The invention relates to a ceramic insulator for vacuum interrupters, to a vacuum interrupter having a corresponding ceramic insulator, and to a method for manufacturing a ceramic insulator.
Vacuum interrupters are known from the prior art which, as an insulator, comprise a ceramic tube, the ends of which are closed in a vacuum-tight manner, and at the ends of which respectively either a moving contact or a fixed contact is inserted into the vacuum tube from the exterior.
However, the technical usefulness of these ceramics is limited on the grounds of discharge build-up along the insulators, particularly on the vacuum side. Discharge build-up in a vacuum is dictated by the desorption of adsorbed gas layers by field-emitted electrons. The voltage withstand (breakdown field strength) along the surface is thus not scaled linearly to the insulator length D, but is only proportional to D−0.5.
As a result, particularly at high and very high voltages, particularly in excess of 100 kV, it becomes increasingly difficult to achieve the requisite voltage withstand, for example in vacuum interrupters.
Given that, in one-piece insulators, the breakdown field strength declines as the length increases, the lengthening of individual insulators does not deliver the objective of a high voltage withstand, of the type which needs to be achieved for example for lightning impulse voltages, e.g. of 650 kV, with acceptable levels of cost and technical complexity.
In addition to the high cost of individual long insulators and the limited voltage withstand, the magnitude of the mass of the moving contact which is to be moved in long vacuum interrupters and a correspondingly high drive energy required are also negative factors.
In the prior art, this issue is resolved by segmented insulating bodies, in which shorter insulators are respectively connected by metal structures, which project into the vacuum region, thereby interrupting the discharge paths. Discharge build-up is prevented accordingly. As a result of the higher number of connection points and individual ceramic components, the costs associated with such tubes are relatively high.
The object of the invention is then the provision of a ceramic insulator for vacuum tubes, which can be produced more cost-effectively and which eliminates the disadvantages of the prior art.
This object is fulfilled by the invention of the independent claims, and by the claims which are dependent upon said claims.
A ceramic insulator for vacuum interrupters according to the invention is formed by a ceramic insulator extending along a longitudinal extent and forming a cavity in said longitudinal extent. The cavity comprises a first opening on a first side of the longitudinal extent, and a second opening on a second side of the longitudinal extent. The first opening and the second opening are suitable for being sealed in a gas-tight manner using appropriate connecting means. The sealed first opening is suitable for guiding at least one fixed contact into the cavity, and the sealed second opening is suitable for guiding at least one moving contact into the cavity. The ceramic insulator further comprises, on the inner face of the cavity, one or more electrically conductive discharge path interrupters, extending perpendicularly to the longitudinal extent of the ceramic insulator. It is advantageous if the electrically conductive discharge path interrupters, perpendicularly to the longitudinal extent of the ceramic insulator, form a closed path, i.e. a closed structure, particularly an annular structure.
The appropriate connecting means for the gas-tight closure of the ceramic insulator are extensively known from the prior art, and are also described, for example, as bushings. Particularly, bellows-type or corrugated bushings for the vacuum-tight accommodation of moving contacts in a vacuum are known.
The ceramic of the ceramic insulator is preferably configured as a one-piece component.
In a further two-part or multi-part form of embodiment, additionally to the electrically conductive discharge path interrupter(s), metal shields and/or metal structures can also be provided, of the type which are known from the prior art.
For the substantial enhancement of voltage withstand, it is thus also possible to employ multi-part ceramic insulators, which are interrupted by metal structures, and to combine the latter with electrically conductive discharge path interrupters.
A ceramic insulator is also preferred in which the one or more electrically conductive discharge path interrupters are formed from a metal and/or a metal-metal oxide mixture (also known as “cermet”) and/or a semiconductor, which shall also be understood to include electrically conductive semi-metallic compounds, such as metal oxides, metal carbides, metal nitrides or metal borides.
It is also preferred that the ceramic insulator has a cylindrical shape, particularly a hollow cylindrical shape.
It is also preferred that the one or more electrically conductive discharge path interrupters are formed by means of a metal-plating method, by sputtering or vapor deposition. Other methods from the prior art are also appropriate including, for example, chemical deposition from the liquid or gaseous phase, cold gas or plasma spraying, or thick-film methods such as dip coating, adhesive bonding or printing, with the subsequent burn-in of appropriate substances. It is further preferred that the one or more electrically conductive discharge path interrupters are additionally provided with an additional further metal plating, such that the material properties are enhanced, particularly with respect to electrical and mechanical properties.
It is also preferred that the additional further metal plating is generated by galvanic methods and/or by sputtering and/or by vapor deposition.
It is also preferred that, in the cavity of the ceramic insulator, one or more metal platings are arranged, extending perpendicularly to the longitudinal extent, i.e. in the circumferential direction of the ceramic insulator, upon which the one or more electrically conductive discharge path interrupters are secured.
It is further preferred that the one or more electrically conductive discharge path interrupters have an annular and/or convex structure.
It is also preferred that the clearance between the plurality of electrically conductive discharge path interrupters lies between 5 mm and 50 mm, preferably between 10 mm and 20 mm.
It is also preferred that the plurality of electrically conductive discharge path interrupters have a mutual clearance, and the extent of the electrically conductive discharge path interrupters, in the direction of the longitudinal extent, is 5% to 30% of the clearance between the discharge path interrupters in the direction of the longitudinal extent. It is also further preferred that the extent of the electrically conductive discharge path interrupters, in the direction of the longitudinal extent, is 5% to 30%, preferably 10% to 20% of the clearance between the discharge path interrupters in the direction of the longitudinal extent.
It is also preferred that the ceramic insulator, on the outer side, i.e. the side which is not arranged in the vacuum, also comprises one or more electrically conductive discharge path interrupters, extending perpendicularly to the longitudinal extent of the ceramic insulator. It is particularly preferred that the electrically conductive discharge path interrupters located on the outer side possess some or all of the above-mentioned properties of the electrically conductive discharge path interrupters which are arranged in the cavity.
A vacuum interrupter having a ceramic insulator according to the preceding embodiments is also preferred.
A method for producing a ceramic insulator for vacuum interrupters is also preferred, wherein the ceramic insulator comprises a base element extending along a longitudinal extent, and forming a cavity 15 in said longitudinal extent. The cavity 15, on a first side of the longitudinal extent, comprises a first opening and, on a second side of the longitudinal extent, comprises a second opening, which are suitable for being sealed in a gas-tight manner by appropriate connecting means. The sealed first opening is suitable for guiding at least one fixed contact into the cavity, and the second sealed opening is suitable for guiding at least one moving contact into the cavity. On the inner side of the cavity of the ceramic insulator, one or more metallic structures, extending perpendicularly to the longitudinal extent of the ceramic insulator, are formed by means of sputtering and/or vapor deposition or comparable appropriate methods, and these structures either function directly as electrically conductive discharge path interrupters, or electrically conductive discharge path interrupters are applied to said structures. The connecting means are also described as bushings. For the moving contact, bellows-type or corrugated bushings are particularly, but not exclusively, considered.
It is further preferred that the electrically conductive discharge path interrupters are formed by means of galvanic methods and/or chemical deposition methods and/or mechanical methods such as printing, dip coating and/or sputtering and/or vapor deposition on the structures, and/or metallic elements, preferably metallic annular elements, are secured as electrically conductive discharge path interrupters to the structures by soldering.
The invention is described hereinafter with reference to the figures.
This breakdown path is dictated in a vacuum by the desorption of adsorbed gas layers by field-emitted electrons.
Number | Date | Country | Kind |
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10 2016 214 755 | Aug 2016 | DE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/EP2017/067652 | 7/13/2017 | WO | 00 |
Publishing Document | Publishing Date | Country | Kind |
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WO2018/028918 | 2/15/2018 | WO | A |
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Entry |
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Translation of JP2010073460 (Original doc. published Apr. 2, 2010) (Year: 2010). |
Translation of DE102007022875 (Original doc. published Nov. 27, 2008) (Year: 2008). |
Number | Date | Country | |
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20190172667 A1 | Jun 2019 | US |