Integrated cable connector
By introducing a reaction box and cooling assembly into the cable connector, the reaction of barium hydroxide powder and ammonium chloride powder is used to absorb heat, combined with the shock absorption measures of spring and damper, the problems of heat accumulation and vibration of the cable connector are solved, achieving uniform heat dissipation and stable connection.
Patent Information
- Application Number
- CN202510557352.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-29
- Publication Date
- 2025-07-18
- Estimated Expiration
- 2045-04-29
AI Technical Summary
During use, existing cable connectors accumulate heat, uneven heat dissipation, and are prone to damage. When the external ambient temperature is high, the inside of the connector is affected, reducing the use effect.
An integrated cable connector is designed, including a base plate, mounting frame and connector body. The installation frame is equipped with a reaction box and cooling component. It absorbs heat through the reaction of barium hydroxide powder and ammonium chloride powder, combines a spring and a damper to perform shock absorption, and fixes the cable using the connecting component, and improves stability through the locking structure of the latch.
Achieve uniform heat dissipation, avoid connector damage, improve stability and use effect, reduce the impact of vibration on the connector, and ensure the stability of cable connection.
Smart Images

Figure CN120341622A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of cable connectors, and specifically to an integrated cable connector. Background Art
[0002] A cable connector is a device used to connect cables, and its main function is to convert and connect cables that were originally not connected. It is widely used in various communication devices, such as internal connections of digital program-controlled switches, optical and electrical transmission devices, and signal transmission between distribution frames, for transmitting data, audio, video, and other communication devices. A cable connector usually consists of a sheath, a connection sleeve, an inner conductor, an outer conductor, and other parts. The installation process includes steps such as disassembling the connector, fixing the cable end, applying sealant, and rotating and installing the connection sleeve. The sheath is made of flame-retardant material to ensure safety; the rotational installation of the connection sleeve ensures the stable connection of the cable.
[0003] An integrated module cable connector published according to a Chinese patent, with the publication number CN216872303U, includes a cable plug and a cable socket; a radio frequency plug module, a low-frequency plug module, and a power plug module are provided on the cable plug; a cable socket, on which a radio frequency socket module, a low-frequency socket module, and a power socket module are provided; the cable socket is plugged into the cable plug. This solution can simultaneously complete the transmission of radio frequency, low-frequency, and power signals, well solve the internal communication and external communication between the various systems of the product, and at the same time has a compact structure, saves space, and is convenient for installation. The components provided on the cable plug and the cable socket are all connected in a detachable manner, and once a component fails, it is convenient to replace. This solution not only has stable and reliable contact, but also is resistant to vibration and impact; During the use of existing cables connected by connectors, a large amount of heat is generated at the joint position. In order to facilitate the heat dissipation of the cable connector, heat dissipation fins are generally directly provided on the cable connector for heat dissipation treatment. However, the heat generation position is relatively concentrated, and it is difficult for the evenly distributed heat dissipation fins to quickly and evenly discharge the heat. Moreover, directly contacting the heat dissipation fins with the heat generation position cannot guarantee the protection of the connector and is easily damaged. When the external environmental temperature is high, it is also easy to directly affect the inside of the connector, reducing the use effect of the cable connector. Therefore, an integrated cable connector is proposed. Summary of the Invention
[0004] The purpose of the present invention is to provide an integrated cable connector to solve the problems raised in the above background art.
[0005] To achieve the above purpose, the present invention provides the following technical solution: an integrated cable connector, including a bottom plate; An installation frame located above the bottom plate; And a connector body located inside the installation frame, and a connection component is provided on the side of the connector body; A cooling component is arranged inside the installation frame.
[0006] Preferably, the cooling component includes a reaction tank located inside the installation frame. The top surface of the reaction tank is fixedly connected to the inner top surface of the installation frame. An adding pipe is arranged above the reaction tank. The bottom end surface of the adding pipe fixedly penetrates through the top surface of the installation frame and the top surface of the reaction tank and extends into the reaction tank. A valve is arranged inside the adding pipe. A partition plate and an adjusting plate are arranged inside the reaction tank. A blocking block and a third spring are arranged between the adjusting plate and the partition plate. A box door is hinged to the right side surface of the reaction tank. The box door is located right below the adjusting plate. The side surface of the partition plate is fixedly connected to the inner side surface of the reaction tank. The top surface of the adjusting plate is fixedly connected to the bottom surface of the blocking block. A through groove is formed through the top surface of the partition plate. The blocking block is located directly below the through groove. The upper and lower end surfaces of the third spring are respectively fixedly connected to the bottom surface of the partition plate and the top surface of the adjusting plate. A push rod is fixedly connected to the bottom surface of the installation frame. A cylinder is fixedly connected to the bottom surface of the bottom plate. The bottom end surface of the push rod slidably penetrates through the top surface of the cylinder and extends into the cylinder. The bottom end surface of the push rod is fixedly connected to a mounting plate. A piston is fixedly installed on the bottom surface of the mounting plate. The side surface of the piston is slidably connected to the inner side surface of the cylinder. A ventilation pipe is arranged below the piston. The top end surface of the ventilation pipe fixedly penetrates through the top surface of the cylinder, the installation frame, the reaction tank, and the top surface of the partition plate and extends below the partition plate. An air outlet pipe is arranged in front of and below the adjusting plate. The front end surface of the air outlet pipe fixedly penetrates through the inner side surface of the reaction tank and extends to the front side of the reaction tank. Ammonium chloride powder is added to the adding pipe, and barium hydroxide octahydrate powder is added to the reaction tank. The barium hydroxide octahydrate powder and ammonium chloride powder react with each other and absorb heat, thereby dissipating heat from the connector body.
[0007] Preferably, a filter screen plate is arranged behind the air outlet pipe. The front side surface of the filter screen plate is fixedly connected to the rear end surface of the air outlet pipe. The filter screen plate prevents impurities generated in the reaction tank from being discharged through the air outlet pipe.
[0008] Preferably, support frames are arranged on both the left and right sides of the cylinder. The bottom surface of the support frames is fixedly connected to the top surface of the bottom plate. A sliding rod and two moving blocks are arranged inside the support frames. The front end surface of the sliding rod slidably penetrates through the rear side surfaces of the two moving blocks and extends to the front sides of the two moving blocks. A second spring is sleeved on the surface of the sliding rod. The front and rear end surfaces of the second spring are respectively fixedly connected to the inner side surface of the support frame and the side surface of the moving block. Adjusting rods are hinged to the top surfaces of the two moving blocks. The two adjusting rods are symmetrically arranged. The top end surfaces of the two adjusting rods are hinged to the bottom surface of the installation frame. The acting force of the second spring has a shock-absorbing effect on the installation frame.
[0009] Preferably, four dampers are fixedly connected to the top surface of the bottom plate. The top end surfaces of the output rods of the four dampers are all fixedly connected to the bottom surface of the installation frame. The damping property of the dampers themselves has a shock-absorbing effect on the installation frame, thereby preventing vibrations from occurring after the connector body is connected to the cable.
[0010] Preferably, the connecting assembly includes a friction pad located below the connector body, the bottom surface of the inner side of the mounting frame is provided with a slide groove, a double-headed threaded rod and a rotating rod are arranged inside the slide groove, and two T-shaped blocks are arranged inside the mounting frame, and the bottom end surfaces of the two T-shaped blocks slide through the bottom surface of the inner side of the mounting frame and extend into the slide groove, and the two T-shaped blocks are symmetrically arranged, and the left end surface of the double-headed threaded rod threads through the right sides of the two T-shaped blocks and extend to the left sides of the two T-shaped blocks, and the left and right end surfaces of the double-headed threaded rod are respectively rotatably connected to the inner wall of the slide groove through a bearing seat, and the surface of the rotating rod and the surface of the double-headed threaded rod are fixedly sleeved with a bevel gear, and the two bevel gears are meshed with inclined surfaces, and a rotating plate is arranged on the front side of the mounting frame, and the front end surface of the rotating rod passes through the inner wall of the slide groove and the rear side surface of the rotating plate and extends to the front side of the rotating plate. The surface of the rotating rod is rotatably connected to the inner wall of the mounting frame through a bearing seat, the top surfaces of the two T-shaped blocks are fixedly connected to a C-shaped frame, the connector body is located on the inner side of the right C-shaped frame, and a cable rack clamp is arranged on the inner side of the left C-shaped frame, the top surface of the C-shaped frame is fixedly connected to an electric push rod, the bottom end surface of the electric push rod output rod penetrates the top surface of the C-shaped frame and extends to the inner side of the C-shaped frame, the top end surface of the electric push rod output rod is fixedly connected to a clamping plate, the bottom surface of the clamping plate is fixedly connected to a rubber pad, the bottom surfaces of the two rubber pads are respectively extruded and connected to the top surface of the cable clamp and the top surface of the connector body, the bottom surface of the friction pad is fixedly connected to the inner bottom surface of the C-shaped frame, the bottom surface of the cable clamp and the bottom surface of the connector body are respectively in contact with the top surface of the friction pad, and the friction pad enhances the friction force of the cable clamp and the connector body in contact with the C-shaped frame.
[0011] Preferably, a connecting frame is provided above the rotating plate, and the rear side surface of the connecting frame is fixedly connected to the front surface of the mounting frame, and the inner side of the connecting frame is provided with a pull rod, a connecting block and a clamping plate arranged in sequence from top to bottom, and the upper and lower surfaces of the connecting block are respectively fixedly connected to the bottom end surface of the pull rod and the top surface of the clamping plate, and the top end surface of the pull rod slides through the inner top surface of the connecting frame and extends to above the connecting frame, and a clamping groove matched with the clamping plate is provided on the surface of the rotating plate, and the bottom end surface of the clamping plate slides through the surface of the rotating plate and extends to the inside of the clamping groove, and the clamping plate slides into the clamping groove to lock the rotating plate.
[0012] Preferably, a first spring is sleeved on the surface of the pull rod, and the upper and lower end surfaces of the first spring are fixedly connected to the inner top surface of the connecting frame and the top surface of the connecting block respectively, and the top end surface of the pull rod is fixedly connected to the bottom surface of the pull plate, and the first spring facilitates the block to slide into the slot.
[0013] Preferably, the left and right sides of the connecting block are fixedly connected to connecting rods, the left and right sides of the inner side of the connecting frame are provided with wedge-shaped grooves, a wedge block is slidably arranged inside the wedge groove, the side surface of the wedge block is fixedly connected to the end surface of the connecting rod, and the wedge block and the connecting rod improve the stability of the connecting block in lifting and lowering.
[0014] Preferably, a protective side plate is fixedly connected to the right side of the cable clamp, through grooves are provided on the upper and lower sides of the protective side plate and the upper and lower sides of the cable clamp, and the protective side plate is made of sponge material to prevent the cable clamp from causing damage to the cable head.
[0015] Compared with the prior art, the present invention has the following beneficial effects: 1. The integrated cable connector uses the heat dissipation component to push the push rod by the vibration of the connector body, so that the ventilation pipe blows the adjustment plate downward, so that the barium hydroxide octahydrate powder in the partition enters the bottom of the reaction box from the through hole, and then the barium hydroxide octahydrate powder and the ammonium chloride powder are mixed to react and absorb heat, thereby dissipating the heat of the connector body, avoiding damage to the connector body, and improving the use effect of the integrated cable connector; 2. The integrated cable connector has a second spring and a damper. The second spring force and the damping property of the damper itself have a shock-absorbing effect on the mounting frame, thereby having a shock-absorbing effect on the connector body. At the same time, the connector body is indirectly cooled, thereby avoiding the waste of barium hydroxide octahydrate powder and ammonium chloride powder caused by continuous cooling, and improving the stability of the integrated cable connector. 3. The integrated cable connector uses a cable clamp to fix the cable through a connecting component, and drives two T-shaped blocks to approach each other through a double-headed threaded rod, so that the cable clamp and the connector body are close to each other, thereby realizing the connection between the cable and the connector body, which is convenient for the use of the integrated cable connector; 4. The integrated cable connector locks the rotating plate by sliding the card plate into the card slot, thereby locking the rotating rod and the double-headed threaded rod, avoiding the shaking of the T-shaped block, and improving the stability of the integrated cable connector for cable connection; 5. The integrated cable connector forms a "through wind" on the left and right sides of the installation frame through the installation frame, which is convenient for heat dissipation of the connector body in the installation frame. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 It is the overall main stereoscopic diagram of the present invention; Figure 2 It is the overall rear perspective view of the present invention; Figure 3 It is a top side sectional stereoscopic view of the double-threaded rod of the present invention; Figure 4 It is a rear perspective view of the double-threaded rod of the present invention; Figure 5 It is a right side cutaway stereoscopic view of the vent pipe of the present invention; Figure 6 It is a left side cutaway perspective view of the slide bar of the present invention; Figure 7Right-side perspective view of the slide bar of the present invention; Figure 8 Left-side sectional perspective view of the wedge block of the present invention; Figure 9 For the present invention Figure 5 Enlarged perspective view of Area A in
[0017] In the figure: base plate 1, mounting frame 2, connector body 3, connection assembly 40, double-headed threaded rod 401, T-shaped block 402, C-shaped frame 403, electric push rod 404, clamping plate 405, friction pad 406, rubber plate 407, cable clamp 408, protective side plate 409, rotating rod 4010, bevel gear 4011, rotating plate 4012, connecting frame 4013, connecting block 4014, clamping plate 4015, pull rod 4016, first spring 4017, wedge block 4018, pull plate 4019, connecting rod 4020, cooling assembly 41, support frame 411, slide bar 412, moving block 413, adjusting rod 414, second spring 415, damper 416, push rod 417, mounting plate 418, piston 419, cylinder 4110, ventilation pipe 4111, reaction tank 4112, adding pipe 4113, partition plate 4114, adjusting plate 4115, stop block 4116, third spring 4117, air outlet pipe 4118, filter screen plate 4119, box door 4120. Detailed implementation method
[0018] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0019] Embodiment 1: Please refer to Figure 1 - Figure 9 , the present invention provides a technical solution: an integrated cable connector, including a base plate 1; A mounting frame 2 located above the base plate 1, through the mounting frame 2, "through wind" is formed on both the left and right sides of the mounting frame 2, which is convenient for the connector body 3 in the mounting frame 2 to dissipate heat; And a connector body 3 located inside the mounting frame 2, and a connection assembly 40 is arranged on the side of the connector body 3; A cooling assembly 41 is arranged on the inner side of the mounting frame 2.
[0020] The temperature reduction component 41 includes a reaction box 4112 located inside the installation frame 2. The top surface of the reaction box 4112 is fixedly connected to the inner top surface of the installation frame 2. An adding pipe 4113 is arranged above the reaction box 4112. The bottom end surface of the adding pipe 4113 fixedly penetrates through the top surface of the installation frame 2 and the top surface of the reaction box 4112 and extends into the interior of the reaction box 4112. A valve is arranged inside the adding pipe 4113. A partition plate 4114 and an adjusting plate 4115 are arranged inside the reaction box 4112. A stop block 4116 and a third spring 4117 are arranged between the adjusting plate 4115 and the partition plate 4114. A box door 4120 is hinged to the right side surface of the reaction box 4112. The box door 4120 is located right below the adjusting plate 4115. The side surface of the partition plate 4114 is fixedly connected to the inner side surface of the reaction box 4112. The top surface of the adjusting plate 4115 is fixedly connected to the bottom surface of the stop block 4116. A through groove is formed through the top surface of the partition plate 4114. The stop block 4116 is located right below the through groove. The upper and lower end surfaces of the third spring 4117 are respectively fixedly connected to the bottom surface of the partition plate 4114 and the top surface of the adjusting plate 4115. A push rod 417 is fixedly connected to the bottom surface of the installation frame 2. A cylinder 4110 is fixedly connected to the bottom surface of the bottom plate 1. The bottom end surface of the push rod 417 slidably penetrates through the top surface of the cylinder 4110 and extends into the interior of the cylinder 4110. The bottom end surface of the push rod 417 is fixedly connected to a mounting plate 418. A piston 419 is fixedly mounted on the bottom surface of the mounting plate 418. The side surface of the piston 419 is slidably connected to the inner side surface of the cylinder 4110. A ventilation pipe 4111 is arranged below the piston 419. The top end surface of the ventilation pipe 4111 fixedly penetrates through the top surface of the cylinder 4110, the installation frame 2, the reaction box 4112 and the top surface of the partition plate 4114 and extends below the partition plate 4114. An air outlet pipe 4118 is arranged in front of and below the adjusting plate 4115. The front end surface of the air outlet pipe 4118 fixedly penetrates through the inner side surface of the reaction box 4112 and extends to the front side of the reaction box 4112. Through the heat dissipation component 41, the vibration of the connector body 3 is utilized to push the push rod 417, so that the ventilation pipe 4111 blows the adjusting plate 4115 to move downward, so that the barium hydroxide octahydrate powder in the partition plate 4114 enters the bottom of the reaction box 4112 from the through hole, and then the barium hydroxide octahydrate powder is mixed with the ammonium chloride powder to react and absorb heat, thereby dissipating heat from the connector body 3, avoiding damage to the connector body 3, and improving the use effect of the integrated cable connector.
[0021] A filter screen plate 4119 is arranged at the rear side of the air outlet pipe 4118. The front side surface of the filter screen plate 4119 is fixedly connected to the rear end surface of the air outlet pipe 4118.
[0022] Support frames 411 are provided on both the left and right sides of the cylinder 4110. The bottom surface of the support frame 411 is fixedly connected to the top surface of the bottom plate 1. A slide bar 412 and two moving blocks 413 are arranged inside the support frame 411. The front end surface of the slide bar 412 slidably penetrates the rear side surfaces of the two moving blocks 413 and extends to the front sides of the two moving blocks 413. A second spring 415 is sleeved on the surface of the slide bar 412. The front and rear end surfaces of the second spring 415 are respectively fixedly connected to the inner side surface of the support frame 411 and the side surface of the moving block 413. Adjusting rods 414 are hinged to the top surfaces of the two moving blocks 413. The two adjusting rods 414 are symmetrically arranged. The top end surfaces of the two adjusting rods 414 are respectively hinged to the bottom surface of the mounting frame 2.
[0023] Four dampers 416 are fixedly connected to the top surface of the bottom plate 1. The top end surfaces of the output rods of the four dampers 416 are respectively fixedly connected to the bottom surface of the mounting frame 2. Through the second spring 415 and the dampers 416, the acting force of the second spring 415 and the damping property of the dampers 416 itself play a shock-absorbing effect on the mounting frame 2, thereby playing a shock-absorbing effect on the connector body 3. At the same time, it realizes the indirect cooling of the connector body 3, avoids the waste of barium hydroxide octahydrate powder and ammonium chloride powder caused by continuous cooling, and improves the stability of the integrated cable connector.
[0024] Embodiment 2: On the basis of Embodiment 1, a preferred embodiment of the integrated cable connector provided by the present invention is as Figure 5 - Figure 8As shown in the figure: The connecting component 40 includes a friction pad 406 located below the connector body 3. A chute is penetrated and opened on the inner bottom surface of the mounting frame 2. A double-headed threaded rod 401 and a rotating rod 4010 are arranged inside the chute. Two T-shaped blocks 402 are arranged inside the mounting frame 2. The bottom ends of the two T-shaped blocks 402 slide through the inner bottom surface of the mounting frame 2 and extend into the chute. The two T-shaped blocks 402 are symmetrically arranged. The left end surface of the double-headed threaded rod 401 is threadedly penetrated through the right side surfaces of the two T-shaped blocks 402 and extends to the left sides of the two T-shaped blocks 402. The left and right end surfaces of the double-headed threaded rod 401 are respectively rotationally connected to the inner wall of the chute through bearing seats. Bevel gears 4011 are fixedly sleeved on the surfaces of the rotating rod 4010 and the double-headed threaded rod 401. The inclined surfaces of the two bevel gears 4011 are meshed. A rotating plate 4012 is arranged on the front side of the mounting frame 2. The front end surface of the rotating rod 4010 penetrates through the inner wall of the chute and the rear side surface of the rotating plate 4012 and extends to the front side of the rotating plate 4012. The surface of the rotating rod 4010 is rotationally connected to the inner wall of the mounting frame 2 through a bearing seat. C-shaped frames 403 are fixedly connected to the top surfaces of the two T-shaped blocks 402. The connector body 3 is located inside the right C-shaped frame 403. A cable clamp 408 is arranged inside the left C-shaped frame 403. An electric push rod 404 is fixedly connected to the top surface of the C-shaped frame 403. The bottom end surface of the output rod of the electric push rod 404 penetrates through the top surface of the C-shaped frame 403 and extends into the C-shaped frame 403. A clamping plate 405 is fixedly connected to the top end surface of the output rod of the electric push rod 404. A rubber pad 407 is fixedly connected to the bottom surface of the clamping plate 405. The bottom surfaces of the two rubber pads 407 are respectively in pressing connection with the top surface of the cable clamp 408 and the top surface of the connector body 3. The bottom surface of the friction pad 406 is fixedly connected to the inner bottom surface of the C-shaped frame 403. The bottom surfaces of the cable clamp 408 and the connector body 3 are respectively in contact with the top surface of the friction pad 406. Through the connecting component 40, the cable is fixed by the cable clamp 408, and the two T-shaped blocks 402 are driven to approach each other by the double-headed threaded rod 401, so that the cable clamp 408 approaches the connector body 3, realizing the connection between the cable and the connector body 3, which is convenient for the use of the integrated cable connector.
[0025] A connecting frame 4013 is arranged above the rotating plate 4012, and the rear side surface of the connecting frame 4013 is fixedly connected to the front surface of the installation frame 2, and a pull rod 4016, a connecting block 4014 and a clamping plate 4015 are arranged on the inner side of the connecting frame 4013 in sequence from top to bottom. The upper and lower surfaces of the connecting block 4014 are fixedly connected to the bottom end surface of the pull rod 4016 and the top surface of the clamping plate 4015 respectively, and the top surface of the pull rod 4016 slides through the inner top surface of the connecting frame 4013 and extends to the top of the connecting frame 4013. A clamping groove compatible with the clamping plate 4015 is opened on the surface of the rotating plate 4012, and the bottom end surface of the clamping plate 4015 slides through the surface of the rotating plate 4012 and extends to the inside of the clamping groove, and slides into the clamping groove through the clamping plate 4015 to realize locking of the rotating plate 4012, and then locking the rotating rod 4010 and the double-headed threaded rod 401, avoiding the shaking of the T-shaped block 402, and improving the stability of the cable connection of the integrated cable connector.
[0026] A first spring 4017 is sleeved on the surface of the pull rod 4016. The upper and lower end surfaces of the first spring 4017 are fixedly connected to the inner top surface of the connecting frame 4013 and the top surface of the connecting block 4014 respectively. The top surface of the pull rod 4016 is fixedly connected to the bottom surface of the pull plate 4019.
[0027] The left and right sides of the connecting block 4014 are fixedly connected to the connecting rod 4020, and the left and right sides of the inner side of the connecting frame 4013 are penetrated with wedge-shaped grooves, and wedge-shaped blocks 4018 are slidably arranged inside the wedge-shaped grooves. The sides of the wedge blocks 4018 are fixedly connected to the end faces of the connecting rod 4020.
[0028] A protective side plate 409 is fixedly connected to the right side of the cable clamp 408. Through grooves are provided on the upper and lower surfaces of the protective side plate 409 and the upper and lower surfaces of the cable clamp 408. The protective side plate 409 is made of sponge material.
[0029] When in use, separate the cables and place them in the through slots of the cable clamp 408, place the cable clamp 408 and the connector body 3 on the friction pads 406 of the two C-shaped frames 403 respectively, and turn on the electric push rod 404. The output rod of the electric push rod 404 extends and drives the clamping plate 405 to move downward, so that the clamping plate 405 drives the rubber plate 407 to fix the cable clamp 408 and the connector body 3 in the two C-shaped frames 403 respectively. Pull the pull plate 4019, the pull plate 4019 drives the pull rod 4016 to move upward, the pull rod 4016 drives the connecting block 4014 to move upward, the connecting block 4014 drives the connecting rod 4020, the wedge block 4018 and the clamping plate 4015 to move upward. The wedge block 4018 slides in the wedge groove, the clamping block 4014 slides out of the clamping groove and squeezes the first spring 4017. Rotate the rotating plate 4012 so that the rotating rod 4010 rotates and drives the connected bevel gear 4011 to rotate. Through the meshing transmission of the two bevel gears 4011, the double-headed threaded rod 401 rotates. The double-headed threaded rod 401 drives the two T-shaped blocks 402 to approach each other, so that the cable clamp 408 and the connector body 3 approach each other, thereby connecting the cable to the connector body 3. Release the pull plate 4019, and the acting force of the first spring 4017 pushes the connecting block 4014 downward, so that the clamping plate 4015 slides into the corresponding clamping groove, and then locks the rotating plate 4012. Open the valve, pour the barium hydroxide octahydrate powder into the partition 4114 of the reaction tank 4112 through the adding pipe 4013, and open the box door 4120 to put the ammonium chloride powder into the reaction tank 4112. When the connector body 3 vibrates, it drives the mounting frame 2 to vibrate and squeeze the damper 416, the push rod 417 and the adjusting rod 414. The push rod 417 pushes the mounting plate 418 and the piston 419 downward. The piston 419 squeezes the gas in the cylinder 4110, so that the gas in the cylinder 4110 enters the ventilation pipe 4111. The ventilation pipe 4111 blows the adjusting plate 4115, so that the adjusting plate 4115 drives the stopper 4116 to move downward and pulls the third spring 4117. The stopper 4116 moves from below the through hole, so that the barium hydroxide octahydrate powder above the partition 4114 falls into the bottom of the reaction tank 4112 through the through hole and mixes with the ammonium chloride powder for reaction. The ammonium chloride powder reacts with the barium hydroxide octahydrate powder to generate ammonia and absorb heat. The ammonia is discharged through the air outlet pipe 4118 (a purification reaction is installed in the air outlet pipe 4118 to avoid environmental pollution caused by ammonia, not shown in the figure). The reaction absorbs heat and absorbs heat inside the mounting frame 2, thereby reducing the temperature of the connector body 3 and achieving the cooling effect on the connector body 3. The adjusting rod 414 pushes the moving block 413 to slide on the sliding rod 412, so that the second spring 415 is squeezed. The acting force of the second spring 415 and the damping property of the damper 416 play a role in damping the mounting frame 2. When the vibration of the mounting frame 2 decreases, the acting force of the third spring 417 will drive the stopper 4116 to move upward, so that the stopper 4116 blocks the through hole and avoids the continuous dropping of the barium hydroxide octahydrate powder.
[0030] Although embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made to the embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An integrated cable connector, comprising a bottom plate (1); An installation frame (2) located above the bottom plate (1); and a connector body (3) located inside the mounting frame (2), characterized in that: A connection component (40) is arranged on the side of the connector body (3); A cooling component (41) is arranged inside the installation frame (2).
2. The integrated cable connector according to claim 1, characterized in that: The cooling component (41) includes a reaction box (4112) located inside the installation frame (2). The top surface of the reaction box (4112) is fixedly connected to the inner top surface of the installation frame (2). An adding pipe (4113) is arranged above the reaction box (4112). The bottom end surface of the adding pipe (4113) fixedly penetrates through the top surface of the installation frame (2) and the top surface of the reaction box (4112) and extends into the reaction box (4112). A valve is arranged inside the adding pipe (4113). A partition plate (4114) and an adjusting plate (4115) are arranged inside the reaction box (4112). A stop block (4116) and a third spring (4117) are arranged between the adjusting plate (4115) and the partition plate (4114). A box door (4120) is hinged to the right side surface of the reaction box (4112). The box door (4120) is located right below the adjusting plate (4115). The side surface of the partition plate (4114) is fixedly connected to the inner side surface of the reaction box (4112). The top surface of the adjusting plate (4115) is fixedly connected to the bottom surface of the stop block (4116). A through groove is formed through the top surface of the partition plate (4114). The stop block (4116) is located right below the through groove. The upper and lower end surfaces of the third spring (4117) are respectively fixedly connected to the bottom surface of the partition plate (4114) and the top surface of the adjusting plate (4115). A push rod (417) is fixedly connected to the bottom surface of the installation frame (2). A cylinder (4110) is fixedly connected to the bottom surface of the bottom plate (1). The bottom end surface of the push rod (417) slidably penetrates through the top surface of the cylinder (4110) and extends into the cylinder (4110). The bottom end surface of the push rod (417) is fixedly connected to a mounting plate (418). A piston (419) is fixedly mounted on the bottom surface of the mounting plate (418). The side surface of the piston (419) is slidably connected to the inner side surface of the cylinder (4110). A ventilation pipe (4111) is arranged below the piston (419). The top end surface of the ventilation pipe (4111) fixedly penetrates through the top surface of the cylinder (4110), the installation frame (2), the reaction box (4112) and the top surface of the partition plate (4114) and extends below the partition plate (4114). An air outlet pipe (4118) is arranged in front of and below the adjusting plate (4115). The front end surface of the air outlet pipe (4118) fixedly penetrates through the inner side surface of the reaction box (4112) and extends to the front side of the reaction box (4112).
3. The integrated cable connector according to claim 2, wherein: A filter screen plate (4119) is arranged behind the air outlet pipe (4118). The front side surface of the filter screen plate (4119) is fixedly connected to the rear end surface of the air outlet pipe (4118).
4. The integrated cable connector according to claim 2, wherein: Support frames (411) are provided on both the left and right sides of the cylinder (4110). The bottom surface of the support frame (411) is fixedly connected to the top surface of the bottom plate (1). A sliding rod (412) and two moving blocks (413) are arranged inside the support frame (411). The front end surface of the sliding rod (412) slidably penetrates through the rear side surfaces of the two moving blocks (413) and extends to the front sides of the two moving blocks (413). A second spring (415) is sleeved on the surface of the sliding rod (412). The front and rear end surfaces of the second spring (415) are respectively fixedly connected to the inner side surface of the support frame (411) and the side surface of the moving block (413). Adjusting rods (414) are hinged to the top surfaces of the two moving blocks (413). The two adjusting rods (414) are symmetrically arranged. The top end surfaces of the two adjusting rods (414) are hinged to the bottom surface of the mounting frame (2).
5. The integrated cable connector according to claim 2, characterized in that: Four dampers (416) are fixedly connected to the top surface of the bottom plate (1). The top end surfaces of the output rods of the four dampers (416) are fixedly connected to the bottom surface of the mounting frame (2).
6. The integrated cable connector according to claim 1, wherein: The connection component (40) includes a friction pad (406) located below the connector body (3). A chute is formed through the inner bottom surface of the mounting frame (2). A double-headed threaded rod (401) and a rotating rod (4010) are arranged inside the chute. Two T-shaped blocks (402) are arranged inside the mounting frame (2). The bottom ends of the two T-shaped blocks (402) slide through the inner bottom surface of the mounting frame (2) and extend into the chute. The two T-shaped blocks (402) are symmetrically arranged. The left end of the double-headed threaded rod (401) threadedly penetrates the right side surfaces of the two T-shaped blocks (402) and extends to the left sides of the two T-shaped blocks (402). The left and right ends of the double-headed threaded rod (401) are respectively rotatably connected to the inner wall of the chute through bearing seats. Bevel gears (4011) are fixedly sleeved on the surfaces of the rotating rod (4010) and the double-headed threaded rod (401). The inclined surfaces of the two bevel gears (4011) are engaged. A rotating plate (4012) is arranged on the front side of the mounting frame (2). The front end surface of the rotating rod (4010) penetrates the inner wall of the chute and the rear side surface of the rotating plate (4012) and extends to the front side of the rotating plate (4012). The surface of the rotating rod (4010) is rotatably connected to the inner wall of the mounting frame (2) through a bearing seat. C-shaped frames (403) are fixedly connected to the top surfaces of the two T-shaped blocks (402). The connector body (3) is located inside the right C-shaped frame (403). A cable clamp (408) is arranged inside the left C-shaped frame (403). An electric push rod (404) is fixedly connected to the top surface of the C-shaped frame (403). The bottom end surface of the output rod of the electric push rod (404) penetrates the top surface of the C-shaped frame (403) and extends into the C-shaped frame (403). A clamping plate (405) is fixedly connected to the top end surface of the output rod of the electric push rod (404). A rubber pad (407) is fixedly connected to the bottom surface of the clamping plate (405). The bottom surfaces of the two rubber pads (407) are respectively in pressing connection with the top surface of the cable clamp (408) and the top surface of the connector body (3). The bottom surface of the friction pad (406) is fixedly connected to the inner bottom surface of the C-shaped frame (403). The bottom surfaces of the cable clamp (408) and the connector body (3) are respectively in contact with the top surface of the friction pad (406).
7. An integrated cable connector according to claim 6, characterized in that: A connection frame (4013) is arranged above the rotating plate (4012). The rear side surface of the connection frame (4013) is fixedly connected to the front surface of the mounting frame (2). A pull rod (4016), a connection block (4014), and a clamping plate (4015) are arranged inside the connection frame (4013) in sequence from top to bottom. The upper and lower surfaces of the connection block (4014) are respectively fixedly connected to the bottom end surface of the pull rod (4016) and the top surface of the clamping plate (4015). The top end surface of the pull rod (4016) slides through the inner top surface of the connection frame (4013) and extends above the connection frame (4013). A card slot adapted to the clamping plate (4015) is formed through the surface of the rotating plate (4012). The bottom end surface of the clamping plate (4015) slides through the surface of the rotating plate (4012) and extends into the card slot.
8. An integrated cable connector according to claim 7, characterized in that: A first spring (4017) is sleeved on the surface of the pull rod (4016). The upper and lower end faces of the first spring (4017) are fixedly connected to the inner top surface of the connecting frame (4013) and the top surface of the connecting block (4014) respectively. The top end face of the pull rod (4016) is fixedly connected to the bottom surface of the pull plate (4019).
9. An integrated cable connector according to claim 7, characterized in that: Connecting rods (4020) are fixedly connected to both the left and right side faces of the connecting block (4014). Wedge-shaped grooves are formed through the left and right inner faces of the connecting frame (4013). Wedge-shaped blocks (4018) are slidably arranged inside the wedge-shaped grooves. The side faces of the wedge-shaped blocks (4018) are fixedly connected to the end faces of the connecting rods (4020).
10. An integrated cable connector according to claim 6, characterized in that: A protective side plate (409) is fixedly connected to the right side face of the cable clamp (408). Through grooves are formed through the upper and lower faces of the protective side plate (409) and the upper and lower faces of the cable clamp (408). The protective side plate (409) is made of sponge material.
Citation Information
Patent Citations
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