Stationary induction electric apparatus
11282635 ยท 2022-03-22
Assignee
Inventors
- Satoshi Ichimura (Tokyo, JP)
- Daigo KOMESU (Tokyo, JP)
- Shinji FUJITA (Tokyo, JP)
- Hiroshi MORITA (Tokyo, JP)
- Li Lu (Tokyo, JP)
Cpc classification
H01F27/324
ELECTRICITY
International classification
Abstract
An object of the present invention is to provide a stationary induction electric apparatus that can improve insulating performance with a few additional structures. In the stationary induction electric apparatus comprising: an iron core 1; a low-voltage coil conductor 400 wound on the iron core; an insulator 3 enclosing the low-voltage coil conductor; and a high-voltage coil conductor 2 which is wound on the insulator and to which a voltage is applied from the outside, a first shield conductor 5 wound adjacent to the inner peripheral surface of the insulator, a second shield conductor 4 wound adjacent to the outer peripheral surface of the insulator, one end of the first shield conductor, and one end of the second shield conductor are electrically connected to any region of the high-voltage coil conductor.
Claims
1. A stationary induction electric apparatus comprising: an iron core; an insulator enclosing the iron core; and a coil conductor which is wound on the insulator and to which a voltage is applied from the outside, wherein a shield conductor is wound adjacent to the inner peripheral surface or the outer peripheral surface of the insulator, and one end of the shield conductor is electrically connected to any region of the coil conductor; a low-voltage coil conductor wound on the iron core; an insulator enclosing the low-voltage coil conductor; a high-voltage coil conductor which is wound on the insulator and to which a voltage is applied from the outside; wherein a first shield conductor wound adjacent to the inner peripheral surface of the insulator and a second shield conductor wound adjacent to the outer peripheral surface of the insulator, and one end of the first shield conductor and one end of the second shield conductor are electrically connected to any region of the high-voltage coil conductor; wherein the number of turns of the second shield conductor is larger than that of the first shield conductor; and wherein a semiconductive material is arranged around the first shield conductor.
2. The stationary induction electric apparatus according to claim 1, wherein the first shield conductor and the second shield conductor become a mirror image at the cross section perpendicular to the axis direction of the iron core in the middle of the vertical direction.
3. The stationary induction electric apparatus according to claim 2, comprising: a third shield conductor wound on the high-voltage coil conductor; a second insulator enclosing the third shield conductor; and an electrostatic shield enclosing the second insulator.
4. The stationary induction electric apparatus according to claim 3, wherein a voltage is applied from the outside using a cable passing between the high-voltage coil conductor and the third shield conductor.
5. The stationary induction electric apparatus according to claim 4, wherein a shield covering the outermost periphery of the cable is peeled off from the cable arranged in a space sandwiched between the high-voltage coil conductor and the third shield conductor.
6. The stationary induction electric apparatus according to claim 5, wherein the other end of the third shield conductor is electrically connected to any region of the high-voltage coil conductor.
7. The stationary induction electric apparatus according to claim 6, wherein the number of turns of the third shield conductor is equal to that of the high-voltage coil conductor.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DESCRIPTION OF EMBODIMENTS
(15) Hereinafter, preferred embodiments of a stationary induction electric apparatus of the present invention will be described in detail using the drawings. It should be noted that constitutional elements having the same functions will be followed by the same signs in all the drawings for explaining the embodiments of the invention, and the repeated explanation thereof will be omitted.
First Embodiment
(16) A first embodiment will be described using
(17)
(18) A stationary induction electric apparatus 500 shown in
(19) Next, a configuration of the coil unit 5001 in the embodiment will be described in detail using
(20) As shown in
(21) In the case of the lowermost stage, four turns are wound in the order of turns 2397b, 2398b, 2399b, and 2400b from the inner side towards the outer side in a clockwise manner when viewed from the upper direction, and are electrically connected to an external voltage application end 100. In addition, 400 turns in total are wound to configure the upper part 2b in the embodiment. The lower part 2a is configured to become a mirror image of the upper part 2b at the central cross section. Thus, in the case of the disk coils in the uppermost stage, four turns are wound in the order of turns 2400a, 2399a, 2398a, and 2397a from the outer side towards the inner side in a counterclockwise manner when viewed from the upper direction starting from the turn 2400a at the outermost periphery electrically connected to the external voltage application end 100. In the case of the lowermost stage, four turns are wound in the order of turns 2004a, 2003a, 2002a, and 2001a from the inner side towards the outer side in a counterclockwise manner when viewed from the upper direction, and the turn 2001a is grounded.
(22) As shown in
(23) In the shield conductor 4a, 320 turns in total are wound from the upper side towards the lower side ranging from the uppermost turn 4001b to the lowermost turn 4320b in a clockwise manner when viewed from the upper direction. In addition, the uppermost turn 4001b is grounded, and the lowermost turn 4320b is opened. The shield conductor 4a is configured to become a mirror image of the shield conductor 4b at the central cross section in the vertical direction. The uppermost turn 4320a is opened, and the lowermost turn 4001a is grounded. As similar to the above, in each of the shield conductors 5a and 5b, 80 turns in total are wound, and the shield conductors 5a and 5b become a mirror image at the central cross section in the vertical direction. It should be noted that a semiconductive material 6 is arranged around the shield conductors 5a and 5b, and has a function of moderating the potential distribution between the turns that are relatively separated from each other.
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(25) Next, an operation of the stationary induction electric apparatus of the embodiment will be described using
(26) When an alternating voltage having a commercial frequency of 50 Hz or 60 Hz is applied to the external voltage application end 100 shown in
(27) As shown in
(28) On the other hand, a potential part in which the potential distribution in the vertical direction is high in the middle and is gently reduced towards the ends up to the ground potential is realized. In general, the creepage surface of the insulator becomes a weak point in insulation. However, the insulation can be easily kept by making the potential gradient (electric field) gentle as in the embodiment. In addition, the upper and lower ends serve as the ground potential, and it is not necessary to consider the insulation between the upper and lower ends and the iron core.
(29) According to the embodiment, it is possible to provide a stationary induction electric apparatus that can improve the insulating performance with a few additional structures.
Second Embodiment
(30) A second embodiment will be described using
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(32) In the embodiment, the shield unit 20 is configured using an insulator 7, shield conductors 8a and 8b wound adjacent to the inner peripheral side of the insulator 7, and an electrostatic shield 9 arranged adjacent to the outer peripheral side of the insulator 7. The electrostatic shield 9 is divided in the circumferential direction to suppress an eddy current when an alternating voltage is applied. The total number of turns of the shield conductors 8a and 8b is 400 turns same as the high-voltage coils 2a and 2b.
(33) The potential distribution in the vertical direction near the high-voltage coil and the shield unit 20 is shown as in
(34) In addition, an external voltage is applied to the high-voltage coil using the cable 50 passing between the high-voltage coil 2 and the shield unit 20. Thus, in the case where a shield 32 covering the outermost periphery of the cable 50 is peeled off and a remaining insulator 33 is inserted from the upper direction to the lower direction, the electric field on the creepage surface of the insulator can be reduced, and there is an effect that a special insulation reinforcement process is not needed.
(35) Although the connection method of the shield conductors 4a, 4b, 5a, and 5b configuring the shield unit 10 is changed, the potential distribution is not largely different from those shown in
(36) In addition to the effect of the first embodiment, the potential at the outermost periphery of each of the coil units 5001, 5002, and 5003 can be the ground potential and the dimension between the coil units can be shortened in the embodiment.
(37) The present invention is not limited to the above-described embodiments, and includes various modified examples. For example, the above-described embodiments have been described in detail to easily understand the present invention, and are not necessarily limited to those including all the above-described configurations. In addition, some configurations of each embodiment can be added to, deleted from, or replaced by other configuration.
LIST OF REFERENCE SIGNS
(38) 1: iron core 2: high-voltage coil 3, 7, 33: insulator 4a, 4b, 5a, 5b, 8a, 8b: shield conductor 6: semiconductive material 9: electrostatic shield 10, 20: shield unit 32: shield 50: cable 100: external voltage application end 400: low-voltage coil 500: stationary induction electric apparatus 5001, 5002, 5003: coil unit