Integrated cable connector

By introducing cooling and connection components into the cable connector, and utilizing powder reaction heat absorption and support frame vibration reduction, the problems of heat accumulation and stability in the cable connector are solved, achieving uniform heat dissipation and a stable connection, thereby improving the service life and stability of the cable connector.

CN121618252AInactive Publication Date: 2026-03-06HUAIAN CHENGUANGMAO CONSTRUCTION ENGINEERING CO LTD
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Patent Information

Application Number
CN202511679754.9
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2026-03-06
Estimated Expiration
Not applicable · inactive patent

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Abstract

The invention relates to the technical field of cable connectors, and discloses an integrated cable connector which comprises a bottom plate. The mounting frame is positioned above the bottom plate; the connector body is located in the mounting frame, and a connecting assembly is arranged on the side face of the connector body; a cooling assembly is arranged on the inner side of the mounting frame and comprises a reaction box located on the inner side of the mounting frame, the top surface of the reaction box is fixedly connected with the top surface of the inner side of the mounting frame, and an adding pipe is arranged above the reaction box. Through a heat dissipation assembly, a connector body vibrates to push a push rod, so that a ventilation pipe blows an adjusting plate to move downwards, barium hydroxide octahydrate powder in a partition plate enters the bottom of a reaction box through a through hole, and then the barium hydroxide octahydrate powder and ammonium chloride powder are mixed to react and absorb heat; therefore, the connector body is cooled, the connector body is prevented from being damaged, and the use effect of the integrated cable connector is improved.
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Description

Technical Field

[0001] This invention relates to the field of cable connector technology, specifically to an integrated cable connector. Background Technology

[0002] A cable connector is a device used to connect cables, primarily functioning to link previously unconnected cables together. It is widely used in various communication equipment, such as internal connections in digital program-controlled exchanges and optoelectronic transmission equipment, and signal transmission between patch panels, for transmitting data, audio, and video communication data. A cable connector typically consists of a sheath, a connecting sleeve, an inner conductor, and an outer conductor. The installation process includes steps such as disassembling the connector, securing the cable end, applying sealant, and rotating the connecting sleeve for installation. The sheath is made of flame-retardant material to ensure safety; the rotating installation of the connecting sleeve ensures a secure cable connection.

[0003] According to a Chinese patent publication (CN216872303U), an integrated modular cable connector includes a cable plug and a cable socket. The cable plug is equipped with an RF plug module, a low-frequency plug module, and a power plug module. The cable socket is equipped with an RF socket module, a low-frequency socket module, and a power socket module. The cable socket is inserted into the cable plug. This solution can simultaneously transmit RF, low-frequency, and power signals, effectively solving the internal and external communication problems between different systems within the product. Its compact structure saves space and facilitates installation. All components on the cable plug and cable socket are detachable, allowing for easy replacement in case of component failure. This solution not only provides stable and reliable contact but also resists vibration and impact. During the use of existing cables connected by connectors, a large amount of heat is generated at the joint. To facilitate heat dissipation, heat sink fins are typically installed directly on the cable connector. However, the heat generation is concentrated in one area, and evenly distributed heat sink fins cannot quickly and evenly dissipate the heat. Furthermore, direct contact between the heat sink fins and the heat generation area compromises connector protection, making it susceptible to damage. High ambient temperatures can also directly affect the internal components of the connector, reducing its performance. Therefore, an integrated cable connector is proposed. Summary of the Invention

[0004] The purpose of this invention is to provide an integrated cable connector to solve the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: an integrated cable connector, including a base plate; Mounting frame located above the base plate; and a connector body located inside the mounting frame, wherein a connecting component is provided on the side of the connector body; A cooling component is installed inside the mounting frame.

[0006] Preferably, the cooling assembly includes a reaction chamber located inside the mounting frame. The top surface of the reaction chamber is fixedly connected to the top surface of the inner side of the mounting frame. An adding pipe is provided above the reaction chamber, and the bottom end of the adding pipe extends through the top surface of the mounting frame and the top surface of the reaction chamber into the interior of the reaction chamber. A valve is provided inside the adding pipe. A partition and an adjusting plate are provided inside the reaction chamber. A stop and a third spring are provided between the adjusting plate and the partition. A door is hinged to the right side of the reaction chamber, and the door is located to the lower right of the adjusting plate. The side of the partition is fixedly connected to the inner side of the reaction chamber. The top surface of the adjusting plate is fixedly connected to the bottom surface of the stop. A through groove is formed on the top surface of the partition, and the stop is located directly below the through groove. The upper and lower ends of the third spring are fixedly connected to the bottom surface of the partition and the top surface of the adjusting plate, respectively. A push rod is fixedly connected to the bottom surface of the mounting frame, and a cylinder is fixedly connected to the bottom surface of the base plate. The bottom end of the push rod slides through the top surface of the cylinder and extends into the cylinder. A mounting plate is fixedly connected to the bottom end of the push rod, and a piston is fixedly mounted on the bottom surface of the mounting plate. The side of the piston is slidably connected to the inner side of the cylinder. A vent pipe is provided below the piston. The top end of the vent pipe is fixedly connected through the top surface of the cylinder, the mounting frame, the reaction chamber, and the top surface of the partition plate, extending to below the partition plate. An exhaust pipe is provided below and in front of the adjustment plate. The front end of the exhaust pipe is fixedly connected through the inner side of the reaction chamber and extends to the front of the reaction chamber. Ammonium chloride powder is added to the addition pipe, and barium hydroxide octahydrate powder is added to the reaction chamber. The barium hydroxide octahydrate powder and ammonium chloride powder mix and react, absorbing heat, thereby dissipating heat from the connector body.

[0007] Preferably, a filter screen is provided on the rear side of the gas outlet pipe, and the front side of the filter screen is fixedly connected to the rear end face of the gas outlet pipe. The filter screen prevents impurities generated in the reaction chamber from being discharged from the gas outlet pipe.

[0008] Preferably, a support frame is provided on both the left and right sides of the cylinder. The bottom surface of the support frame is fixedly connected to the top surface of the base plate. A sliding rod and two movable blocks are provided on the inner side of the support frame. The front end of the sliding rod slides through the rear side of the two movable blocks and extends to the front side of the two movable blocks. A second spring is sleeved on the surface of the sliding rod. The front and rear end faces of the second spring are fixedly connected to the inner side of the support frame and the side of the movable block, respectively. An adjusting rod is hinged to the top surface of each of the two movable blocks. The two adjusting rods are symmetrically arranged. The top surface of each adjusting rod is hinged to the bottom surface of the mounting frame. The force of the second spring has a shock-absorbing effect on the mounting frame.

[0009] Preferably, four dampers are fixedly connected to the top surface of the base plate, and the top surfaces of the output rods of the four dampers are fixedly connected to the bottom surface of the mounting frame. The damping property of the dampers themselves has a shock-absorbing effect on the mounting frame, thereby preventing vibration after the connector body is connected to the cable.

[0010] Preferably, the connecting assembly includes a friction pad located below the connector body. A groove is formed through the inner bottom surface of the mounting frame, and a double-threaded rod and a rotating rod are disposed inside the groove. Two T-shaped blocks are disposed inside the mounting frame, with their bottom ends slidingly penetrating the inner bottom surface of the mounting frame and extending into the groove. The two T-blocks are symmetrically arranged. The left end of the double-threaded rod is threaded through the right side of the two T-blocks and extends to the left side of the two T-blocks. The left and right ends of the double-threaded rod are rotatably connected to the inner wall of the groove via bearing seats. Bevel gears are fixedly fitted onto the surfaces of the rotating rod and the double-threaded rod, and the two bevel gears mesh at their inclined surfaces. A rotating plate is disposed at the front of the mounting frame, and the front end of the rotating rod penetrates the inner wall of the groove and the rear side of the rotating plate, extending to the front side of the rotating plate. The rotating rod surface is rotatably connected to the inner wall of the mounting frame via a bearing seat. C-shaped frames are fixedly connected to the top surfaces of both T-shaped blocks. The connector body is located inside the right C-shaped frame, and a cable clamp is provided inside the left C-shaped frame. An electric push rod is fixedly connected to the top surface of the C-shaped frame. The bottom end of the electric push rod's output rod extends through the top surface of the C-shaped frame to the inner side of the C-shaped frame. A clamping plate is fixedly connected to the top surface of the electric push rod's output rod. A rubber pad is fixedly connected to the bottom surface of the clamping plate. The bottom surfaces of the two rubber pads are respectively pressed against 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 surfaces of the cable clamp and the connector body are respectively in contact with the top surface of the friction pad. The friction pad enhances the friction between the cable clamp and the connector body and the C-shaped frame.

[0011] Preferably, a connecting frame is provided above the rotating plate, and the rear side of the connecting frame is fixedly connected to the front side of the mounting frame. The inner side of the connecting frame is provided with a pull rod, a connecting block and a locking plate arranged sequentially from top to bottom. The upper and lower surfaces of the connecting block are fixedly connected to the bottom end face of the pull rod and the top surface of the locking plate, respectively. The top surface of the pull rod slides through the inner top surface of the connecting frame and extends to the top of the connecting frame. A slot adapted to the locking plate is opened through the surface of the rotating plate. The bottom end face of the locking plate slides through the surface of the rotating plate and extends into the slot. The locking plate slides into the slot 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 faces 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. The top surface of the pull rod is fixedly connected to the bottom surface of the pull plate, and the first spring facilitates the sliding of the locking block into the locking groove.

[0013] Preferably, connecting rods are fixedly connected to both the left and right sides of the connecting block, and wedge-shaped grooves are opened through both the left and right sides of the inner side of the connecting frame. Wedge-shaped blocks are slidably arranged inside the wedge-shaped grooves, and the side of the wedge-shaped blocks is fixedly connected to the end face of the connecting rods. The wedge-shaped blocks and connecting rods improve the stability of the lifting and lowering of the connecting block.

[0014] Preferably, a protective side plate is fixedly connected to the right side of the cable clamp. The upper and lower surfaces of the protective side plate and the upper and lower surfaces of the cable clamp are all provided with through grooves. The protective side plate is made of sponge material, and the protective side plate prevents the cable clamp from damaging the cable head.

[0015] Compared with the prior art, the beneficial effects of the present invention are: 1. This integrated cable connector, through a heat dissipation component, utilizes the vibration of the connector body to push the push rod, causing the vent pipe to blow the adjustment plate downwards, thereby allowing barium hydroxide octahydrate powder in the partition to enter the bottom of the reaction chamber through the through hole. This allows the barium hydroxide octahydrate powder to mix with ammonium chloride powder, react and absorb heat, thereby dissipating heat from the connector body, preventing damage to the connector body, and improving the performance of the integrated cable connector. 2. This integrated cable connector, through the second spring and the damper, the force of the second spring and the damping property of the damper itself, have a shock absorption effect on the mounting frame, thereby reducing the shock absorption effect on the connector body. At the same time, it achieves indirect cooling of the connector body, 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. This integrated cable connector uses a cable clamp to fix the cable through a connecting component, and a double-threaded rod drives two T-shaped blocks to move closer to each other, so that the cable clamp and the connector body are brought closer together, thereby realizing the connection between the cable and the connector body, which facilitates the use of this integrated cable connector. 4. This integrated cable connector locks the rotating plate by sliding the plate into the slot, thereby locking the rotating rod and the double-threaded rod, preventing the T-block from shaking and improving the stability of the cable connection. 5. This integrated cable connector, through the mounting frame, creates a "through airflow" on both sides of the mounting frame, facilitating heat dissipation for the connector body within the mounting frame. Attached Figure Description

[0016] Figure 1 This is a front perspective view of the entire invention; Figure 2 This is a rear perspective view of the entire invention; Figure 3 This is a top sectional perspective view of the double-threaded rod of the present invention; Figure 4 This is a rear perspective view of the double-threaded rod of the present invention; Figure 5 This is a perspective cross-sectional view of the right side of the vent tube of the present invention; Figure 6 This is a perspective view of the left side of the slide bar of the present invention; Figure 7This is a right-side perspective view of the slide bar of the present invention; Figure 8 This is a perspective view of the left side of the wedge-shaped block of the present invention; Figure 9 For the present invention Figure 5 Enlarged 3D view of area A in the middle.

[0017] In the diagram: Base plate 1, Mounting frame 2, Connector body 3, Connecting assembly 40, Double-threaded rod 401, T-block 402, C-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 component; 41, support frame; 411, slide rod; 412, moving block; 413, adjusting rod; 414, second spring; 415, damper; 416, push rod; 417, mounting plate; 418, piston; 419, cylinder; 4110, vent pipe; 4111, reaction chamber; 4112, adding pipe; 4113, partition; 4114, adjusting plate; 4115, stop block; 4116, third spring; 4117, vent pipe; 4118, filter screen; 4119, door; 4120. Detailed Implementation

[0018] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0019] Example 1: Please refer to Figure 1 - Figure 9 The present invention provides a technical solution: an integrated cable connector, including a base plate 1; The mounting frame 2, located above the base plate 1, forms a "passage" on its left and right sides, which facilitates heat dissipation for the connector body 3 in the mounting frame 2. And the connector body 3 located inside the mounting frame 2, with a connecting component 40 provided on the side of the connector body 3; Cooling component 41 is installed inside the mounting frame 2.

[0020] Cooling component 41 includes a reaction chamber 4112 located inside the mounting frame 2. The top surface of the reaction chamber 4112 is fixedly connected to the top surface of the inner side of the mounting frame 2. An adding pipe 4113 is provided above the reaction chamber 4112. The bottom end of the adding pipe 4113 is fixedly inserted through the top surface of the mounting frame 2 and the top surface of the reaction chamber 4112, extending into the interior of the reaction chamber 4112. A valve is provided inside the adding pipe 4113. A partition 4114 and an adjusting plate 4115 are provided inside the reaction chamber 4112. A stop 4116 and a third spring 4117 are provided between the adjusting plate 4115 and the partition 4114. A door 4120 is hinged to the right side of the chamber 4112. The door 4120 is located to the lower right of the adjusting plate 4115. The side of the partition plate 4114 is fixedly connected to the inner side of the reaction chamber 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 opened on the top surface of the partition plate 4114, and the stop block 4116 is located directly below the through groove. The upper and lower ends of the third spring 4117 are fixedly connected to the bottom surface of the partition plate 4114 and the top surface of the adjusting plate 4115, respectively. A push rod 417 is fixedly connected to the bottom surface of the mounting frame 2. A cylinder 4110 is fixedly connected to the bottom surface of the base plate 1. 7. The bottom end face of the push rod 417 slides through the top surface of the cylinder 4110 and extends into the cylinder 4110. The bottom end face of the push rod 417 is fixedly connected to the mounting plate 418. The bottom surface of the mounting plate 418 is fixedly mounted with the piston 419. The side of the piston 419 is slidably connected to the inner side of the cylinder 4110. A vent pipe 4111 is provided below the piston 419. The top end face of the vent pipe 4111 is fixedly extended through the top surface of the cylinder 4110, the mounting frame 2, the reaction chamber 4112, and the top surface of the partition plate 4114 to the bottom of the partition plate 4114. An exhaust pipe 4118 is provided in front of and below the adjusting plate 4115. The exhaust pipe 411... The front end face is fixed and extends through the inner side of the reaction chamber 4112 to the front side of the reaction chamber 4112. Through the heat dissipation component 41, the connector body 3 vibrates to push the push rod 417, causing the vent pipe 4111 to blow the regulating plate 4115 downward, so that the barium hydroxide octahydrate powder in the partition plate 4114 enters the bottom of the reaction chamber 4112 through the through hole, and then the barium hydroxide octahydrate powder mixes 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 performance of the integrated cable connector.

[0021] A filter plate 4119 is provided on the rear side of the air outlet pipe 4118, and the front side of the filter plate 4119 is fixedly connected to the rear end face 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 base plate 1. A sliding rod 412 and two moving blocks 413 are provided on the inner side of the support frame 411. The front end of the sliding rod 412 slides through the rear side of the two moving blocks 413 and extends to the front side of the two moving blocks 413. A second spring 415 is sleeved on the surface of the sliding rod 412. The front and rear ends of the second spring 415 are fixedly connected to the inner side of the support frame 411 and the side of the moving blocks 413, respectively. An adjusting rod 414 is hinged to the top surface of each of the two moving blocks 413. The two adjusting rods 414 are symmetrically arranged. The top surface of each adjusting rod 414 is hinged to the bottom surface of the mounting frame 2.

[0023] Four dampers 416 are fixedly connected to the top surface of the base plate 1. The top surfaces of the output rods of the four dampers 416 are fixedly connected to the bottom surface of the mounting frame 2. Through the second spring 415 and the dampers 416, the force of the second spring 415 and the damping property of the dampers 416 themselves have a shock-absorbing effect on the mounting frame 2, thereby having a shock-absorbing effect on the connector body 3. At the same time, it achieves indirect cooling of the connector body 3, 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.

[0024] Example 2: Based on Example 1, a preferred embodiment of the integrated cable connector provided by the present invention is as follows: Figure 5 - Figure 8As shown: The connecting assembly 40 includes a friction pad 406 located below the connector body 3. A groove is formed through the bottom surface of the inner side of the mounting frame 2. A double-threaded rod 401 and a rotating rod 4010 are arranged inside the groove. Two T-blocks 402 are arranged inside the mounting frame 2. The bottom surfaces of the two T-blocks 402 slide through the bottom surface of the inner side of the mounting frame 2 and extend into the groove. The two T-blocks 402 are symmetrically arranged. The left end of the double-threaded rod 401 is threaded through the right side of the two T-blocks 402 and extends to the left side of the two T-blocks 402. The left and right end faces of the threaded rod 401 are rotatably connected to the inner wall of the slide groove via bearing seats. Bevel gears 4011 are fixedly fitted onto the surfaces of both the rotating rod 4010 and the double-threaded rod 401, with the two bevel gears 4011 meshing at their angles. A rotating plate 4012 is provided on the front side of the mounting frame 2. The front end face of the rotating rod 4010 extends through the inner wall of the slide groove and the rear side of the rotating plate 4012 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 via bearing seats. The top surfaces of the two T-blocks 402 are fixed. A C-shaped bracket 403 is connected, with the connector body 3 located inside the right C-shaped bracket 403. A cable clamp 408 is installed inside the left C-shaped bracket 403. An electric push rod 404 is fixedly connected to the top surface of the C-shaped bracket 403. The bottom end of the output rod of the electric push rod 404 extends through the top surface of the C-shaped bracket 403 to the inside of the C-shaped bracket 403. A clamping plate 405 is fixedly connected to the top end of the output rod of the electric push rod 404. Rubber pads 407 are fixedly connected to the bottom surface of the clamping plate 405. The bottom surfaces of the two rubber pads 407 are respectively connected to the top surface of the cable clamp 408 and the... The top surface of the connector body 3 is pressed together, the bottom surface of the friction pad 406 is fixedly connected to the inner bottom surface of the C-shaped frame 403, the bottom surface of the cable clamp 408 and the bottom surface of the connector body 3 respectively contact the top surface of the friction pad 406, and the cable is fixed by the cable clamp 408 through the connecting component 40, and the two T-shaped blocks 402 are driven to move closer to each other by the double-headed threaded rod 401, so that the cable clamp 408 and the connector body 3 are brought closer together, thereby realizing the connection between the cable and the connector body 3, which facilitates the use of this integrated cable connector.

[0025] A connecting frame 4013 is provided above the rotating plate 4012. The rear side of the connecting frame 4013 is fixedly connected to the front side of the mounting frame 2. The inner side of the connecting frame 4013 is provided with a pull rod 4016, a connecting block 4014 and a locking plate 4015 arranged sequentially from top to bottom. The upper and lower surfaces of the connecting block 4014 are fixedly connected to the bottom end face of the pull rod 4016 and the top surface of the locking plate 4015, respectively. 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 slot adapted to the locking plate 4015 is opened through the surface of the rotating plate 4012. The bottom surface of the locking plate 4015 slides through the surface of the rotating plate 4012 and extends into the slot. By sliding the locking plate 4015 into the slot, the rotating plate 4012 is locked, thereby locking the rotating rod 4010 and the double-headed threaded rod 401, preventing the T-shaped block 402 from shaking, 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 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 surface of the pull rod 4016 is fixedly connected to the bottom surface of the pull plate 4019.

[0027] Connecting rods 4020 are fixedly connected to both sides of connecting block 4014. Wedge-shaped grooves are opened through both sides of the inner side of connecting frame 4013. Wedge blocks 4018 are slidably arranged inside the wedge grooves. The side of wedge block 4018 is fixedly connected to the end face of connecting rod 4020.

[0028] A protective side plate 409 is fixedly connected to the right side of the cable clamp 408. The upper and lower surfaces of the protective side plate 409 and the upper and lower surfaces of the cable clamp 408 are all provided with through grooves. The protective side plate 409 is made of sponge material.

[0029] In use, the cables are placed separately into the through slots of the cable clamp 408, and the cable clamp 408 and the connector body 3 are placed on the friction pads 406 of the two C-shaped frames 403 respectively. The electric push rod 404 is turned on, and the output rod of the electric push rod 404 extends, causing 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. Pulling the pull plate 4019 causes the pull rod 4016 to move upward, which in turn moves the connecting block 4014 upward. The connecting block 4014 then moves the connecting rod 4020, wedge block 4018, and clamping plate 4015 upward. The wedge block 4018 slides in the wedge groove, and the clamping block 4014 slides out of the groove and presses the first spring 4017. Rotating the rotating plate 4012 causes the rotating rod 4010 to rotate, which in turn rotates the connected bevel gear 4011. The double-threaded rod 401 rotates through the meshing of two bevel gears 4011. The double-threaded rod 401 drives the two T-blocks 402 to move closer to each other, so that the cable clamp 408 and the connector body 3 move closer to each other, thereby connecting the cable and the connector body 3 together. When the pull plate 4019 is released, the first spring 4017 pushes the connecting block 4014 downward, so that the locking plate 4015 slides into the corresponding slot, thereby locking the rotating plate 4012. Open the valve and pour the barium hydroxide octahydrate powder into the partition 4114 of the reaction chamber 4112 through the addition pipe 4013. Open the chamber door 4120 and put the ammonium chloride powder into the reaction chamber 4112. When the connector body 3 vibrates, it drives the mounting frame 2 to vibrate and squeeze the damper 416, push rod 417 and adjusting rod 414. Push rod 417 pushes the mounting plate 418 and piston 419 downward. Piston 419 squeezes the gas in cylinder 4110, so that the gas in cylinder 4110 enters the vent pipe 4111. Vent pipe 4111 blows the adjusting plate 4115, so that the adjusting plate 4115 moves. The stop block 4116 moves downward and pulls the third spring 4117. The stop block 4116 moves from below the through slot, so that the barium hydroxide octahydrate powder above the partition plate 4114 falls into the bottom of the reaction chamber 4112 through the through hole and mixes with the ammonium chloride powder. The ammonium chloride powder reacts with the barium hydroxide octahydrate powder to produce ammonia gas and absorb heat. The ammonia gas is discharged through the gas outlet pipe 4118 (a purification reaction is installed in the gas outlet pipe 4118 to avoid ammonia gas from polluting the environment, not shown in the figure). The heat absorption of the reaction absorbs heat inside the mounting frame 2, thereby reducing the temperature of the connector body 3 and achieving a cooling effect on the connector body 3. Adjusting rod 414 pushes moving block 413 to slide on slide rod 412, causing second spring 415 to be squeezed. The force of second spring 415 and the damping property of damper 416 itself reduce vibration of mounting frame 2. When the vibration of mounting frame 2 is reduced, the force of third spring 417 will drive stop block 4116 to move upward, thereby blocking the through hole and preventing the continuous falling of barium hydroxide octahydrate powder.

[0030] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to the embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An integrated cable connector, comprising a bottom plate (1); an installation frame (2) above the bottom plate (1); and a connector body (3) located inside the mounting frame (2), characterized in that: the connector body (3) is provided with a connection assembly (40) on the side; the installation frame (2) is provided with a cooling assembly (41) on the inner side; the cooling assembly (41) comprises a reaction box (4112) on the inner side of the installation frame (2), the top surface of the reaction box (4112) is fixedly connected with 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) is fixedly connected and extends through the top surface of the installation frame (2) and the top surface of the reaction box (4112) to the inside of the reaction box (4112), a valve is arranged in the adding pipe (4113), a partition plate (4114) and an adjusting plate (4115) are arranged in 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 hingedly connected to the right side of the reaction box (4112), the box door (4120) is located below and right of the adjusting plate (4115), the side surface of the partition plate (4114) is fixedly connected with the inner side surface of the reaction box (4112), the top surface of the adjusting plate (4115) is fixedly connected with the bottom surface of the stop block (4116), a through slot is formed through the top surface of the partition plate (4114), the stop block (4116) is located directly below the through slot, the upper and lower end surfaces of the third spring (4117) are fixedly connected with the bottom surface of the partition plate (4114) and the top surface of the adjusting plate (4115) respectively, 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 to the inside of the cylinder (4110), an installation plate (418) is fixedly connected to the bottom end surface of the push rod (417), a piston (419) is fixedly installed on the bottom surface of the installation plate (418), the side surface of the piston (419) is slidably connected with the inner side surface of the cylinder (4110), an air pipe (4111) is arranged below the piston (419), the top end surface of the air pipe (4111) is fixedly connected and extends through the top surface of the cylinder (4110), the installation frame (2), the top surface of the reaction box (4112) and the top surface of the partition plate (4114) to below the partition plate (4114), an air outlet pipe (4118) is arranged below and in front of the adjusting plate (4115), the front end surface of the air outlet pipe (4118) is fixedly connected and extends through the inner side surface of the reaction box (4112) to the front side of the reaction box (4112).

2. An integrated cable connector as defined in claim 1, wherein: The cylinder (4110) is provided with support frames (411) on the left and right sides, the bottom surface of the support frame (411) is fixedly connected with the top surface of the bottom plate (1), the inner side of the support frame (411) is provided with a sliding rod (412) and two moving blocks (413), 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), the surface of the sliding rod (412) is sleeved with a second spring (415), the front and rear end surfaces of the second spring (415) are fixedly connected with the inner side surface of the support frame (411) and the side surface of the moving block (413) respectively, the top surfaces of the two moving blocks (413) are all hingedly connected with adjusting rods (414), the two adjusting rods (414) are symmetrically arranged, and the top end surfaces of the two adjusting rods (414) are all hingedly connected with the bottom surface of the mounting frame (2).

3. An integrated cable connector as defined in claim 1, wherein: The top surface of the bottom plate (1) is fixedly connected with four dampers (416), and the top end surfaces of the output rods of the four dampers (416) are all fixedly connected with the bottom surface of the mounting frame (2).

Citation Information

Patent Citations

  • Integrated module cable connector

    CN216872303U