Long-distance high-voltage cable grounding joint
By designing a grounding joint for long-distance high-voltage cables, using the bonding connection between conductive sheets and metal sheaths and sealing structures for protective shells, the problem of reduced cable stability and reliability caused by the large number of direct-through joints is solved, and the reduction of induction voltage and the improvement of long-term use of cables is achieved.
Patent Information
- Application Number
- CN202510578357.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-07
- Publication Date
- 2025-06-06
- Estimated Expiration
- 2045-05-07
AI Technical Summary
When laying long-distance high-voltage cables, there are many direct connections, which leads to reduced stability and reliability of cables, and poor sealing and easy to cause leakage accidents.
A long-distance high-voltage cable grounding joint is designed, including a bonding connection between the conductive sheet and the metal sheath, a connection between the lead-out part and the grounding wire, and a protective shell wrap to form a sealing cavity to realize the grounding of the metal sheath inside the cable.
Without cutting off the cable and destroying the metal sheath, the induction voltage of long-distance cables is reduced, the number of through connectors is reduced, the stability and reliability of cable use are improved, and the corrosion of conductive sheets and metal sheath is avoided through protective shells.
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Figure CN120109545A_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of cable grounding, in particular to a long-distance high-voltage cable grounding joint. Background Art
[0002] When the high-voltage cable is in operation, an alternating current flows through the core, and an alternating magnetic field is generated around the alternating current, forming a magnetic flux that is interconnected with the cable loop, generating an induced voltage on the metal sheath of the cable. Excessive induced voltage will threaten the construction personnel and the normal operation of the cable; the induced voltage on the metal sheath of the cable will increase synchronously with the increase of the length of the cable. In engineering, segmented cables are usually used, and the segmented cables are connected through straight-through connectors to achieve the laying of long-distance high-voltage cables, and each straight-through connector will be grounded accordingly to lead the induced voltage on the metal sheath to the ground to reduce the induced voltage on the metal sheath of the cable; however, this method results in a large number of straight-through connectors when laying long-distance cables, and straight-through connectors are often the weakest link in the cable, with poor sealing and prone to leakage accidents, which increases the safety hazards of the cable and reduces the stability and reliability of the power supply. Summary of the invention
[0003] The purpose of the present invention is to provide a long-distance high-voltage cable grounding joint, which is used to solve the problem in the prior art that the metal sheath of a segmented cable is grounded using a straight-through joint, which reduces the stability of the cable.
[0004] In order to achieve the above object, an embodiment of the present application provides a long-distance high-voltage cable grounding joint for grounding a metal sheath inside a cable, comprising: The conductive sheet is bonded and connected to the outer surface of the metal sheath; A lead-out portion having a first end and a second end arranged opposite to each other, wherein the first end is connected to the conductive sheet; A protective shell is sleeved on the outer circumference of the cable, and the inner wall of the protective shell is spaced apart from the metal sheath so that a sealed cavity is formed between the protective shell and the metal sheath. The metal sheath, the conductive sheet, and part of the lead-out portion are accommodated in the sealed cavity, and the second end extends outward from the sealed cavity for connection with a grounding wire.
[0005] In some embodiments of the present application, the long-distance high-voltage cable grounding joint has an X-direction extending along the length direction of the cable; The protective shell comprises a first cylinder and a second cylinder connected to each other, the first cylinder extends along the X direction, and the second cylinder protrudes outward from the first cylinder in a direction away from the cable; the length of the first cylinder along the X direction is greater than the length of the metal sheath, and both ends of the first cylinder along the X direction are sleeved on the outer peripheral wall of the cable, so that the space between the first cylinder and the metal sheath constitutes a first cavity; The second cylinder has a second cavity for accommodating the lead-out portion, the first cavity is communicated with the second cavity, and the first cavity and the second cavity form the sealed cavity; the second end extends outward from the second cavity.
[0006] In some embodiments of the present application, the long-distance high-voltage cable grounding joint further includes a first tube body and two second tube bodies; The first tube body includes an inner embedded section and two protruding sections. The inner embedded section is accommodated in the first cavity. The two protruding sections are respectively connected to two ends of the inner embedded section. The protruding section protrudes outward from the first cavity. One end of the protruding section protruding outward from the first cavity is connected to the second tube body.
[0007] In some embodiments of the present application, the first tube body and the two second tube bodies constitute a ventilation member, and a plurality of the ventilation members are provided, and the plurality of the ventilation members are spaced apart around the central axis of the cable.
[0008] In some embodiments of the present application, the inner embedded segment is a conductor, and the outer peripheral wall of each inner embedded segment is fitted and connected to the metal sheath; The long-distance high-voltage cable grounding joint also includes an annular conductive member, and the axial direction of the annular conductive member extends along the X direction. The inner side wall of the annular conductive member is sleeved on the outer periphery of each of the inner embedded segments, and the annular conductive member is electrically connected to the conductive sheet.
[0009] In some embodiments of the present application, a plurality of the annular conductive members are provided, and the plurality of the annular conductive members are spaced apart along the X direction.
[0010] In some embodiments of the present application, the first cavity and the second cavity are filled with conductive colloid.
[0011] In some embodiments of the present application, the first cylinder includes a first half cylinder portion and a second half cylinder portion connected to each other; The inner side walls of the first semi-cylinder and the second semi-cylinder at both ends along the X direction are closely connected to the outer peripheral wall of the cable, so that the space between the first semi-cylinder, the second semi-cylinder and the metal sheath constitutes the first cavity; The second cylinder is connected to the first semi-cylinder portion or the second semi-cylinder portion.
[0012] In some embodiments of the present application, the first semi-cylinder portion is provided with a first concave cavity at both ends along the X direction, and the first concave cavity has a first opening connected to the outside world on the side facing the cable; the second semi-cylinder portion is provided with a second concave cavity at both ends along the X direction, and the second concave cavity has a second opening connected to the outside world on the side facing the cable; in the X direction, the first concave cavity and the second concave cavity are staggered with the first cavity; The first concave cavity and the second concave cavity have flexible parts for sealing the first opening and the second opening; the first concave cavity and the second concave cavity are both connected to the first cavity.
[0013] In some embodiments of the present application, the first semi-cylindrical portion corresponding to the first cavity has a first through hole, one end of the first through hole is connected to the first cavity, and the other end of the first through hole is connected to the first concave cavity; The second semi-cylindrical portion corresponding to the first cavity has a second through hole therein, one end of the second through hole is connected to the first cavity, and the other end of the second through hole is connected to the second concave cavity.
[0014] Compared with the prior art, the beneficial effect of a long-distance high-voltage cable grounding joint in an embodiment of the present invention is that: without cutting the cable and damaging the metal sheath inside the cable, the present solution only strips off the outer protective layer of the cable, and fits and connects the conductive sheet to the metal sheath inside the cable, and then connects it to the grounding wire through the lead-out portion, thereby grounding the metal sheath inside the cable, and is used to lead out the induced voltage generated on the metal sheath, thereby greatly reducing the induced voltage of the long-distance cable; while ensuring the long-distance cable for power transmission, the number of straight-through connectors in the cable is reduced as much as possible, thereby improving the long-term stability and reliability of the cable; at the same time, a protective shell is wrapped around the outer periphery of the conductive sheet, the lead-out portion, and the metal sheath, so as to prevent the conductive sheet, the metal sheath, and the lead-out portion from getting damp or contacting with water, thereby affecting their grounding performance. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 This is a schematic diagram of the installation structure of the long-distance high-voltage cable grounding joint of the present invention; Figure 2 It is a schematic diagram of the connection relationship between the conductive sheet, the lead-out portion, and the metal sheath of the present invention; Figure 3 It is a schematic diagram of the connection relationship between the ventilation member, the annular conductive member, the conductive sheet, and the metal sheath of the present invention; Figure 4 It is a schematic diagram of the conductive sheet and the metal sheath being separated from each other in the present invention; Figure 5 This is a schematic diagram of the matching relationship between the conductive sheet, the metal sheath, and the protective shell of the present invention; Figure 6This is a schematic diagram of the cross-sectional structure of the protective shell of the present invention; Figure 7 This is a schematic diagram of the structure of the first half cylinder of the present invention; Figure 8 It is a schematic diagram of the structure of the second half cylinder of the present invention; Fig. 9 It is a schematic front view of the installation structure of the long-distance high-voltage cable grounding joint of the present invention along the extension direction of the cable length; Fig.10 This is a schematic diagram of the connection relationship between the conductive sheet and the lead-out portion of the present invention; Fig.11 It is a schematic diagram of the structure of the annular conductive member of the present invention.
[0016] In the figure, 1, cable; 11, metal sheath; 12, outer protective layer; 2. Conductive sheet; 21. Perforation; 3. lead-out portion; 31. first conductive portion; 32. second conductive portion; 4. Protective shell; 41. First cylinder; 411. First semi-cylinder; 4111. First concave cavity; 4112. First opening; 4113. First through hole; 412. Second semi-cylinder; 4121. Second concave cavity; 4122. Second opening; 4123. Second through hole; 42. Second cylinder; 421. Extension hole; 5. Sealed cavity; 51. First cavity; 52. Second cavity; 6. Flexible parts; 7. Filling pipe; 8. Ventilation member; 81. First tube body; 811. Inline section; 812. Extended section; 82. Second tube body; 9. Ring-shaped conductive member; 91. First arc-shaped conductive member; 92. Second arc-shaped conductive member. DETAILED DESCRIPTION
[0017] The specific implementation of the present invention is further described in detail below in conjunction with the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.
[0018] In the description of the present invention, it should be understood that the terms "upper", "lower", "left", "right", "front", "back", "top", "bottom", etc. indicate positions or positional relationships based on the positions or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific position, be constructed and operated in a specific position, and therefore cannot be understood as a hindrance to the present invention. It should be understood that the terms "first", "second", etc. are used in the present invention to describe various information, but such information should not be limited to these terms, which are only used to distinguish the same type of information from each other. For example, without departing from the scope of the present invention, "first" information may also be referred to as "second" information, and similarly, "second" information may also be referred to as "first" information.
[0019] like Figures 1 to 11 As shown, an embodiment of the present application proposes a long-distance high-voltage cable grounding connector, which is used to ground the metal sheath 11 inside the cable 1, including a conductive sheet 2, a lead-out portion 3, and a protective shell 4; the conductive sheet 2 is fitted and connected to the outer surface of the metal sheath 11; the lead-out portion 3 has a first end and a second end that are relatively arranged, the first end is connected to the outer surface of the conductive sheet 2, and the second end extends outward from the sealed cavity 5 and is used to be connected to the grounding wire; the protective shell 4 is sleeved on the outer periphery of the cable 1, and the inner wall of the protective shell 4 is spaced apart from the metal sheath 11, so that the space between the protective shell 4 and the metal sheath 11 forms a sealed cavity 5, the metal sheath 11 and the conductive sheet 2 are both accommodated in the sealed cavity 5, and the lead-out portion 3 is at least partially accommodated in the sealed cavity 5.
[0020] In the specific implementation of this embodiment, Figure 2 As shown, at a suitable position of the cable 1, a certain length of the outer protective layer 12 of the cable 1 is stripped off, and the metal sheath 11 inside the cable 1 is exposed, and then the conductive sheet 2 is fitted with the exposed metal sheath 11, and the connection between the conductive sheet 2 and the metal sheath 11 is achieved by welding. When welding, argon arc welding and intermittent cooling are adopted, that is, argon gas is used to isolate the air to prevent metal oxidation, and each welding is paused after a period of time, and the welding part is cooled to below 90°C with a hair dryer, and then welding is continued to avoid the high temperature generated during welding from damaging the insulation of the cable 1. The conductive sheet 2 in the present embodiment is adaptively configured to match the shape of the metal sheath 11. If the metal sheath 11 inside the cable 1 is in the shape of a corrugated tube, the conductive sheet 2 is also configured to be in the shape of a corrugated tube. If the metal sheath 11 inside the cable 1 is in the shape of a round tube with a smooth surface, the conductive sheet 2 is also configured to be in the shape of a round tube. This is to ensure that the conductive sheet 2 and the metal sheath 11 are well fitted. When the size of the conductive sheet 2 is constant, the contact area between the conductive sheet 2 and the metal sheath 11 is increased as much as possible to reduce the contact resistance between the two.
[0021] In this solution, the metal sheath 11 is in the shape of a corrugated tube as an example for explanation, and the conductive sheet 2 is also configured in the shape of a corrugated tube; Figure 2 , Figure 3 , Fig.10 As shown, the lead-out portion 3 in the present embodiment includes a first conductive portion 31 and a second conductive portion 32, wherein a plurality of first conductive portions 31 are provided, the first conductive portion 31 is in the shape of a round rod and a portion of the first conductive portion 31 is embedded in a trough between two adjacent crests of the conductive sheet 2, thereby increasing the contact area between the first conductive portion 31 and the conductive sheet 2, and the other portions of the plurality of first conductive portions 31 are connected to the second conductive portion 32; specifically, the plurality of first conductive portions 31 and the second conductive portion 32 are connected by welding, and the second conductive portion 32 extends outward from one end of the sealing cavity 5 to form a second end, and the plurality of first conductive portions 31 and the second conductive portion 32 can be welded in advance to form the lead-out portion 3, and then the plurality of first conductive portions 31 and the conductive sheet 2 are welded and connected, and after the connection between the lead-out portion 3 and the conductive sheet 2 is completed, it is fitted and connected to the metal sheath 11.
[0022] like Fig.10 As shown, a hole 21 is punched on the conductive sheet 2, and a plurality of holes 21 can be provided. The holes 21 are used to weld the conductive sheet 2 and the metal sheath 11, thereby increasing the welding area between the metal sheath 11 and the conductive sheet 2 and ensuring the connection stability.
[0023] After the connection between the conductive sheet 2 and the metal sheath 11 is completed, the protective shell 4 is placed on the position where the outer protective layer 12 on the cable 1 is peeled off, and the inner wall of the protective shell 4 and the outer protective layer 12 on the cable 1 at both ends of the metal sheath 11 are fitted and connected, so that the space between the inner wall of the protective shell 4 and the metal sheath 11 forms a sealed cavity 5, as shown in FIG. Figure 5 As shown, the metal sheath 11 and the conductive sheet 2 are both contained in the sealed cavity 5, and at least part of the lead-out portion 3 is contained in the sealed cavity 5, providing a better sealing environment for the metal sheath 11, the conductive sheet 2, and the lead-out portion 3, so as to achieve waterproof and moisture-proof treatment of the metal sheath 11, the conductive sheet 2, and the lead-out portion 3, and avoid rusting of the above components, which affects their grounding performance. This solution only strips off the outer protective layer 12 of the cable 1 without cutting off the cable 1 and destroying the metal sheath 11 inside the cable 1, and fits and connects the conductive sheet 2 with the metal sheath 11 inside the cable 1, and then connects it to the grounding wire through the lead-out portion 3, so as to achieve grounding of the metal sheath 11 inside the cable 1, and is used to lead out the induced voltage generated on the metal sheath 11, which greatly reduces the induced voltage of the long-distance cable 1; while ensuring that the long-distance cable 1 is transmitting power, the number of straight-through connectors in the cable 1 is reduced as much as possible, and the long-term use stability and reliability of the cable 1 are improved.
[0024] In some embodiments of the present application, the long-distance high-voltage cable grounding joint has an X-direction extending along the length direction of the cable 1; Figure 1 As shown, the protective shell 4 includes a first cylinder 41 and a second cylinder 42 connected to each other. The first cylinder 41 extends along the X direction, and the second cylinder 42 protrudes outward from the first cylinder 41 in a direction away from the cable 1; the length of the first cylinder 41 along the X direction is greater than the length of the metal sheath 11, so as to completely wrap the exposed metal sheath 11; Figure 5 As shown, both ends of the first cylinder 41 along the X direction are sleeved on the outer wall of the cable 1, that is, they are located on the outer protective layer 12 of the cable 1 at both ends of the metal sheath 11; the space between the first cylinder 41 and the metal sheath 11 constitutes a first cavity 51; the second cylinder 42 has a second cavity 52 connected to the first cavity 51, and the lead-out portion 3 is at least partially located in the second cavity 52; specifically, the first conductive portion 31 is completely located in the second cavity 52, the second conductive portion 32 is at least partially located in the second cavity 52, and the second conductive portion 32 extends outward from the second cavity 52 to constitute a second end and is used to connect with the grounding wire; the first cavity 51 and the second cavity 52 constitute a sealed cavity 5. In this embodiment, the first cylinder 41 and the second cylinder 42 together provide an environment isolated from the outside world for the exposed metal sheath 11, the conductive sheet 2 and the lead-out portion 3, which can effectively block the erosion of water vapor from the outside environment and avoid rusting of the above components, thereby improving the service life, working stability and reliability of the long-distance high-voltage cable grounding joint. The first cylinder 41 and the second cylinder 42 in this solution can be made of plastic or other corrosion-resistant materials with high structural strength.
[0025] In some embodiments of the present application, Figure 1 , Figure 3As shown, the long-distance high-voltage cable grounding connector also includes a first tube body 81 and two second tube bodies 82; the first tube body 81 includes an embedded section 811 and two protruding sections 812, the embedded section 811 is accommodated in the first cavity 51, and the two protruding sections 812 are respectively connected to the two ends of the embedded section 811, and the other end of the embedded section 811 protrudes outward from the first cavity 51, and one end of the embedded section 811 protruding outward from the first cavity 51 is connected to the second tube body 82, the second tube body 82 can be extended along the X direction, and the embedded section 811 is extended along the X direction in the first cavity 51; in this embodiment, through the cooperation of the first tube body 81 and the two second tube bodies 82, the airflow in the external environment can flow through the second tube body 82, the first tube body 81, and the second tube body 82 in sequence, so that the heat inside the cable 1 corresponding to the protective shell 4 can be transferred and dissipated outward. When power is supplied to the cable 1, the conductor resistance will be converted into heat. If the ventilation effect of the environment in which the cable 1 is located is not good, the temperature of the cable 1 will increase. In this embodiment, the airflow in the external environment can be introduced into the first tube body 81 by setting the matching first tube body 81 and second tube body 82, and the first tube body 81 is in the sealed cavity 5. When the airflow with lower temperature flows through the first tube body 81, the heat in the sealed cavity 5 can be taken away to the outside, thereby effectively suppressing the increase in the internal temperature of the cable 1 and reducing the temperature fluctuation amplitude in the sealed cavity 5 as much as possible, thereby reducing the amplitude of thermal expansion of the internal material of the cable 1 caused by the temperature increase of the cable 1 body; the smaller the thermal expansion amplitude of the cable 1, the more conducive it is to the connection sealing between the protective shell 4 and the cable 1, because repeated thermal expansion will cause the connection sealing between the protective shell 4 and the outer protective layer 12 of the cable 1 to decrease, thereby reducing the waterproof and moisture-proof effect of the protective shell 4.
[0026] In some embodiments of the present application, the first tube body 81 and the two second tube bodies 82 constitute a ventilation member 8, and the ventilation member 8 may be provided in plurality, and the plurality of ventilation members 8 are arranged at intervals around the central axis of the cable 1. Figure 3 , Fig. 9 As shown, the more ventilation elements 8 are provided, the more conducive it is to suppress the fluctuation amplitude of the temperature in the sealed cavity 5, so as to maintain the temperature in the sealed cavity 5 within a relatively stable range as much as possible.
[0027] In some embodiments of the present application, the inner embedded section 811 is a conductor, and specifically the inner embedded section 811 can be made of aluminum material, the extended section 812 and the second tube body 82 can be made of insulating material, and the inner embedded section 811, the extended section 812, and the second tube body 82 can be connected by adhesive; Figure 3As shown, the outer wall of each inner embedded segment 811 is closely connected to the outer wall of the metal sheath 11; the long-distance high-voltage cable grounding joint also includes an annular conductive member 9, which can be made of aluminum. The annular conductive member 9 is sleeved on the outer peripheral arm of each inner embedded segment 811, and the annular conductive member 9 is closely connected to the outer wall of each inner embedded segment 811, and the annular conductive member 9 is electrically connected to the conductive sheet 2. Specifically, as Figure 3 As shown, each embedded segment 811 and the conductive sheet 2 are located on the inner side of the annular conductive member 9 and are fitted and connected to the inner wall of the annular conductive member 9. The inner wall of the annular conductive member 9 can be connected to the crest position of the conductive sheet 2. In this way, through the arrangement of the embedded segment 811 and the annular conductive member 9, the contact area between the metal sheath 11 and the conductive sheet 2 is further increased, and the contact resistance between the metal sheath 11 and the conductive sheet 2 can be further reduced.
[0028] The inner embedded segment 811 is a conductor. Due to the setting of the inner embedded segment 811 and the annular conductive member 9, the inner embedded segment 811 and the annular conductive member 9 are both made of aluminum material. Aluminum material has a high thermal conductivity coefficient, which can further improve the efficiency of transferring heat from the sealed cavity 5 to the first tube body 81, thereby improving the heat dissipation efficiency in the sealed cavity 5.
[0029] In some embodiments of the present application, Figure 3 As shown, there may be multiple annular conductive members 9, and the multiple annular conductive members 9 are spaced apart along the X direction. The more annular conductive members 9 are provided, the more conducive it is to increase the contact area between the conductive sheet 2 and the metal sheath 11. The more annular conductive members 9 are provided, the more conducive it is to increase the contact area between the conductive sheet 2 and the metal sheath 11. The more annular conductive members 9 are provided, the lower the contact resistance between the conductive sheet 2 and the metal sheath 11, and the more conducive it is to increase the efficiency of transferring heat from the sealing cavity 5 to the first tube body 81.
[0030] In some embodiments of the present application, as a further optimization and improvement, the first cavity 51 and the second cavity 52 are filled with a conductive colloid, that is, the conductive colloid is filled into the sealed cavity 5. The conductive colloid is an adhesive with conductive properties after curing or drying, mainly composed of a base resin and a conductive filler. Conductive particles, such as gold and silver, are mixed in the traditional colloid to form a conductive colloid; the sealed cavity 5 is completely filled with the conductive colloid, the air in the sealed cavity 5 is discharged, and the filled conductive colloid is metal The sheath 11, the conductive sheet 2, the first tube 81, the annular conductive component 9, and part of the lead-out portion 3 are completely wrapped, and the conductive colloid can isolate the conductive sheet 2, the metal sheath 11, the first tube 81, the annular conductive component 9, and part of the lead-out portion 3 from contact with the air, and can further reduce the probability of the metal sheath 11, the conductive sheet 2, the first tube 81, the annular conductive component 9, and the lead-out portion 3 contacting with water vapor, thereby improving the waterproof and moisture-proof effects of the conductive sheet 2, the metal sheath 11, the first tube 81, the annular conductive component 9, and the lead-out portion 3.
[0031] In addition, since the conductive colloid has conductive properties, the electrical contact area between the metal sheath 11 and the conductive sheet 2 is further increased, which helps to reduce the contact resistance. Figure 1 As shown, a filling pipe 7 may be provided on the first cylinder 41, and the staff may inject the conductive colloid into the sealed cavity 5 composed of the first cavity 51 and the second cavity 52 through the filling pipe 7. The filling pipe 7 may be equipped with a sealing cover, which may be connected to the filling pipe 7 by threaded connection or snap-on connection, and the sealing cover can seal the filling pipe 7.
[0032] In some embodiments of the present application, Figure 1 As shown, the first cylinder 41 includes a first semi-cylinder 411 and a second semi-cylinder 412 extending along the X direction; the first semi-cylinder 411 and the second semi-cylinder 412 are spliced and connected to form a cylindrical first cylinder 41. Specifically, structural adhesive can be applied at the splicing of the first semi-cylinder 411 and the second semi-cylinder 412, and the first semi-cylinder 411 and the second semi-cylinder 412 are fixedly connected by gluing. The structural adhesive can bond the two together on the one hand, and seal the splicing of the first semi-cylinder 411 and the second semi-cylinder 412 on the other hand; or the first semi-cylinder 411 and the second semi-cylinder 412 can be fixedly connected by tying the outer periphery of the first semi-cylinder 411 and the second semi-cylinder 412 with iron wire. In this case, a sealing strip needs to be provided at the splicing of the first semi-cylinder 411 and the second semi-cylinder 412 to improve the sealing performance.
[0033] like Figure 5 As shown, the inner walls of the first semi-cylinder 411 and the second semi-cylinder 412 at both ends along the X direction are fitted and connected to the outer peripheral wall of the cable 1, and the outer peripheral wall of the cable 1 is the outer protective layer 12 of the cable 1 located at both ends of the metal sheath 11, so that the space between the first semi-cylinder 411 and the second semi-cylinder 412 and the metal sheath 11 constitutes a first cavity 51; the second cylinder 42 is connected to the first semi-cylinder 411 or the second semi-cylinder 412; specifically, the second cylinder 42 and the first semi-cylinder 411 or the second semi-cylinder 412 can be arranged in an integral manner or in a separate manner, and the filling pipe 7 can be arranged on the first semi-cylinder 411 and / or the second semi-cylinder 412.
[0034] Note: In this solution, holes are provided on the first semi-cylinder portion 411 and the second semi-cylinder portion 412 for allowing the extension section 812 to extend outward from the sealed cavity 5, and a sealing ring can be provided between the extension section 812 and the hole wall, and the sealing ring is used to improve the sealing performance; in specific implementation, the extension section 812 is firstly inserted into the hole, one end of the extension section 812 is connected to the second tube body 82, and the other end is connected to the embedded section 811, and the extension section 812 and the second tube body 82, as well as the extension section 812 and the embedded section 811 can be connected by gluing, so that the ventilation member 8 composed of the first tube body 81 and the second tube body 82 is respectively installed on the first semi-cylinder portion 411 and the second semi-cylinder portion 412; Fig.11 As shown, the annular conductive member 9 in the present embodiment includes a first arc-shaped conductive member 91 and a second arc-shaped conductive member 92. After the first ventilation member 8 and the first semi-cylinder portion 411 and the second semi-cylinder portion 412 are assembled, the first arc-shaped conductive member 91 is connected to a plurality of embedded segments 811 installed on one of the first semi-cylinder portion 411 and the second semi-cylinder portion 412, so that the first arc-shaped conductive member 91 is located on the side of the embedded segment 811 away from the cable 1, and the second arc-shaped conductive member 92 is connected to a plurality of embedded segments 811 on the other side, so that the second arc-shaped conductive member 92 is located on the side of the embedded segment 811 away from the cable 1; the arc lengths of the first arc-shaped conductive member 91 and the second arc-shaped conductive member 92 are both greater than the length of the semicircular arc, as shown in FIG. Fig.11 As shown, when the first semi-cylinder portion 411 and the second semi-cylinder portion 412 are sleeved on the outer protective layer 12 on the cable 1, the two ends of the first arc-shaped conductive member 91 and the second arc-shaped conductive member 92 can be pressed together, thereby achieving contact connection between the first arc-shaped conductive member 91 and the second arc-shaped conductive member 92, and the first arc-shaped conductive member 91 and the second arc-shaped conductive member 92 achieve the effects of electrical conduction and heat conduction.
[0035] In some embodiments of the present application, Figure 5 As shown, the first semi-cylindrical portion 411 has first concave cavities 4111 at both ends along the X direction. Figure 7 As shown, the first cavity 4111 has a first opening 4112 communicating with the outside on the side facing the cable 1; the second semi-cylinder portion 412 has second cavities 4121 at both ends along the X direction, as shown in FIG. Figure 8 As shown, the second cavity 4121 has a second opening 4122 communicating with the outside on one side facing the cable 1; Figure 5 As shown, in the X direction, the first cavity 4111 and the second cavity 4121 are staggered with the first cavity 51, that is, the first cavity 4111 and the second cavity 4121 are arranged at the corresponding positions of the cable 1 at both ends of the first cavity 51 along the X direction; Figure 7 , Figure 8As shown, the first cavity 4111 and the second cavity 4121 both have a flexible member 6 for sealing the first opening 4112 and the second opening 4122 . The flexible member 6 may be made of rubber. The first cavity 4111 and the second cavity 4121 are both connected to the first cavity 51 .
[0036] The surface of the outer protective layer 12 of the cable 1 is limited by manufacturing and processing factors, resulting in some uneven areas on its surface, which will cause gaps to form at the contact points between the inner side walls of the first semi-cylinder portion 411 and the second semi-cylinder portion 412 and the outer protective layer 12 of the cable 1. Figure 5 As shown, the staff first sleeves the first semi-cylinder 411 on the outer periphery of the cable 1, and then sleeves the second semi-cylinder 412 on the outer periphery of the cable 1, so that the first semi-cylinder 411 and the second semi-cylinder 412 are spliced into a cylindrical first cylinder 41, and the first semi-cylinder 411 and the second semi-cylinder 412 are spliced into one body, and then the first semi-cylinder 411 and the second semi-cylinder 412 are fixed by applying structural glue at the splicing of the first semi-cylinder 411 and the second semi-cylinder 412 or by using wire binding; then the conductive colloid is poured into the sealing cavity 5 through the filling pipe 7, and the conductive colloid entering the sealing cavity 5 will successively enter the first concave cavity 4111 and the second concave cavity 4121, and gradually fill the first cavity 4111 and the second cavity 4121. As the conductive colloid is filled, the flexible member 6 is squeezed by the conductive colloid in the first cavity 4111 and the second cavity 4121, and the flexible member 6 is deformed toward the cable 1, so that the flexible member 6 is tightly pressed against the outer protective layer 12 of the cable 1 under the squeezing force of the conductive colloid. Since the flexible member 6 has the elasticity of deformation, the gap between the inner wall of the first semi-cylinder 411 and the second semi-cylinder 412 and the outer protective layer 12 of the cable 1 can be completely filled, thereby further improving the sealing effect of the sealing cavity 5. After the conductive colloid is cured, a stable sealing structure is formed.
[0037] In this embodiment, the first concave cavity 4111 and the second concave cavity 4121 are arranged along the circumference of the first semi-cylinder portion 411 and the second semi-cylinder portion 412, and the first concave cavity 4111 and the second concave cavity 4121 are both arc-shaped. The larger the proportion of the first concave cavity 4111 and the second concave cavity 4121 occupied by the first semi-cylinder portion 411 and the second semi-cylinder portion 412, the better the sealing effect of the sealing cavity 5.
[0038] In some embodiments of the present application, Figure 5 , Figure 6 , Figure 7 , Figure 8As shown, this embodiment provides a structure in which a first concave cavity 4111 and a second concave cavity 4121 are connected to a first cavity 51, specifically as follows: a first through hole 4113 is provided in the first semi-cylindrical portion 411 corresponding to the first cavity 51, one end of the first through hole 4113 is connected to the first cavity 51, and the other end is connected to the first concave cavity 4111; a second through hole 4123 is provided in the second semi-cylindrical portion 412 corresponding to the first cavity 51, one end of the second through hole 4123 is connected to the first cavity 51, and the other end is connected to the second concave cavity 4121. In this solution, a plurality of first through holes 4113 and a plurality of second through holes 4123 are provided, and the plurality of first through holes 4113 and second through holes 4123 are arranged at intervals along the circumference of the first semi-cylindrical portion 411 and the second semi-cylindrical portion 412; Figure 7 As shown, a cavity connected to the first concave cavity 4111 and multiple first through holes 4113 is provided in the first semi-cylindrical portion 411, one ends of the multiple first through holes 4113 are connected to the first cavity 51, and the other ends of the multiple first through holes 4113 are connected to the first concave cavity 4111 through the above-mentioned cavity; a cavity connected to the second concave cavity 4121 and multiple second through holes 4123 is provided in the second semi-cylindrical portion 412, one ends of the multiple second through holes 4123 are connected to the first cavity 51, and the other ends of the multiple second through holes 4123 are connected to the second concave cavity 4121 through the above-mentioned cavity.
[0039] When the staff pours the conductive colloid into the sealing cavity 5 through the filling pipe 7, the conductive colloid will enter the corresponding first concave cavity 4111 through the multiple first through holes 4113, and enter the corresponding second concave cavity 4121 through the multiple second through holes 4123, so that the conductive colloid is filled in the first concave cavity 4111 and the second concave cavity 4121, and the flexible member 6 is deformed by squeezing the flexible member 6, and the flexible member 6 is tightly pressed against the outer protective layer 12 of the cable 1 under the squeezing action of the conductive colloid, so as to further improve the sealing effect of the sealing cavity 5; the first through holes 4113 and the second through holes 4123 in this scheme should be arranged as many as possible, so as to increase the connecting cross-section between the sealing cavity 5 and the first concave cavity 4111 and the second concave cavity 4121, so that the conductive colloid entering the sealing cavity 5 can easily enter the first concave cavity 4111 and the second concave cavity 4121 through the first through holes 4113 and the second through holes 4123.
[0040] In this solution, if the second cylinder 42 and the first semi-cylinder 411 or the second semi-cylinder 412 are arranged in an integral manner, when installing the first semi-cylinder 411 or the second semi-cylinder 412, it is necessary to make the second cylinder 42 connected to the first semi-cylinder 411 or the second semi-cylinder 412 correspond to the positions of the lead-out portion 3, and then move the first semi-cylinder 411 or the second semi-cylinder 412 toward the direction close to the cable 1, so that when the first semi-cylinder 411 or the second semi-cylinder 412 is sleeved on the outer protective layer 12 of the cable 1, the lead-out portion 3 just enters the second cylinder 42; Figure 6 As shown, the end of the second cylinder 42 away from the cable 1 has an extension hole 421 for allowing the second conductive part 32 of the lead-out part 3 to extend outward from the second cavity 52, and a sealing ring is provided between the second conductive part 32 and the extension hole 421 to improve the sealing performance of the second cavity 52.
[0041] The working process of the present invention is as follows: first, at a suitable position on the cable 1, a certain length of the outer protective layer 12 is stripped off to expose the internal metal sheath 11, and then the conductive sheet 2 is connected to the metal sheath 11 by fitting, wherein the conductive sheet 2 and the lead-out portion 3 are assembled in advance, and then the first half-cylinder portion 411 and the second half-cylinder portion 412 are successively sleeved on the cable 1, thereby wrapping the exposed metal sheath 11, the conductive sheet 2, and part of the lead-out portion 3 to provide an environment isolated from the outside world; then, a conductive colloid is poured into the sealed cavity 5 to seal the sealed cavity 5. The air is discharged and the conductive colloid is completely filled in the sealing cavity 5, so that the metal sheath 11, the conductive sheet 2, the first tube 81, the annular conductive member 9, and part of the lead-out portion 3 are wrapped by the conductive colloid; while the conductive colloid is poured into the sealing cavity 5, the conductive colloid enters the first concave cavity 4111 and the second concave cavity 4121, and squeezes the flexible member 6, causing the flexible member 6 to deform, thereby completely filling the gap between the first semi-cylinder portion 411, the second semi-cylinder portion 412 and the outer protective layer 12 of the cable 1, further improving the sealing effect of the sealing cavity 5.
[0042] In summary, an embodiment of the present invention provides a long-distance high-voltage cable grounding connector. This solution only strips off the outer protective layer 12 of the cable 1 without cutting off the cable 1 and damaging the metal sheath 11 inside the cable 1, and fits and connects the conductive sheet 2 to the metal sheath 11 inside the cable 1, and then connects it to the grounding wire through the lead-out portion 3, so as to achieve grounding of the metal sheath 11 inside the cable 1, and is used to lead out the induced voltage generated on the metal sheath 11, thereby greatly reducing the induced voltage of the long-distance cable 1; while ensuring that the long-distance cable 1 is transmitting power, the number of straight-through connectors in the cable 1 is reduced as much as possible, thereby improving the long-term use stability and reliability of the cable 1; at the same time, a protective shell 4 is wrapped around the outer periphery of the conductive sheet 2, the lead-out portion 3, and the metal sheath 11, so as to prevent the conductive sheet 2, the metal sheath 11 and the lead-out portion 3 from rusting, thereby affecting their grounding performance.
[0043] The above is only a preferred embodiment of the present invention. It should be pointed out that for ordinary technicians in this technical field, several improvements and substitutions can be made without departing from the technical principles of the present invention. These improvements and substitutions should also be regarded as the scope of protection of the present invention.
Claims
1. A long-distance high-voltage cable grounding joint, used for grounding a metal sheath (11) inside a cable (1), characterized in that: include: The conductive sheet (2) is bonded and connected to the outer surface of the metal sheath (11); A lead-out portion (3) having a first end and a second end arranged opposite to each other, wherein the first end is connected to the conductive sheet (2); A protective shell (4) is sleeved on the outer circumference of the cable (1), and the inner wall of the protective shell (4) is spaced apart from the metal sheath (11), so that the space between the protective shell (4) and the metal sheath (11) forms a sealed cavity (5), the metal sheath (11), the conductive sheet (2), and part of the lead-out portion (3) are accommodated in the sealed cavity (5), and the second end extends outward from the sealed cavity (5) for connection with a grounding wire.
2. The long-distance high-voltage cable grounding joint according to claim 1, characterized in that: The long-distance high-voltage cable grounding joint has an X direction extending along the length direction of the cable (1); The protective shell (4) comprises a first cylinder (41) and a second cylinder (42) connected to each other, the first cylinder (41) extending along the X direction, and the second cylinder (42) protruding outward from the first cylinder (41) in a direction away from the cable (1); the length of the first cylinder (41) along the X direction is greater than the length of the metal sheath (11), and both ends of the first cylinder (41) along the X direction are sleeved on the outer peripheral wall of the cable (1), so that the space between the first cylinder (41) and the metal sheath (11) forms a first cavity (51); The second cylinder (42) has a second cavity (52) for accommodating the lead-out portion (3); the first cavity (51) is connected to the second cavity (52), and the first cavity (51) and the second cavity (52) constitute the sealed cavity (5); the second end extends outward from the second cavity (52).
3. The long-distance high-voltage cable grounding joint according to claim 2, characterized in that: The long-distance high-voltage cable grounding joint also includes a first tube body (81) and two second tube bodies (82); The first tube body (81) comprises an inner embedded section (811) and two protruding sections (812); the inner embedded section (811) is accommodated in the first cavity (51); the two protruding sections (812) are respectively connected to two ends of the inner embedded section (811); the protruding section (812) protrudes outward from the first cavity (51); and one end of the protruding section (812) protruding outward from the first cavity (51) is connected to the second tube body (82).
4. The long-distance high-voltage cable grounding joint according to claim 3, characterized in that: The first tube body (81) and the two second tube bodies (82) constitute a ventilation member (8), and a plurality of the ventilation members (8) are provided, and the plurality of the ventilation members (8) are arranged at intervals around the central axis of the cable (1).
5. The long-distance high-voltage cable grounding joint according to claim 3, characterized in that: The inner embedded segments (811) are conductive bodies, and the outer peripheral walls of each of the inner embedded segments (811) are closely connected to the metal sheath (11); The long-distance high-voltage cable grounding connector also includes an annular conductive member (9), and the axial direction of the annular conductive member (9) extends along the X direction, the inner side wall of the annular conductive member (9) is sleeved on the outer periphery of each of the inner embedded segments (811), and the annular conductive member (9) is electrically connected to the conductive sheet (2).
6. The long-distance high-voltage cable grounding joint according to claim 5, characterized in that: A plurality of the annular conductive members (9) are provided, and the plurality of the annular conductive members (9) are arranged at intervals along the X direction.
7. The long-distance high-voltage cable grounding joint according to claim 2, characterized in that: The first cavity (51) and the second cavity (52) are filled with conductive colloid.
8. The long-distance high-voltage cable grounding joint according to claim 7, characterized in that: The first cylinder (41) comprises a first semi-cylinder portion (411) and a second semi-cylinder portion (412) connected to each other; The inner side walls of the first semi-cylinder (411) and the second semi-cylinder (412) at both ends along the X direction are fitted and connected to the outer peripheral wall of the cable (1), so that the space between the first semi-cylinder (411), the second semi-cylinder (412) and the metal sheath (11) forms the first cavity (51); The second cylinder (42) is connected to the first semi-cylinder portion (411) or the second semi-cylinder portion (412).
9. The long-distance high-voltage cable grounding joint according to claim 8, characterized in that: The first semi-cylinder (411) is provided with a first concave cavity (4111) at both ends along the X direction, and the first concave cavity (4111) has a first opening (4112) communicating with the outside on the side facing the cable (1); the second semi-cylinder (412) is provided with a second concave cavity (4121) at both ends along the X direction, and the second concave cavity (4121) has a second opening (4122) communicating with the outside on the side facing the cable (1); in the X direction, the first concave cavity (4111) and the second concave cavity (4121) are staggered with the first cavity (51); The first concave cavity (4111) and the second concave cavity (4121) have a flexible member (6) for sealing the first opening (4112) and the second opening (4122); the first concave cavity (4111) and the second concave cavity (4121) are both connected to the first cavity (51).
10. The long-distance high-voltage cable grounding joint according to claim 9, characterized in that: The first semi-cylindrical portion (411) corresponding to the first cavity (51) has a first through hole (4113), one end of the first through hole (4113) is connected to the first cavity (51), and the other end is connected to the first concave cavity (4111); The second semi-cylindrical portion (412) corresponding to the first cavity (51) has a second through hole (4123) therein, and one end of the second through hole (4123) is connected to the first cavity (51), and the other end is connected to the second concave cavity (4121).
Citation Information
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