Superconducting current limiter having composite insulation structure
11250975 · 2022-02-15
Assignee
- GUANGDONG POWER GRID CO., LTD. (Guangdong, CN)
- ELECTRIC POWER RESEARCH INSTITUTE OF GUANGDONG POWER GRID CO., LTD. (Guangdong, CN)
Inventors
- Meng Song (Guangdong, CN)
- Lianhong Zhong (Guangdong, CN)
- Bing Zhao (Guangdong, CN)
- Li Li (Guangdong, CN)
- Yunsong Luo (Guangdong, CN)
- Yajun Xia (Guangdong, CN)
- Wenfeng Cheng (Guangdong, CN)
- Zhengjun Shi (Guangdong, CN)
- Shaotao Dai (Guangdong, CN)
- Bangzhu Wang (Guangdong, CN)
- Lei Hu (Guangdong, CN)
- Tao Ma (Guangdong, CN)
- Teng Zhang (Guangdong, CN)
Cpc classification
H01B17/58
ELECTRICITY
International classification
Abstract
Provided is a superconducting fault current limiter having a composite insulating structure. The superconducting fault current limiter includes: a superconducting current limiting unit, an inner composite insulating cylinder, an outer composite insulating cylinder and a low-temperature container. The outer composite insulating cylinder is sleeved inside the low-temperature container; the inner composite insulating cylinder is sleeved inside the outer composite insulating cylinder; the superconducting current limiting unit is sleeved inside the inner composite insulating cylinder. The superconducting current limiting unit and the inner composite insulating cylinder are securely connected through a first support, and the low-temperature container and the outer composite insulating cylinder are securely connected through a second support.
Claims
1. A superconducting fault current limiter having a composite insulating structure, comprising: a superconducting current limiting unit, an inner composite insulating cylinder, an outer composite insulating cylinder and a low-temperature container; wherein the outer composite insulating cylinder is sleeved inside the low-temperature container; the inner composite insulating cylinder is sleeved inside the outer composite insulating cylinder; the superconducting current limiting unit is sleeved inside the inner composite insulating cylinder; wherein the superconducting current limiting unit and the inner composite insulating cylinder are securely connected through a first support, and the low-temperature container and the outer composite insulating cylinder are securely connected through a second support; and wherein the inner composite insulating cylinder comprises an inner equipotential bonding conductor, an inner insulating layer and an inner conductive layer from inside to outside along a radial direction; the inner equipotential bonding conductor connects the superconducting current limiting unit to the inner conductive layer; and the inner conductive layer is securely wound around an outer side of the inner insulating layer.
2. The superconducting fault current limiter having a composite insulating structure of claim 1, wherein the inner conductive layer is securely wound around the outer side of the inner insulating layer in a half-lapping manner.
3. The superconducting fault current limiter having a composite insulating structure of claim 1, wherein the inner conductive layer and the outer side of the inner insulating layer are securely connected through a low-temperature epoxy resin.
4. The superconducting fault current limiter having a composite insulating structure of claim 1, wherein a first end of the first support is secured to the superconducting current limiting unit through a bolt; and a second end of the first support is secured to the inner insulating layer through a non-metallic bolt.
5. The superconducting fault current limiter having a composite insulating structure of claim 1, wherein a number of first supports is at least two; and the at least two first supports are radially distributed in an array along a circumference.
6. The superconducting fault current limiter having a composite insulating structure of claim 1, wherein the outer composite insulating cylinder comprises an outer insulating layer, an outer conductive layer and an outer equipotential bonding conductor from inside to outside along a radial direction; the outer conductive layer is securely wound around an outer side of the outer insulating layer; and the outer equipotential bonding conductor connects the low-temperature container to the outer conductive layer.
7. The superconducting fault current limiter having a composite insulating structure of claim 6, wherein the outer conductive layer and the outer side of the outer insulating layer are securely connected through a low-temperature epoxy resin.
8. The superconducting fault current limiter having a composite insulating structure of claim 6, wherein a first end of the second support is secured to a sidewall of the low-temperature container through a bolt; and a second end of the second support is secured to the outer insulating layer through a non-metallic bolt.
9. The superconducting fault current limiter having a composite insulating structure of claim 6, wherein a number of second supports is at least two; and the at least two second supports are radially distributed in an array along a circumference.
Description
BRIEF DESCRIPTION OF DRAWINGS
(1) To illustrate the solutions in the embodiments of the present disclosure or the solutions in the existing art more clearly, drawings used in the description of the embodiments or the existing art will be briefly described below. Apparently, the drawings described below illustrate only part of the embodiments of the present disclosure, and those of ordinary skill in the art may obtain other drawings based on the drawings described below without any creative work.
(2)
REFERENCE LIST
(3) 1 superconducting current limiting unit 2 low-temperature container 3 inner composite insulating cylinder 4 outer composite insulating cylinder 31 inner insulating layer 32 inner conductive layer 33 inner equipotential bonding conductor 34 first support 41 outer insulating layer 42 outer conductive layer 43 outer equipotential bonding conductor 44 second support
DETAILED DESCRIPTION
(4) A superconducting fault current limiter having a composite insulating structure is provided in embodiments of the present application, preventing the generation of bubbles between electrodes and improving the insulating effect of a resistive type superconducting fault current limiter.
(5) To make the purposes, features and advantages of the present application more apparent and easier to understand, solutions in the embodiments of the present application will be described clearly and completely in conjunction with the drawings in the embodiments of the present application. Apparently, the embodiments described below are part, not all of the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative work are within the scope of the present application.
(6) Referring to
(7) The outer composite insulating cylinder 4 is sleeved inside the low-temperature container 2.
(8) The inner composite insulating cylinder 3 is sleeved inside the outer composite insulating cylinder 4.
(9) The superconducting current limiting unit 1 is sleeved inside the inner composite insulating cylinder 3.
(10) The superconducting current limiting unit 1 and the inner composite insulating cylinder 3 are securely connected through a first support 34; the low-temperature container 2 and the outer composite insulating cylinder 4 are securely connected through a second support 44.
(11) It is to be noted that the inner composite insulating cylinder 3 and the outer composite insulating cylinder 4 each are a cylinder with both ends open, the superconducting current limiting unit 1 is wrapped inside the inner composite insulating cylinder 3, and the inner sidewall of the low-temperature container 2 covers the outer sidewall of the outer composite insulating cylinder 4.
(12) According to the embodiments of the present application, the outer composite insulating cylinder 4 connected to the low-temperature container 2 blocks and keeps the bubbles generated by the low-temperature container 2 between the low-temperature container 2 and the outer composite insulating cylinder 4, and the inner composite insulating cylinder 3 connected to the superconducting current limiting unit 1 blocks and keeps the bubbles generated by the superconducting current limiting unit 1 between the superconducting current limiting unit 1 and the inner composite insulating cylinder 3, blocking the radial diffusion path of the bubbles in the space of liquid nitrogen, reducing the impact of the bubbles on the main insulation, preventing the generation of bubbles between electrodes, and improving the insulating effect of the resistive type superconducting fault current limiter.
(13) Furthermore, the inner composite insulating cylinder 3 includes an inner equipotential bonding conductor 33, an inner insulating layer 31 and an inner conductive layer 32 from inside to outside along a radial direction; the inner equipotential bonding conductor 33 connects the superconducting current limiting unit 1 to the inner conductive layer 32; the inner conductive layer 32 is securely wound around an outer side of the inner insulating layer 31.
(14) It is to be noted that the inner insulating layer 31 may be made of an epoxy resin and glass fiber composite material having a high strength at low temperature, and for a large structural member, may be formed by winding and curing glass fibers and a low-temperature epoxy resin on a mold.
(15) The inner insulating layer 31 needs to match the superconducting current limiting unit 1 in dimension. If the diameter and the length of the superconducting current limiting unit 1 are D.sub.sfcl and L.sub.sfcl respectively, the diameter and the length of the inner insulating layer 31 are generally (D.sub.sfcl+0.2 m) and (L.sub.sfcl+0.4 m) respectively.
(16) To improve the bubble blocking performance of the inner composite insulating cylinder 3, the sidewall of the inner insulating layer 31 must not have holes.
(17) The inner conductive layer 32 is made of a semi-conductive material and includes, but is not limited to, semi-conductive carbon paper, a semi-conductive nylon tape, or a semi-conductive non-woven tape.
(18) The inner conductive layer 32 is wound around the outer side of the inner insulating layer 31, and it merely needs to satisfy that the outer side of the inner insulating layer 31 is continuously covered by the inner conductive layer 32.
(19) The inner equipotential bonding conductor 33 is a metal conductor for connecting the superconducting current limiting unit 1 to the inner conductive layer 32 to ensure an equipotential between the superconducting current limiting unit 1 and the inner conductive layer 32.
(20) The inner equipotential bonding conductor 33 is merely used for potential bonding and does not need to carry currents, and may be made of a copper or aluminum braid of 10 to 30 mm.sup.2. The inner equipotential bonding conductor 33 has one end connected to the superconducting current limiting unit 1 and the other end connected to the inner conductive layer 32.
(21) Furthermore, the inner conductive layer 32 is securely wound around the outer side of the inner insulating layer 31 in a half-lapping manner.
(22) Furthermore, the inner conductive layer 32 and the outer side of the inner insulating layer 31 are securely connected through a low-temperature epoxy resin.
(23) It is to be noted that to improve reliability of the connection at low temperature, a low-temperature epoxy resin may be brushed between the inner conductive layer 32 and the inner insulating layer 31 for securing. Furthermore, a first end of the first support 34 is secured to the superconducting current limiting unit 1 through a bolt; and a second end of the first support 34 is secured to the inner insulating layer 31 through a non-metallic bolt.
(24) It is to be noted that the first support 34 is a non-metallic insulating support having a certain strength at low temperature, is used for securing the inner insulating layer 31 to the superconducting current limiting unit 1, and may be made of fiberglass.
(25) The first end of the first support 34 is secured to the skeleton of the superconducting current limiting unit 1 through a bolt, and the second end of the first support 34 is secured to the inner insulating layer 31 through a non-metallic bolt, whereby the relative position between the inner insulating layer 31 and the superconducting current limiting unit 1 can be fixed.
(26) Furthermore, the number of first supports 34 is at least two.
(27) The at least two first supports 34 are radially distributed in an array along a circumference.
(28) It is to be noted that in the embodiment, four first supports 34 are provided and radially distributed in an array along a circumference. The actual number can be determined after the strength of the whole structure is checked.
(29) Furthermore, the outer composite insulating cylinder 4 includes an outer insulating layer 41, an outer conductive layer 42 and an outer equipotential bonding conductor 43 from inside to outside along a radial direction; the outer conductive layer 42 is securely wound around an outer side of the outer insulating layer 41; and the outer equipotential bonding conductor 43 connects the low-temperature container 2 to the outer conductive layer 42.
(30) It is to be noted that the outer insulating layer 41 may be made of an epoxy resin and glass fiber composite material having a high strength at low temperature, and for a large structural member, the outer insulating layer 41 may be formed by winding and curing glass fibers and a low-temperature epoxy resin on a mold.
(31) The outer insulating layer 41 needs to match the low-temperature container 2 of the superconducting fault current limiter in dimension. If the inner diameter of the low-temperature container 2 is D.sub.c and the length of the superconducting current limiting unit 1 is L.sub.sfcl, the diameter of the outer insulating layer 41 is generally (D.sub.c−0.2 m) and the length of the outer insulating layer 41 is generally (L.sub.sfcl+1.0 m).
(32) To improve the bubble blocking performance of the outer composite insulating cylinder 4, the sidewall of the outer insulating layer 41 must not have holes.
(33) The outer conductive layer 42 is made of a semi-conductive material and includes, but is not limited to, semi-conductive carbon paper, a semi-conductive nylon tape, or a semi-conductive non-woven tape.
(34) The outer conductive layer 42 is wound around the outer side of the inner insulating layer 41, and it merely needs to satisfy that the outer side of the outer insulating layer 41 is continuously covered by the outer conductive layer 42.
(35) The outer equipotential bonding conductor 43 is a metal conductor for connecting the low-temperature container 2 to the outer conductive layer 42 to ensure an equipotential between the low-temperature container 2 and the outer conductive layer 42.
(36) The outer equipotential bonding conductor 43 is merely used for potential bonding and does not need to carry currents, and may be made of a copper or aluminum braid of 10 to 30 mm.sup.2. The outer equipotential bonding conductor 43 has one end connected to the low-temperature container 2 and the other end connected to the outer conductive layer 42.
(37) Furthermore, the outer conductive layer 42 and the outer side of the outer insulating layer 41 are securely connected through a low-temperature epoxy resin.
(38) It is to be noted that to improve reliability of the connection at low temperature, a low-temperature epoxy resin material may be brushed between the semi-conductive material and the outer insulating layer 41 for securing.
(39) Further, a first end of the second support 44 is secured to a sidewall of the low-temperature container 2 through a bolt; and a second end of the second support 44 is secured to the outer insulating layer 41 through a non-metallic bolt.
(40) It is to be noted that the second support 44 is a non-metallic insulating support having a certain strength at low temperature, is used for securing the outer insulating layer 41 to the low-temperature container 2, and may be made of fiberglass.
(41) The first end of the second support 44 is secured to the sidewall of the low-temperature container 2 through the bolt, and the second end of the second support 44 is secured to the outer insulating layer 41 through the non-metallic bolt, whereby the relative position between the outer insulating layer 41 and the low-temperature container 2 can be fixed.
(42) Furthermore, the number of second supports 44 is at least two.
(43) The at least two second supports 44 are radially distributed in an array along a circumference.
(44) It is to be noted that in the embodiment, four second supports 44 are provided and radially distributed in an array along a circumference. The actual number can be determined after the strength of the whole structure is checked.
(45) In the embodiment, the superconducting current limiting unit 1 is a 160 kV direct-current component. The diameter D.sub.sfcl and the length L.sub.sfcl of the superconducting current limiting unit 1 are 1.0 m and 3.0 m respectively, so the inner insulating layer 31 has a diameter of 1.2 m and a length of 3.4 m. The inner insulating layer 31 is made of a G10 high-density epoxy resin composite material having a high strength at low temperature. The inner conductive layer 32 is wound with 30 mm wide carbon paper in a half-lapping manner with a thickness of 0.2 mm. The inner equipotential bonding conductor 33 is made of a copper braid of 16 mm.sup.2, and have two ends secured to the equipotential shielding ring of the superconducting current limiting unit 1 and the inner conductive layer 32 through a copper nose and the bolt, respectively. The first supports 34 are eight non-metallic rods made of G10 materials, which are equally divided into two groups respectively on two sides of the superconducting current limiting unit 1 for securing the inner insulating layer 31, and are evenly distributed along the circumferential direction of an end during securing. That is, one is placed every 90 degrees, and is secured by a non-metallic bolt.
(46) The low-temperature container 2 is a vacuum insulated thermostat made of stainless steel. The inner diameter D.sub.c of the low-temperature container 2 is 1.6 m and the length L.sub.sfcl of the superconducting current limiting unit 1 is 3.0 m, so the outer insulating layer 41 has a diameter of 1.4 m and a length of 4.0 m. The outer insulating layer 41 is made of a G10 high-density epoxy resin composite material having a high strength at low temperature. The outer conductive layer 42 is wound with 30 mm wide carbon paper in a half lapping manner with a thickness of 0.2 mm. The outer equipotential bonding conductor 43 is made of a copper braid of 16 mm.sup.2, and have two ends secured to the sidewall of the low-temperature container 2 and the outer conductive layer 42 through a copper nose and the bolt, respectively. The second supports 44 are eight non-metallic rods made of G10 materials, are equally divided into two groups respectively on two sides of the outer insulating layer 41 for securing the outer insulating layer 41 to the low-temperature container 2, and are evenly distributed along the circumferential direction of an end during securing. That is, one is placed every 90 degrees, and is secured by a non-metallic bolt.
(47) With the above structure adopted and according to the withstand voltage requirement of 160 kV direct-current equipment of up to 300 kV, an electrode pair is formed of the inner conductive layer 32 and the outer conductive layer 42, and it can be seen from the above dimensions that an electrode spacing is 100 mm. The electric field strength is 3.0 kV/mm according to an electric field calculation formula. Since the medium between the electrodes is complete liquid nitrogen, no nitrogen bubbles will be generated, thus satisfying the insulation requirements.
(48) As described above, the preceding embodiments are only used to explain the solutions of the present application and not to be construed as limitations thereto; though the present application has been described in detail with reference to the preceding embodiments, those of ordinary skill in the art should understand that modifications can be made on the solutions in the preceding embodiments or equivalent substitutions can be made on part of the features therein; and such modifications or substitutions do not make the corresponding solutions depart from the spirit and scope of the solutions in the embodiments of the present application.