Insulator for overhead power lines with a protected leakage currents detector
10274531 ยท 2019-04-30
Assignee
Inventors
Cpc classification
H01B17/005
ELECTRICITY
G01R31/085
PHYSICS
G01R31/1245
PHYSICS
International classification
H01B17/00
ELECTRICITY
G01R31/12
PHYSICS
Abstract
An overhead power line insulator comprises a dielectric element (4) having an outside surface forming a skirt (5) with a head extended by a metal attachment fitting (7) for attaching the insulator, and a device for detecting surface leakage current flowing on the dielectric (4), the device comprising a conductive ring (8) that surrounds the fitting (7) and that is in contact with the outside surface of the dielectric (4). An electrically insulating protective element (10) is provided in the form of a collared bushing that surrounds the fitting (7), being interposed between the ring (8) and the fitting (7) and extending radially so as to overlie the ring (8) in order to protect it from environmental pollution.
Claims
1. An insulator for overhead power lines, the insulator comprising both an end dielectric element having an outside surface in the shape of a skirt and extended axially by a metal attachment fitting for attaching the insulator, and also a device for detecting surface leakage electric current flowing on said outside surface of said dielectric element, the device comprising a metal ring electrically in contact with said outside surface of said dielectric element in order to intercept said surface leakage current, the insulator further comprising an electrically insulating protective element in the form of a bushing with a collar, said bushing of said protective element being interposed between said ring and said fitting, and said collar of said protective element extending radially to overhang said ring so as to form a protective umbrella over said ring.
2. The overhead power line insulator according to claim 1, wherein said ring is adhesively-bonded to said skirt-shaped outside surface of said dielectric element with an electrically conductive adhesive.
3. The overhead power line insulator according to claim 2, wherein said protective element is made of ethylene-propylene-diene monomer or of silicone.
4. The overhead power line insulator according to claim 3, wherein said detector device comprises a converter for converting the leakage current into voltage.
5. The overhead power line insulator according to claim 4, wherein said converter is embedded in said protective element.
6. The overhead power line insulator according to claim 4, wherein said converter is embedded in said metal fitting.
7. The overhead power line insulator according to claim 4, wherein said converter is remote from said insulator.
8. The overhead power line insulator according to claim 7, wherein said dielectric element is made of glass.
9. The overhead power line insulator according to claim 7, wherein said dielectric element is made of porcelain.
10. The overhead power line insulator according to claim 7, wherein said dielectric element is made of synthetic material.
11. The overhead power line insulator according to claim 1, wherein said collar of said dielectric element is frustoconical in shape.
12. The overhead power line insulator according to claim 1, wherein said collar of said protective element has an electric cable that is connected to said ring passing therethrough in leaktight manner.
13. The overhead power line insulator according to claim 1, wherein said protective element is made of ethylene-propylene-diene monomer or of silicone.
14. The overhead power line insulator according to claim 1, wherein said detector device comprises a converter for converting the leakage current into voltage.
15. The overhead power line insulator according to claim 14, wherein said converter is embedded in said protective element.
16. The overhead power line insulator according to claim 14, wherein said converter is embedded in said metal fitting.
17. The overhead power line insulator according to claim 14, wherein said converter is remote from said insulator.
18. The overhead power line insulator according to claim 1, wherein said dielectric element is made of glass.
19. The overhead power line insulator according to claim 1, wherein said dielectric element is made of porcelain.
20. The overhead power line insulator according to claim 1, wherein said dielectric element is made of synthetic material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The present invention can be better understood and other advantages appear on reading the following description and from the accompanying drawings, in which:
(2)
(3)
(4)
(5)
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(8)
DESCRIPTION OF EMBODIMENTS
(9)
(10) In
(11) The dielectric element 1A at the top end of the insulator 1 has a metal ring 8 to pick up the surface leakage current flowing on the surface of the dielectric 1A and an electronic unit 9 for detecting and measuring the residual leakage current, which unit is connected to the ring 8 by an electric cable 11.
(12) The electronic unit 9 may be fastened to the pylon 3, for example.
(13) By way of example, the measurement values can then be transmitted wirelessly from the unit 9 to a remote monitoring station, not shown.
(14) The invention applies to various kinds of overhead power line insulator such as chain insulator of the cap-and-pin type having dielectric elements made of glass or porcelain, or rigid insulators made of porcelain, or indeed composite insulators.
(15) By way of example,
(16) The insulating portion 4 presents a hollow head 6 having sealed thereon a metal cap 7 made of galvanized cast iron that is extended axially in this example by a metal attachment fitting 6A of the insulator 1 that is fastened to the pylon 3. In this example, for this end dielectric element 1A, the cap 7 forms part of the attachment fitting 6A.
(17) A pin (not shown) made of galvanized steel is sealed inside the hollow head 6. This pin extends axially along the axis A and is for engaging in the cap 7 of the dielectric element 1A adjacent to the end dielectric element 1A.
(18)
(19)
(20) As can be seen in these figures, the ring 8 is an electrically conductive metal ring that is placed coaxially about the axis A on the outside surface of the glass insulating portion 4 so as to intercept the surface leakage current that flows at the surface of the glass insulating portion 4.
(21) As can be seen in
(22) It is interposed at its bottom end between the ring 8 and the cap 7 so that the ring 8 is not electrically in contact with the cap 7.
(23) The collar 10B of the protective element 10 extends radially outwards over the ring 8 so as to form a kind of protective umbrella preventing dirt and moisture becoming deposited on the ring 8.
(24)
(25) In this example, the ring 8 is square in section, but it could equally well have a section that is rectangular, or the like.
(26) The ring 8 has a flat annular base that is directly in contact with the outside surface of the glass insulating portion 4.
(27) The ring 8 may advantageously be adhesively-bonded to the outside surface of the glass insulating portion 4 while providing electrical conductivity, e.g. by using an epoxy adhesive filled with silver or copper.
(28) The protective element 10 is made of material that is flexible, elastic, and electrically insulating, e.g. out of high temperature vulcanized (HTV) silicone or out of ethylene-propylene-diene monomer (EPDM).
(29) As can be seen in
(30) The ring 8 may be adhesively-bonded in this angled groove 10C.
(31) The plane bottom face of the ring 8 is flush with the base of the bushing 10A of the protective element 10.
(32) The protective element 10 can be engaged on the cap 7 along the arrow F shown in
(33) The protective element 10 may preferably be engaged with the ring 8 bonded in the angled groove 10C.
(34) Like the ring 8, the bottom annular edge of the protective element 10 may also be adhesively-bonded to the outside surface of the glass insulating portion 4 in order to prevent water infiltrating from the cap 7 towards the ring 8.
(35) The protective element 10 may equally well be made of a plurality of portions, e.g. with a bushing 10A made up of two semicylindrical portions, that may be put into place separately around the cap 7 and bonded together subsequently.
(36) This arrangement may be advantageous for retrofitting the protective element 10 on an insulator 1 that is already in place on a pylon.
(37) Furthermore, the collar 10B of the protective element 10 is shaped as a truncated cone, as can be seen in
(38) In particular, rain water can run naturally under gravity over the top portion of the collar in the form of a truncated cone without reaching the bottom portion of the collar.
(39)
(40) The hole in the collar 10B through which the electric cable 11 passes is advantageously closed with silicone so that the cable 11 passes through the collar 10B in leaktight manner.
(41) In
(42) The converter 9A is connected to ground by the cable 12 through the metal cap 7, and the voltage signal is conveyed from the converter 9A by the electric cable 13 away from the insulator 1.
(43) In
(44) As mentioned above, the invention also applies to a composite insulator 1 as shown in axial section in
(45) The composite insulator 1 may also be used to suspend an overhead power line 2.
(46) In this example, the composite insulator 1 comprises a series of dielectric elements 1A made of synthetic material such as EPDM or of silicone arranged around a rod 15 forming a fiberglass core. These dielectric elements 1A form sheds along the rod and overall each shed is in the shape of a skirt.
(47) The dielectric elements 1A may be of the type that is molded directly on the rod 15, or else they may be stacked on the rod 15.
(48) The end dielectric element 1A is extended by a metal attachment fitting 7 for attachment to a pylon 3, for example. This metal fitting 7 is fastened to the end of the rod 15, in this example.
(49) As can be seen in
(50)