[go: up one dir, main page]

GB2052160A - Electrical switchgear - Google Patents

Electrical switchgear Download PDF

Info

Publication number
GB2052160A
GB2052160A GB8015683A GB8015683A GB2052160A GB 2052160 A GB2052160 A GB 2052160A GB 8015683 A GB8015683 A GB 8015683A GB 8015683 A GB8015683 A GB 8015683A GB 2052160 A GB2052160 A GB 2052160A
Authority
GB
United Kingdom
Prior art keywords
contact
contact means
electrical switchgear
contacts
arcing
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
Application number
GB8015683A
Other versions
GB2052160B (en
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Hawker Siddeley Switchgear Ltd
Original Assignee
South Wales Switchgear Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by South Wales Switchgear Ltd filed Critical South Wales Switchgear Ltd
Priority to GB8015683A priority Critical patent/GB2052160B/en
Publication of GB2052160A publication Critical patent/GB2052160A/en
Application granted granted Critical
Publication of GB2052160B publication Critical patent/GB2052160B/en
Expired legal-status Critical Current

Links

Classifications

    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01HELECTRIC SWITCHES; RELAYS; SELECTORS; EMERGENCY PROTECTIVE DEVICES
    • H01H33/00High-tension or heavy-current switches with arc-extinguishing or arc-preventing means
    • H01H33/02Details
    • H01H33/04Means for extinguishing or preventing arc between current-carrying parts
    • H01H33/18Means for extinguishing or preventing arc between current-carrying parts using blow-out magnet
    • H01H33/187Means for extinguishing or preventing arc between current-carrying parts using blow-out magnet comprising a hollow annular arc runner and a central contact between which a radially drawn arc rotates

Landscapes

  • Arc-Extinguishing Devices That Are Switches (AREA)

Abstract

In a contacts closed position of a circuit breaker, a main body portion 224 of a contact arm 208 engages a main contact 218. Upon movement of the contacts towards an open position, an end portion 225 of the contact arm 208 moves into engagement with a tubular arcing electrode 221 before the main body portion 224 disengages from the main contact 218. Subsequently, the end portion 225 disengages from the arcing electrode 221 so that an arc is drawn therebetween, and the arcing current flows through a field coil 223 creating a magnetic field which causes the arc to rotate and become extinguished. In the contacts open position of the circuit breaker, the end portion 225 lies along the axis of the field coil 223. In an alternative construction (Figure 8), the end portion of the contact arm engages the arcing electrode when the contacts are in their closed position, and remains in such engagement for some time after the main body portion has disengaged from the main contacts. <IMAGE>

Description

SPECIFICATION Electrical switchgear This invention relates to electrical switchgear, the term "switchgear" being used to embrace circuit breakers and other electrical switches.
In some known circuit breakers an arc rotation technique is employed to extinguish the arc drawn between contacts on opening the circuit breaker, and the arc current is caused to pass through a field coil to generate a magnetic field which makes the arc rotate and become extinguished. This technique is particularly useful in circuit breakers which utilize the highly insulating gas sulphur hexafluoride.
It is also well known to employ double break construction in switchgear by which a current is interrupted by two breaks in series instead of a single break. Double break construction is recognised as possessing advantages over single break construction particularly with regard to securing of interruption but has the disadvantage that there are twice as many arcs to extnguish as in single break construction.
If an arc rotation technique is combined with a double break construction one is faced with the problem of either having to employ double the number of field coils or finding some way of sharing field coils without introducing the danger of "tracking" across the shared structure taking place. It has to be borne in mind that insulating surfaces in circuit breakers may become contaminated in time for example because of the presence of metal vapours in the arcs.
It is also a well known technique to provide an arcing contact to which an arc created on opening main or intermediate contacts transfers itself as one of the main or intermediate contacts moves near to the arcing contact. Since this technique relies on the arc behaving in a predetermined manner, the transfer of the arc must to some extent at least be regarded as not entirely certain.
It is an object of the present invention to obviate or mitigate this disadvantage.
According to the present invention, there is provided electrical switchgear comprising a contact set having first and second contact means relatively movable between a closed position in which they are mutually engaged and an open position in which they are mutually separated, a tubular arcing electrode to which the first contact means is arranged to arc during movement of the contacts from their closed position to their open position, and a field coil connected to the arcing electrode and disposed substantially co-axially therewith, the arcing current flowing through the field coil to create a magnetic field which causes the arc to rotate and become extinguished, the first contact means having a part which is arranged to engage the arcing electrode before and for some time alter the first and second contact means disengage and which is arranged to move to a position substantially on the axis of the arcing electrode when the contacts move to their ogen position.
The said part of the first contact means can be engaged with the arcing electrode when the contacts are in their closed position. Alternatively, the said part of the first contact means can be spaced from the arcing electrode when the contacts are in their closed position and arranged to move into engagement with the arcing electrode during initial movement of the contacts towards their open position.
E nbodiments of the present invention will now be described, by way of exampie, with reference to the accompanying drawinys, in which: Figure 1 is a schematic side view of a first embodiment of electrical switchgear according to the present invention in the form of a doublebreak circuit breaker, showing contacts of the switchgear in a closed position; Figures 2 and 3 are similar views to Figure 1, but showing the contacts respectively partially open and fully open; Figure 4 is a section along the liine lV-lV in Figure 3; Figure 5 is a section along the line VV in Figure 3:: Figures 6 is a section along the line VI-VI in Figure 3; Figure 7 is a similar view to Figure 1 showing a modified form of electrical switchgear; Figure 8 is a schematic side view of a second embodiment of electrical switchgear according to the present invention in the form of a doublebreak circuit breaker, showing contacts of the switchgear in a closed position; Figures 9 and 10 are similar views to Figure 8, but showing the contacts respectively partially open and fully open; Figure 11is a section on the line Xl-XI in Figure 10;; Figure 12 is a schematic side view of a third embodiment of electrical switchgear according to the present invention in the form of a single-break circuit breaker, showing contacts of the switchgear in a closed position; Figures 13 and 14 are similar views to Figure 12, but respectively showing the contacts partially open and fully open; Figure 1 5 is a schematic view of a fourth embodiment of electrical switchgear according to the present invention, suitable for three-phase operazion; 2nd Figure 1 6 is a schematic view of â fifth embodiment of electrical switchgear according to the present invention, also suitable for threephase operation.
Referring first to Figures 1 to 6, the contacts and associated parts of a circuit breaker employing sulphur hexafluoride as an insulating gas are shown, The circuit breaker comprises a pair of electrically insulating terminal bushings 1 and 2 through which respective condutors 3 and 4 pass. A mounting 5 is provided at one end of the conductor 3 and pivotally supports a contact arm 6 by means of a pivot pin 7, a helical contact spring 8 in compression being provided to act between the mounting 5 and the contact arm 6. A similar assembly of a mounting 9, a contact arm 10, a pivot pin 11 and a spring 12 are provided at the end of the conductor 4. The contact arm 6 is composed of a main body portion 13 of rectangular cross-section and an end portion 14 of lesser and circular cross-section.The contact arm 10 is similarly composed of a main body portion 15 and an end portion 16. The end portions 14 and 1 6 can be provided with arc-resistant material.
The circuit breaker also comprises a main contact bar 1 7 and a field coil assembly 18 which are mounted on an end of a reciprocable insulating shaft 19 by means of a support member 20. The main contact bar 17 has ends 21 and 22 which engage the main body portions of the contact arms 6 and 10 respectively when the circuit breaker is in a closed position, as shown in Figure 1. The springs 8 and 12 act to urge their associated contact arms into engagement with the main contact bar 17, and a current path thus exists from the conductor 3 to the conductor 4 by way of the mounting 5, the contact arm 6, the main contact bar 17, the contact arm 10 and the mounting 9.
The field coil assembly 1 8 comprises a pair of co-axially disposed tubular arcing electrodes 23A and 23B which are separated by a central, transversely extending insulating barrier 24. The electrodes 23A and 23B are provided with respective internal annular projections or arc runners 25 and 26, which can be surfaced with arc-resistant material. A helical field coil 27 surrounds the external surfaces of the arcing electrodes 23A and 238. One end of the coil 27 is connected to electrode 23A at a point 28, the other end of the coil being connected to electrode 23B at a point 29. Otherwise, the coil 27 is electrically insulated from the arcing electrodes by means of insulation 30.In the closed position of the circuit breaker, the end portions 14 and 1 6 of the contact arms 6 and 10 lie within the field coil assembly 18, and are adjacent to but spaced from the arc runners 25 and 26 of the electrodes 23A and 23B, respectively.
In order to open the contacts of the circuit breaker, the shaft 19 is moved in the direction of the arrow 31 by an operating mechanism (not shown), the field coil assembly 1 8 and main contact bar 1 7 moving with the shaft since they are carried by it. As the shaft 1 9 moves in the direction of the arrow 31 , the contact arms 6 and 10 pivot under the action of their respective springs 8 and 12 to follow the motion of the main contact bar 17. On further movement of the shaft 1 9, the end portions 14 and 1 6 of the contact arms come into contact with the arc runners 25 and 26 respectively, and the main body portions 13 and 15 disengage from the main contact bar 17.Ignoring any minor arcing at the main contact bar 17, the current path from conductor 3 to conductor 4 is now by way of the end portion 14 of contact arm 6, the arcing electrode 23A, the field coil 27, the arcing electrode 23B and the end portion 16 of contact arm 10. Pivotal movement of the arms 6 and 10 is limited by parts 32 and 33 of the mountings 5 and 9 which act as stops, and at their limits of movement the arms lie along a common axis. At this instant, the parts are disposed as shown in Figure 2.
On continued movement of the shaft 19, the arc runners 25 and 26 move out of contact with the contact arms 6 and 10, and an arc 34 is drawn radially between the end of each contact arm and the associated arc runner. Movement of the shaft 1 9 ceases when the axis of the field coil assembly 18 in alignement with the common axis of the contact arms, as shown in Figure 3. The current path from conductor 3 to conductor 4 is now by way of contact arm 6, the arc between end portion 14 and arc runner 25, the field coil 27, the arc between arc runner 26 and end portion 16, and contact arm 1 0. The magnetic field generated by the current flowing in the coil 27 causes the axis to rotate and become extinguished.
In the above construction, the connection between the contact arms and their mountings are shown as simple pin joints. In practice, however, a flexible conductive strap 35 can be added as shown in the left-hand part of Figure 7 for the passage of most of the load current therethrough.
In the right-hand part of Figure 7, an alternative to the pin joint in the form of a stirrup-type mounting is shown. In this mounting, the main body portion of the contact arm has a recess 37 therein which locates over a projection 38 on the lower part of the mounting, enabling the contact arm to rock about the projection 38. A flexible conductive strap 39 connects the contact arm to the mounting for the passage of most of the load current therethrough.
A second embodiment of a circuit breaker according to the present Invention is shown in Figures 8 to 11, and is generally similar to the embodiment already described with reference to Figures 1 to 6. Accordingly, similar parts are denoted by the same reference numerals, but with 100 added. In this embodiment, however, the conductors 103 and 104 are connected to respective sets 140 and 141 of main contact fingers which engage the ends of the main contact bar 11 7 when the circuit breaker is in its closed position, as shown in Figure 8. The contact arm 106 is mounted for angular movement by a respective yoke member 142 and a mounting pin 143 passing through a shaped recess in the contact arm, and a spring 144 provided about the pin 143 urges the contact arm towards the position shown in Figure 10. A flexible conductive strap 145 connects the contact arm 106 to the conductor 103 for the passage of most of the load current therethrough. The contact arm 110 is similarly provided with a yoke member, mounting pin, spring and flexible strap.
Whereas in the construction of Figures 1 to 6 the contact arms are spaced from the respective arc runners when the circuit breaker is in its closed position, in this embodiment the end portions 114 and 116 of the contact arms 106 and 110 actualiy engage the arc runners 125 and 126 respectively in the contacts closed position.
However, since the main contact bar 117 is in parallel with the field coil 127, little current passes through the coil 127 in the closed position because it presents a path of higher impedance than the contact bar 11 7.
The circuit breaker is opened by moving the shaft 119 in the direction of arrow 131. After the ends of the contact bar 11 7 have disengaged from the contact fingers 140 and 141 the drawing and extinction of the arcs proceeds as described above with reference to Figures 1 to 3. Figures 8, 9 and 10 illustrate various stages during this operation, and correspond respectively to the stages shown in Figures 1,2 and 3.
A third embodiment of the invention, in the form of a single-break circuit breaker employing sulphur hexafluoride as an insulating gas, is shown in Figures 12 to 1 4. The circuit breaker comprises a pair of insulating terminal bushings 201 and 202 through which respective conductors 203 and 204 pass. A mounting 205 is provided at an end of the conductor 203 and pivotally supports one end of an electrically conductive link member 206 on a pivot pin 207.
The other end of the link member 206 pivotally mounts a contact arm 208 on a pivot pin 209, and a compression spring 210 is interposed between the contact arm 208 and an abutment 211 on the link member 206 so as to urge the contact arm anticlockwise as viewed in Figures 12 to 14. An electrically insulating link 212 has one end thereof pivotally connected to the link member 206 by way of a pivot pin 213, the other end of the link 212 being pivotally connected by means of a pivot pin 214 to a crank member 21 5 which is rotatable with an operating shaft 21 6. A flexible electrically conductive strap 21 7 connects the link member 206 to the conductor 203 for the passage of most of the load current therethrough.
An end of the conductor 204 supports a main contact 218 and an electrically conductive support member 219 on which a field coil assembly 220 is carried. The field coil assembly 220 comprises a tubular arcing electrode 221 having an internal annular projection or arc runner 222 which can be surfaced with arc-resistant material and a field coil 223 which is connected between the arcing electrode 221 and the support member 219. The field coil 223 can be a self-supporting spirally-wound coil having its inner end connected to the arcing electrode and its outer end connected to the support member.
Alternatively, the field coil can be helically wound about the external surface of the arcing electrode, in which case a separate support for the arcing electrode will be required.
The contact arm 208 comprises a main body portion 224 of rectangular cross-section and an end portion 225 of reduced circular cross-section.
The tip of the end portion 225 can be surfaced with arc-resistant material. In a contacts closed position of the circuit breaker (shown in Figure 12), the main body portion 224 is urged by the spring 210 into engagement with the main contact 218 and the end portion 225 is held spaced from the arc runner 222.
The circuit breaker is opened by rotation of the operating shaft 216 in the direction of arrow 226, which causes the link member 206 to move angulariy about the-pivot point 207 and the contact arm 208 to rock on the tip of the main contact 218 until the end portion 225 thereof comes into contact with the arc runner 222.
Further rotation of the shaft 226 causes the contact arm 2O8 to disengage from the main contact 21 8 whilst still maintaining contact with the arc runner 222, as illustrated in Figure 13. On continued rotation of the shaft 21 6, the end portion 225 of the contact arm 208 maintaining contact with the arc runner 222 until the main body portion 224 pivoting about the pin 209 engages the pivot pin 213, which acts as a stop.
Thereafter, the end portion 225 moves away from the arc runner 222 until, at the contacts open position shown in Figure 14, the contact arm 208 lies on the central axis of the arcing tube electrode 221.
In the contacts closed position of the circuit breaker, the current path is by way of conductor 203, contact arm 208, the main contact 21 8 and the conductor 204. However, as the circuit breaker is opened the field coil assembly 220 is first connected in parallel with the contacts closed current path, and thereafter engagement of the contact arm 208 with the main contact 21 8 is broken with perhaps some minor arcing. Upon disengagement of the contact arm 208 from the arcing electrode 221, the connection to the field coil assembly 220 is opened and an arc is drawn from the end portion 225 of the contact arm to the arc runner 222, the arcing current passing through the field coil 223.When the contacts are in their fully open position, the arc lies radially within the arcing electrode 221 and the magnetic field from the field coil 223 causes the arc to rotate and become extinguished.
Figure 1 5 illustrates diagrammatically a three phase circuit breaker in which the rectilinear movement of the coil assembly of the circuit breaker of Figures 1 to 6 is replaced by an arcuate movement. Three coil assemblies 250 are carried on a rotatably mounted insultaing spider 251 and each coil assembly is associated with a respective contact assembly 252 such that the view along the direction of the arrow 253 corresponds generally to Figure 1. The spider 251 is rotated in the direction of arrow 254 to open the contacts, the contacts open position of the coil assemblies being shown in dotted lines and the contacts closed position in solid outline. Reference numeral 255 denotes the main contact bars, and arrow 256 shows the load direction of one of the contact springs.
Figure 1 6 illustrates diagrammatically another three phase circuit breaker in which a view along the arrow 300 corresponds generally to Figure 1.
In Figure 16, coil assemblies 301 are carried on respective insulating links 302 pivotally mounted on fixed pivots 303. An operating link 304 pivotally connected to the insulating links 302 is movable in the direction of the arrow 305 to open the circuit breaker (the contacts open position of one coil assembly being shown in broken outline).
All the illustrated arrangements possess the advantage that during the opening of the contacts, current is cummutated positiveiy to energise the field coil so that further movement will draw the radial arc or arcs in an excellent position for subsequent rotation and extinction. The main contact faces are kept well away from the arcing contacts so that contamination from the products of the rotating arc will be reduced. The arcing contacts need be large enough only to deal with the short duration of current interruption while the main contacts can be of heavier construction to carry the normal continuous rated current. As an alternative to the illustrated arrangements multiple main contact fingers can be used where the normal rated current is high.
The double break arrangements have the advantage of using only one field coil per double break while keeping low the danger of "tracking" across the shared structure, since there is no continuous solid insulating material between the contacts when the circuit breaker is open. The principal insulating surfaces are advantageously arranged between live parts and earth (as opposed to across the poles) and are kept well away from the direct arcing zone. A solid insulating barrier is provided between the two arcing zones positively to prevent the arc being transferred directly across the two contact arms. It is to be noted, however, that this insulation material has to have good "puncture" strength only and, in the vicinity of the arcs, does not need to have electrical strength over its surfaces within the arcing electrodes.The insulating barrier provides support for the pair of arcing electrodes, while separating them electrically to permit the flow of current through the field coil. The outer cylindrical surface of this barrier is therefore the only part which is stressed along its surface. This surface is well protected from the effects of arcing and is subject only to the voltage drop across the coil. Contamination of the other surfaces will not significantly, if at all, affect the performance.
Although only a single phase is shown in the embodiments of Figures 1 to 14, is to be understood that multiphase arrangements can be made by an appropriate replication of parts.
The construction shown in Figures 1 to 11 and Figures 1 5 and 1 6 also form the subject matter of our co-pending U.K. patent application no.
(our reference Case 3), and the embodiments of Figures 8 to 14 form part of the subject matter of our co-pending U.K. patent application no. 7939949.

Claims (14)

1. Electrical switchgear comprising a contact set having first and second contact means relatively movable between a closed position in which they are mutually engaged and an open position in which they are mutually separated, a tubular arcing electrode to which the first contact means is arranged to arc during movement of the contacts from their closed position to their open position, and a field coil connected to the arcing electrode and disposed substantially co-axially therewith, the arcing current flowing through the field coil to create a magnetic field which causes the arc to rotate and become extinguished, the first contact means having a part which is arranged to engage the arcing electrode before and for some time after the first and second contact means disengage and which is arranged to move to a position substantially on the axis of the arcing electrode when the contacts move to their open position.
2. Electrical switchgear as claimed in Claim 1, wherein said part of the first contact means is engaged with the arcing electrode when the contacts are in their closed position.
3. Electrical switchgear in Claim 1, wherein said part of the first contact means is spaced from the arcing electrode when the contacts are in their closed position and moves into engagement with the arcing electrode during initial movement of the contacts towards their open position.
4. Electrical switchgear as claimed in any preceding claim, wherein the first contact means includes a contact arm which is angularly movable about an axis transverse to the field coil axis.
5. Electrical switchgear as claimed in Claim 4, wherein the contact arm has a main body portion which engages the second contact means when the contacts are in their closed position, and an end portion which constitutes said part of the first contact means.
6. Electrical switchgear as claimed in Claim 4 or 5, wherein the contact arm is pivotally mounted on a link member which is in turn angularly movable about a fixed pivot axis, and an operating mechanism for opening and closing the contacts is operatively coupled to the link member.
7. Electrical switchgear as claimed in Claim 4, wherein said part of the first contact means is constituted by the contact arm, and the first contact means also includes contact fingers which engage the second contact means when the contacts are in their closed position.
8. Electrical switchgear as claimed in any one of claims 4 to 7, wherein the contact arm has a spring-loaded pivotal or rocking mounting.
9. Electrical switchgear as claimed in any preceding claim wherein the arcing electrode is generally cylindrical.
10. Electrical switchgear as claimed in Claim 9, wherein the arcing electrode is of circular crosssection.
11. Electrical switchgear as claimed in any preceding claim, comprising two contact sets each having respective first and second contact means and a respective associated arcing electrode, the arcing electrodes being connected to respective ends of a common field coil and the second contact means being electrically connected together.
12. Electrical switchgear as claimed in any one of Claims 1 to 10, wherein the field coil is electrically connected to the second contact means.
1 3. Electrical switchgear as claimed in any preceding claim, wherein the field coil, the arcing electrode and the second contact means are mounted on a common support and are movable together relative to the first contact means in a direction transverse to the axis of the field coil.
14. Electrical switchgear as claimed in any one of Claims 1 to 10, comprising a piurality of contact sets each having respective first and second contact means and a respective associated field coil and arcing electrode, the second contact means, the field coils and the arcing electrodes all being movable in unison relative to the first contact means.
1 5. Electrical switchgear as claimed in Claim 14, wherein the second contact means, the field coils and the arcing electrodes are mounted on a common support which is angularly movable about the rotation axis, and the first contact means are angularly spaced apart around said rotation axis.
1 6. Electrical switchgear as claimed in Claim 14, wherein the second contact means of each contact set and the respective field coil and arcing electrode are mounted on a respective support which is angularly movable about a fixed rotation axis, and an operating link interconnects the supports to effect angular movement of the supports about the respective rotation axes in unison.
1 7. Electrical switchgear as claimed in any preceding claim, in the form of a circuit breaker.
1 8. Electrical switchgear as claimed in any preceding claim, wherein sulphur hexafluoride is employed as an insulating gas.
1 9. Electrical switchgear substantially as hereinbefore described with reference to Figures 1 to 6, or Figures 1 to 6 as modified by Figure 7, or Figures 8 to 11, or Figures 12 to 14, or Figure 1 5, or Figure 1 6 of the accompanying drawings.
GB8015683A 1979-05-25 1980-05-12 Electrical switchgear Expired GB2052160B (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
GB8015683A GB2052160B (en) 1979-05-25 1980-05-12 Electrical switchgear

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
GB7918466 1979-05-25
GB8015683A GB2052160B (en) 1979-05-25 1980-05-12 Electrical switchgear

Publications (2)

Publication Number Publication Date
GB2052160A true GB2052160A (en) 1981-01-21
GB2052160B GB2052160B (en) 1983-11-23

Family

ID=26271666

Family Applications (1)

Application Number Title Priority Date Filing Date
GB8015683A Expired GB2052160B (en) 1979-05-25 1980-05-12 Electrical switchgear

Country Status (1)

Country Link
GB (1) GB2052160B (en)

Cited By (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2188486A (en) * 1986-03-25 1987-09-30 Northern Eng Ind Arc interrupter for switch
GB2196794A (en) * 1986-10-27 1988-05-05 Stroemberg Oy Ab Electric circuit
GB2260027A (en) * 1991-09-30 1993-03-31 Long & Crawford Limited Electrical switchgear

Cited By (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2188486A (en) * 1986-03-25 1987-09-30 Northern Eng Ind Arc interrupter for switch
GB2188486B (en) * 1986-03-25 1989-12-06 Northern Eng Ind Arc interrupter
GB2196794A (en) * 1986-10-27 1988-05-05 Stroemberg Oy Ab Electric circuit
GB2196794B (en) * 1986-10-27 1990-10-03 Stroemberg Oy Ab An electric circuit-breaker
GB2260027A (en) * 1991-09-30 1993-03-31 Long & Crawford Limited Electrical switchgear

Also Published As

Publication number Publication date
GB2052160B (en) 1983-11-23

Similar Documents

Publication Publication Date Title
US4355219A (en) Electrical switchgear
KR100295905B1 (en) Electrode structure for vacuum interrupter
CN104335312B (en) Three-position load isolating switch for medium-voltage switchgear assemblies
CN104054150B (en) Switching device for medium voltage switchgear equipment especially loads separating switch
US4409446A (en) Electrical switchgear
EP0012522B1 (en) Electrical switchgear
US4529853A (en) Electric circuit breaker with self blow-out by rotation of the arc
GB2052160A (en) Electrical switchgear
US4301341A (en) Electrical switchgear
US6320149B1 (en) Current contact system for a current switch
EP0011972B1 (en) Electrical switchgear
US4503302A (en) Arc interrupter
GB2052159A (en) Electrical switchgear of the rotating arc, double-break type
US4980528A (en) Arc interrupter
US3889082A (en) High voltage contactor
GB2188487A (en) Arcing electrode for switch
GB2178239A (en) Circuit breakers
GB2044538A (en) Electrical switchgear
JPH0142268Y2 (en)
US2954448A (en) Switch construction
JP2874917B2 (en) Puffer type gas circuit breaker
CN111095464A (en) Device and method for switching high currents in high, medium and/or low voltage technology
GB2260027A (en) Electrical switchgear
JPS599816A (en) Gas insulated switch
JPH06119851A (en) Gas insulation switch

Legal Events

Date Code Title Description
PCNP Patent ceased through non-payment of renewal fee

Effective date: 19990512