Communication type reactive compensation controller

By designing wiring blocks, lift blocks and release structures in the reactive compensation controller, the problems of inconvenience in wiring and easy breakage of wires in the prior art are solved, and the fast and flexible connection and disassembly of wires are achieved, and the resistance to pulling of wires and the installation and heat dissipation of controllers are improved.

CN120201695AInactive Publication Date: 2025-06-24XUZHOU SANCHUANG ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202510403475.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-01
Publication Date
2025-06-24
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing reactive compensation controller is inconvenient to operate during wiring, which easily damages the wires. The wires have poor pull resistance and are easily disconnected due to opening of the cabinet door, which affects use.

Method used

A communication reactive power compensation controller is designed, using a wiring block and a lifting block structure, and the rapid connection and disassembly of wires are achieved through the driving screw and threaded block, which increases the release structure to facilitate the operation of a single wire, and improves the pull resistance of the wire through the wire management structure.

Benefits of technology

It realizes the fast and flexible connection and disassembly of wires, improves the convenience and safety of use, enhances the resistance to pulling of wires, and ensures the stable installation of the controller in electrical cabinets of different specifications and good heat dissipation.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of electrical equipment, in particular to a communication type reactive compensation controller which comprises a controller body, a connecting structure is arranged on the side face of the controller body, a releasing structure is arranged on the inner side of the connecting structure, a wire arranging structure is arranged on the inner side of the controller body, and a positioning structure is arranged between the wire arranging structure and the connecting structure. Installation structures are arranged on the two sides of the controller body, and the end of the controller body is connected with a heat dissipation structure. An operator can conveniently connect and detach wires through the connecting structure, any single wire can be connected and released through the releasing structure, the wires can be arranged through the wire arranging structure, the pulling resistance of the wires is improved, the rotating angle of the rotating frame can be fixed through the positioning structure, and the wire arranging structure is convenient to use. The controller can be conveniently installed in electrical cabinets of different specifications through the installation structure, and dust accumulated in heat dissipation holes in the controller can be conveniently cleaned through the heat dissipation structure.
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Description

Technical Field

[0001] The present invention relates to the technical field of electrical equipment, and specifically relates to a communication type reactive power compensation controller. Background Art

[0002] A reactive power compensator is a compensation device, which plays the role of improving the power factor of the power grid, reducing the losses of the power supply transformer and transmission lines, improving the power supply efficiency, and improving the power supply environment in the electronic power supply system. The reactive power compensation device is in an extremely important and indispensable position in the power supply system. Reasonable selection of the compensation device can minimize the losses of the network and improve the power grid quality. On the contrary, if it is selected or used improperly, it may cause many impacts such as voltage fluctuations and increased harmonics in the power supply system.

[0003] However, the existing reactive power compensation controllers usually adopt the screw fixation method during the wiring process, which is inconvenient when connecting multiple groups of wires, and is also inconvenient for removal. At the same time, due to the rotation and extrusion of the screws, the connection points of the wires may be damaged, increasing the risk of open circuit or short circuit. On the other hand, the existing wires have poor tensile strength after being connected. Since the reactive power compensation controller is usually installed at the cabinet door position of the electrical cabinet, the opening of the cabinet door may pull the wires and cause disconnection, affecting the use. Summary of the Invention

[0004] In view of the problems in the prior art, the present invention provides a communication type reactive power compensation controller.

[0005] The technical solution adopted by the present invention to solve its technical problems is: a communication type reactive power compensation controller, including a controller body, a connection structure is provided on the side of the controller body, a release structure is provided inside the connection structure, a wire management structure is provided inside the controller body, a positioning structure is provided between the wire management structure and the connection structure, installation structures are provided on both sides of the controller body, and a heat dissipation structure is connected to the end of the controller body.

[0006] Specifically, the connection structure includes a wiring block, the wiring block is fixedly connected to the side of the controller body, a plurality of jacks are opened on the side of the wiring block, electrodes are fixedly connected inside the wiring block corresponding to the plurality of jacks, the electrodes are electrically connected to the controller body, a plurality of pressure blocks are respectively provided inside the wiring block corresponding to the plurality of jacks, the pressure blocks are slidably connected to the wiring block, a lifting block is provided at the end of the pressure block, a driving inclined groove is opened on the side of the lifting block, a threaded block is slidably connected inside the wiring block, a sliding column is fixedly connected to the side of the threaded block, and the sliding column is slidably connected to the lifting block through the driving inclined groove.

[0007] Specifically, one end of the electrode opposite to the pressure block is an arc surface structure that cooperates with each other. A driving screw is threadedly connected to the inner side of the threaded block, and the driving screw is rotatably connected to the wiring block.

[0008] Specifically, the release structure includes a fifth spring. A fifth spring is fixedly connected between the end of the pressure block and the lifting block. A first inclined groove and a second inclined groove are respectively formed on the same side of the pressure block and the lifting block. A slope block is arranged on the side of the pressure block. The slope block is slidably connected to the inside of the wiring block, and the ends of the slope block are slidably connected to the pressure block and the lifting block through the first inclined groove and the second inclined groove respectively.

[0009] Specifically, a contact sliding plate is slidably connected to one end of the slope block away from the pressure block. The side of the contact sliding plate is slidably connected to the inside of the wiring block. The other side of the contact sliding plate abuts against the end of the release screw. The release screw is threadedly connected to the side of the wiring block. The wiring block is respectively provided with pressing blocks in a plurality of jacks. The pressing blocks are slidably connected to the wiring block, and a sixth spring is fixedly connected between the end of the pressing block and the wiring block. The end of the pressing block is in an inclined surface structure.

[0010] Specifically, the wire arranging structure includes a rotating frame. A rotating frame is rotatably connected to the inside of the controller body. The rotating frame is in a "U" - shaped structure. A fixed cylinder is rotatably connected between the two ends of the rotating frame. The fixed cylinder is a hollow structure. A plurality of wire passing holes are formed on the side of the fixed cylinder. An extrusion shaft is rotatably connected to the inside of the fixed cylinder. The middle part of the extrusion shaft is in an eccentric rod - like structure, and the end of the extrusion shaft is rotatably connected to the rotating frame.

[0011] Specifically, a plurality of first positioning grooves are formed on the side of one end of the fixed cylinder. A first positioning block is slidably connected to the side of the rotating frame. A first spring is fixedly connected between the first positioning block and the rotating frame. The end of the first positioning block is engaged with the fixed cylinder through the first positioning groove. A ratchet groove is formed on the side of the end of the extrusion shaft. A ratchet block is slidably connected to the inside of the rotating frame. A second spring is fixedly connected between the ratchet block and the rotating frame. The end of the ratchet block is engaged with the extrusion shaft through the ratchet groove.

[0012] Specifically, the positioning structure includes a transmission block. A transmission block is slidably connected to the side of the controller body. The end of the transmission block is slidably connected to a second positioning block. A seventh spring is fixedly connected between the second positioning block and the transmission block. A plurality of second positioning grooves are formed on the side of the middle part of the rotating frame.

[0013] Specifically, an eighth spring is fixedly connected between the transmission block and the controller body, a bevel groove is provided on the side of the transmission block facing away from the second positioning block, a pushing column is fixedly connected to the side of the lifting block, and the end of the pushing column is slidably connected to the transmission block through the bevel groove.

[0014] Specifically, the mounting structure includes a guide block, a guide block is provided on the side of the controller body, and a mounting bracket is respectively provided on both sides of the controller body. The two mounting brackets are arranged in a "mouth" shape, and a limiting groove is provided on the inner side of the mounting bracket. The mounting bracket is slidably connected to the guide block through the limiting groove. A third spring is fixedly connected between the adjacent ends of the two mounting brackets, and a rotating rod is rotatably connected to the middle part of the mounting bracket. A torsion spring is fixedly connected between the rotating rod and the mounting bracket, and a fixing groove is provided on the side of the controller body. The end of the rotating rod is engaged with the controller body through the fixing groove.

[0015] Specifically, the heat dissipation structure includes a heat sink, which is rotatably connected to the side of the controller body, and the heat sink is in a comb-like structure. A cleaning comb is slidably connected to the middle of the heat sink, and an end block is fixedly connected to the side of the controller body, and a positioning bar is slidably connected to the side of the end block. A fourth spring is fixedly connected between the positioning bar and the end block, and the end of the positioning bar is in conflict with the end of the heat sink.

[0016] The beneficial effects of the present invention are: (1) In the communication type reactive power compensation controller described in the present invention, a connection structure is provided on the side of the controller body, and a release structure is provided on the inner side of the connection structure. The connection structure can facilitate operators to connect and remove wires, and the release structure can connect and release any single wire, thereby improving the flexibility of use.

[0017] (2) In the communication type reactive power compensation controller described in the present invention, a wire management structure is provided on the inner side of the controller body, and a positioning structure is provided between the wire management structure and the connection structure. The wires can be organized through the wire management structure and the wires' resistance to pulling can be improved. The rotation angle of the rotating frame can be fixed through the positioning structure, thereby achieving the best fixing effect on the wires.

[0018] (3) In the communication type reactive power compensation controller described in the present invention, mounting structures are provided on both sides of the controller body, and the mounting structures can facilitate the installation of the controller in electrical cabinets of different specifications.

[0019] (4) In the communication type reactive power compensation controller described in the present invention, the end of the controller body is connected to a heat dissipation structure, and the dust accumulated in the heat dissipation holes on the controller can be easily cleaned through the heat dissipation structure. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The present invention will be further described below in conjunction with the accompanying drawings and embodiments.

[0021] Figure 1 It is a schematic diagram of the overall structure provided by the present invention; Figure 2 It is a schematic diagram of the connection structure between the controller body and the rotating frame of the present invention; Figure 3 It is Figure 2 The enlarged schematic diagram of part A shown; Figure 4 It is a schematic diagram of the connection structure between the controller body and the wiring block of the present invention; Figure 5 It is Figure 4 The enlarged schematic diagram of part B shown; Figure 6 It is a schematic diagram of the lifting block of the present invention; Figure 7 It is a schematic diagram of the threaded block of the present invention; Figure 8 It is a schematic diagram of the connection structure between the rotating frame and the extrusion shaft of the present invention; Figure 9 It is Figure 8 The enlarged schematic diagram of part C shown; Figure 10 It is Figure 8 The enlarged schematic diagram of part D shown; Figure 11 It is Figure 8 The enlarged schematic diagram of part E shown; Figure 12 It is a schematic diagram of the connection structure between the controller body and the mounting bracket of the present invention; Figure 13 It is a schematic diagram of the connection structure between the controller body and the heat sink of the present invention; Figure 14 It is Figure 13 The enlarged schematic diagram of part F shown; Figure 15 It is Figure 13 The enlarged schematic diagram of part G shown.

[0022] In the figure: 1. Controller body; 2. Connection structure; 201. Wiring block; 202. Jack; 203. Electrode; 204. Pressure block; 205. Lifting block; 206. Driving screw; 207. Driving chute; 208. Threaded block; 209. Slide post; 3. Wire management structure; 301. Rotating frame; 302. Fixed cylinder; 303. Extrusion shaft; 304. First positioning block; 305. First spring; 306. First positioning groove; 307. Threading hole; 308. Ratchet groove; 309. Ratchet tooth block; 310. Second spring; 4. Mounting structure; 401. Mounting frame; 402. Rotary rod; 403. Guide block; 404. Limiting groove; 405. Third spring; 406. Fixed groove; 407. Torsion spring; 5. Heat dissipation structure; 501. Heat dissipation plate; 502. End block; 503. Cleaning comb; 504. Fourth spring; 505. Positioning strip; 6. Release structure; 601. Release screw; 602. Contact sliding plate; 603. Inclined plane block; 604. First inclined chute; 605. Second inclined chute; 606. Fifth spring; 607. Compression block; 608. Sixth spring; 7. Positioning structure; 701. Second positioning groove; 702. Second positioning block; 703. Seventh spring; 704. Transmission block; 705. Inclined plane groove; 706. Pushing column; 707. Eighth spring. Detailed implementation mode

[0023] In order to make the technical means, creative features, achieved purposes and functions of the present invention easy to understand, the present invention will be further described below in conjunction with the detailed implementation mode.

[0024] As Figure 1 、 Figure 2 、 Figure 3 、 Figure 5 As shown in

[0025] Specifically, as Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 、 Figure 6 、 Figure 7 、 Figure 8 、 Figure 9As shown, the connection structure 2 includes a wiring block 201. The wiring block 201 is fixedly connected to the side of the controller body 1. A plurality of jacks 202 are formed in the side of the wiring block 201. Electrodes 203 are fixedly connected to the inside of the wiring block 201 at the jacks 202. The electrodes 203 are electrically connected to the controller body 1. A plurality of pressure blocks 204 are respectively arranged inside the wiring block 201 corresponding to the plurality of jacks 202. The pressure blocks 204 are slidably connected to the wiring block 201. The end of the pressure block 204 is provided with a lifting block 205. A driving inclined groove 207 is formed in the side of the lifting block 205. A threaded block 208 is slidably connected to the inside of the wiring block 201. A sliding column 209 is fixedly connected to the side of the threaded block 208. The sliding column 209 is slidably connected to the lifting block 205 through the driving inclined groove 207. The opposite ends of the electrode 203 and the pressure block 204 are arc surface structures that cooperate with each other. A driving screw 206 is threadedly connected to the inside of the threaded block 208. The driving screw 206 is rotatably connected to the wiring block 201; After sequentially placing the metal parts at the ends of all wires to be connected into the corresponding jacks 202, rotate the driving screw 206 located on the side of the wiring block 201. The driving screw 206 will drive the threaded block 208 to slide to one side. At this time, the sliding column 209 on the side of the driving screw 206 will simultaneously slide in the driving inclined groove 207 on the side of the lifting block 205 and drive the entire lifting block 205 to move downward. Finally, the lifting block 205 will squeeze the pressure block 204 so that the pressure block 204 is in close contact with the metal part of the wire, thereby realizing the connection of the wire. Since all the pressure blocks 204 are controlled to move simultaneously by the driving screw 206, the efficiency of wire connection is improved. On the other hand, when the user reversely rotates the driving screw 206, all the pressure blocks 204 can be released, achieving the effect of quickly disassembling all the connected wires, which is convenient to use.

[0026] Specifically, as Figure 3As shown, the release structure 6 includes a fifth spring 606, and the fifth spring 606 is fixedly connected between the end of the pressure block 204 and the lifting block 205. The same side of the pressure block 204 and the lifting block 205 is respectively provided with a first inclined groove 604 and a second inclined groove 605. The side of the pressure block 204 is provided with an inclined block 603, and the inclined block 603 is slidably connected to the inner side of the wiring block 201. The ends of the inclined block 603 are slidably connected to the pressure block 204 and the lifting block 205 through the first inclined groove 604 and the second inclined groove 605, and the inclined block 603 is away from the pressure block One end of the contact slide 602 is slidably connected to the contact slide 602, the side of the contact slide 602 is slidably connected to the inner side of the terminal block 201, the other side of the contact slide 602 is in conflict with the end of the release screw 601, the release screw 601 is threadedly connected to the side of the terminal block 201, the terminal block 201 is respectively provided with a compression block 607 in a plurality of jacks 202, the compression block 607 is slidably connected to the terminal block 201, and a sixth spring 608 is fixedly connected between the end of the compression block 607 and the terminal block 201, and the end of the compression block 607 is an inclined structure; When the pressure block 204 is in a state of squeezing the wire, the corresponding release screw 601 is in a screwed-in state, and the release screw 601 supports the inclined block 603 through the resistance slide 602 at the end. When the operator needs to remove any wire, the corresponding release screw 601 can be screwed out, and the support effect of the resistance slide 602 is lost. The pressure block 204 is pulled by the fifth spring 606 to move toward the lifting block 205. At the same time, due to the inclined effect of the first inclined groove 604 and the second inclined groove 605, the inclined block 603 is pushed to the side. At this time, due to the retraction of the pressure block 204, the release of the wire is completed, and the other wires are kept in a fixed state, which is convenient for the controller. During the installation operation, when the wire needs to be reinstalled, it is only necessary to reinsert the wire into the corresponding socket 202 and screw back the corresponding release screw 601. The inclined block 603 will slide again and push the pressure block 204 toward the electrode 203 to achieve the connection of the wire. At the same time, in order to facilitate the connection of the wire, a compression block 607 is provided at the end of the socket 202. The end of the compression block 607 is a sloped structure, and its edge is relatively sharp. After the wire is inserted into the socket 202, it is pushed by the sixth spring 608, and the rubber part of the wire will be fixed by the edge of the compression block 607, thereby facilitating the temporary fixation of the wire at the position of the socket 202, facilitating the simultaneous fixation of multiple wires, and improving the installation efficiency.

[0027] Specifically, Figure 1 , Figure 2 , Figure 4 , Figure 5 , Figure 8 , Figure 9 ,Figure 10 , Figure 11 , Figure 12 As shown in Figure 10 , Figure 11 , and Figure 12 , the wire management structure 3 includes a rotating frame 301. The rotating frame 301 is rotatably connected to the inner side of the controller body 1. The rotating frame 301 has a "U" - shaped structure. A fixed cylinder 302 is rotatably connected between the two ends of the rotating frame 301. The fixed cylinder 302 is a hollow structure. A plurality of wire - passing holes 307 are formed in the side surface of the fixed cylinder 302. An extrusion shaft 303 is rotatably connected to the inner side of the fixed cylinder 302. The middle part of the extrusion shaft 303 is in an eccentric rod - like structure. The end of the extrusion shaft 303 is rotatably connected to the rotating frame 301. A plurality of first positioning grooves 306 are formed in the side surface of one end of the fixed cylinder 302. A first positioning block 304 is slidably connected to the side surface of the rotating frame 301. A first spring 305 is fixedly connected between the first positioning block 304 and the rotating frame 301. The end of the first positioning block 304 is engaged with the fixed cylinder 302 through the first positioning groove 306. A ratchet groove 308 is formed in the side surface of the end of the extrusion shaft 303. A ratchet block 309 is slidably connected to the inner side of the rotating frame 301. A second spring 310 is fixedly connected between the ratchet block 309 and the rotating frame 301. The end of the ratchet block 309 is engaged with the extrusion shaft 303 through the ratchet groove 308; After passing the end of the wire through the corresponding wire - passing hole 307 on the fixed cylinder 302 and completing the fixed connection of the wire end, the user can rotate the extrusion shaft 303 at one end of the rotating frame 301. Since the middle part of the extrusion shaft 303 is in an eccentric rod - like structure, as the extrusion shaft 303 rotates, the middle part of the extrusion shaft 303 will squeeze the passed - through wire to one side until it is fixed. At the same time, a ratchet groove 308 is provided on the side surface of the extrusion shaft 303. Through the engaged ratchet block, the extrusion shaft 303 can only rotate to one side, which enables the extrusion shaft 303 to maintain the fixed state of the wire. On the other hand, due to the limited rotation direction of the extrusion shaft 303, when the extrusion shaft 303 squeezes and fixes the wire, it will not pull the wire part on one side of the controller, ensuring the stability of the connection. At the other end of the rotating frame 301, the user can slide the first positioning block 304 to control the rotation position of the fixed cylinder 302, which is convenient for the fixed cylinder 302 to fix the wire at different angles. At the same time, the fixed cylinder 302 can also be rotated by releasing the engagement state between the first positioning block 304 and the first positioning groove 306 to release the wire fixed by the extrusion shaft 303.

[0028] Specifically, as shown in Figure 5 , Figure 6 , Figure 9As shown, the positioning structure 7 includes a transmission block 704, the side of the controller body 1 is slidably connected with the transmission block 704, the end of the transmission block 704 is slidably connected with the second positioning block 702, the second positioning block 702 and the transmission block 704 are fixedly connected with a seventh spring 703, a plurality of second positioning grooves 701 are provided on the side of the middle part of the rotating frame 301, an eighth spring 707 is fixedly connected between the transmission block 704 and the controller body 1, a bevel groove 705 is provided on the side of the transmission block 704 away from the second positioning block 702, a pushing column 706 is fixedly connected to the side of the lifting block 205, and the end of the pushing column 706 is slidably connected to the transmission block 704 through the bevel groove 705; The rotating frame 301 can be rotated with the controller body 1 to facilitate adjustment of the fixed angle according to factors such as the length of the wire. When connecting the wire to the electrode 203, before rotating the drive screw 206 to complete the fixation, the user can rotate the rotating frame 301 to a suitable angle, and then grab the drive screw 206 to complete the connection between the wire and the electrode 203. At this time, as the lifting block 205 slides, the pressure block 204 is pushed, and the pushing column 706 on its side will slide in the inclined groove 705 on the side of the transmission block 704, and push the transmission block 704 toward the middle of the rotating frame 301 until the second positioning block 702 is engaged with the corresponding second positioning groove 701, thereby fixing the current angle of the rotating frame 301 and improving the arrangement effect of the wire.

[0029] Specifically, Figure 1 , Figure 2 , Figure 4 , Figure 8 , Figure 12 , Figure 13 , Figure 14 As shown, the mounting structure 4 includes a guide block 403, a guide block 403 is provided on the side of the controller body 1, and a mounting bracket 401 is provided on both sides of the controller body 1, and the two mounting brackets 401 are arranged in a "mouth" shape, and a limiting groove 404 is provided on the inner side of the mounting bracket 401, and the mounting bracket 401 is slidably connected with the guide block 403 through the limiting groove 404, and a third spring 405 is fixedly connected between the adjacent ends of the two mounting brackets 401, and a rotating rod 402 is rotatably connected to the middle part of the mounting bracket 401, and a torsion spring 407 is fixedly connected between the rotating rod 402 and the mounting bracket 401, and a fixing groove 406 is provided on the side of the controller body 1, and the end of the rotating rod 402 is engaged with the controller body 1 through the fixing groove 406; For the convenience of installation in distribution cabinets of different specifications, an installation frame 401 that slides along the guide block 403 is provided on each side of the controller body 1. The installation frame 401 can slide freely within the range allowed by the limit slot 404, ensuring installation and fixation between the electrical cabinet through the installation holes on the installation frame 401. Placing the display end of the controller body 1 into the installation hole of the cabinet body and cooperating with the fixing effect of the installation frame 401 can ensure the fixing effect of the controller. At the same time, a third spring 405 is provided between the two installation frames 401, so that after the user rotates the rotating rods 402 on both sides to release the engagement state between their ends and the fixing slots 406, the installation frame 401 can automatically extend, facilitating use.

[0030] Specifically, as Figure 2 、 Figure 4 、 Figure 15 shown, the heat dissipation structure 5 includes a heat dissipation plate 501. The heat dissipation plate 501 is rotatably connected to the side of the controller body 1. The heat dissipation plate 501 has a comb-like structure. A cleaning comb 503 is slidably connected to the middle of the heat dissipation plate 501. An end block 502 is fixedly connected to the side of the controller body 1. A positioning strip 505 is slidably connected to the side of the end block 502. A fourth spring 504 is fixedly connected between the positioning strip 505 and the end block 502. The end of the positioning strip 505 abuts against the end of the heat dissipation plate 501; A number of slits are provided on the heat dissipation plate 501 to ensure the release of heat inside the controller body 1. However, with the long-term use of the device, a large amount of dust will accumulate in the openings of the heat dissipation plate 501, affecting the heat dissipation effect. At this time, the user can rotate out the heat dissipation plate 501 through the cleaning comb 503, and then slide the cleaning comb 503 on the heat dissipation plate 501 to thoroughly clean the dust in the gaps on the heat dissipation plate 501 and maintain the heat dissipation effect. A positioning strip 505 is provided on the end block 502 at the end of the heat dissipation plate 501, which can fix the heat dissipation plate 501 and ensure the protection effect of the heat dissipation plate 501 on the surface of the controller body 1.

[0031] When the present invention is in use, first, an electrode 203 for connecting a wire is provided inside a wiring block 201 on the side of the controller body 1. The electrode 203 is arranged inside a jack 202. When wire connection is required, the user sequentially places the metal parts at the ends of all wires to be connected into the corresponding jacks 202, and then rotates a driving screw 206 on the side of the wiring block 201. The driving screw 206 drives a threaded block 208 to slide to one side. At this time, a sliding column 209 on the side of the driving screw 206 will simultaneously slide in a driving inclined groove 207 on the side of a lifting block 205 and drive the entire lifting block 205 to move downward. Finally, the lifting block 205 will squeeze a pressure block 204 so that the pressure block 204 maintains close contact with the metal part of the wire, thereby realizing the wire connection work. Since all pressure blocks 204 are controlled to move simultaneously by the driving screw 206, the efficiency of wire connection is improved. On the other hand, when the user reversely rotates the driving screw 206, all pressure blocks 204 can be released, achieving the effect of quickly disassembling all connected wires, which is convenient for use. During the installation process of the controller, in order to facilitate the disassembly and assembly of any single wire, an inclined plane block 603 is arranged between the pressure block 204 and the lifting block 205. When the pressure block 204 is in the state of squeezing the wire, the corresponding release screw 601 is in the screwed-in state. The release screw 601 supports the inclined plane block 603 through a contact sliding plate 602 at its end. When the operator needs to disassemble any wire, the corresponding release screw 601 can be screwed out. Without the support effect of the contact sliding plate 602, the pressure block 204 is pulled by a fifth spring 606 to move towards the lifting block 205. At the same time, due to the inclined plane effects of a first inclined groove 604 and a second inclined groove 605, the inclined plane block 603 is pushed to the side. At this time, since the pressure block 204 retracts, the release of the wire is completed, and other wires remain fixed, which is convenient for the installation operation of the controller. When the wire needs to be reinstalled, the wire only needs to be reinserted into the corresponding jack 202 and the corresponding release screw 601 is screwed back. The inclined plane block 603 will slide again and push the pressure block 204 towards the electrode 203 to realize the wire connection. At the same time, in order to facilitate the wire connection, a pressing block 607 is arranged at the end position of the jack 202. The end of the pressing block 607 is of an inclined plane structure and its edge is relatively sharp. After the wire is inserted into the jack 202, under the push of a sixth spring 608, the rubber part of the wire will be fixed by the edge of the pressing block 607, thereby facilitating the temporary fixation of the wire at the position of the jack 202, facilitating the simultaneous fixation of multiple wires, and improving the installation efficiency. In order to organize the connected wire materials, a rotating frame 301 is rotatably arranged on the controller body 1. Before the connection of the wire materials, the user needs to pass the end of the wire material through a corresponding wire passing hole 307 on a fixed cylinder 302. After the fixation connection of the end of the wire material is completed, the user can rotate a pressing shaft 303 at one end of the rotating frame 301,Since the middle part of the extrusion shaft 303 is an eccentric rod-shaped structure, as the extrusion shaft 303 rotates, the middle part of the extrusion shaft 303 will squeeze the passing wire to one side until it is fixed. At the same time, a ratchet groove 308 is provided on the side of the extrusion shaft 303. Through the ratchet block engaged with it, the extrusion shaft 303 can only rotate to one side, which enables the extrusion shaft 303 to maintain the fixed state of the wire. On the other hand, since the rotation direction of the extrusion shaft 303 is limited, the extrusion shaft 303 will not pull the wire part on the controller side while squeezing and fixing the wire, ensuring the stability of the connection. At the other end of the rotating frame 301, the user can slide the first positioning block 304 to control the rotation position of the fixed cylinder 302, which is convenient for the fixed cylinder 302 to fix the wire at different angles. At the same time, the fixed cylinder 302 can also be rotated by releasing the engagement state between the first positioning block 304 and the first positioning groove 306 to release the wire fixed by the extrusion shaft 303. The rotating frame 301 can rotate with the controller body 1 to facilitate adjusting the fixing angle according to factors such as the length of the wire. When connecting the wire to the electrode 203, before the rotating drive screw 206 is fixed, the user can rotate the rotating frame 301 to a suitable angle, and then complete the connection between the wire and the electrode 203 by operating the drive screw 206. At this time, as the lifting block 205 slides, while pushing the pressure block 204, the pushing column 706 on its side will slide in the inclined groove 705 on the side of the transmission block 704 and push the transmission block 704 towards the middle of the rotating frame 301 until the second positioning block 702 engages with the corresponding second positioning groove 701, thereby fixing the current angle of the rotating frame 301 and improving the wire arrangement effect. To facilitate installation in distribution cabinets of different specifications, mounting brackets 401 that slide along the guide blocks 403 are respectively provided on both sides of the controller body 1. The mounting brackets 401 can slide freely within the range allowed by the limit grooves 404, ensuring installation and fixation with the electrical cabinet through the mounting holes on the mounting brackets 401. Placing the display end of the controller body 1 into the mounting hole of the cabinet and cooperating with the fixing effect of the mounting bracket 401 can ensure the fixing effect of the controller. At the same time, a third spring 405 is provided between the two mounting brackets 401, so that after the user rotates the rotary rods 402 on both sides to release the engagement state between their ends and the fixing grooves 406, the mounting brackets 401 can automatically extend for convenient use. A heat dissipation plate 501 is provided at the tail end of the controller body 1. A number of slits are opened on the heat dissipation plate 501 to ensure the release of the heat inside the controller body 1. However, with the long-term use of the device, a large amount of dust will accumulate in the openings of the heat dissipation plate 501, affecting the heat dissipation effect. At this time, the user can screw out the heat dissipation plate 501 with the cleaning comb 503, and then slide the cleaning comb 503 on the heat dissipation plate 501 to fully clean the dust in the gaps on the heat dissipation plate 501 and maintain the heat dissipation effect. A positioning strip 505 is provided on the end block 502 at the end of the heat dissipation plate 501,The heat dissipation plate 501 can be fixed to ensure the protection effect of the heat dissipation plate 501 on the surface of the controller body 1.

[0032] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above-described exemplary embodiments, and without departing from the spirit or basic characteristics of the present invention, the present invention can be implemented in other specific forms. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-restrictive. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, all changes falling within the meaning and scope of the equivalent elements of the claims are intended to be included in the present invention. Any reference signs in the claims should not be construed as limiting the claims involved.

[0033] In addition, it should be understood that although this specification is described according to embodiments, not every embodiment only contains an independent technical solution. This narrative way of the specification is only for clarity. Those skilled in the art should regard the specification as a whole, and the technical solutions in each embodiment can also be appropriately combined to form other embodiments that can be understood by those skilled in the art.

Claims

1. A communication type reactive power compensation controller, characterized in that: The controller body (1) comprises a connection structure (2) on the side of the controller body (1), a release structure (6) on the inner side of the connection structure (2), a wire management structure (3) on the inner side of the controller body (1), a positioning structure (7) between the wire management structure (3) and the connection structure (2), mounting structures (4) on both sides of the controller body (1), and a heat dissipation structure (5) connected to the end of the controller body (1); The connection structure (2) comprises a wiring block (201), the side of the controller body (1) is fixedly connected to the wiring block (201), the side of the wiring block (201) is provided with a plurality of plug holes (202), the wiring block (201) is fixedly connected to an electrode (203) on the inner side of the plug hole (202), the electrode (203) is electrically connected to the controller body (1), and the inner side of the wiring block (201) is provided with a plurality of pressure blocks (203) corresponding to the plurality of plug holes (202). 4), the pressure block (204) is slidably connected to the terminal block (201), a lifting block (205) is provided at the end of the pressure block (204), a driving inclined groove (207) is provided on the side of the lifting block (205), a threaded block (208) is slidably connected to the inner side of the terminal block (201), a sliding column (209) is fixedly connected to the side of the threaded block (208), and the sliding column (209) is slidably connected to the lifting block (205) via the driving inclined groove (207).

2. A communication type reactive power compensation controller according to claim 1, characterized in that: The ends of the electrode (203) and the pressure block (204) opposite to each other are arc-surface structures that fit together. The inner side of the threaded block (208) is threadedly connected to a driving screw rod (206), and the driving screw rod (206) is rotationally connected to the terminal block (201).

3. A communication type reactive power compensation controller according to claim 1, characterized in that: The release structure (6) comprises a fifth spring (606), the fifth spring (606) being fixedly connected between the end of the pressure block (204) and the lifting block (205), a first inclined groove (604) and a second inclined groove (605) being respectively provided on the same side of the pressure block (204) and the lifting block (205), a slope block (603) being provided on the side of the pressure block (204), the slope block (603) being slidably connected to the inner side of the wiring block (201), and the ends of the slope block (603) being slidably connected to the pressure block (204) and the lifting block (205) via the first inclined groove (604) and the second inclined groove (605), respectively.

4. A communication type reactive power compensation controller according to claim 3, characterized in that: One end of the inclined plane block (603) facing away from the pressure block (204) is slidably connected with a contact slide plate (602). The side surface of the contact slide plate (602) is slidably connected with the inner side of the wiring block (201). The other side of the contact slide plate (602) abuts against the end of the release screw (601). The release screw (601) is threadedly connected to the side surface of the wiring block (201). The wiring block (201) is respectively provided with pressing blocks (607) in a plurality of jacks (202). The pressing blocks (607) are slidably connected with the wiring block (201), and a sixth spring (608) is fixedly connected between the end of the pressing block (607) and the wiring block (201). The end of the pressing block (607) is of an inclined plane structure.

5. The communication type reactive power compensation controller according to claim 1, characterized in that: The wire arranging structure (3) includes a rotating frame (301). The rotating frame (301) is rotatably connected to the inner side of the controller body (1). The rotating frame (301) is of a "U" - shaped structure. A fixed cylinder (302) is rotatably connected between the two ends of the rotating frame (301). The fixed cylinder (302) is of a hollow structure. A plurality of wire passing holes (307) are formed in the side surface of the fixed cylinder (302). An extrusion shaft (303) is rotatably connected to the inner side of the fixed cylinder (302). The middle part of the extrusion shaft (303) is of an eccentric rod - like structure. The end of the extrusion shaft (303) is rotatably connected to the rotating frame (301).

6. A communication type reactive power compensation controller according to claim 5, characterized in that: A plurality of first positioning grooves (306) are formed in one end side surface of the fixed cylinder (302). A first positioning block (304) is slidably connected to the side surface of the rotating frame (301). A first spring (305) is fixedly connected between the first positioning block (304) and the rotating frame (301). The end of the first positioning block (304) is engaged with the fixed cylinder (302) through the first positioning groove (306). A ratchet groove (308) is formed in the end side surface of the extrusion shaft (303). A ratchet block (309) is slidably connected to the inner side of the rotating frame (301). A second spring (310) is fixedly connected between the ratchet block (309) and the rotating frame (301). The end of the ratchet block (309) is engaged with the extrusion shaft (303) through the ratchet groove (308).

7. The communication type reactive power compensation controller according to claim 5, characterized in that: The positioning structure (7) includes a transmission block (704). The transmission block (704) is slidably connected to the side surface of the controller body (1). The end of the transmission block (704) is slidably connected with a second positioning block (702). A seventh spring (703) is fixedly connected between the second positioning block (702) and the transmission block (704). A plurality of second positioning grooves (701) are formed in the side surface of the middle part of the rotating frame (301).

8. A communication type reactive power compensation controller according to claim 7, characterized in that: An eighth spring (707) is fixedly connected between the transmission block (704) and the controller body (1); a bevel groove (705) is provided on a side of the transmission block (704) facing away from the second positioning block (702); a pushing column (706) is fixedly connected to a side of the lifting block (205); and an end of the pushing column (706) is slidably connected to the transmission block (704) via the bevel groove (705).

9. The communication type reactive power compensation controller according to claim 1, characterized in that: The mounting structure (4) comprises a guide block (403), the guide block (403) being provided on the side of the controller body (1), a mounting frame (401) being provided on both sides of the controller body (1), the two mounting frames (401) being arranged in a "mouth" shape, a limiting groove (404) being provided on the inner side of the mounting frame (401), the mounting frame (401) being slidably connected to the guide block (403) via the limiting groove (404), a third spring (405) being fixedly connected between adjacent ends of the two mounting frames (401), a rotating rod (402) being rotatably connected to the middle of the mounting frame (401), a torsion spring (407) being fixedly connected between the rotating rod (402) and the mounting frame (401), a fixing groove (406) being provided on the side of the controller body (1), the end of the rotating rod (402) being engaged with the controller body (1) via the fixing groove (406).

10. The communication type reactive power compensation controller according to claim 1, characterized in that: The heat dissipation structure (5) comprises a heat dissipation plate (501), the side of the controller body (1) is rotatably connected to the heat dissipation plate (501), the heat dissipation plate (501) is in a comb-like structure, the middle of the heat dissipation plate (501) is slidably connected to a cleaning comb (503), the side of the controller body (1) is fixedly connected to an end block (502), the side of the end block (502) is slidably connected to a positioning bar (505), a fourth spring (504) is fixedly connected between the positioning bar (505) and the end block (502), and the end of the positioning bar (505) is in conflict with the end of the heat dissipation plate (501).