High voltage winding and a high voltage electromagnetic induction device
10872721 · 2020-12-22
Assignee
Inventors
- Manoj Pradhan (Bålsta, SE)
- Abdolhamid Shoory (Buchs, CH)
- Jonas Ekeberg (Fislisbach, CH)
- Venkatesulu Bandapalle (Västerås, SE)
- Rafael Murillo (Saragossa, ES)
Cpc classification
H01F27/323
ELECTRICITY
International classification
Abstract
A high voltage winding for a single electrical phase of a high voltage electromagnetic induction device, wherein the high voltage winding comprises: a first winding part, and a second winding part, wherein the first winding part comprises: a first conductor, a first solid electrical insulator circumferentially enclosing the first conductor, and a first semi-conductive sheath circumferentially enclosing the first solid electrical insulator, wherein the first semi-conductive sheath is earthed or connected to an electric potential that is lower than a rated voltage of the high voltage winding, and wherein the second winding part comprises: a second conductor, and a second solid electrical insulator circumferentially enclosing the second conductor and forming an outermost layer of the second winding part.
Claims
1. A high voltage winding for a single electrical phase of a high voltage electromagnetic induction device, wherein the high voltage winding comprises: a first winding part, and a second winding part, wherein the first winding part includes: a first conductor, a first solid electrical insulator circumferentially enclosing the first conductor, and a first semi-conductive sheath circumferentially enclosing the first solid electrical insulator, wherein the first semi-conductive sheath is earthed or connected to an electric potential that is lower than a rated voltage of the high voltage winding, and wherein the second winding part includes: a second conductor, and a second solid electrical insulator circumferentially enclosing the second conductor and forming an outermost layer of the second winding part.
2. The high voltage winding as claimed in claim 1, wherein the first conductor has a bushing connection end configured to be connected to a bushing, the first winding part being configured to be connected between a bushing and the second winding part.
3. The high voltage winding as claimed in claim 1, wherein the first solid electrical insulator is made of cross-linked polyethylene, XLPE.
4. The high voltage winding as claimed in claim 1, wherein the first solid electrical insulator is made of silicone rubber or epoxy.
5. The high voltage winding as claimed in claim 1, wherein the second solid electrical insulator is cast in an electrically insulating material.
6. The high voltage winding as claimed in claim 5, wherein the second solid electrical insulator includes a resin.
7. The high voltage winding as claimed in claim 1, wherein the second solid electrical insulator is made of Nomex.
8. The high voltage winding as claimed in claim 1, comprising a second semi-conductive sheath circumferentially enclosing the first conductor, wherein the second semi-conductive sheath is arranged radially inwards of the first solid electrical insulator.
9. A high voltage electromagnetic induction device comprising: a magnetic core including a limb, and a high voltage winding arranged around the limb and having: a first winding part, and a second winding part, wherein the first winding part includes: a first conductor, a first solid electrical insulator circumferentially enclosing the first conductor, and a first semi-conductive sheath circumferentially enclosing the first solid electrical insulator, wherein the first semi-conductive sheath is earthed or connected to an electric potential that is lower than a rated voltage of the high voltage winding, and wherein the second winding part includes: a second conductor, and a second solid electrical insulator circumferentially enclosing the second conductor and forming an outermost layer of the second winding part.
10. The high voltage electromagnetic induction device as claimed in claim 9, comprising a bushing, wherein the first winding part is connected between the bushing and the second winding part.
11. The high voltage electromagnetic induction device as claimed in claim 9, comprising a secondary winding, wherein the high voltage winding is a primary winding and the secondary side winding is arranged around the limb.
12. The high voltage electromagnetic induction device as claimed in claim 11, wherein the primary winding is arranged radially outwards of the secondary winding or the primary winding is arranged radially inwards of the secondary winding.
13. The high voltage electromagnetic induction device as claimed in claim 9, comprising a cable termination configured to connect the first winding part with the second winding part.
14. The high voltage winding as claimed in claim 2, wherein the first solid electrical insulator is made of cross-linked polyethylene, XLPE.
15. The high voltage winding as claimed in claim 2, wherein the first solid electrical insulator is made of silicone rubber or epoxy.
16. The high voltage winding as claimed in claim 2, wherein the second solid electrical insulator is cast in an electrically insulating material.
17. The high voltage winding as claimed in claim 2, wherein the second solid electrical insulator is made of Nomex.
18. The high voltage winding as claimed in claim 2, comprising a second semi-conductive sheath circumferentially enclosing the first conductor, wherein the second semi-conductive sheath is arranged radially inwards of the first solid electrical insulator.
19. The high voltage electromagnetic induction device as claimed in claim 10, comprising a secondary winding, wherein the high voltage winding is a primary winding and the secondary side winding is arranged around the limb.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) The specific embodiments of the inventive concept will now be described, by way of example, with reference to the accompanying drawings, in which:
(2)
(3)
(4)
(5)
(6)
DETAILED DESCRIPTION
(7) The inventive concept will now be described more fully hereinafter with reference to the accompanying drawings, in which exemplifying embodiments are shown. The inventive concept may, however, be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided by way of example so that this disclosure will be thorough and complete, and will fully convey the scope of the inventive concept to those skilled in the art. Like numbers refer to like elements throughout the description.
(8)
(9) The high voltage winding 1 comprises a first winding part 3 and a second winding part 5. In the example, the first winding part 3 and the second winding part 5 are connected in series. In this case, the first winding part 3 and the second winding part 5 form part of the same primary winding or the same secondary winding.
(10) Alternatively, the first winding part and the second winding part could be only electromagnetically coupled, for example if one of the first winding part and the second winding part forms part of the primary winding and the other one of the first winding part and the second winding part forms part of the secondary winding.
(11) Turning to
(12) The first winding part 3 furthermore comprises a first semi-conductive sheath 3b. The first semi-conductive sheath 3b is connected to earth or ground. The first semi-conductive sheath 3b hence has ground potential. Alternatively, the first semi-conductive sheath 3b may be connected to an electric potential that is lower than a rated voltage of the high voltage winding.
(13) The first winding part 3 also comprises a first solid electrical insulator 3c. The first solid electrical insulator may for example be made of cross-linked polyethylene (XLPE), silicone rubber, epoxy, Ethylene Propylene Rubber (EPR) or any material with good thermal and electrical insulating properties.
(14) The first solid electrical insulator 3c circumferentially encloses the first conductor 3a. The first solid electrical insulator 3c is hence arranged radially outside of the first conductor 3a. The first solid electrical insulator 3c extends along the majority of, or along the entire, length of the first conductor 3a.
(15) The first semi-conductive sheath 3b circumferentially encloses the first solid electrical insulator 3c. The first semi-conductive sheath 3b is hence arranged radially outside of the first solid electrical insulator 3c. The first semi-conductive sheath 3b extends along the majority of, or along the entire, length of the first solid electrical insulator 3c.
(16) By means of the above-described concentric arrangement, where the first conductor 3a is arranged innermost, the first solid electrical insulator 3c is arranged between the first conductor 3a and the first semi-conductive sheath 3b, and the grounded first semi-conductive sheath 3b arranged radially outermost, parallel capacitance to ground may be obtained. The first solid electrical insulator 3c acts as a dielectric between the first conductor 3a and the first semi-conductive sheath 3b.
(17) According to the example shown in
(18)
(19) The second solid electrical insulator 5b may be realized in a number of ways. The second solid electrical insulator 5b may for example be a casting of an electrically insulating material such as a resin e.g. epoxy. In this case the second solid electrical insulator 5b may be referred to as closed because all of the turns are insulated by a block formed by the second solid electrical insulator 5b. A closed example is shown in
(20) The cross-sectional topology, or cross-sectional structure, hence differs between the first winding part 3 and the second winding part 5. The first winding part 3 has only a ground capacitance obtained by the configuration of first conductor 3a, the first solid electrical insulator 3c and the grounded first semi-conductive sheath 3b. The second winding part 5 does not have this ground capacitor like structure but only a series capacitance between the turns. In the case that the first semi-conductive sheath is connected to an electric potential that is lower than a rated voltage of the high voltage winding, then the capacitive network will be similar to that of a traditional winding, i.e. it has both series and ground capacitance.
(21)
(22) The first winding part 3 forms a first section of the high voltage winding 1 in the y-direction, i.e. the axial direction of the limb 7. The second winding part 5 forms a second section of the high voltage winding 1, arranged axially spaced apart from the first section and thus from the first winding part 3. The first winding part 3 may be arranged vertically above the second winding part 5. The first winding part 3 may in particular be arranged closer to a bushing terminal. The first winding part 3 is beneficially located between the bushing terminal of the bushing and the second winding part 5. The first winding part 3 may have a bushing connection end which is connected to the bushing terminal and another end connected to the second winding part 5. The first winding part 3 will thereby attenuate a lightning impulse voltage or other transient entering the high voltage electromagnetic induction device via the bushing before it reaches the second winding part 5.
(23)
(24)
(25) It is to be noted that a great plurality of variations of how the high voltage winding is disposed around the limb is envisaged. For example, the high voltage winding disclosed herein may form the secondary winding or the primary winding, or both. Moreover, according to one example the first winding part may form part of the primary winding and the second winding part may form of the secondary winding. Additionally, the primary winding may alternatively be located radially inwards of the secondary winding, instead of the configuration shown in
(26) Furthermore, according to one example, a certain voltage potential may be achieved in the first semi-conductive sheath by connecting a middle tap of the high voltage winding to the conductive sheath to obtain a different stress distribution. The thickness of the first solid electrical insulation may thereby be reduced, and the capacitance of the first winding part may be increased.
(27) Additionally, according to one variation, the high voltage winding may comprise two first winding parts and one second winding part. In this case, the second winding part may be sandwiched between the two first winding parts. This configuration is particularly useful in the case of an electromagnetic induction device having uniform insulation because the two first winding parts will provide transient attenuation from both directions towards the second winding part.
(28) In case the first winding part 3 and the second winding part 5 both form part of the same primary winding or secondary winding, the first winding part 3 and the second winding part 5 may be connected by means of a cable termination.
(29)
(30) The windings of each electrical phase of a high voltage electromagnetic induction device may beneficially have the structure as disclosed herein.
(31) According to one example, the electromagnetic induction device may comprise a tap changer and regulating winding connected to the tap changer by means of a plurality of tap changer cables. Each such tap changer cable may according to this example be of the same type as the first winding part. To this end, each tap changer cable comprises a conductor, a solid electrical insulator arranged around the conductor, and a semi-conductive sheath arranged around the solid electrical insulator. The semi-conductive sheath of each tap changer cable may be earthed or connected to a common electric potential. The tap changer cables may, since their outer surface is at the same electric potential, be bundled. The tap changer cable bundle thus obtained will thereby occupy less space within the enclosure of the electromagnetic induction device.
(32) The inventive concept has mainly been described above with reference to a few examples. However, as is readily appreciated by a person skilled in the art, other embodiments than the ones disclosed above are equally possible within the scope of the inventive concept, as defined by the appended claims.