulation problems. Moreover, a wire must be laid to the auxiliary switch, which limits or makes it impossible to use a completely hermetically sealed ceramic discharge space. The switching behavior is still the same as that of a microswitch.

[0009] To avoid the aforementioned drawbacks, it is also known to mount a magnet capable of opening and closing the reed switch at the bottom of the movable system, particularly outside the switching chamber, as described in Patent Document 2, for example. This allows detection to occur far from the main contacts, and detection can even occur through non-magnetic materials. Furthermore, this solution is readily available in conjunction with hermetically sealed ceramic discharge spaces. The switching behavior is similar to the two systems described above, but the difficulty arises in that the overlap region must be properly adjusted because the indication is magnetic and the hysteresis effect must also be taken into consideration. A further drawback is the sensitivity of the reed switch to magnetic interference fields and mechanical shocks.

[0010] As an improvement to this, it is known that Hall sensors are used instead of reed switches, and as a result, magnetic detection is made possible by semiconductor components rather than by mechanical switches. Thus, the magnetic interference field no longer plays a role, and vibration dependence is no longer present. However, the switching behavior is similar to that of a reed switch.

[0011] All four monitoring switch solutions have a so-called "normally open" characteristic, meaning the monitoring switch broadly reflects the state of the main contact. However, signal inversion does not produce "normally closed," but merely "not normally open." What all four principles have in common is that none of these solutions can reliably signal that the monitored contactor is definitely and completely open. However, such a requirement is codified in the standard IEC 60947-5-1, which requires detection that closes the monitoring contact only when the contactor is in the idle position, or indicates a closed monitoring contact ("normally closed").

[0012] Such a solution is not known to date for gas-filled contactors. [Prior art documents] [Patent Documents]

[0013] [Patent Document 1] International Publication No. 2008 / 033349 [Patent Document 2] Japanese Patent Publication No. 2013-008621 [Overview of the project] [Problems that the invention aims to solve]

[0014] At least one objective of a particular embodiment is to present a switching device. [Means for solving the problem]

[0015] This problem is solved by the subject matter in the independent claim. Advantageous embodiments and developments of the subject matter are described in the dependent claims and will become clear from the following description and drawings.

[0016] According to at least one embodiment, the switching device comprises at least one fixed contact and at least one movable contact. The at least one fixed contact and the at least one movable contact are intended and tuned to switch on and off load circuits that can be connected to the switching device. Particularly preferably, the switching device comprises at least two fixed contacts, which, together with the movable contact, are intended and tuned to switch on and off load circuits that can be connected to at least two fixed contacts. Hereafter, the switching device will be described as having at least one or two fixed contacts for the most part. However, the number of fixed contacts may differ from the number specifically mentioned in the following embodiments and in relation to the features described below.

[0017] The movable contact is movable between the disconnected and connected states of the switching device, such that in the disconnected state of the switching device, it is separated from and therefore electrically isolated from the fixed contacts, and in the connected state, it has mechanical contact with at least two fixed contacts and is therefore electrically connected to them. Thus, the fixed contacts are arranged separately from one another in the switching device and, depending on the state of the movable contact, can be electrically connected to one another via the movable contact or electrically isolated from one another. Thus, in the connected state, the movable contact contacts at least one contact surface of at least one fixed contact with at least one contact surface of at least one fixed contact. The distance of the movable contact, in particular the aforementioned contact surface of the movable contact, from at least one fixed contact, in particular the aforementioned contact surface of at least one fixed contact, in the disconnected state and therefore isolated state, is also referred to here and below as the switching gap and represents the maximum range of movement, and therefore the maximum distance that can be reached of the contact, in particular between its contact surfaces. For example, in the case of two fixed contacts, the above description applies accordingly.

[0018] In a further embodiment, the switching device comprises a switching chamber, within which movable contacts and fixed contacts are arranged. The movable contacts may, in particular, be entirely located within the switching chamber. The fact that the fixed contacts are located within the switching chamber may, in particular, mean that at least the contact area of ​​the fixed contacts that mechanically contacts the movable contacts in a connected state is located inside the switching chamber. For connecting the wires of the circuit to be switched by the switching device, the fixed contacts located within the switching chamber may be electrically accessible from the outside, i.e., from outside the switching chamber. For this purpose, a portion of the fixed contacts located within the switching chamber may protrude from the switching chamber, and may have the possibility of connecting wires outside the switching chamber. Therefore, the switching chamber preferably has an opening through which the fixed contacts protrude into the switching chamber. The fixed contacts may, for example, be soldered into the opening of the switching chamber and protrude into and out of the internal space of the switching chamber.

[0019] In a further embodiment, the switching device comprises at least two auxiliary contacts located within a switching chamber. The location of the auxiliary contacts within the switching chamber may, in particular, mean that at least one contact area of ​​the auxiliary contacts is located inside the switching chamber. For the connection of a wire, the auxiliary contacts located within the switching chamber may be electrically accessible from the outside, i.e., from outside the switching chamber. For this purpose, a portion of the auxiliary contacts located within the switching chamber may protrude from the switching chamber, providing the possibility of connection for a wire outside the switching chamber. Therefore, the switching chamber preferably comprises an opening through which the auxiliary contacts protrude into the switching chamber. The auxiliary contacts are, for example, soldered into the opening of the switching chamber and protrude into and out of the internal space of the switching chamber. Thus, the passage of the auxiliary contacts into the switching chamber can be done by a sealed connection, such as a hard-soldered connection, comparable to the passage of a fixed contact, which can preferably be done in a common manufacturing step, and therefore in a common work process.

[0020] In a further embodiment, the switching device comprises at least two spring contacts located within a switching chamber. Furthermore, the switching device comprises a contact plate located within the switching chamber. In particular, the spring contacts and the contact plate are entirely located within the switching chamber. Each spring contact comprises at least one first contact area and one second contact area. Through the first contact area, each spring contact can contact one of the auxiliary contacts. In particular, each spring contact can, under normal operation, permanently and regardless of the switching state of the switching device, contact one of the auxiliary contacts through its first contact area. The first contact area of ​​the spring contact can, in particular, contact the auxiliary contact directly and therefore mechanically.

[0021] In a further embodiment, the contact plate is movable together with the movable contact. Particularly preferably, the contact plate and the movable contact can be moved together by the same mechanical drive mechanism, which will be further described below. Particularly preferably, the contact plate is positioned to be in contact with the second contact area of ​​the spring contact in a first switching state of the switching device, and separated from the second contact area of ​​the spring contact in a second switching state. The first switching state can be the disconnected switching state of the switching device described above, while the second switching state can be the connected state described above. In other words, the contact plate can be in contact with the second contact area of ​​the spring contact when the movable contact of the switching device is separated from at least one fixed contact, while the contact plate is separated from the second contact area of ​​the spring contact when the movable contact of the switching device is in contact with at least one fixed contact. Alternatively, the first switching state can be a connected switching state, while the second switching state is a disconnected state. In this case, the operating principle for detecting the state of the switching device via the auxiliary contact is designed in reverse with respect to the following description.

[0022] According to a further embodiment, the switching device comprises a housing, within which a movable contact, a fixed contact, as well as an auxiliary contact, a spring contact and a contact plate are arranged. The fact that the fixed contact is arranged within the housing means in particular that at least one contact area of the fixed contact that mechanically contacts the movable contact in the connected state is arranged inside the housing. For the connection of the conductors of the circuit to be switched by the switching device, the fixed contact arranged within the housing can be electrically contacted from the outside, i.e., from the outside of the housing. For this purpose, the fixed contact arranged within the housing can partially protrude from the housing and can have the possibility of connection for the conductors on the outside of the housing. In particular, this can apply to any fixed switching contact. The movable contact can in particular be arranged completely within the housing. Further, preferably, the auxiliary contact can also be arranged completely within the housing. For example, via a conductor inside the housing conductively connected to an external electrical connection on the housing, the auxiliary contact can be contactable from the outside. Alternatively, within the housing, there can be an electrical component, such as a microcontroller, connected to the auxiliary contact via electrical wiring. The microcontroller can also here be contactable from the outside via a suitable connection on the housing.

[0023] In a further embodiment, the contacts are located in a gas atmosphere within the housing. This may mean, in particular, that the movable contacts, spring contacts, and contact plates are entirely located in the gas atmosphere within the housing, and furthermore, that at least a portion of the fixed contacts, e.g., the contact area of ​​the fixed contacts, and at least a portion of the auxiliary contacts, e.g., the contact area of ​​the auxiliary contacts, are located in the gas atmosphere within the housing. Accordingly, the switching device may be a gas-filled switching device, particularly preferably, such as a gas-filled contactor. The gas atmosphere can, in particular, facilitate the extinguishing of arcs that may occur during switching operation. The gas in the gas atmosphere may include, or be, a hydrogen and / or nitrogen-containing gas, particularly under high pressure. Preferably, the gas may contain at least 50% H2. In addition to hydrogen, the gas may contain an inert gas, particularly preferably N2 and / or one or more noble gases.

[0024] According to a further embodiment, the switching chamber is located inside the housing. Furthermore, at least a portion of the gas, i.e., the gas atmosphere, may be located inside the switching chamber.

[0025] According to a further embodiment, the movable contact and the contact plate are movable by means of a mechanical drive device. The mechanical drive device particularly comprises a magnet armature. The magnet armature can comprise a shaft, and the shaft is connected at one end to the movable contact and the contact plate such that the movable contact and the contact plate are movable by the shaft, i.e., are likewise moved by the shaft upon movement of the shaft. The shaft can particularly project into the switching chamber through an opening in the switching chamber. In particular, the switching chamber can comprise a switching chamber bottom having an opening through which the shaft projects. The magnet armature can be movable by means of a magnetic circuit in order to effect the switching operation described above. For this purpose, the magnetic circuit can comprise a yoke having an opening through which the shaft of the magnet armature projects. When the magnetic circuit is switched on, the magnet armature, particularly the magnetic core of the magnet armature, can be attracted towards the yoke.

[0026] According to a further embodiment, the movable contact and the contact plate are arranged in an electrically insulating contact holder. The contact holder is particularly preferably arranged and fixed on the shaft of the magnet armature and can electrically insulate the movable contact and the contact plate from the shaft. Thereby, the movable contact and the contact plate can be supported in an electrically insulated state from the components of the mechanical drive device, particularly from the components of the magnet armature. For this purpose, the contact holder can comprise or consist of an electrically insulating material. The electrically insulating material can be selected from polymer and ceramic materials, for example, polyoxymethylene (POM) having a particular structure (CH2O) n which can be selected from polybutylene terephthalate (PBT), glass fiber filled PBT and electrically insulating metal oxides such as, for example, Al2O3.

[0027] In a further embodiment, the contact plate is fixed to the contact holder. Fixation can be done, for example, by clamping. Particularly preferably, the contact holder is partially reshaped from the contact holder material. For this purpose, the contact plate can be recast or overmolded, for example, from the contact holder material. For contact of the second contact area of ​​the spring contact, the contact area of ​​the contact plate can protrude from the contact holder.

[0028] During switching operation, the magnetic armature, shaft, and movable contact and contact plate move, preferably in a linear motion in the form of a vertical movement along the shaft. Preferably, the shaft and, for example, the magnetic core of the magnetic armature have a range of motion for lifting in the vertical direction, and this range of motion is greater than the switching gap described above. This can be made possible, for example, by having a gap between the magnetic core and the yoke, which may also be called a moving gap, that is greater than the switching gap when the switch is off. Thus, a magnetic armature with a movable contact may be an overstroke system in which the movable contact is displaceably positioned in a contact holder. Furthermore, a contact spring may be placed in the contact holder, and the contact spring may exert a spring force on the movable contact in the direction of the fixed contact. When the movable contact strikes the fixed contact, and therefore the switching gap is completely closed, the contact spring may be compressed, and the magnetic armature may move further, for example, until the magnetic core contacts the yoke. For example, the moving gap may be larger than the switching gap by only 1 mm or less, particularly preferably by about 0.5 mm. Overstroke compresses the contact spring, increasing the contact pressure between the movable contact and the fixed contact, which can achieve a degree of insensitivity to vibration and mechanical shock.

[0029] The above-described design of the mechanical drive and switching chamber makes it possible to achieve that the auxiliary contacts, spring contacts, and contact plates are electrically isolated from the fixed contacts, movable contacts, and mechanical drive. In particular, permanent isolation, i.e., consistently guaranteed isolation during the normal operation of the switching device, and therefore during the first and second switching states, and during transitions between them, can be achieved.

[0030] At least one of the contact areas of each spring contact may be designed to be elastic. For example, the first contact area of ​​each spring contact may be designed to be elastic and exert a spring force on the auxiliary contact. In other words, the first contact area, in its assembled state, is pressed against the auxiliary contact and therefore exerts a spring force. Alternatively or additionally, a second contact area may be designed to be elastic. Particularly preferably, the second contact area may exert a spring force on the contact plate in the first switching state. In this case, the spring force of the second contact area may be smaller than the spring force of the contact spring. The elastic action of the second contact area may achieve increased insensitivity of the mechanical contact between the contact plate and the second contact area of ​​the spring contact to vibration and mechanical shock. Particularly preferably, the spring force of the second contact area on the contact plate, and therefore the counterpressure on the magnet armature, particularly the contact holder, may be smaller than the return spring force, which, along with the return spring of the mechanical drive, can move the magnet armature from the connected switching state to the disconnected switching state. Particularly preferably, the spring force on the contact plate in the second contact area may be 20% or less of the return spring force.

[0031] Particularly preferably, the movable contact is separated from the fixed contact by a switching gap in the first or second switching state, as described above, and the contact plate may lose mechanical contact with the second contact area of ​​the spring contact after moving a distance of 20% or less of the switching gap when the switching device transitions from the first switching state to the second switching state. This makes it possible to achieve a very small distance that the magnet armature must move before the contact between the contact plate and the spring contact is broken.

[0032] The direction of movement of the movable contacts corresponding to the principal extending direction of the axis, i.e., the direction of vertical movement of the movable contacts, may also be referred to here and below as the vertical direction. The fixed contacts are arranged adjacent to each other along the longitudinal direction, which lies in a horizontal plane perpendicular to the vertical direction. The movable contacts can be formed, for example, in a plate shape and may have a principal extending surface parallel to the horizontal plane. A transverse direction is defined perpendicular to the vertical and longitudinal directions, and as a result, the horizontal plane is stretched by the longitudinal and transverse directions. Auxiliary contacts are preferably arranged along the transverse direction, and the movable contacts may be arranged between the auxiliary contacts along the transverse direction in particular.

[0033] In a further embodiment, the switching chamber has a switching chamber wall. The switching chamber wall may preferably have a rectangular cross-sectional shape, or at least a cross-sectional shape approximating a rectangle, in a horizontal cross-sectional view, i.e., in a cross-sectional view taken from a cross-sectional plane perpendicular to the vertical direction. In particular, the switching chamber wall may have opposing longitudinal sidewalls and opposing transverse sidewalls, resulting in a rectangular shape with respect to their outer and / or inner contours in a horizontal cross-sectional view. In other words, the longitudinal sidewalls may extend substantially vertically and longitudinally, while the transverse sidewalls may extend substantially vertically and transversely. In this case, preferably, the longitudinal sidewalls, the transverse sidewalls, and the cover portion having openings for fixed contacts and openings for auxiliary contacts may be designed as a single piece, and the switching chamber that can form the switching chamber wall may additionally have a switching chamber bottom that forms the switching chamber together with the switching chamber wall. Alternatively, the sidewalls may also be designed as a single piece together with the switching chamber bottom. In addition, the side wall portion can form the switching chamber wall without a cover portion and without a switching chamber bottom portion, and together with a separately manufactured cover portion and a separately manufactured switching chamber bottom portion, it forms the switching chamber.

[0034] In a further embodiment, each of the spring contacts includes a connecting region extending along a longitudinal side wall between the first and second contact regions. The first and second contact regions of each of the spring contacts may preferably extend from their respective longitudinal side walls into the internal space of the switching chamber, at least along the transverse direction.

[0035] In a further embodiment, the switching chamber comprises at least two webs, each positioned longitudinally between at least two fixed contacts, and each extending laterally into the switching chamber from at least one longitudinal side wall. In this case, the webs are separated from each other longitudinally. In particular, the two webs can extend laterally beyond the movable contacts within the internal space of the switching chamber from one of the longitudinal side walls to the other of the longitudinal side walls. In this case, each of the at least two webs comprises a recess, within which the movable contacts can move during switching operation. Furthermore, the webs can be directly connected to the cover portion of the switching chamber. In particular, the webs can extend directly adjacent to the cover portion of the switching chamber. The webs can be designed as a one-piece unit together with the side walls and / or cover portion of the switching chamber, particularly preferably.

[0036] At least two webs can form one or more spaces between fixed contacts in the internal space of the switching chamber, which are at least partially isolated from the fixed contacts and therefore electrically insulated. In particular, auxiliary contacts and spring contacts can be arranged in at least one of the insulated spaces thus formed, and therefore between the two webs in the longitudinal direction. Particularly preferably, the auxiliary contacts can be arranged between the two webs symmetrically with respect to the movable contacts, i.e., symmetrically with respect to a plane of symmetry stretched by the longitudinal and perpendicular directions. Furthermore, spring contacts can also be arranged between the two webs symmetrically with respect to the movable contacts. The auxiliary contacts and spring contacts can be at least partially insulated from the fixed contacts by forming at least one web between each of the auxiliary contacts and fixed contacts, and between each of the spring contacts and fixed contacts. Furthermore, additional components, such as a gas filling nozzle for filling the switching chamber with the gas described above to form a gas atmosphere, can be arranged in the insulated spaces thus formed.

[0037] In a further embodiment, the bottom of the switching chamber has a wall, which is positioned longitudinally between the webs of the switching chamber wall, with spring contacts positioned between the wall. In particular, the wall can be inserted between the webs to form an intermediate space in which the spring contacts are partially positioned. Furthermore, the contact area of ​​the contact plate can be positioned within this intermediate space and can move within this intermediate space during changes from a first switching operation to a second switching operation and vice versa. The wall at the bottom of the switching chamber, together with the web, can form at least one of the aforementioned isolated spaces.

[0038] In further embodiments, the auxiliary contact and / or spring contact and / or contact plate comprises a material containing copper or a copper alloy. Particularly preferably, the material may be selected from CuBe, CuSn4, and CuSn6. Such materials may exhibit good conductivity and a low tendency to weld. Furthermore, for example, the auxiliary contact may contain the same material as the fixed contact.

[0039] In the switching device described herein, auxiliary contacts can be electrically connected to each other in a first switching state and electrically isolated to each other in a second switching state by means of spring contacts and contact plates. By measuring the electrical resistance between the auxiliary contacts, a first switching state, particularly preferably corresponding to a disconnected switching state, and a second switching state, particularly preferably corresponding to a connected switching state, can be determined.

[0040] Further advantages, favorable embodiments, and developmental forms will become apparent from the embodiments described below in conjunction with the drawings. [Brief explanation of the drawing]

[0041] [Figure 1] This is a schematic diagram of a switching device. [Figure 2A]This is a schematic diagram of a part of a switching device according to one embodiment. [Figure 2B] This is a schematic diagram of a part of a switching device according to one embodiment. [Figure 2C] This is a schematic diagram of a contact plate of a switching device according to another embodiment. [Figure 2D] This is a schematic diagram of the switching chamber wall of a switching device according to another embodiment. [Figure 2E] This is a schematic diagram of the switching chamber wall of a switching device according to another embodiment. [Figure 2F] This is a schematic diagram of the switching chamber wall of a switching device according to another embodiment. [Figure 2G] This is a schematic diagram of the bottom of the switching chamber of a switching device according to another embodiment. [Figure 3A] This is a schematic diagram of a part of a switching device in various switching states. [Figure 3B] This is a schematic diagram of a part of a switching device in various switching states. [Modes for carrying out the invention]

[0042] In the examples and drawings, identical, similar, or equivalently functioning elements may be given the same reference numeral. The illustrated elements and their relative sizes are not to scale; rather, individual elements such as layers, parts, components, and regions may be exaggerated in size for better illustration and / or better understanding.

[0043] Figure 1 shows an example of a switching device 100, which can be used, for example, for switching high currents and / or high voltages, and may be a relay or contactor, particularly a power contactor. Figure 1 shows a three-dimensional cross-sectional view with a vertical cross-section. The illustrated geometric shape should be understood to be illustrative and not limiting, and other embodiments may be designed.

[0044] An exemplary switching device 100 comprises two fixed contacts 2, 3 and one movable contact 4 within a housing 1. The movable contact 4 is designed as a contact plate. The fixed contacts 2, 3 together with the movable contact 4 form a switching contact. Other numbers of fixed and / or movable contacts are possible instead of the illustrated number of contacts. The housing 1 is primarily used as contact protection for components located inside and contains or consists of plastic, such as PBT or glass fiber-reinforced PBT. The fixed contacts 2, 3 and / or movable contact 4 may contain or consist of one or more high-melting-point metals, such as Cu, Cu alloys, such as Wo, Ni and / or Cr, or mixtures of the aforementioned materials, such as a mixture of copper and at least one other metal, such as Wo, Ni and / or Cr.

[0045] In Figure 1, the switching device 100 is shown in an idle state with the movable contact 4 separated from the fixed contacts 2 and 3, and therefore the contacts 2, 3, and 4 are electrically isolated from each other. The illustrated embodiments of the switching contacts and, in particular, their geometric shapes should be understood to be purely illustrative and not limiting. Alternatively, the switching contacts may be designed in other ways.

[0046] The switching device 100 comprises a mechanical drive unit having a movable magnetic armature 5 that substantially performs switching motion. The magnetic armature 5 comprises a magnetic core 6, which includes or is made of, for example, a ferromagnetic material. Furthermore, the magnetic armature 5 comprises a shaft 7 that is guided through the magnetic core 6 and is firmly connected to the magnetic core 6 at one shaft end. At the other shaft end opposite to the magnetic core 6, the magnetic armature 5 comprises a movable contact 4, which is supported via a contact spring 40 and is similarly connected to the shaft 7. The shaft 7 may preferably be manufactured including or from special steel. To electrically insulate the movable contact 4 from the shaft 7, an electrical insulating contact holder 47, which may also be called a bridge insulator, may be placed between them.

[0047] The magnetic core 6 is surrounded by a coil 8. A current in the coil 8, which can be connected externally via a control circuit, generates axial motion of the magnetic core 6, and thus the entire magnet armature 5, until the movable contact 4 contacts the fixed contacts 2 and 3. In the illustrated example, the magnet armature moves upward. Thus, the magnet armature 5 moves from a first position, corresponding to the illustrated idle state and simultaneously the disconnected state, i.e., unconnected state, and therefore the switched-off state, to a second position, corresponding to the active state, i.e., connected state, and therefore the switched-on state. In the active state, contacts 2, 3, and 4 are electrically connected to each other.

[0048] To guide the shaft 7 and, consequently, the magnet armature 5, the switching device 100 is equipped with a yoke 9, which may contain or consist of pure iron or a low-doped iron alloy, and forms part of the magnetic circuit. The yoke 9 has an opening through which the shaft 7 is guided. When the current in the coil 8 is interrupted, the magnet armature 5 is moved back to the first position by one or more springs 10, which may also be called return springs. Thus, in the illustrated example, the magnet armature 5 moves downward again. The switching device 100 is then back in an idle state with contacts 2, 3, and 4 open.

[0049] The direction of movement of the magnetic armature 5, and by extension the movable contact 4, will hereafter be referred to as the vertical direction 91. The direction of arrangement of the fixed contacts 2 and 3 perpendicular to the vertical direction 91 will hereafter be referred to as the longitudinal direction 92. The direction perpendicular to both the vertical direction 91 and the longitudinal direction 92 will hereafter be referred to as the horizontal direction 93. Directions 91, 92, and 93, which are effective independently of the described switching motion, are shown in the figure to facilitate recognition of their directions.

[0050] For example, when contacts 2, 3, and 4 are opened, at least one arc may be generated that could damage the contact surfaces of contacts 2, 3, and 4. This could create a risk that contacts 2, 3, and 4 could become "stuck" to each other due to welding caused by the arc and could no longer be separated from one another. In this case, the switching device 100 would still be switched on, even though the current in coil 8 should be switched off and therefore the load circuit should be disconnected. To prevent such arc generation, or at least to facilitate the extinguishing of any arcs that do occur, contacts 2, 3, and 4 are placed in a gas atmosphere, and as a result, the switching device 100 is designed as a gas-filled relay or gas-filled contactor. For this purpose, contacts 2, 3, and 4 inside the switching chamber 11, formed by the switching chamber wall 12 and the switching chamber bottom 13, are located within an airtight region 14 formed by an airtightly closed portion, where the switching chamber 11 may be part of the airtight region 14. The airtight region 14 is substantially formed by the switching chamber 11, the yoke 9, and part of an additional wall. The airtight region 14 completely surrounds the magnet armature 5 and contacts 2, 3, and 4, except for the portions of the fixed contacts 2 and 3 intended for external connection. The airtight region 14, and therefore the internal space 15 of the switching chamber 11, is also filled with gas. The gas that can be filled into the airtight region 14 through a gas filling nozzle within the framework of the manufacture of the switching device 100 is, in particular, preferably a hydrogen-containing gas, for example, an inert gas containing 20% ​​or more H2, or a gas containing 100% H2, because a hydrogen-containing gas can promote arc extinguishing.

[0051] Outside the switching chamber 11, there may also be additional permanent magnets (not shown) intended and adjusted to deflect the arc, so-called blowout magnets. In particular, blowout magnets can extend the arc path and thus improve arc extinguishing.

[0052] The switching chamber walls 12 and the switching chamber bottom 13 may be made of or from a metal oxide such as Al2O3. Furthermore, plastics with sufficiently high temperature stability, such as PEEK, PE and / or glass fiber-reinforced PBT, are also suitable. Alternatively or additionally, the switching chamber 11 may be made of at least part of, in particular, a (CH2O) structure. n This may also include POM having (CH2O). Such plastics may be characterized by a relatively low carbon content and a very small graphite formation tendency. n In this case, due to the equal carbon and oxygen content, decomposition induced by heat, particularly by arc, may primarily produce gaseous CO and H2. Additional hydrogen can enhance arc extinguishing.

[0053] Embodiments of a switching device 100 and its components that enable the detection of the switching state are described in relation to the following figures, but the switching device described below can be designed similarly to the switching device described in relation to Figure 1, except for the features described below. Directions 91, 92, and 93 are shown in the following figures for easier recognition of directions and cross-sections.

[0054] Figures 2A and 2B show sections of the switching device 100 based on three-dimensional and two-dimensional cross-sectional views, respectively, and substantially show the area of ​​the switching chamber 11. The cross-sectional planes of Figures 2A and 2B are perpendicular to the longitudinal direction 92, respectively. Figure 2C shows the contact plate 31. Figures 2D to 2F show various views of the switching chamber 11 and the switching chamber wall 12, and Figure 2G shows the bottom of the switching chamber 13. The following description is similarly related to Figures 2A to 2G.

[0055] In comparison with the switching device in Figure 1, the embodiments shown in Figures 2A to 2G are equipped with two auxiliary contacts 25, which are located within the opening 125 of the switching chamber wall 12 and protrude into the internal space 15 of the switching chamber 11, similar to the fixed contacts 2 and 3.

[0056] Between the auxiliary contacts 25 arranged along the lateral direction 93, in the illustrated embodiment, another opening 126 is formed in which a gas filling nozzle 26 is located. The gas filling nozzle 26 can be used to fill the airtight area with gas from a gas atmosphere. After filling, it can be closed, for example, by crushing.

[0057] The auxiliary contacts 25 and gas filling nozzles 26 are preferably soldered into the openings 125 and 126 of the switching chamber 11, so that the passage of the auxiliary contacts 25 and gas filling nozzles 26 into the switching chamber 11 is by a sealed connection, such as a hard-soldered connection, comparable to the passage of the fixed contacts 2 and 3. The assembly of the contacts 2 and 3, the auxiliary contacts 25, and the gas filling nozzles 26 can preferably be carried out in a common work process.

[0058] The auxiliary contact 25 is entirely located within the housing. For example, the auxiliary contact 25 may be accessible from the outside via a conductive wire 27 inside the housing that is electrically connected to an external electrical connection on the housing.

[0059] Furthermore, the switching device 100 comprises two spring contacts 30 and one contact plate 31 located within the switching chamber 11. In particular, the spring contacts 30 and the contact plate 31 are located entirely within the internal space 15 of the switching chamber 11. Each of the spring contacts 30 extends from the auxiliary contact 25 to the contact plate 31 and comprises at least a first contact area 301 and a second contact area 302. The first contact area 301 causes each of the spring contacts 30 to contact one of the auxiliary contacts 25. In particular, each of the spring contacts 30 can, under normal operation, permanently and regardless of the switching state of the switching device 100, contact one of the auxiliary contacts 25 by its first contact area 301. The first contact area 301 of the spring contact 30 is in tangible contact with the auxiliary contact 25 directly and therefore mechanically.

[0060] The contact plate 31 is movable together with the movable contact 4. For this purpose, both the contact plate 31 and the movable contact 4 are connected to the mechanical drive mechanism described above in relation to Figure 1. In the first switching state of the switching device 100 shown in Figures 2A and 2B, the contact plate 31 is in contact with the second contact area 302 of the spring contact 30. For this purpose, the contact plate 31 has a contact area 312, as shown in Figure 2C. In the first switching state, the second contact area 302 of the spring contact 30 is in mechanical and therefore electrically contact with the contact area 312 of the contact plate 31, and as a result, the spring contact 30 and therefore the auxiliary contact 25 are also electrically connected to each other via the contact plate 31.

[0061] As will be further explained below, in the second switching state, the contact plate 30 is positioned apart from the second contact area 302 of the spring contact 30. In the illustrated embodiment, the first switching state is the disconnected switching state of the switching device 100 described above, in which case the movable contact 4 is separated from the fixed contacts 2 and 3, and accordingly, a switching gap exists between the movable contact 4 and the fixed contacts 2 and 3.

[0062] The movable contact 4 and contact plate 31 are arranged in an electrically insulated contact holder 47. The contact holder 47 has an opening into which the shaft 7 is inserted and is fixed to the shaft 7 of the magnetic armature 5, and therefore to the shaft 7 of the mechanical drive unit of the switching device 100. The contact holder 47 may be formed as a one-piece or multi-piece unit.

[0063] The movable contact 4 and the contact plate 31 are electrically insulated from the shaft 7 by the contact holder 47. Thus, the movable contact 4 and the contact plate 31 are supported in an electrically insulated state from the components of the mechanical drive mechanism, i.e., from the components of the magnet armature 5 in particular. For this purpose, the contact holder is, for example, constructed of (CH2O) n The present invention comprises or consists of polyoxymethylene (POM), polybutylene terephthalate (PBT), glass fiber-reinforced PBT, and an electrical insulating material selected from polymers and ceramic materials, such as an electrical insulating metal oxide like Al2O3.

[0064] The contact plate 31 is fixed to the contact holder 47. Fixation can be done, for example, by clamping, or, particularly preferably, by reshaping, as shown in the figure. For this purpose, the contact plate 31 is partially reshaped, for example, recast or overmolded, from the material of the contact holder 47. For contact of the second contact area 302 of the spring contact 30, the contact area 312 of the contact plate 31 protrudes laterally 93 from the contact holder 47.

[0065] As shown in Figure 2C, the contact plate 31 is formed, for example, in a disc shape and has a central opening 313 through which the shaft 7 protrudes in the assembled state. Furthermore, the contact plate 31 may have a fixing hole 314 through which the material of the contact holder 47 can reach, as shown in the figure, thereby fixing the contact plate 31 to the contact holder 47 and protecting it from, for example, twisting.

[0066] The contact holder 47 further comprises a lower stopper 471 and an upper stopper 472. The contact plate 31 is located within the lower stopper 471, which can be placed on the bottom 13 of the switching chamber in the first switching state. The movable contact 4 contacts the upper stopper 472 in the first switching state. A contact spring 40, as shown in Figure 1, is located between the movable contact 4 and the lower stopper 471, and the contact spring 40, which is not shown in Figures 2A and 2B for clarity, presses the movable contact 4 against the upper stopper 472 and therefore towards the fixed contacts 2 and 3.

[0067] A magnetic armature having a movable contact 4 is an overstroke system in which the movable contact 4 is displaceably positioned in a contact holder 47. When the movable contact 4 contacts the fixed contacts 2, 3, and thus the switching gap is completely closed, the contact spring can be compressed, and the magnetic armature can move further, for example, until the magnetic core contacts the yoke. For example, the magnetic armature can move further upward than the movable contact 4 in the vertical direction 91 by a distance of 1 mm or less, particularly preferably about 0.5 mm. The compression of the contact spring by the overstroke can increase the contact pressure of the movable contact 4 on the fixed contacts 2, 3, and a certain degree of insensitivity to vibration and mechanical shock can be achieved.

[0068] The switching chamber wall 12 has a rectangular cross-sectional shape, or at least an approximate rectangular cross-sectional shape, in a horizontal cross-sectional view, as can be seen particularly in Figures 2D to 2F, and may have, for example, rounded corners as shown. The switching chamber wall 12 has opposing lateral sidewalls 121 and opposing longitudinal sidewalls 122, which together result in at least an approximate rectangular shape. The lateral sidewalls 121, the longitudinal sidewalls 122, and the cover portion 119, which has openings 120 for fixed contacts 2 and 3 and openings 125 and 126 for auxiliary contacts 25 and gas filling nozzles 26, are formed as a single piece, as shown in the illustrated embodiment, and form the switching chamber wall 12. Alternatively, the sidewalls 121 and 122 may also be formed as a single piece together with the switching chamber bottom portion 13. In addition, the side walls 121 and 122 can form a switching chamber wall 12 without a cover and without a switching chamber bottom, which can then form a switching chamber 11 together with a separately manufactured cover and a separately manufactured switching chamber bottom 13. Particularly preferably, the switching chamber wall 12 is formed from the aforementioned ceramic material.

[0069] Each of the spring contacts 30 includes a connecting region 303 between the first and second contact regions 301, 302, the connecting region 303 extending along the longitudinal sidewall 122, as can be seen in Figures 2A and 2B. The first and second contact regions 301, 302 of each of the spring contacts 30 may preferably extend from their respective longitudinal sidewalls 122 into the internal space 15 of the switching chamber 11, at least along the transverse direction 93.

[0070] The spring contact 30 and / or contact plate 31 preferably contain a material containing copper or a copper alloy. Particularly preferably, the material may be selected from CuBe, CuSn4, and CuSn6. Such materials may exhibit good conductivity and a low tendency to weld. The auxiliary contact 25 may be formed from the materials described above for the fixed contacts 2 and 3, or from the materials described for the spring contact 30 and / or contact plate 31.

[0071] The spring contact 30 is preferably formed in the shape of a tape, particularly as a metal tape, as shown in the figure. At least one of each contact region 301, 302 of the spring contact 30 may be formed to be elastic. For example, the first contact region 301 of each spring contact 30 may be formed to be elastic and be able to exert a spring force on the auxiliary contact 25. Thus, the first contact region 301 can press against the auxiliary contact 25 in the assembled state and therefore exert a spring force.

[0072] Furthermore, alternatively or additionally, the second contact area 302 is formed to be elastic. Particularly preferably, the second contact area 302 exerts a spring force on the contact plate 31, and especially on its contact area 312, in the first switching state. The elastic action of the second contact area 302 can achieve enhanced insensitivity of the mechanical contact between the contact plate 31 and the second contact area 302 of the spring contact 30 to vibration and mechanical shock. Particularly preferably, the spring force of the second contact area 302 on the contact plate 31, and therefore the counterpressure on the magnet armature, particularly the contact holder 47, can be less than the return spring force of the return spring of the mechanical drive that moves the magnet armature from the connected state to the disconnected state. Particularly preferably, the spring force of the second contact area 302 on the contact plate 31 may be 20% or less of the return spring force.

[0073] As can be seen particularly in Figures 2D and 2E, the switching chamber 11 comprises at least two webs 123, each positioned between at least two fixed contacts 2, 3 in the longitudinal direction 92, and each extending laterally 93 into the switching chamber 11 from at least one longitudinal side wall 122. The webs 123 are separated from each other in the longitudinal direction 92. In particular, the webs 123 extend beyond the movable contact 4 in the laterally 93 direction, within the internal space 15 of the switching chamber 11, from one of the longitudinal side wall 122 to the other of the longitudinal side wall 122. Furthermore, each web 123 comprises a recess 124, within which the movable contact 4 can move during switching operation. As shown, the webs 123 can preferably be connected directly to the cover portion 119 of the switching chamber wall 12. In particular, the web 123 can extend along the switching chamber 11 and directly adjacent to the cover portion 119. The web 123 is preferably formed as a single piece together with the side wall portion 122 and the cover portion 119 of the switching chamber 11.

[0074] The web 123 forms a region within the internal space 15 between the fixed contacts 2 and 3, which is at least partially separated and therefore electrically insulated by the fixed contacts 2 and 3. Within this thus formed insulated space 127 are the auxiliary contact 25, the spring contact 30, and the gas filling nozzle 26.

[0075] Particularly preferably, the auxiliary contact 25 is positioned symmetrically with respect to the movable contact 4 between two webs 123. Correspondingly, the spring contact 30 is also positioned symmetrically with respect to the movable contact 4 between two webs 123. The auxiliary contact 25 and the spring contact 30 are at least partially isolated from the fixed contacts 2 and 3 by the formation of at least one of the webs 123 between the auxiliary contact 25 and the fixed contacts 2 and 3, and between the spring contact 30 and the fixed contacts 2 and 3.

[0076] As shown in Figure 2G, the switching chamber bottom 13, which is particularly preferably formed from POM, comprises a bottom plate 130 having an opening 131 for the shaft 7 to pass through. The switching chamber bottom 13 comprises side walls 132 so as to at least partially enclose the edge of the bottom plate 130, the side walls 132 can continue to side walls 121, 122 of the switching chamber wall 12 when assembling the switching chamber 11. The bottom plate 130 can function as an opposing stopper for the lower stopper 471 of the contact holder 47, at least in some area around the opening 131. For mechanical stabilization, the bottom plate 130 may also comprise, for example, intersecting webs, as shown.

[0077] Furthermore, the switching chamber bottom 13 is provided with walls 133 on both sides of the opening 131, which are arranged adjacent to each other along the longitudinal direction 92 between the webs 123 of the switching chamber wall 12, with the spring contact 30 positioned between them. In particular, the walls 133 are inserted and positioned between the webs 123, forming an intermediate space in which the spring contact 30 is partially positioned. To secure the spring contact 30, a fixing groove 134 may be present in the wall 133, as can be seen in Figure 2G. Furthermore, the contact area 312 of the contact plate 31 is located within this intermediate space and moves vertically 91 within this intermediate space during changes from a first switching operation to a second switching operation and vice versa.

[0078] Figures 3A and 3B show sections of the switching device 100 corresponding to the view in Figure 2A. In Figure 3A, the switching device 100 is shown in a first switching state, as in Figure 2A, while in Figure 3B, the switching device 100 is shown in a second switching state. The components and features of the switching device 100 shown in Figures 3A and 3B correspond to the components and features described in relation to the previous figures. Therefore, for clarity, no further reference numerals are shown in Figures 3A and 3B.

[0079] In the first switching state, the movable contact is isolated from the fixed contact by the switching gap, as described above, and as a result, the switching device 100 is in a disconnected switching state. On the other hand, the contact plate is in electrical contact with the second contact area of ​​the spring contact and therefore with the auxiliary contact. As a result, the auxiliary contacts are electrically connected to each other. In the second switching state, the movable contact and the contact plate are pushed upward by the magnetic armature towards the fixed contact. In particular, the movable contact is electrically connected to the fixed contact, and as a result, the switching device is in a connected switching state. Conversely, the contact plate is electrically insulated from the spring contact, and as a result, the auxiliary contacts are also electrically insulated from each other. Therefore, for example, measuring the electrical resistance between the auxiliary contacts makes it possible to detect the switching state of the switching device.

[0080] The second contact area of ​​the spring contact is designed such that, when the switching device transitions from a first switching state to a second switching state, the contact plate loses mechanical contact with the second contact area of ​​the spring contact after moving a distance of 20% or less of the switching gap. This ensures that the distance the magnet armature must travel between the first and second switching states before contact between the contact plate and the spring contact is broken is very small. The second contact area of ​​the spring contact is particularly preferably bent upward so that it is pushed down by about 0.5 mm as the magnet armature and thus the contact plate make contact with the contact area of ​​the contact plate as the magnet armature descends to the lower stopper of the magnet armature, and correspondingly bent upward so that the magnet armature and thus the contact plate lose contact with the contact plate after the corresponding distance.

[0081] If, despite the mechanical drive being switched off and the switching device returning to the first switching state, the movable contact remains connected due to adhesion or mechanical failure, the contact plate remains separated from the second contact area of ​​the spring contact, and as a result, the first switching state cannot be read at the auxiliary contact. This is also possible when overstroke is taken into account, because the magnetic armature, along with the contact plate, falls downward a certain distance toward the bottom of the switching chamber, strictly speaking, relative to the movable contact, but the distance between the contact plate and the second contact area of ​​the spring contact is still large enough that a uniquely conductive connection is not created between the auxiliary contacts. The mechanical effect of impact is according to the characteristics of the mechanical drive and the movable contact, which means that the electrical contact of the auxiliary contacts toward each other accurately indicates an incomplete opening even after the movable contact has been dislodged from the fixed contact by acceleration. Thus, the switching device described herein enables reliable detection of a "certainly open" state, which is combined with a simple mechanism for detecting and guiding a signal from a sealed switching chamber.

[0082] A further advantage lies in its extremely low manufacturing cost, as it requires neither wiring nor integrated circuits. Furthermore, there is no magnetic influence on detection. Moreover, the switching state is detected far away from the main contacts, i.e., far away from the fixed and movable contacts, resulting in no problems with insulation or the risk of breakdown due to switching arcs.

[0083] Implementation in accordance with standard IEC 60947-5-1 enables detection of a state in which the switching device cannot be closed, i.e., a state in which the movable system is blocked in the open position. Detection is also possible if the top of the switching device is damaged, to determine whether the switching device has transitioned to a disconnected state.

[0084] Features and embodiments described in relation to the drawings can be combined with each other according to further embodiments, even if not all combinations are explicitly described. Furthermore, embodiments described in relation to the drawings may have additional features by description of general parts, either alternatively or additionally.

[0085] The present invention is not limited to the examples described herein. Rather, the present invention includes all new features, and in particular all combinations of features, including all combinations of features in the claims, even if such features or combinations themselves are not explicitly presented in the claims or examples. [Explanation of Symbols]

[0086] 1 Housing 2, 3 fixed contacts 4 Movable contacts 5. Magnetic Armature 6 magnetic core 7 axes 8 coils 9 York 10 Springs 11 Switching Chamber 12 Switching Chamber Wall 13. Bottom of the switching chamber 14. Airtight zone 15 Interior space 25 Auxiliary contacts 26 Gas filling nozzle 27 Conductor 30 Spring contacts 31 Connection Plate 40 Contact springs 47 Contact holder 91 vertical direction 92 Longitudinal direction 93 Horizontal 100 Switching devices 119 Cover section 120 aperture 121 Lateral side wall section 122 Longitudinal side wall 123 Web 124 recess 125 Opening for auxiliary contact 126 Opening for gas filling nozzle 127 Space 130 Bottom plate 131 Aperture 132 Side wall section 133 Wall 301, 302 contact area 303 Connection Area 312 Contact area 313 Aperture 314 fixing hole 471, 472 Stopper

Claims

1. A switching device (100), - At least two fixed contacts (2, 3) and one movable contact (4) within the switching chamber (11), - comprising at least two auxiliary contacts (25), two spring contacts (30), and a contact plate (31) within the switching chamber, - Each of the spring contacts has a first contact area (301) that contacts the auxiliary contact and also has a second contact area (302). - The contact plate is movable along the vertical direction (91) together with the movable contact, - The fixed contacts (2, 3) are arranged along the longitudinal direction (92) perpendicular to the vertical direction (91), - The horizontal direction (93) is a direction perpendicular to the vertical direction (91) and perpendicular to the longitudinal direction (92), - The contact plate is positioned such that, in the first switching state of the switching device, it is in contact with the second contact area of ​​the spring contact, and in the second switching state, it is positioned away from the second contact area of ​​the spring contact. The switching chamber (11) comprises a switching chamber wall (12) having the lateral side wall portions (121) and the longitudinal side wall portions (122) that face each other, The switching chamber comprises at least two webs (123) arranged between the at least two fixed contacts along the longitudinal direction, each of which extends laterally into the switching chamber from at least one of the longitudinal side walls. A switching device in which the auxiliary contact and the spring contact are arranged between the at least two webs in the longitudinal direction.

2. The switching device according to claim 1, wherein the fixed contacts are arranged adjacent to each other along the longitudinal direction (92), and the auxiliary contacts are arranged adjacent to each other along the lateral direction (93).

3. The switching device according to claim 1 or 2, further comprising a mechanical drive device for moving the movable contact and the contact plate, wherein the drive device comprises a magnetic armature (5) having an axis (7) on which the movable contact and the contact plate are arranged.

4. The switching device according to any one of claims 1 to 3, wherein the movable contact and the contact plate are arranged in an electrically insulated contact holder (47).

5. The switching device according to claim 4, wherein the contact plate is fixed to the electrical insulating contact holder.

6. The switching device according to claim 4 or 5, wherein the movable contact is displaceably arranged in the electrical insulating contact holder.

7. The switching device according to any one of claims 4 to 6, wherein the second contact area exerts a spring force on the contact plate in the first switching state.

8. The switching device according to claim 7, wherein the electrical insulating contact holder is provided with a contact spring (40) that exerts a spring force on the movable contact in the direction of the fixed contact, and the spring force of the second contact region is smaller than the spring force of the contact spring.

9. The switching device according to any one of claims 1 to 8, wherein the movable contact is separated from the fixed contact by a switching gap in the first or second switching state, and the contact plate loses mechanical contact with the second contact area of ​​the spring contact after moving a distance of 20% or less of the switching gap when the switching device transitions from the first switching state to the second switching state.

10. The switching device according to any one of claims 1 to 9, wherein each of the first contact regions (301) of the spring contact exerts a spring force on one of the auxiliary contacts.

11. The switching chamber (11) comprises a switching chamber wall (12) having the lateral side wall portions (121) and the longitudinal side wall portions (122) that face each other, The switching device according to any one of claims 1 to 10, wherein each of the spring contacts has a connection region (303) extending along the longitudinal side wall between the first and second contact regions.

12. The switching device according to claim 3, or any one of claims 4 to 11 that references claim 3, wherein the auxiliary contact, the spring contact, and the contact plate are arranged in a state of electrical isolation from the fixed contact, the movable contact, and the mechanical drive device.

13. The switching device according to any one of claims 1 to 12, wherein the at least two webs (123) are directly adjacent to a cover portion (119) of the switching chamber (11) having an opening (120) for the fixed contacts and an opening (125) for the auxiliary contacts.

14. The switching device according to claim 13, wherein each of the webs extends beyond the movable contact in the lateral direction from one of the longitudinal sidewalls to the other of the longitudinal sidewalls, and each of the webs is provided with a recess (124) within the recess, the movable contact can move during switching operation.

15. The switching device according to claim 13 or 14, wherein the switching chamber comprises a switching chamber bottom (13) having a wall portion (133), the wall portion (133) being positioned between the webs, and the spring contacts being positioned between the wall portions (133).

16. The switching device according to any one of claims 1 to 15, wherein the auxiliary contact and / or the spring contact and / or the contact plate is made of a material containing copper or a copper alloy.

17. The aforementioned materials are CuBe and CuSn 4 CuSn 6 A switching device according to claim 16, selected from the following.

18. Inside the switching chamber, H 2 A switching device according to any one of claims 1 to 17, comprising a gas containing a gas.

Citation Information

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