Stationary induction apparatus
10665382 ยท 2020-05-26
Assignee
Inventors
- Naoya Miyamoto (Tokyo, JP)
- Yoshio Hamadate (Tokyo, JP)
- Akira Yamagishi (Tokyo, JP)
- Mao Kawamoto (Tokyo, JP)
Cpc classification
H01F27/324
ELECTRICITY
H01F27/06
ELECTRICITY
H01F27/361
ELECTRICITY
H01F27/323
ELECTRICITY
International classification
H01F27/34
ELECTRICITY
H01F27/06
ELECTRICITY
Abstract
A stationary induction apparatus includes a main body tank and a stationary induction apparatus main body. The main body is accommodated in the tank. An electrostatic shield ring is placed on the upper and lower end parts of a winding. An electrostatic shield ring has a magnetic ring and two insulating rings vertically fixing the magnetic ring for a spool. A conductive tape is laid on an insulating tape. These tapes are wound around the spool. An insulating tape is wound around the wound tapes. The width of the insulating tape is equal to or greater than the width of the conductive tape. One end of the conductive tape is connected to one end part of the winding and to the magnetic ring. A gap is provided at at least one place on the magnetic ring. The winding direction of the conductive tape is inverted at at least one place.
Claims
1. A stationary induction apparatus comprising: a main body tank; and a stationary induction apparatus main body including: an iron core having at least two legs; and a winding individually wound around each of the legs, wherein the stationary induction apparatus main body is accommodated in the main body tank; an insulating cooling medium is sealed in the main body tank, and the stationary induction apparatus main body is immersed in the insulating cooling medium; the iron core is fastened and fixed with an upper iron-core fastener and a lower iron-core fastener; an insulating winding support is provided between the upper iron-core fastener and the winding and between the lower iron-core fastener and the winding, the insulating winding support being in contact with and covering an inner surface of the upper iron-core fastener and an inner surface of the lower iron-core fastener; an electrostatic shield ring is provided on at least one of an upper end part and a lower end part of the winding; the winding and the electrostatic shield ring are fixed with the insulating winding support and at least one of the upper iron-core fastener and the lower iron-core fastener; a magnetic ring configured of a magnetic substance is provided inside the electrostatic shield ring; the electrostatic shield ring is configured in a manner that a conductive layer is provided to cover the magnetic ring; the conductive layer is configured using a conductive tape being wound around the magnetic ring; and in winding the conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
2. The stationary induction apparatus according to claim 1, wherein a gap is provided at at least one place in a circumferential direction of the magnetic ring.
3. The stationary induction apparatus according to claim 2, wherein the conductive tape is electrically connected to the upper end part or the lower end part of the winding and to the magnetic ring.
4. The stationary induction apparatus according to claim 3, further comprising a plurality of insulating rings provided inside the electrostatic shield ring, the plurality of insulating rings being configured to vertically fix the magnetic ring.
5. The stationary induction apparatus according to claim 2, wherein a winding direction of the conductive tape is inverted at at least one place; and in winding the inverted conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
6. A stationary induction apparatus comprising: a main body tank; and a stationary induction apparatus main body including: an iron core having at least two legs; and a winding individually wound around each of the legs, wherein the stationary induction apparatus main body is accommodated in the main body tank; an insulating cooling medium is sealed in the main body tank, and the stationary induction apparatus main body is immersed in the insulating cooling medium; the iron core is fastened and fixed with an upper iron-core fastener and a lower iron-core fastener; an insulating winding support is provided between the upper iron-core fastener and the winding and between the lower iron-core fastener and the winding; an electrostatic shield ring is provided on at least one of an upper end part and a lower end part of the winding; the winding and the electrostatic shield ring are fixed with the upper iron-core fastener or the lower iron-core fastener and the winding support; a magnetic ring configured of a magnetic substance is provided inside the electrostatic shield ring; the electrostatic shield ring is configured in a manner that a conductive layer is provided to cover the magnetic ring; the conductive layer is configured using a conductive tape being wound around the magnetic ring; and in winding the conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together; wherein the conductive tape is electrically connected to the upper end part or the lower end part of the winding and to the magnetic ring.
7. The stationary induction apparatus according to claim 6, wherein a gap is provided at at least one place in a circumferential direction of the magnetic ring.
8. The stationary induction apparatus according to claim 6, further comprising a plurality of insulating rings provided inside the electrostatic shield ring, the plurality of insulating rings being configured to vertically fix the magnetic ring.
9. The stationary induction apparatus according to claim 7, further comprising a plurality of insulating rings provided inside the electrostatic shield ring, the plurality of insulating rings being configured to vertically fix the magnetic ring.
10. The stationary induction apparatus according to claim 6, wherein a winding direction of the conductive tape is inverted at at least one place; and in winding the inverted conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
11. The stationary induction apparatus according to claim 7, wherein a winding direction of the conductive tape is inverted at at least one place; and in winding the inverted conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
12. The stationary induction apparatus according to claim 8, wherein a winding direction of the conductive tape is inverted at at least one place; and in winding the inverted conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
13. The stationary induction apparatus according to claim 9, wherein a winding direction of the conductive tape is inverted at at least one place; and in winding the inverted conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
14. A stationary induction apparatus comprising: a main body tank; and a stationary induction apparatus main body including: an iron core having at least two legs; and a winding individually wound around each of the legs, wherein the stationary induction apparatus main body is accommodated in the main body tank; an insulating cooling medium is sealed in the main body tank, and the stationary induction apparatus main body is immersed in the insulating cooling medium; the iron core is fastened and fixed with an upper iron-core fastener and a lower iron-core fastener; an insulating winding support is provided between the upper iron-core fastener and the winding and between the lower iron-core fastener and the winding; an electrostatic shield ring is provided on at least one of an upper end part and a lower end part of the winding; the winding and the electrostatic shield ring are fixed with the upper iron-core fastener or the lower iron-core fastener and the winding support; a magnetic ring configured of a magnetic substance is provided inside the electrostatic shield ring; the electrostatic shield ring is configured in a manner that a conductive layer is provided to cover the magnetic ring; the conductive layer is configured using a conductive tape being wound around the magnetic ring; and in winding the conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together; and further comprising a plurality of insulating rings provided inside the electrostatic shield ring, the plurality of insulating rings being configured to vertically fix the magnetic ring.
15. The stationary induction apparatus according to claim 14, wherein a gap is provided at at least one place in a circumferential direction of the magnetic ring.
16. The stationary induction apparatus according to claim 14, wherein a winding direction of the conductive tape is inverted at at least one place; and in winding the inverted conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
17. The stationary induction apparatus according to claim 15, wherein a winding direction of the conductive tape is inverted at at least one place; and in winding the inverted conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(7) A stationary induction apparatus according to an embodiment of the present invention includes a main body tank, and a stationary induction apparatus main body including an iron core having at least two legs and a winding individually wound around each of the legs. In the apparatus, the stationary induction apparatus main body is accommodated in the main body tank. An insulating cooling medium is sealed in the main body tank, and the stationary induction apparatus main body is immersed in the insulating cooling medium. The iron core is fastened and fixed with an upper iron-core fastener and a lower iron-core fastener. An insulating winding support is provided between the upper iron-core fastener and the winding and between the lower iron-core fastener and the winding. An electrostatic shield ring is provided on at least one of an upper end part and a lower end part of the winding. The winding and the electrostatic shield ring are fixed with the upper iron-core fastener or the lower iron-core fastener and the winding support. A magnetic ring configured of a magnetic substance is provided inside the electrostatic shield ring. The electrostatic shield ring is configured in a manner that a conductive layer is provided to cover the magnetic ring. The conductive layer is configured using a conductive tape wound around the magnetic ring. In winding the conductive tape, an insulating tape having a width equal to or greater than a width of the conductive tape is laid on an inner side of the conductive tape, and the insulating tape and the conductive tape are wound together. With this configuration, a stationary induction apparatus is achieved, the apparatus with which the insulation between the turns of the conductive tape is removed to achieve a conductive layer having a small magnetic flux linked area for reducing eddy current losses, the winding direction of the conductive tape is changed in the process of winding the conductive tape to reduce the induced electromotive force that is induced on the conductive tape, and an electric current in the conductive tape is reduced, the electric current produced due to the induced electromotive force when unexpected electrical continuity is produced. Thus, the stationary induction apparatus reduces mechanical force in the axial direction that is produced in the winding, reduces the amount of materials of electric wire, reduces eddy current losses at the end part of the winding, reduces eddy current losses in the electrostatic shield ring, and provides no increase in the distance between the winding and the iron core yoke.
(8) In the following, a preferred embodiment of the present invention will be described with reference to the drawings. The embodiment below is merely an example that will not limit the embodiment of the present invention.
First Embodiment
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(10) A cross sectional view of the configuration of the stationary induction apparatus main body in
(11) The upper and lower parts of the iron core are respectively fastened and fixed with the upper iron-core fastener 9 and the lower iron-core fastener 10. The winding upper support 11 is disposed above the winding 2, and the winding lower support 12 is disposed below the winding 2. The electrostatic shield ring 3 is disposed between the winding 2 and the winding upper support 11 or between the winding 2 and the winding lower support 12. The winding 2 and the electrostatic shield ring 3 are vertically fixed with the winding upper support 11 and the winding lower support 12.
(12) The embodiment is specifically applied to the structure of the electrostatic shield ring 3 in
(13) The effect of the embodiment will be described with reference to
(14) As illustrated in
(15) The embodiment is configured in which the conductive tape 6 wound around the magnetic ring 4 and the insulating rings 5 is the winding and the magnetic ring 4 is the iron core with respect to the flow of the leakage fluxes 14. Thus, the leakage fluxes 14 generate the induced electromotive force between the turns of the conductive tape 6. When the number of turns of the conductive tape 6 is large, the potential is high at the unconnected end of the conductive tape 6. When the number of turns is a few hundred turns, for example, the case is also likely to be assumed in which the potential at the non-grounded end is the order of kilovolt.
(16) In the embodiment, in the case where such a potential causes a problem, the winding direction of the conductive tape 6 is inverted in the midway point as illustrated in
(17) As described above, according to the embodiment, a reduction in the required winding strength is enabled with regard to the electromagnetic force that is generated on the winding when a short-circuit current is carried through the stationary induction apparatus, a reduction in the size of the apparatus main body is enabled, and a reduction in losses in the winding and a reduction in losses in the electrostatic shield ring are enabled, achieving a cost reduction and a reduction in losses.
(18) Note that, the present invention is not limited to the foregoing embodiment, and includes various exemplary modifications and alterations. For example, the foregoing embodiment is described in detail for easily understanding the present invention, and is a non-limiting embodiment that does not have to include all the configurations described above. A part of the configuration of an embodiment may be replaceable with the configuration of another embodiment, and the configuration of an embodiment may include the addition of the configuration of another embodiment. A part of the configuration of an embodiment may be added to, removed from, or replaced with another configuration.