Compact fuse support
09773633 · 2017-09-26
Assignee
Inventors
Cpc classification
International classification
Abstract
Method and apparatus for mounting fuses in switchgear and similar electrical isolation equipment provide a nonconductive fuse support that allows the fuses to be mounted separately from the transformers. Two such fuse supports may be used to support a fuse, one fuse support for each fuse terminal. Each fuse support may support two fuse terminals so dual fuses may be supported by the same pair of fuse supports. The fuse supports substantially surround the fuse terminals to provide an insulating barrier that helps prevent electrical discharge and also ensure sufficient spacing between the fuse terminals and ground or other conductors in the switchgear. Such an arrangement allows the fuses and transformers to fit within a reduced space in the switchgear and similar electrical isolation equipment while complying with industry-standard performance requirements. The fuse supports are preferably noncontiguous, thereby leaving the nonconductive portion of the fuse physically unsurrounded.
Claims
1. A switchgear module, comprising: a panel with a transformer unit mounted thereon; a fuse assembly attached to the panel; a mounting assembly disposed in the fuse assembly; and a fuse having a fuse terminal at each opposing end thereof, the fuse secured to the mounting assembly such that said fuse is mounted separately from the transformer unit; wherein the fuse assembly comprises a pair of noncontiguous fuse supports, each fuse support having an open-ended tubular housing substantially surrounding one of the fuse terminals, the housing providing an insulating barrier around said fuse terminal; wherein the mounting assembly comprises a pair of terminal brackets, each bracket attached to one of the open-ended housings on an interior surface thereof; and wherein the mounting assembly further comprises first and second end caps for receiving the fuse terminals therein, each end cap attached to one of the terminal brackets, each end cap having smooth and rounded surfaces that minimize or prevent electrical discharge through the end cap.
2. The switchgear module of claim 1, wherein each fuse support further comprises an elongated support structure extending from an exterior surface of the housing substantially perpendicular thereto.
3. The switchgear module of claim 2, wherein the elongated support structure comprises a neck portion and a base portion extending coaxially from the neck portion substantially perpendicular thereto, the base portion having a larger outer diameter than the neck portion.
4. The switchgear module of claim 1, wherein the first end cap is fixedly attached to one of the terminal brackets and the second end cap is releasably attached to one of the terminal brackets via a locking mechanism.
5. The switchgear module of claim 1, further comprising a second mounting assembly disposed in the fuse assembly.
6. The switchgear module of claim 5, further comprising a second fuse secured to the second mounting assembly such that said second fuse is mounted separately from any transformer attached to the panel.
7. A switchgear module, comprising: a panel with a transformer unit mounted thereon; a fuse assembly attached to the panel; a mounting assembly disposed in the fuse assembly; and a fuse having a fuse terminal at each opposing end thereof, the fuse secured to the mounting assembly such that said fuse is mounted separately from the transformer unit; and wherein the fuse assembly comprises a pair of noncontiguous fuse supports, each fuse support having an open-ended tubular housing substantially surrounding one of the fuse terminals, the housing providing an insulating barrier around said fuse terminal.
8. The switchgear module of claim 7, wherein each fuse support further comprises an elongated support structure extending from an exterior surface of the housing substantially perpendicular thereto.
9. The switchgear module of claim 8 wherein the elongated support structure comprises a neck portion and a base portion extending coaxially from the neck portion substantially perpendicular thereto, the base portion having a larger outer diameter than the neck portion.
10. The switchgear module of claim 7, wherein the mounting assembly comprises a pair of terminal brackets, each bracket attached to one of the open-ended housings on an interior surface thereof.
11. The switchgear module of claim 10, wherein the mounting assembly further comprises first and second end caps for receiving the fuse terminals therein, each end cap attached to one of the terminal brackets, each end cap having smooth and rounded surfaces that minimize or prevent electrical discharge through the end cap.
12. The switchgear module of claim 11, wherein the first end cap is fixedly attached to one of the terminal brackets and the second end cap is releasably attached to one of the terminal brackets via a locking mechanism.
13. The switchgear module of claim 7, further comprising a second mounting assembly disposed in the fuse assembly.
14. The switchgear module of claim 13 further comprising a second fuse secured to the second mounting assembly such that said second fuse is mounted separately from any transformer unit attached to the panel.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The foregoing and other advantages of the disclosed embodiments will become apparent upon reading the following detailed description and upon reference to the drawings, wherein:
(2)
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DETAILED DESCRIPTION OF THE DISCLOSED EMBODIMENTS
(6) As an initial matter, it will be appreciated that the development of an actual, real commercial application incorporating aspects of the disclosed embodiments will require many implementation specific decisions to achieve the developer's ultimate goal for the commercial embodiment. Such implementation specific decisions may include, and likely are not limited to, compliance with system related, business related, government related and other constraints, which may vary by specific implementation, location and from time to time. While a developer's efforts might be complex and time consuming in an absolute sense, such efforts would nevertheless be a routine undertaking for those of skill in this art having the benefit of this disclosure.
(7) It should also be understood that the embodiments disclosed and taught herein are susceptible to numerous and various modifications and alternative forms. Thus, the use of a singular term, such as, but not limited to, “a” and the like, is not intended as limiting of the number of items. Similarly, any relational terms, such as, but not limited to, “top,” “bottom,” “left,” “right,” “upper,” “lower,” “down,” “up,” “side,” and the like, used in the written description are for clarity in specific reference to the drawings and are not intended to limit the scope of the invention.
(8) Referring first to
(9) One or more exemplary fuse assemblies, one of which is indicated at 108a, are also attached or otherwise fastened on the panel 102 in accordance with the disclosed embodiments. The fuse assembly 108a includes a pair of exemplary fuse supports 200a & 200b that hold or otherwise secure at least one current-limiting fuse 110 therebetween. As can be seen, the nonconductive fuse supports 200a & 200b are located separately from the transformer unit 104 so the fuse 110 is not mounted directly on a transformer within the transformer unit 104. The mounting of the fuse 110 separately from the transformer allows the overall size of the switchgear module 100 to be reduced, making it possible or at least easier for the switchgear module 100 to fit within a smaller compartment compared to existing solutions. For example, the exemplary switchgear module 100 shown here may fit within a compartment that measures only 17 inches wide by 45 inches tall, such as may be found in the HVL/cb™ series of metal-enclosed switchgear from Schneider Electric USA, Inc., or similar metal-enclosed and metal-clad switchgear.
(10)
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(12) Turning now to
(13) In some embodiments, the elongated support structure 204 may also include two main sections, a neck portion 214 and a base portion 216 extending coaxially from the neck portion 214. The base portion 216 is designed to be attached or otherwise fastened to the panel 102 and in some embodiments may have a larger diameter than the neck portion 214 for better stability. Either or both the base portion 216 and the neck portion 214 may have coaxial, radially extending insulating discs or sheds 218 disposed thereon that function to increase the tracking distance along the outer surface of the elongated support structure 204. A first set of screw holes 220 may be drilled or otherwise provided on an underside 216a of the base portion 216 to facilitate screwing or otherwise attaching it to the panel 102.
(14) A second set of screw holes 222 may also be drilled or otherwise provided in the bottom wall 208 of the housing 202 on an interior surface 208b thereof in some embodiments for screwing or otherwise attaching a terminal bracket (302 and 304, discussed in
(15) The terminal bracket mentioned above may be part of a mounting assembly 300, depicted in
(16) Each terminal bracket 302 and 304 has a generally flat base 310 and 312, respectively, that may be fastened to the housing 202 of the fuse support 200 and a generally flat mounting plate 314 and 316, respectively, extending perpendicularly from the base 310 and 312 for supporting the end caps 306 and 308. One of the end caps, for example, the right end cap 306, may be fixedly attached (e.g., welded, etc.) to the first terminal bracket, for example, the right bracket 302, on the mounting plate 314 thereof. The mounting plate 316 of the second terminal bracket 306 may have a circular opening formed therein (not expressly labeled) for receiving the non-fixed end cap 308. A locking mechanism, such as a quarter-turn locking mechanism, may be used to releasably attach the non-fixed end cap 308 to it its respective terminal bracket 304. For example, the second terminal bracket 304 may have a notch 318 formed in the opening in the mounting plate 316 thereof and the non-fixed end cap 308 may have a tab 320 protruding therefrom that corresponds to the notch 318. Inserting the non-fixed end cap 308 so the tab 320 passes through the notch 318 and rotating it a quarter turn locks the non-fixed end cap 308 in the second terminal bracket 304.
(17) In general operation, to mount a fuse 110, a pair of discrete, noncontiguous fuse supports 200 (see
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(19) The embodiments disclosed herein provide a number of advantages and benefits. Among other things, the field-shaping end caps 306 and 308 have been observed to limit the electric fields around the fuse terminals to about 2 kV/mm, which allows a clearance of about 1.0 inch (25 mm) between the fuse terminals 110a and 110b (see
(20) While particular aspects, implementations, and applications of the present disclosure have been illustrated and described, it is to be understood that the present disclosure is not limited to the precise construction and compositions disclosed herein and that various modifications, changes, and variations may be apparent from the foregoing descriptions without departing from the spirit and scope of the disclosed embodiments as defined in the appended claims.