MODULAR HIGH VOLTAGE FUSE
20220157548 · 2022-05-19
Assignee
Inventors
Cpc classification
H01H9/40
ELECTRICITY
H01H85/56
ELECTRICITY
H01H9/34
ELECTRICITY
International classification
Abstract
A fuse including a fuse body having a main body portion formed of a dielectric material, a plurality of arc chambers formed in the main body portion, the arc chambers arranged in a matrix configuration, a conductor extending through the main body portion and intersecting the arc chambers, the conductor having bridge portions disposed within the arc chambers, the bridge portions being mechanically weaker than other portions of the conductor and configured to melt and separate upon the occurrence of an overcurrent condition in the fuse.
Claims
1. A fuse comprising: a fuse body including a main body portion formed of a dielectric material; a plurality of arc chambers formed in the main body portion, the arc chambers arranged in a matrix configuration; and a conductor extending through the main body portion and intersecting the arc chambers, the conductor having bridge portions disposed within the arc chambers, the bridge portions being mechanically weaker than other portions of the conductor and configured to melt and separate upon occurrence of an overcurrent condition in the fuse.
2. The fuse of claim 1, wherein the conductor defines a serpentine shape having at least two bends formed therein.
3. The fuse of claim 1, wherein the main body portion is encased within a rigid shell.
4. The fuse of claim 1, further comprising arc barriers disposed between adjacent arc chambers and intersecting the conductor.
5. The fuse of claim 4, wherein the arc barriers are plates disposed in a perpendicular orientation relative to the conductor.
6. The fuse of claim 4, wherein the arc barriers are formed of metal plates having slots or apertures formed therein for allowing the conductor to pass through the arc barriers.
7. The fuse of claim 1, wherein the conductor has opposing ends defining first and second terminals extending from the fuse body.
8. The fuse of claim 1, wherein the dielectric material of the main body portion is selected from a group consisting of melamine, silicon, and polyamides.
9. The fuse of claim 1, wherein the arc chambers are hollow cavities formed within a material of the main body portion.
10. The fuse of claim 1, wherein the arc chambers define a two-dimensional matrix.
11. The fuse of claim 1, wherein the fuse body has a length in a range of 10 millimeters to 100 millimeters, a width in a range of 10 millimeters to 50 millimeters, and a height in a range of 5 millimeters to 25 millimeters.
12. The fuse of claim 1, wherein the bridge portions have at least one of holes, notches, and slots formed therein.
13. The fuse of claim 1, wherein the arc chambers are rectangular.
14. A fuse comprising: a fuse body including a main body portion formed of a dielectric material; a plurality of arc chambers formed in the main body portion, the arc chambers arranged in a matrix configuration; a conductor extending through the main body portion and intersecting the arc chambers, the conductor having bridge portions disposed within the arc chambers, the bridge portions being mechanically weaker than other portions of the conductor and configured to melt and separate upon occurrence of an overcurrent condition in the fuse; and arc barriers disposed between adjacent arc chambers and intersecting the conductor.
15. The fuse of claim 14, wherein the conductor defines a serpentine shape having at least two bends formed therein.
16. The fuse of claim 14, wherein the arc barriers are plates disposed in a perpendicular orientation relative to the conductor.
17. The fuse of claim 14, wherein the arc barriers are formed of metal plates having slots or apertures formed therein for allowing the conductor to pass through the arc barriers.
18. The fuse of claim 14, wherein the conductor has opposing ends defining first and second terminals extending from the fuse body.
19. The fuse of claim 14, wherein the main body portion is formed from a dielectric material selected from a group consisting of melamine, silicon, and polyamides.
20. The fuse of claim 14, wherein the bridge portions have at least one of holes, notches, and slots formed therein.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
[0015] An exemplary embodiment of a modular high voltage fuse in accordance with the present disclosure will now be described more fully hereinafter with reference to the accompanying drawings. The modular high voltage fuse may, however, be embodied in many different forms and should not be construed as being limited to the embodiments set forth herein. Rather, these embodiments are provided so that this disclosure will convey certain exemplary aspects of the modular high voltage fuse to those skilled in the art.
[0016] Referring to
[0017] Referring to
[0018] In various non-limiting, exemplary embodiments, the fuse body 12 may have a length B.sub.L in a range of 10 millimeters to 100 millimeters, a width Bw in a range of 10 millimeters to 50 millimeters, and a height B.sub.H in a range of 5 millimeters to 25 millimeters. In a particular non-limiting example, the fuse body 12 may have a length B.sub.L of 25 millimeters, a width Bw of 18 millimeters, and a height B.sub.H of 16 millimeters. In another non-limiting example, the fuse body 12 may have a length B.sub.L of 45 millimeters, a width B.sub.W of 18 millimeters, and a height B.sub.H of 22 millimeters. In another non-limiting example, the fuse body 25 may have a length B.sub.L of 25 millimeters, a width Bw of 32 millimeters, and a height B.sub.H of 22 millimeters.
[0019] Referring to the cross-sectional views of the fuse 10 illustrated in
[0020] The main body portion 22 of the fuse body 12 may contain a plurality of cavities, hereinafter referred to as “arc chambers” 26. The arc chambers 26 may be generally rectangular and may be arranged in a matrix configuration with a plurality of rows and columns as shown in the cross-sectional view of
[0021] Still referring to
[0022] The portions of the conductor 20 that extend through the arc chambers 26, hereinafter referred to as the “bridge portions” 28, may be mechanically weakened relative to other portions of the conductor 20 so that the bridge portions 28 will melt and separate upon the occurrence of an overcurrent condition in the fuse 10. For example, the bridge portions 28 may have holes 29 formed in them as shown in
[0023] Generally, the voltage rating of the fuse 10 will be dictated by the total number of arc chambers 26 (and therefore the total number of bridge portions 28) in the main body portion 22, with each arc chamber 26 contributing a certain amount of voltage to the voltage rating, depending on the current rating of the fuse 10. The present disclosure is not limited in this regard. The current rating of the fuse 10 will be dictated by the cross-sectional size of the conductor 20 (i.e., C.sub.T×C.sub.W). In a non-limiting example, the fuse 10 may include a total of 10 arc chambers 26 (as shown in
[0024] It will be appreciated that the specific configurations of the fuses 10 and 100 described above and shown in
[0025] Referring to
[0026] It will be appreciated by those of ordinary skill in the art that the above-described embodiments provide a modular high voltage fuse that is compact and lightweight and that can be manufactured and modified more easily and at a lower cost relative to conventional fuses that employ fuse fillers such as sand and silica. The embodiments of the present disclosure may thus be particularly well suited for automotive applications and the like.
[0027] As used herein, an element or step recited in the singular and proceeded with the word “a” or “an” should be understood as not excluding plural elements or steps, unless such exclusion is explicitly recited. Furthermore, references to “one embodiment” of the present disclosure are not intended to be interpreted as excluding the existence of additional embodiments that also incorporate the recited features.
[0028] While the present disclosure makes reference to certain embodiments, numerous modifications, alterations and changes to the described embodiments are possible without departing from the sphere and scope of the present disclosure, as defined in the appended claim(s). Accordingly, it is intended that the present disclosure not be limited to the described embodiments, but that it has the full scope defined by the language of the following claims, and equivalents thereof.