Arc chamber for a DC circuit breaker
11694860 · 2023-07-04
Assignee
Inventors
- Rudolf Gati (Mellingen, CH)
- Matthias Bator (Klettgau, DE)
- Osvaldo Prestini (Nembro, IT)
- Pierluigi Cisana (Paladina BG, IT)
- Thorsten Strassel (Mülligen, CH)
Cpc classification
H01H2009/367
ELECTRICITY
International classification
Abstract
An arc chamber for a DC circuit breaker includes an entry side adapted to receive an electric arc, which was generated outside of the arc chamber and which propagates in a forward direction, a plurality of stacked splitter plates, and at least one inhibitor barrier. The at least one inhibitor barrier is arranged on the entry side to inhibit a reverse propagation of the electric arc out of the arc chamber in a reverse direction. DC circuit breaker comprising an arc chamber. Use of an arc chamber with a circuit breaker in a DC electrical system.
Claims
1. A DC circuit breaker comprising: an arc chamber, wherein the arc chamber comprises: an entry side adapted to receive an electric arc which was generated outside of the arc chamber and which propagates in a forward direction; a plurality of stacked splitter plates; and at least two inhibitor barriers arranged on the entry side to inhibit a reverse propagation of the electric arc out of the arc chamber in a reverse direction; wherein the at least two inhibitor barriers are arranged, in a top view of the arc chamber, in opposite corner parts on the entry side of the arc chamber, and wherein the at least two inhibitor barriers at the corner parts on the entry side of the arc chamber are configured such that a flow of gas cannot pass in the reverse direction beyond an entry area of the arc chamber in a region where the at least two inhibitor barriers are provided, an inlet of an exhaust channel in a region of each of the at least two inhibitor barriers, wherein the exhaust channel extends to a gas outlet formed on a side of the arc chamber different from the entry side.
2. The DC circuit breaker according to claim 1, wherein exhaust openings are provided in rear corner parts opposite to the entry side of the chamber for releasing, from the arc chamber, a flow of hot gas.
3. The DC circuit breaker according to claim 2, further comprising: contact elements, wherein the arc is generated between the contact elements upon opening of the contact elements, and arc runners, wherein the arc runners are metallic rails configured for directing the arc in the forward direction from the contact elements towards the stack of splitter plates.
4. The DC circuit breaker according to claim 3, wherein the arc chamber does not include permanent magnets subjecting the arc to magnetic fields when traveling from the contact elements towards the stack of splitter plates.
5. The DC circuit breaker according to claim 3, wherein, in the top view of the arc chamber, at least two inhibitor barriers are spaced apart from one another, such that a gap for entry of the electric arc is formed on the entry side between the at least two inhibitor barriers.
6. The DC circuit breaker according to claim 2, wherein, the inhibitor barriers each comprise at least one deflection section which extends to an inside of the arc chamber.
7. The DC circuit breaker according to claim 6, wherein the at least one deflection section is configured for trapping and deflecting the arc or an arc segment such that it does not propagate back to a region of the gap, that is formed on the entry side in between the inhibitor barriers for the entry of the electric arc.
8. The DC circuit breaker according to claim 2, wherein the at least two inhibitor barriers extends substantially in a stacking direction of the splitter plates.
9. The DC circuit breaker according to claim 2, wherein the at least two inhibitor barriers continuously extends in a stacking direction of the splitter plates from one outermost splitter plate to the other outermost splitter plate of the plurality of stacked splitter plates.
10. The DC circuit breaker according to claim 1, further comprising: contact elements, wherein the arc is generated between the contact elements upon opening of the contact elements, and arc runners, wherein the arc runners are metallic rails configured for directing the arc in the forward direction from the contact elements towards the stack of splitter plates.
11. The DC circuit breaker according to claim 10, wherein the arc chamber does not include permanent magnets subjecting the arc to magnetic fields when traveling from the contact elements towards the stack of splitter plates.
12. The DC circuit breaker according to claim 1, wherein the at least two inhibitor barriers are symmetrically arranged, in the top view of the arc chamber, in opposite corner parts on the entry side of the arc chamber.
13. The DC circuit breaker according to claim 1, wherein, in the top view of the arc chamber, at least two inhibitor barriers are spaced apart from one another, such that a gap for the entry of the electric arc is formed on the entry side between the at least two inhibitor barriers.
14. The DC circuit breaker according to claim 1, wherein, the inhibitor barriers each comprise at least one deflection section which extends to an inside of the arc chamber.
15. The DC circuit breaker according to claim 14, wherein the at least one deflection section is configured for trapping and deflecting the arc or an arc segment such that it does not propagate back to a region of the gap, that is formed on the entry side in between the inhibitor barriers for the entry of the electric arc.
16. The DC circuit breaker according to claim 1, wherein the at least two inhibitor barriers extends substantially in a stacking direction of the splitter plates.
17. The DC circuit breaker according to claim 1, wherein the at least two inhibitor barriers continuously extends in a stacking direction of the splitter plates from one outermost splitter plate to the other outermost splitter plate of the plurality of stacked splitter plates.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The disclosure will be described in greater detail with reference to the accompanying drawings, in which:
(2)
(3)
(4)
EMBODIMENTS OF THE DISCLOSURE
(5) Reference will now be made in detail to various aspects and embodiments. Each aspect and embodiment is provided by way of explanation and is not intended as a limitation. Features illustrated or described as a part of one aspect or embodiment may be used in conjunction with any other aspect or embodiment. It is intended that the present disclosure includes such combinations and modifications. In the drawings, same reference numerals refer to same or like parts. For casing the understanding, some reference numerals are omitted in those drawings showing essentially the same structure, at a different point in time, of a preceding drawing.
(6)
(7) An arc 50 is generated outside of the arc chamber 10, e. g. in between the opening contact elements of a low-voltage or medium-voltage circuit breaker (not shown). The arc is ignited in a space filled with a switching medium. While the arc bums in between the contacts, the arc voltage does not change much. At some point in time, the are detaches from the contacts, bends, and moves, typically along metallic rails known as arc runners, towards the stack of splitter plates 11a-11f.
(8) In
(9) In
(10) In
(11)
(12) In
(13) It is to be noted that a reverse direction R is not necessarily an exact opposite direction of the forward direction F, but may be an oblique direction towards the entry side E, e. g. towards any one of the corner parts 15a, 15b on the entry side E of the chamber 10.
(14) In the top view of
(15) Hot gas which is generated by arc segments 50a-50e, which propagate towards any of the front corner parts 15a, 15b, may result in hot conductive gas which leads to a back-ignition (a re-ignition), even after the respective arc segments 50a-50e have been extinguished.
(16) In the embodiment of
(17) The arc 50 or arc segments 50a-50e may first enter the splitter plate region in a substantially unobstructed manner, while a back-propagation of the arc, possibly leading to back ignitions, is effectively suppressed or prevented by the inhibitor barrier 20a, 20b. Optionally, the inhibitor barrier 20a, 20b is configured and/or arranged such that a flow of gas cannot pass in the reverse direction R beyond the entry area of the arc chamber 10 in a region where the inhibitor barriers 20a, 20b are provided. It is to be noted that the number of inhibitor barriers 20a, 20b is not limited to two.
(18) In embodiments, the inhibitor barrier 20a, 20b extends from one outermost splitter plate 11a of the stack of splitter plates 11a-11f to the other outermost splitter plate 11f. In other words: According to this aspect, all of the spaces in between the splitter plates 11a-11f are shielded, on the entry side and in a limited region such as a respective corner region 15a, 15b when seen in the top view, by the respective inhibitor barrier 20a, 20b. The outermost splitter plates 11a, 11f are the splitter plates on the one end side and on the other end side, respectively, of the stack of splitter plates 11a-11f in the stacking direction.
(19) According to this aspect, the inhibitor barrier 20a, 20b may be formed continuously, optionally as a continuous wall which covers the respective area at the stacked splitter plates 11a-11f as a whole. Alternatively, and still pertaining to this aspect, the inhibitor barrier 20a, 20b may be formed of a plurality of barrier segments covering less than the entirety of the respective area at the stacked splitter plates 11a-11f, while the plurality of barrier segments which form the inhibitor barriers 20a, 20b still shield all of the spaces in between the splitter plates 11a, 11f on the entry side in the respective region.
(20) A back-propagation of the arc, possibly leading to a back-ignition, can be suppressed or prevented substantially over the entire stack of splitter plates 11a-11f, i. e. for each of the arc segments 50a-50e that move or propagate in the respective spaces.
(21) As shown in
(22) According to this aspect, the inhibitor barrier 20a, 20b is not continuous; yet, some or all of the spaces between the splitter plates 11a-11f, on the entry side and in a limited region such as a respective corner region 15a, 15b when seen in the top view, are shielded by an inhibitor plate.
(23) The splitter plates 11a-11f which are substantially aligned in the stacking direction S form a respective inhibitor barrier 20a, 20b, which suppresses or prevents a back-propagation of an arc 50 or arc segment 50a-50e by prohibiting the hot gas generated by the arc 50 or arc segment 50a-5e from flowing back in the reverse direction, in the region, where the splitter plates 11a-11f are provided, e. g. in a corner region 15a, 15b on the entry side E.
(24) As shown in
(25) For example, the outermost splitter plate 11a in
(26) At least a part of the hot gas which is generated in the region, where the inlet of the exhaust channel 16 is provided, flows into the inlet, passes through the exhaust channel 16, and is eventually discharged from the chamber 10, on a side of the chamber 10 which is different from the entry slide. Thus, less hot gas will back-propagate in the direction of the entry side, and a probability of a back-ignition can be further reduced.
(27) In embodiments, a DC circuit breaker (not shown) having an arcing contact arrangement is provided with an arc chamber 10 as described herein. In the DC circuit breaker, upon a contact opening operation, an electric arc is generated, which is received on the entry side E of the arc chamber 10 and propagates in a forward direction into the region of the stacked splitter plates. The at least one inhibitor barrier arranged on the entry side E is configured such as to inhibit a reverse propagation of the arc out of the arc chamber 10 in the reverse direction R. It is noted that also in the DC circuit breaker provided with the arc chamber 10, some or all of the aspects as described herein may be implemented and/or freely combined with each other, as appropriate.
(28) In embodiments, an arc chamber 10, as described herein, is used with a circuit breaker in a DC electrical system. It is noted that also in the use of the arc chamber 10 with a circuit breaker in a DC electrical system, some or all of the aspects as described herein may be implemented and/or freely combined with each other, as appropriate.