EP4235721A1 - Switching device for electric power distribution - Google Patents
Switching device for electric power distribution Download PDFInfo
- Publication number
- EP4235721A1 EP4235721A1 EP22159258.7A EP22159258A EP4235721A1 EP 4235721 A1 EP4235721 A1 EP 4235721A1 EP 22159258 A EP22159258 A EP 22159258A EP 4235721 A1 EP4235721 A1 EP 4235721A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- contact member
- stem
- vacuum interrupter
- slot
- compressible
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
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Classifications
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01H—ELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
- H01H33/00—High-tension or heavy-current switches with arc-extinguishing or arc-preventing means
- H01H33/60—Switches wherein the means for extinguishing or preventing the arc do not include separate means for obtaining or increasing flow of arc-extinguishing fluid
- H01H33/66—Vacuum switches
- H01H33/666—Operating arrangements
- H01H33/6661—Combination with other type of switch, e.g. for load break switches
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01H—ELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
- H01H1/00—Contacts
- H01H1/12—Contacts characterised by the manner in which co-operating contacts engage
- H01H1/36—Contacts characterised by the manner in which co-operating contacts engage by sliding
- H01H1/38—Plug-and-socket contacts
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01H—ELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
- H01H1/00—Contacts
- H01H1/62—Heating or cooling of contacts
Definitions
- the switching device 100 includes an insulated chamber 120.
- the insulated chamber 120 may generally be part of the enclosure 108 (as described above).
- the insulated chamber 120 is made of epoxy resin material. Such materials provide good dielectric resistance and thus are suited to be used for manufacturing of the insulated chamber 120, as needed for the purposes of the present disclosure. It may be appreciated that, in other examples, the insulated chamber 120 may be made of other suitable material with high dielectric resistance without any limitations.
Landscapes
- High-Tension Arc-Extinguishing Switches Without Spraying Means (AREA)
Abstract
Description
- The present disclosure generally relates to electric power distribution, and more particularly to a switching device for opening and closing a circuit between a first connection arm and a second connection arm in electric power distribution.
- A switching device (also commonly known as switchgear) is an apparatus used for controlling, regulating, and switching on and off the electrical circuit in electrical power distribution. The switching device is typically placed in both high and low voltage side of a power transformer, and is used for de-energizing the equipment for testing and maintenance and for clearing the fault. For instance, when the fault occurs in the electrical power distribution, heavy current flows through equipment due to which there is a risk that the equipment may get damaged, and the service also may get interrupted. Therefore, in order to protect the lines, generators, transformers and other electrical equipment from damage, automatic protective devices, such as the switchgear devices, are utilized.
- A particular type of switching device is a vacuum circuit interrupter apparatus which includes separable main contacts disposed in an insulated housing. Herein, the switchgear, typically, includes a bus-bar compartment, a circuit-breaker compartment, a transformer compartment and a cable bushing compartment which together forms a single-phase pole assembly. Such similar pole assemblies mounted together in adjacent layer will form the entire switchgear. The circuit-breaker compartment consists of a vacuum interrupter which is used to connect and disconnect the circuit which is operated by means of spring-operated drive.
- Conventionally, one of the contacts is fixed relative to both the housing and to an external electrical conductor which is interconnected with the circuit to be controlled by the vacuum interrupter. The other main contact is movable and usually comprises a cylindrical stem having the contact at one end thereof enclosed in a vacuum chamber and a driving mechanism at the other end thereof external to the vacuum chamber. Often the electrical interconnection between the circuit to be protected by the circuit interrupter and the movable contact is made on the cylindrical stem.
- Further, a flexible connector is used for connecting the movable contact to the fixed contact. Typically, the flexible connector is made of a stack of flexible sheets of a conducting material and is constructed such that it can accommodate the movement of the movable contact. For example, the flexible connector is made from multiple copper foils of 0.1 millimeters thickness, which are brazed together to achieve the desired shape and thickness. The flexibility of the flexible connector ensures that there is always a contact between the movable contact and the stationary contact. Herein, the flexible connector connects electrical current carrying connection between the circuit-breaker compartment and the bus-bar compartment. In particular, the flexible connector is mechanically bolted at both ends by nut and bolts which forms rigid connection to bushing between the circuit-breaker compartment and the bus-bar compartment.
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FIG 1A illustrates a partial diagrammatic cross-section representation of aswitchgear device 10 implementing a vacuum interrupter basedcircuit breaker 20, in accordance with prior-art. As shown, theswitchgear device 10 has atop contact arm 14 and abottom contact arm 16 embedded in ahousing 12. Thecircuit breaker 20 has a vacuum interrupter (VI)fixed stem 22 rigidly fixed with thetop contact arm 14. Aflexible connection 26 is used to join a vacuum interrupter (VI) movingstem 24 to thebottom contact arm 16 ofswitchgear device 10. The VI movingstem 24 has linear movement for switching thecircuit breaker 20 in ON and OFF configurations using the circuit breaker kinematics (not shown). The flexibility of theflexible connection 26 ensures that there is always a contact between the VI movingstem 24 and thebottom contact arm 16.FIG 1B illustrates a diagrammatic representation of theflexible connection 26, in accordance with prior-art. Theflexible connection 26, as known in the prior-art, is made from multiple copper foils typically of 0.1 mm thickness which are brazed together to achieve the desired shape and thickness as per cross section required for carry rated current. - Such
flexible connection 26 need to move along with the VI movingstem 26 during ON and OFF operation. Since theflexible connection 26 is part of the main current path, it is critical for temperature rise when continuous current rated current flows through theswitchgear device 10. - Also because of the
flexible connection 26, assembly of components becomes bigger and critical for dielectric requirements for theswitchgear device 10. Further, theflexible connection 26 typically has sharp edges, thus there is a possibility of dielectric flashovers. Furthermore, the need to bolt theflexible connection 26, especially at the top end requires access space which needs to be incorporated into the design of theswitchgear device 10. - One object of the present disclosure is to provide a switching device for electric power distribution which replaces the flexible connection with a novel contact arrangement which solves critical issues like temperature rise, dielectric requirements, and bigger assembly by carrying out the excess heat and making it dielectrically more stable at the moving stem of the vacuum interrupter with compact and simplified assembly.
- The object of the present disclosure is achieved by a switching device for opening and closing a circuit between a first connection arm and a second connection arm. The switching device comprises an insulated chamber. The switching device further comprises a vacuum interrupter unit arranged inside the insulated chamber and having a first end and a second end. The vacuum interrupter unit provides a first stem located at the first end thereof and a second stem located at the second end thereof. The first stem is disposed in fixed electrical contact with the first connection arm. The switching device further comprises a rigid contact member having a first end and a second end. The rigid contact member has a slot defined at the first end thereof and a contact arm defined at the second end thereof. The contact arm is disposed in fixed electrical contact with the second connection arm. The switching device further comprises a compressible contact member having a hollow profile adapting to an internal profile of the slot of the rigid contact member. The compressible contact member is positioned inside the slot of the rigid contact member. In the switching device, the second stem of the vacuum interrupter unit is configured to move linearly in the insulated chamber between a first position and a second position. In the first position, the second stem is in electrical engagement with the compressible contact member thereby closing the circuit between the first connection arm and the second connection arm. In the second position, the second stem is out of electrical engagement with the compressible contact member thereby opening the circuit between the first connection arm and the second connection arm.
- In an embodiment, the switching device further comprises a movable contact member fixed to the second stem at the second end of the vacuum interrupter unit. The movable contact member has a profile adapted to be received inside the hollow profile of the compressible contact member when the second stem is disposed in the first position thereof.
- In an embodiment, the compressible contact member is formed of multiple strips of a conducting material joined together to impart radial flexibility thereto, and ensuring physical connection with the movable contact member when received inside the hollow profile thereof.
- In an embodiment, the switching device further comprises a heat sink having a body with a complementary slot to the slot of the rigid contact member. The heat sink is associated with the rigid contact member such that the complementary slot thereof is aligned with the slot of the rigid contact member, and thereby guide the movable contact member to be received inside the hollow profile of the compressible contact member when the second stem is disposed in the first position thereof.
- In an embodiment, the heat sink comprises a plurality of fins extending radially outwardly from the body thereof.
- In an embodiment, the insulated chamber is made of epoxy resin material.
- In another aspect, a vacuum interrupter assembly for a switching device is provided. The vacuum interrupter assembly comprises a vacuum interrupter unit having a first end and a second end. The vacuum interrupter unit provides a first stem located at the first end thereof and a second stem located at the second end thereof. The vacuum interrupter assembly further comprises a rigid contact member having a first end and a second end. The rigid contact member has a slot defined at the first end thereof and a contact arm defined at the second end thereof. The vacuum interrupter assembly further comprises a compressible contact member having a hollow profile adapting to an internal profile of the slot of the rigid contact member. The compressible contact member is positioned inside the slot of the rigid contact member. Herein, the second stem of the vacuum interrupter unit is configured to move linearly between a first position and a second position, wherein in the first position, the second stem is in electrical engagement with the compressible contact member, and wherein in the second position, the second stem is out of electrical engagement with the compressible contact member.
- In an embodiment, the vacuum interrupter assembly further comprises a movable contact member fixed to the second stem at the second end of the vacuum interrupter unit. The movable contact member has a profile adapted to be received inside the hollow profile of the compressible contact member when the second stem is disposed in the first position thereof.
- In an embodiment, the compressible contact member is formed of multiple strips of a conducting material joined together to impart radial flexibility thereto, and ensuring physical connection with the movable contact member when received inside the hollow profile thereof
- In an embodiment, the vacuum interrupter assembly further comprises a heat sink having a body with a complementary slot to the slot of the rigid contact member. The heat sink is associated with the rigid contact member such that the complementary slot thereof is aligned with the slot of the rigid contact member, and thereby guide the movable contact member to be received inside the hollow profile of the compressible contact member when the second stem is disposed in the first position thereof.
- In an embodiment, the heat sink comprises a plurality of fins extending radially outwardly from the body thereof.
- In an embodiment, the movable contact member has a hollow cylindrical profile adapted to be received inside a hollow profile of the compressible contact member when the second stem is disposed in the first position thereof.
- In yet another aspect, a method of operating a switching device for opening and closing a circuit between a first connection arm and a second connection arm is provided. The method comprises providing an insulated chamber. The method further comprises arranging a vacuum interrupter unit inside the insulated chamber, with the vacuum interrupter unit having a first end and a second end, and the vacuum interrupter unit providing a first stem located at the first end thereof and a second stem located at the second end thereof. The method further comprises disposing the first stem in fixed electrical contact with the first connection arm. The method further comprises providing a rigid contact member, with the rigid contact member having a first end and a second end, and a slot defined at the first end thereof and a contact arm defined at the second end thereof. The method further comprises disposing the contact arm in fixed electrical contact with the second connection arm. The method further comprises positioning a compressible contact member, having a hollow profile, adapting to an internal profile of the slot of the rigid contact member, inside the slot of the rigid contact member. The method further comprises reciprocating the second stem of the vacuum interrupter unit to move linearly in the insulated chamber between a first position and a second position. In the first position, the second stem is in electrical engagement with the compressible contact member thereby closing the circuit between the first connection arm and the second connection arm. In the second position, the second stem is out of electrical engagement with the compressible contact member thereby opening the circuit between the first connection arm and the second connection arm.
- In an embodiment, the method also comprises providing a movable contact member fixed to the second stem at the second end of the vacuum interrupter unit, with the movable contact member having a profile adapted to be received inside the hollow profile of the compressible contact member when the second stem is disposed in the first position thereof.
- In an embodiment, the method also comprises providing a heat sink having a body with a complementary slot to the slot of the rigid contact member. The method further comprises associating the heat sink with the rigid contact member such that the complementary slot thereof is aligned with the slot of the rigid contact member, and thereby guide the movable contact member to be received inside the hollow profile of the compressible contact member when the second stem is disposed in the first position thereof.
- Other aspects, features, and advantages of the present disclosure are readily apparent from the following detailed description, simply by illustrating a number of particular embodiments and implementations, including the best mode contemplated for carrying out the present disclosure. The present disclosure is also capable of other and different embodiments, and its several details can be modified in various obvious respects, all without departing from the scope of the present disclosure. Accordingly, the drawings and description are to be regarded as illustrative in nature, and not as restrictive.
- A more complete appreciation of the present disclosure and many of the attendant aspects thereof will be readily obtained as the same becomes better understood by reference to the following description when considered in connection with the accompanying drawings:
- FIG 1A
- is a diagrammatic partial cross-sectional view of a pole assembly, in accordance with prior-art;
- FIG 1B
- is a diagrammatic perspective view representation of a flexible connection, in accordance with prior-art;
- FIG 2
- is a diagrammatic perspective view of a switching device, in accordance with certain embodiments of the present disclosure;
- FIG 3
- is a diagrammatic perspective view of a pole assembly of the switching device, in accordance with certain embodiments of the present disclosure;
- FIG 4
- is a diagrammatic partial cross-sectional view of the pole assembly, in accordance with an embodiment of the present disclosure;
- FIG 5
- is a diagrammatic perspective view of a movable contact member, in accordance with an embodiment of the present disclosure;
- FIG 6A
- is a diagrammatic top perspective view of a rigid contact member, in accordance with an embodiment of the present disclosure;
- FIG 6B
- is a diagrammatic bottom perspective view of the rigid contact member, in accordance with an embodiment of the present disclosure;
- FIG 7
- is a diagrammatic perspective view of a compressible contact member, in accordance with an embodiment of the present disclosure;
- FIG 8
- is a diagrammatic perspective view of a heat sink, in accordance with an embodiment of the present disclosure;
- FIG 9
- is a diagrammatic perspective view of a connection support member for the heat sink, in accordance with an embodiment of the present disclosure;
- FIG 10A
- is a diagrammatic perspective view of an assembly of the rigid contact member and the heat sink, in accordance with an embodiment of the present disclosure;
- FIG 10B
- is a diagrammatic perspective view of an assembly of the rigid contact member and the compressible contact member, in accordance with an embodiment of the present disclosure;
- FIG 11
- is a diagrammatic view of a vacuum interrupter assembly, in accordance with an embodiment of the present disclosure; and
- FIG 12
- is a flowchart listing steps involved in a method of operating a switching device for opening and closing a circuit between a first connection arm and a second connection arm, in accordance with an embodiment of the present disclosure.
- Various embodiments are described with reference to the drawings, wherein like reference numerals are used to refer to like elements throughout. In the following description, for the purpose of explanation, numerous specific details are set forth in order to provide thorough understanding of one or more embodiments. It is apparent, however, to one skilled in the art that the embodiments of the present disclosure may be practiced without these specific details or with an equivalent arrangement. In other instances, well-known structures and devices are shown in block diagram form in order to avoid unnecessarily obscuring the embodiments of the present disclosure.
- Example embodiments of a switching device described herein is a vacuum interrupter based switchgear which may be included in a medium voltage switchgear unit. Such switching device may be used in several different applications, for instance, for capacitor switching or for sectionalizing a line or system of switches. The switching device may also be molded into a "load break" elbow connector to interrupt currents of medium voltage distribution systems. The switching device may be connected to a generator or to a consumer line, in which the generator or the consumer line is dis-connectable from or connectable to the energy line by means of the switching device, as per the embodiments of the present disclosure. In the present embodiments, the switching device may be implemented as a gas-insulated switchgear, a vacuum interrupter or an air-break disconnector.
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FIG 2 is a diagrammatic perspective view of anexemplary switching device 100, in accordance with certain embodiments. In the present illustration, theswitching device 100 is depicted as a three-phase medium voltage switchgear, that is to say theswitching device 100 has a plurality of phase conductor sections, which are used to transmit electrical power by means of a polyphase electrical power system. In the present case, theswitching device 100 and further modules of theswitching device 100, and therefore the entirepolyphase switching device 100, are designed for three phases; however, it may be contemplated that for the purposes of the present disclosure, theswitching device 100 may be a single phase or any other type of switchgear as known in the art without any limitations. - As illustrated, the
switching device 100 includes ahousing 102. Also, as shown, thehousing 102 supports threepole assemblies 104 therein. Herein, each pole assembly 104 (sometimes, simply referred to as a pole 104) is responsible for a single phase in the three-phase switching device 100 of the present examples. Theswitching device 100 may further include a control panel (generally represented by the numeral 106) which acts on a switching shaft (not shown) common to all thepoles 104 of theswitching device 100. -
FIG 3 is a diagrammatic perspective view representation of thepole assembly 104 of theswitching device 100, in accordance with certain embodiments. Thepole assembly 104 includes anenclosure 108. Theenclosure 108 is generally hollow and may have any suitable shape based on the design and configuration of theswitching device 100. Herein, theenclosure 108 is typically grounded during operation, i.e., electrically connected to earth. Advantageously, theenclosure 108 is made of a suitable electrically conductive material, e.g., aluminum (such as, cast aluminum), mild steel, etc. Casting, or molding, an aluminum enclosure is a non-expensive procedure. However, theenclosure 108 can also be made of copper, zinc or any other suitable electrically conductive material. - In the
switching device 100, theenclosure 108 is filled with an insulating gas. In an embodiment, theswitching device 100 is an air-insulated switching device, i.e., theenclosure 108 is filled with air. In some embodiments, the insulating gas is sulfur hexafluoride (SF6) free gas. It may be understood that in order to accommodate the insulating gas, theenclosure 108 is sealed and in turn may preferably be made of a material which is gas-impermeable, such as glass, polymers or resins. - In some examples, a filler material (not shown) may be provided in the housing 102 (as shown in
FIG 2 ), surrounding theenclosure 108 filled with the insulating gas (such as, air), with the filler material having preferably a higher specific permittivity as compared to theenclosure 108 filled with the gaseous insulating medium. This relationship reduces dielectric requirements for the insulating gas, because the electric field is increased in areas of low electrical permittivity over areas of high dielectric permittivity. The filler material may be a liquid dielectric, a solid dielectric, but also supercritical fluids, suspensions, in particular colloids or other mixed-phase substances. A liquid fluid may in particular be an oil based on fluorinated hydrocarbons or a silicone oil. A solid fluid may be a polymer or a resin. In principle, the filler material may also be a gas which has a higher dielectric strength than the gaseous insulating medium in thehollow enclosure 108. In this case, it is not necessary that the filler material has a higher dielectric permittivity than the hollow spheres with the gaseous insulating medium. - In some implementations, an outer shape, or an outer geometry, of the
enclosure 108 is smooth to distribute the electric field generated by the voltage through theswitching device 100. The outer surface of theenclosure 108 is designed to be smooth to distribute the electric field generated by the current through theswitching device 100. The outer surface of theenclosure 108 is smooth in that theenclosure 108 does not have an angular outer shape and is without roughness. That is, the outer surface of theenclosure 108 is smooth in that the outer surface has no roughness, sharp projections or sharp indentations. - As illustrated in
FIG 3 , theenclosure 108 is generally divided, such that eachpole 104 of theswitching device 100 includes a bus-bar enclosure 110, a circuit-breaker enclosure 112, a transformer enclosure 114 (also known as current transformer) and acable bushing enclosure 116. It may be appreciated that each of the bus-bar enclosure 110, the circuit-breaker enclosure 112, thetransformer enclosure 114 and thecable bushing enclosure 116 forms a part or a section of theenclosure 108. Hereinafter, the various components and assemblies of the bus-bar enclosure 110, the circuit-breaker enclosure 112, thetransformer enclosure 114 and thecable bushing enclosure 116 have been described generally being part of thepole assembly 104 and/or theswitching device 100 without any limitations. As discussed, it may be understood that theenclosure 108, with all the sections therein, is filled with the insulating gas. That is, each of the bus-bar enclosure 110, the circuit-breaker enclosure 112, thetransformer enclosure 114 and thecable bushing enclosure 116 therein, is filled with the insulating gas as described above. -
FIG 4 is a diagrammatic partial cross-sectional view representation of thepole assembly 104 of theswitching device 100, in accordance with an embodiment of the present disclosure. In particular,FIG 4 shows details of inside of the circuit-breaker enclosure 112 in thepole assembly 104. Referring toFIGS 2-4 in combination, as illustrated, thepole assembly 104 includes afirst connection arm 118a and asecond connection arm 118b of theswitching device 100. Typically, thefirst connection arm 118a is received generally in the bus-bar enclosure 110; and thesecond connection arm 118b is received generally in thecable bushing enclosure 116, extending into the circuit-breaker enclosure 112. It may be appreciated that thefirst connection arm 118a and thesecond connection arm 118b may each include multiple electrical lines based on the design and configuration (e.g., multi-phase configuration) of theswitching device 100. - In the present examples, the
first connection arm 118a and thesecond connection arm 118b may be busbars, but may also be in the form of any other electrical conductor without any limitations. In particular, thefirst connection arm 118a and thesecond connection arm 118b may include a number of electrical bushings (not shown) penetrating into the respective bus-bar enclosure 110 and thecable bushing enclosure 116, one for each phase of a plural phase system. The bushings may be brazed in end covers. On the outside of theenclosure 108, thefirst connection arm 118a and thesecond connection arm 118b are connected to cables (not shown) which either connect theswitching device 100 to a load or to a medium or high voltage power distribution line. In some examples, thefirst connection arm 118a and thesecond connection arm 118b may each engage a fitting (not shown) to join the power cables of the power distribution line. - As illustrated in
FIG 4 , theswitching device 100 includes aninsulated chamber 120. It may be appreciated that theinsulated chamber 120 may generally be part of the enclosure 108 (as described above). In an embodiment of the present disclosure, theinsulated chamber 120 is made of epoxy resin material. Such materials provide good dielectric resistance and thus are suited to be used for manufacturing of theinsulated chamber 120, as needed for the purposes of the present disclosure. It may be appreciated that, in other examples, theinsulated chamber 120 may be made of other suitable material with high dielectric resistance without any limitations. - Further, as illustrated, the
switching device 100 includes avacuum interrupter assembly 122. Herein, thevacuum interrupter assembly 122 acts as the circuit-breaker for opening and closing a circuit between thefirst connection arm 118a and thesecond connection arm 118b. Thevacuum interrupter assembly 122, as part of theswitching device 100, includes avacuum interrupter unit 124. As shown, thevacuum interrupter unit 124 is arranged inside theinsulated chamber 120. Thevacuum interrupter unit 124 has a generally cylindrical shape. The term "generally cylindrical" is used to mean that a housing of thevacuum interrupter unit 124 is substantially cylindrical but not necessarily of circular cross-section. Other less preferred cross-sections may be employed, if desired. In some examples, thevacuum interrupter unit 124 may have ribbed sections on its outer surface. Thevacuum interrupter unit 124 is aligned substantially coaxially to a central axis of theinsulated chamber 122. - As shown in
FIG 4 , thevacuum interrupter unit 124 has afirst end 124a and asecond end 124b. Thevacuum interrupter unit 124 provides afirst stem 126 located at thefirst end 124a thereof. Herein, thefirst stem 126 is disposed in fixed electrical contact with thefirst connection arm 118a. In one example, thefirst stem 126 may have contact points formed from copper-impregnated tungsten to be disposed in fixed electrical contact with thefirst connection arm 118a, of theswitching device 100. Thevacuum interrupter unit 124 further provides asecond stem 128 located at thesecond end 124b thereof. In an example embodiment, thesecond stem 128 may be in the form of a cylindrical extension from thesecond end 124b of thevacuum interrupter unit 124. - In the
switching device 100, thevacuum interrupter unit 124 is adapted to move linearly inside theinsulated chamber 122. Theswitching device 100 includes an actuating arrangement (not shown) configured to reciprocate thevacuum interrupter unit 124 to move linearly inside theinsulated chamber 122 to be disposed between a first position and a second position. In particular, the actuating arrangement is configured to reciprocate thesecond stem 128 of thevacuum interrupter unit 124 to move linearly in theinsulated chamber 122 between the first position and the second position. In one or more embodiments, the actuating arrangement may include a rotary to linear conversion mechanism. Specifically, the actuating arrangement may include a slider-crank mechanism. Herein, the actuating arrangement is connected to a rotating shaft (not shown) extending from outside into theinsulated chamber 122 to provide input rotations, to be converted into reciprocating linear movement of thevacuum interrupter unit 124 inside theinsulated chamber 122. Such actuating arrangement may be contemplated by a person skilled in the art and thus has not been described in detail herein for the brevity of the present disclosure. - In some embodiments, the
switching device 100, or specifically thevacuum interrupter assembly 122, includes amovable contact member 130.FIG 5 illustrates a detailed view of themovable contact member 130, in accordance with an embodiment of the present disclosure. As shown, themovable contact member 130 has a generally hollow cylindrical profile. Themovable contact member 130 has abody 132 which is made of conductive material, such as, but not limited to, copper. Themovable contact member 130 defines a through-hole 134 in thebody 132 thereof. The through-hole 134, in thebody 132 of themovable contact member 130, is sized and shaped to receive and engage with thesecond stem 128 of thevacuum interrupter unit 124 therein. Thereby, themovable contact member 130 is fixed to thesecond stem 128 at thesecond end 124b of thevacuum interrupter unit 124. As discussed, thevacuum interrupter unit 124 has a linear movement inside theinsulated chamber 122, thus themovable contact member 130, which is fixed to thesecond stem 128 at thesecond end 124b of thevacuum interrupter unit 124, may move along with thevacuum interrupter unit 124 in theinsulated chamber 122. - According to embodiments of the present disclosure, the
switching device 100, or specifically thevacuum interrupter assembly 122, includes arigid contact member 140.FIGS 6A-6B illustrate detailed views of therigid contact member 140, in accordance with an embodiment of the present disclosure. As shown, generally, therigid contact member 140 has a hollow cylindrical shape. Therigid contact member 140 has afirst end 140a and asecond end 140b. Therigid contact member 140 has aslot 142 defined at thefirst end 140a thereof. Herein, theslot 142 may be in the form of a through-hole in therigid contact member 140, imparting the hollow cylindrical shape thereto (as discussed). - The
rigid contact member 140 further has acontact arm 144 defined at thesecond end 140b thereof. As may be seen, thecontact arm 144 may be extending from thesecond end 140b of therigid contact member 140 in a direction opposite to thefirst end 140a thereof. In the present embodiments, thecontact arm 144 is disposed in fixed electrical contact with thesecond connection arm 118b. As shown, thecontact arm 144 hasapertures 146 defined therein. In an example, as may be seen inFIG 4 , thecontact arm 144 may be coupled to thesecond connection arm 118b usingfastening members 147, such as bolts, passing through theapertures 146 in thecontact arm 144 and corresponding apertures (not shown) in thesecond connection arm 118b, to dispose thecontact arm 144 in fixed electrical contact with thesecond connection arm 118b, in theswitching device 100. - Referring back to
FIGS 6A-6B , therigid contact member 140 further hasapertures 148a proximal to thefirst end 140a thereof andapertures 148b proximal to thesecond end 140b thereof. Herein, as may be seen inFIG 4 , therigid contact member 140 may be supported directly or indirectly with theinsulated chamber 122 by usingfastening members 147, such as bolts, passing through theapertures 148a in therigid contact member 140 and corresponding apertures (not shown) in theinsulated chamber 122, to mount therigid contact member 140 in theswitching device 100. Further, theapertures 148b in therigid contact member 140 may be implemented to support other components in theswitching device 100 for its operation, as discussed in the proceeding paragraphs. - Again, referring to
FIG 4 , theswitching device 100, or specifically thevacuum interrupter assembly 122, includes acompressible contact member 150.FIG 7 illustrates a detailed view of thecompressible contact member 150, in accordance with an embodiment of the present disclosure. In one or more embodiments of the present disclosure, thecompressible contact member 150 is formed ofmultiple strips 152 of a conducting material. Suchmultiple strips 152 are joined together such that, as shown, thecompressible contact member 150 has a hollow profile 154 (as shown inFIG. 10B ). In particular, thecompressible contact member 150 has a hollow cylindrical profile. With themultiple strips 152 having thin sheet-like profile, themultiple strips 152 when joined together impart radial flexibility to thecompressible contact member 150. - In the present embodiments, the
hollow profile 154 of thecompressible contact member 150 adapts (conforms) to an internal profile of theslot 142 of therigid contact member 140. This way thecompressible contact member 150 is positioned inside theslot 142 of therigid contact member 140. That is, as may be seen fromFIG 4 and may be better seen fromFIG 10B (as discussed later), thecompressible contact member 150 is arranged (sits) within the slot 142 (not shown inFIG 4 ) of therigid contact member 140. As discussed, themovable contact member 130 linearly translates in theinsulated chamber 120 along with thesecond stem 128 of thevacuum interrupter unit 124 between the first position and the second position. Herein, themovable contact member 130 has the hollow cylindrical profile adapted to be received inside thehollow profile 154 of thecompressible contact member 150 when thesecond stem 128 is disposed in the first position thereof. In the present embodiments, thecompressible contact member 150 with its radial flexibility ensures physical connection with themovable contact member 130 when received inside thehollow profile 154 thereof. As may be understood, thecompressible contact member 150 may generally be disposed in its relaxed state inside theslot 142 of therigid contact member 140; and when themovable contact member 130 is received inside thehollow profile 154 thereof, thecompressible contact member 150 may compress ensuring physical (and thereby electrical) connection with themovable contact member 130, and also disposing themovable contact member 130 in electrical connection with therigid contact member 140. - Now, as may be understood, since the
rigid contact member 140 is in electrical contact with thesecond connection arm 118b, the second stem 128 (via the movable contact member 130) may be disposed in electrical engagement with thesecond connection arm 118b, when themovable contact member 130 is received inside thehollow profile 154 of thecompressible contact member 150. Thereby, in theswitching device 100 of the present disclosure, in the first position, thesecond stem 128 is in electrical engagement with thecompressible contact member 150 thereby closing the circuit between thefirst connection arm 118a and thesecond connection arm 118b (i.e., disposing theswitching device 100 in ON configuration). Further, in the second position, thesecond stem 128 is out of electrical engagement with thecompressible contact member 150 thereby opening the circuit between thefirst connection arm 118a and thesecond connection arm 118b (i.e., disposing theswitching device 100 in OFF configuration). - In one or more embodiments, the
switching device 100, or specifically thevacuum interrupter assembly 122, further includes aheat sink 160.FIG 8 illustrates a detailed view of theheat sink 160, in accordance with an embodiment of the present disclosure. As shown, theheat sink 160 has abody 162. In the illustrated example, theheat sink 160 is shown to have thebody 162 with a generally hollow cylindrical profile. Thebody 162 of theheat sink 160 has aslot 166 in the form of a through-hole defined therein. Herein, theslot 166 is complementary to theslot 142 of therigid contact member 140. In the present configuration, theheat sink 160 is associated with therigid contact member 140. Specifically, as may be seen fromFIG 4 and may be better seen fromFIG 10A (as discussed later), theheat sink 160 is arranged with respect to therigid contact member 140 such that thecomplementary slot 166 thereof is aligned with theslot 142 of therigid contact member 140. With theheat sink 160 extending upwardly from therigid contact member 140, theheat sink 160 is able to guide themovable contact member 130 to be received inside thehollow profile 154 of thecompressible contact member 150 when thesecond stem 128 is disposed in the first position thereof. - Also, as illustrated in
FIG 8 , theheat sink 160 includes a plurality offins 164 extending radially outwardly from thebody 162 thereof. As may be understood by a person skilled in the art of thermal engineering, thebody 162 and the plurality offins 164, for theheat sink 160, may be made of a material with high thermal conductivity, so as to allow for dissipation of heat (as discussed later). In an embodiment, theheat sink 160, including thebody 162 and the plurality offins 164, may be made of, but not limited to, Aluminum. - Further, in an embodiment, as illustrated in
FIG 8 , theheat sink 160 has aportion 168 defined in thebody 162 thereof, with no fins (such as, the fins 164) extending therefrom. The saidportion 168, of theheat sink 160, has an extension withapertures 169 defined therein. Also, as illustrated inFIG 9 , for the purposes of the present embodiment, theswitching device 100 may also include aconnection support member 170. Theconnection support member 170 has abody 172 which may be made of same material as thebody 162 of the heat sink 160 (such as, Aluminum). Herein, thebody 172 of theconnection support member 170 has an arcuate profile conforming to the circular profile of thebody 162 of theheat sink 160. Also, as shown, theconnection support member 170 includes a plurality offins 174 extending from thebody 172 thereof. Herein, thefins 174 of theconnection support member 170 may generally be similar in configuration to thefins 164 of theheat sink 160. Further, thebody 172 of theconnection support member 170 hasapertures 176 defined therein. - Referring now to
FIG 10A , illustrated is a diagrammatic perspective view of an assembly (represented by reference numeral 180) of therigid contact member 140 and theheat sink 160, in accordance with an embodiment of the present disclosure. As shown, theheat sink 160 is associated with therigid contact member 140 such that thecomplementary slot 166 thereof is aligned with the slot 142 (not shown inFIG 10A ) of therigid contact member 140. Further, as shown, theheat sink 160 is mounted to therigid contact member 140 by usingbolts 182 passing through theapertures 148a in therigid contact member 140 and corresponding apertures (not shown) in theheat sink 160 from one side, and also by usingbolts 184 passing through theapertures 148b in therigid contact member 140 and the correspondingapertures 169 in theheat sink 160 as well as theapertures 176 in theconnection support member 170 from other side. Also, referring toFIG 10B , illustrated is a diagrammatic perspective view of an assembly (represented by reference numeral 190) of therigid contact member 140 and thecompressible contact member 150. As shown, thecompressible contact member 150 is positioned inside the slot 142 (not shown inFIG 10B ) of therigid contact member 140, to have thehollow profile 154 thereof able to receive themovable contact member 130 therein when thesecond stem 128 is disposed in the first position thereof. -
FIG 11 illustrates a detailed view of thevacuum interrupter assembly 122. As illustrated, thevacuum interrupter assembly 122 includes thevacuum interrupter unit 124 having thefirst end 124a and thesecond end 124b. Thevacuum interrupter unit 124 provides thefirst stem 126 located at thefirst end 124a thereof and thesecond stem 128 located at thesecond end 124b thereof. Thevacuum interrupter assembly 122 further includes therigid contact member 140. The rigid contact member has the compressible contact member (such as thecompressible contact member 150, not shown inFIG 11 ) positioned therein. Herein, thesecond stem 128 of thevacuum interrupter unit 124 is configured to move linearly along an axis 'A' (as shown) between the first position and the second position. In the first position, thesecond stem 128 is in electrical engagement with thecompressible contact member 150. In the second position, thesecond stem 128 is out of electrical engagement with thecompressible contact member 150. In an embodiment, as shown inFIG 11 , thevacuum interrupter assembly 122 includes themovable contact member 130 fixed to thesecond stem 128 at thesecond end 124b of thevacuum interrupter unit 124. Herein, themovable contact member 130 is received inside the hollow profile of thecompressible contact member 150 when thesecond stem 128 is disposed in the first position thereof. In an embodiment, thevacuum interrupter assembly 122 further includes theheat sink 160 associated with therigid contact member 140 for dissipating heat generated dur to electrical engagement as described above. - In the
switching device 100 and thevacuum interrupter assembly 122 of the present disclosure, thecompressible contact member 150 acts as a multi-laminated contact and is housed inside therigid contact member 140, which is fixed and stationary. Herein, thecompressible contact member 150 provides a current transfer point, and due to its shape eliminating sharp edges (as in traditional design using flexible connection, which can potentially cause dielectric shocks) can withstand and transfer high currents. Further, therigid contact member 140 having the round shape, particularly at the bottom side thereof, act as an electrode and helps to reduce di-electric stress. Theheat sink 160 provides good contact surface area with therigid contact member 140 to allow for sufficient heat dissipation. Further, theheat sink 160 acts as the guiding element for themovable contact member 130 to be received inside the hollow profile of thecompressible contact member 150 when thesecond stem 128 is disposed in the first position thereof. Further, the compactinsulated chamber 120 made of epoxy resin material allows to achieve a higher temperature rise rating for theswitching device 100. The simplified design of theswitching device 100 also helps in reducing its assembly time. - The present disclosure further provides a method of operating a switching device for opening and closing a circuit between a first connection arm and a second connection arm is provided. The present method has been described in view of the elements described in the preceding paragraphs in reference to
FIG 2 through FIG 11 .FIG 12 illustrates a flowchart listing steps involved in amethod 1200 of operating theswitching device 100 for opening and closing a circuit between thefirst connection arm 118a and thesecond connection arm 118b, in accordance with an embodiment of the present disclosure. The various teachings as described above apply mutatis mutandis to thepresent method 1200 as described hereinafter. - At
step 1202, themethod 1200 comprises providing theinsulated chamber 120. Atstep 1204, the method further comprises arranging thevacuum interrupter unit 124 inside theinsulated chamber 120, with thevacuum interrupter unit 124 having thefirst end 124a and thesecond end 124b, and thevacuum interrupter unit 124 providing thefirst stem 126 located at thefirst end 124a thereof and thesecond stem 128 located at thesecond end 124b thereof. Atstep 1206, themethod 1200 further comprises disposing thefirst stem 126 in fixed electrical contact with the first connection arm 118. Atstep 1208, themethod 1200 further comprises providing therigid contact member 140, with therigid contact member 140 having thefirst end 140a and thesecond end 140b, and aslot 142 defined at thefirst end 140a thereof and thecontact arm 144 defined at thesecond end 140b thereof. Atstep 1210, themethod 1200 further comprises disposing thecontact arm 144 in fixed electrical contact with thesecond connection arm 118b. Atstep 1212, themethod 1200 further comprises positioning thecompressible contact member 150, having the hollow profile, adapting to the internal profile of theslot 142 of therigid contact member 140, inside theslot 142 of therigid contact member 140. Atstep 1214, themethod 1200 further comprises reciprocating thesecond stem 128 of thevacuum interrupter unit 124 to move linearly in theinsulated chamber 120 between the first position and the second position. In the first position, thesecond stem 128 is in electrical engagement with thecompressible contact member 150 thereby closing the circuit between thefirst connection arm 118a and thesecond connection arm 118b. In the second position, thesecond stem 128 is out of electrical engagement with thecompressible contact member 150 thereby opening the circuit between thefirst connection arm 118a and thesecond connection arm 118b. - In an embodiment, the
method 1200 also comprises providing themovable contact member 130 fixed to thesecond stem 128 at thesecond end 124b of thevacuum interrupter unit 124, with themovable contact member 130 having the profile adapted to be received inside the hollow profile of thecompressible contact member 150 when thesecond stem 128 is disposed in the first position thereof. - In an embodiment, the
method 120 also comprises providing theheat sink 160 having thebody 162 with thecomplementary slot 166 to theslot 142 of therigid contact member 144. Themethod 1200 further comprises associating theheat sink 160 with therigid contact member 140 such that thecomplementary slot 166 thereof is aligned with theslot 142 of therigid contact member 140, and thereby guide themovable contact member 130 to be received inside the hollow profile of thecompressible contact member 150 when thesecond stem 128 is disposed in the first position thereof. Due to improved dielectric strength, theswitching device 100 of the present disclosure may also allow use of eco-friendly insulating gas, such as, Sulfur hexafluoride (SF6) free gas or a mixture of carbon dioxide gas and nitrogen gas (CO2N2) instead of using insulating gases with high dielectric strength but toxic to environment (such as SF6), without causing dielectric breakdown. - While the present disclosure has been described in detail with reference to certain embodiments, it should be appreciated that the present disclosure is not limited to those embodiments. In view of the present disclosure, many modifications and variations would be present themselves, to those skilled in the art without departing from the scope of the various embodiments of the present disclosure, as described herein. The scope of the present disclosure is, therefore, indicated by the following claims rather than by the foregoing description. All changes, modifications, and variations coming within the meaning and range of equivalency of the claims are to be considered within their scope.
Reference Numerals switchgear device 10 housing 12 top contact arm 14 bottom contact arm 16 vacuum interrupter based circuit breaker 20 vacuum interrupter fixed stem 22 vacuum interrupter (VI) moving stem 24 flexible connection 26 switching device 100 housing 102 pole assembly 104 control panel 106 enclosure 108 bus- bar enclosure 110 circuit- breaker enclosure 112 transformer enclosure 114 cable bushing enclosure 116 first connection arm 118a second connection arm 118b insulated chamber 120 vacuum interrupter assembly 122 vacuum interrupter unit 124 first end of vacuum interrupter unit 124a second end of vacuum interrupter unit 124b first stem 126 second stem 128 movable contact member 130 body 132 through- hole 134 rigid contact member 140 first end of rigid contact member 140a second end of rigid contact member 140b slot 142 contact arm 144 apertures 146 fastening members 147 apertures 148a apertures 148b compressible contact member 150 strips 152 hollow profile 154 heat sink 160 body of heat sink 162 fins 164 slot 166 portion 168 apertures 169 connection support member 170 body of connection support member 172 fins 174 apertures 176 assembly 180 bolts 182 bolts 184 assembly 190 method 1200 step 1202 step 1204 step 1206 step 1208 step 1210 step 1212 step 1214
Claims (15)
- A switching device (100) for opening and closing a circuit between a first connection arm (118a) and a second connection arm (118b), the switching device (100) comprising:an insulated chamber (120); anda vacuum interrupter unit (124) arranged inside the insulated chamber (120) and having a first end (124a) and a second end (124b), the vacuum interrupter unit (124) providing a first stem (126) located at the first end (124a) thereof and a second stem (128) located at the second end (124b) thereof, the first stem (126) being disposed in fixed electrical contact with the first connection arm (118a);a rigid contact member (140) having a first end (140a) and a second end (140b), the rigid contact member (140) having a slot (142) defined at the first end (140a) thereof and a contact arm (144) defined at the second end (140b) thereof, the contact arm (144) being disposed in fixed electrical contact with the second connection arm (118b);a compressible contact member (150) having a hollow profile (154) adapting to an internal profile of the slot (142) of the rigid contact member (140), the compressible contact member (150) being positioned inside the slot (142) of the rigid contact member (140); andwherein the second stem (128) of the vacuum interrupter unit (124) is configured to move linearly in the insulated chamber (120) between a first position and a second position, wherein in the first position, the second stem (128) is in electrical engagement with the compressible contact member (150) thereby closing the circuit between the first connection arm (118a) and the second connection arm (118b), and wherein in the second position, the second stem (128) is out of electrical engagement with the compressible contact member (150) thereby opening the circuit between the first connection arm (118a) and the second connection arm (118b).
- The switching device (100) as claimed in claim 1 further comprising a movable contact member (130) fixed to the second stem (128) at the second end (124b) of the vacuum interrupter unit (124), the movable contact member (130) having a profile adapted to be received inside the hollow profile (154) of the compressible contact member (150) when the second stem (128) is disposed in the first position thereof.
- The switching device (100) as claimed in claim 2, wherein the compressible contact member (150) is formed of multiple strips (152) of a conducting material joined together to impart radial flexibility thereto, and ensuring physical connection with the movable contact member (130) when received inside the hollow profile (154) thereof.
- The switching device (100) as claimed in claim 2 further comprising a heat sink (160) having a body (162) with a complementary slot (166) to the slot (142) of the rigid contact member (140), the heat sink (160) being associated with the rigid contact member (140) such that the complementary slot (166) thereof is aligned with the slot (142) of the rigid contact member (140), and thereby guide the movable contact member (130) to be received inside the hollow profile (154) of the compressible contact member (150) when the second stem (128) is disposed in the first position thereof.
- The switching device (100) as claimed in claim 4, wherein the heat sink (160) comprises a plurality of fins (164) extending radially outwardly from the body (162) thereof.
- The switching device (100) as claimed in claim 1, wherein the insulated chamber (120) is made of epoxy resin material.
- A vacuum interrupter assembly (122) for a switching device (100), the vacuum interrupter assembly (122) comprising:
a vacuum interrupter unit (124) having a first end (124a) and a second end (124b), the vacuum interrupter unit (124) providing a first stem (126) located at the first end (124a) thereof and a second stem (128) located at the second end (124b) thereof;a rigid contact member (140) having a first end (140a) and a second end (140b), the rigid contact member (140) having a slot defined at the first end (140a) thereof and a contact arm (144) defined at the second end (140b) thereof; anda compressible contact member (150) having a hollow profile (154) adapting to an internal profile of the slot (142) of the rigid contact member (140), the compressible contact member (150) being positioned inside the slot (142) of the rigid contact member (140);wherein the second stem (128) of the vacuum interrupter unit (124) is configured to move linearly between a first position and a second position, wherein in the first position, the second stem (128) is in electrical engagement with the compressible contact member (150), and wherein in the second position, the second stem (128) is out of electrical engagement with the compressible contact member (150). - The vacuum interrupter assembly (122) as claimed in claim 7 further comprising a movable contact member (130) fixed to the second stem (128) at the second end (124b) of the vacuum interrupter unit (124), the movable contact member (130) having a profile adapted to be received inside the hollow profile (154) of the compressible contact member (150) when the second stem (128) is disposed in the first position thereof.
- The vacuum interrupter assembly (122) as claimed in claim 8, wherein the compressible contact member (150) is formed of multiple strips (152) of a conducting material joined together to impart radial flexibility thereto, and ensuring physical connection with the movable contact member (130) when received inside the hollow profile (154) thereof.
- The vacuum interrupter assembly (122) as claimed in claim 8 further comprising a heat sink (160) having a body (162) with a complementary slot (166) to the slot (142) of the rigid contact member (140), the heat sink (160) being associated with the rigid contact member (140) such that the complementary slot (166) thereof is aligned with the slot (142) of the rigid contact member (140), and thereby guide the movable contact member (130) to be received inside the hollow profile (154) of the compressible contact member (150) when the second stem (128) is disposed in the first position thereof.
- The vacuum interrupter assembly (122) as claimed in claim 10, wherein the heat sink (160) comprises a plurality of fins (164) extending radially outwardly from the body (162) thereof.
- The vacuum interrupter assembly (122) as claimed in claim 8, wherein the movable contact member (130) has a hollow cylindrical profile adapted to be received inside a hollow profile (154) of the compressible contact member (150) when the second stem (128) is disposed in the first position thereof.
- A method (1200) of operating a switching device (100) for opening and closing a circuit between a first connection arm (118a) and a second connection arm (118b), the method (1200) comprising:providing an insulated chamber (120); andarranging a vacuum interrupter unit (124) inside the insulated chamber (120), the vacuum interrupter unit (124) having a first end (124a) and a second end (124b), the vacuum interrupter unit (124) providing a first stem (126) located at the first end (124a) thereof and a second stem (128) located at the second end (124b) thereof;disposing the first stem (126) in fixed electrical contact with the first connection arm (118a);providing a rigid contact member (140), the rigid contact member (140) having a first end (140a) and a second end (140b), and a slot defined at the first end (140a) thereof and a contact arm (144) defined at the second end (140b) thereof;disposing the contact arm (144) in fixed electrical contact with the second connection arm (118b);positioning a compressible contact member (150), having a hollow profile (154), adapting to an internal profile of the slot (142) of the rigid contact member (140), inside the slot (142) of the rigid contact member (140); andreciprocating the second stem (128) of the vacuum interrupter unit (124) to move linearly in the insulated chamber (120) between a first position and a second position, wherein in the first position, the second stem (128) is in electrical engagement with the compressible contact member (150) thereby closing the circuit between the first connection arm (118a) and the second connection arm (118b), and wherein in the second position, the second stem (128) is out of electrical engagement with the compressible contact member (150) thereby opening the circuit between the first connection arm (118a) and the second connection arm (118b).
- The method (1200) as claimed in claim 13 further comprising providing a movable contact member (130) fixed to the second stem (128) at the second end (124b) of the vacuum interrupter unit (124), the movable contact member (130) having a profile adapted to be received inside the hollow profile (154) of the compressible contact member (150) when the second stem (128) is disposed in the first position thereof.
- The method (1200) as claimed in claim 14 further comprising:providing a heat sink (160) having a body (162) with a complementary slot (166) to the slot (142) of the rigid contact member (140);associating the heat sink (160) with the rigid contact member (140) such that the complementary slot (166) thereof is aligned with the slot (142) of the rigid contact member (140), and thereby guide the movable contact member (130) to be received inside the hollow profile (154) of the compressible contact member (150) when the second stem (128) is disposed in the first position thereof.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP22159258.7A EP4235721B1 (en) | 2022-02-28 | 2022-02-28 | Switching device, vacuum interrupter assembly and method of operating a switching device for electric power distribution |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP22159258.7A EP4235721B1 (en) | 2022-02-28 | 2022-02-28 | Switching device, vacuum interrupter assembly and method of operating a switching device for electric power distribution |
Publications (2)
| Publication Number | Publication Date |
|---|---|
| EP4235721A1 true EP4235721A1 (en) | 2023-08-30 |
| EP4235721B1 EP4235721B1 (en) | 2026-01-21 |
Family
ID=80595494
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP22159258.7A Active EP4235721B1 (en) | 2022-02-28 | 2022-02-28 | Switching device, vacuum interrupter assembly and method of operating a switching device for electric power distribution |
Country Status (1)
| Country | Link |
|---|---|
| EP (1) | EP4235721B1 (en) |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4005297A (en) * | 1972-10-18 | 1977-01-25 | Westinghouse Electric Corporation | Vacuum-type circuit interrupters having heat-dissipating devices associated with the contact structures thereof |
| DE102007038898B3 (en) * | 2007-08-13 | 2008-11-20 | Siemens Ag | Switch arrangement for a switchgear |
| CN112635205A (en) * | 2020-11-24 | 2021-04-09 | 天津平高智能电气有限公司 | Static contact for switch cabinet and switch cabinet |
-
2022
- 2022-02-28 EP EP22159258.7A patent/EP4235721B1/en active Active
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US4005297A (en) * | 1972-10-18 | 1977-01-25 | Westinghouse Electric Corporation | Vacuum-type circuit interrupters having heat-dissipating devices associated with the contact structures thereof |
| DE102007038898B3 (en) * | 2007-08-13 | 2008-11-20 | Siemens Ag | Switch arrangement for a switchgear |
| CN112635205A (en) * | 2020-11-24 | 2021-04-09 | 天津平高智能电气有限公司 | Static contact for switch cabinet and switch cabinet |
Also Published As
| Publication number | Publication date |
|---|---|
| EP4235721B1 (en) | 2026-01-21 |
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