Machining equipment for production of pipeline for radio frequency power supply

By designing a pipeline production equipment for RF power supply integrated with crimp heating and double-head locking mechanism, the problems of complex RF pipeline production processes, low efficiency and high labor costs in the prior art are solved, automated production is realized, and efficiency and equipment practicality are improved.

CN120184705AInactive Publication Date: 2025-06-20江苏神州半导体科技股份有限公司
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Patent Information

Application Number
CN202510654769.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2025-06-20
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing RF pipeline production process is complex, the process is low, and the labor cost is high.

Method used

Design a processing equipment for production of RF power supply pipelines, including a crimp heating mechanism and a double-head locking mechanism. Through components such as motors, electric telescopic rods and multi-faceted seats, an automated crimping and heating wrapping process is realized.

Benefits of technology

It improves the production efficiency of RF cables, reduces the operation of staff, reduces labor costs, and improves the practicality and functionality of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses processing equipment for production of a pipeline for a radio frequency power supply, the processing equipment comprises a pressing buckle heating mechanism, a double-head locking mechanism and a radio frequency line assembly, the pressing buckle heating mechanism comprises a processing box, and the left side of the processing box is fixedly connected with a rising guide rod through a fixing block. According to the processing equipment for production of the pipeline for the radio-frequency power supply, a pressing buckle heating mechanism and a double-end locking mechanism are combined for use, and through the arrangement of the two mechanisms, a worker can manually sleeve a required adapter and a required sleeve with a radio-frequency line body firstly, and then the whole radio-frequency line assembly and the double-end locking mechanism are mounted; with intermittent driving of the motor and the electric telescopic rod and cooperation of the structures, pressing, buckling, heating and wrapping procedures can be conducted on the adapter and the sleeve in sequence, and after each procedure is completed, the adapter and the plug can be unlocked in sequence.
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Description

Technical Field

[0001] The present invention relates to the technical field of pipeline production, and specifically relates to a processing device for pipeline production for radio frequency power supplies. Background Art

[0002] A radio frequency power supply can generate a sinusoidal voltage with a fixed frequency. Radio frequency power supplies have been widely used in semiconductor process equipment, LED and solar photovoltaic industries, as well as medical beauty and atmospheric plasma disinfection and cleaning. When a radio frequency power supply device is in use, a dedicated radio frequency pipeline is required for connection.

[0003] When existing radio frequency pipelines are produced and prepared, both the adapter and the sleeve need to be installed on the radio frequency wire. However, the overall size of these parts is small, and workers need to manually socket them, and then use a crimping device for crimping to fix the adapter. And after the adapter is completed, in order to ensure the protection of the connection between the adapter and the radio frequency wire, usually a sleeve is first sleeved at the connection, and then the worker uses a hot air blower to heat the sleeve until the sleeve shrinks to wrap the connection between the adapter and the radio frequency wire, and only then is the processing considered complete. Although such an artificial processing and production method can produce radio frequency wires, the process is complex, resulting in slow overall efficiency and high labor costs. Therefore, a processing device for pipeline production for radio frequency power supplies that can improve production efficiency and is easy to operate is now designed to solve such defects. Summary of the Invention

[0004] In view of the deficiencies of the prior art, the present invention provides a processing device for pipeline production for radio frequency power supplies, which solves the problems of cumbersome preparation of existing radio frequency wires and high labor costs.

[0005] To achieve the above objectives, the present invention is realized through the following technical solutions: A processing device for pipeline production for radio frequency power supplies includes a crimping and heating mechanism, a double-headed locking mechanism, and a radio frequency wire assembly. The crimping and heating mechanism includes a processing box. The left side of the processing box is fixedly connected to a lifting guide rod through a fixing block. An L-shaped sleeve is slidably installed on the surface of the lifting guide rod. A side opening is provided on the left side of the processing box. One end of the L-shaped sleeve passes through the side opening and extends to the inside of the processing box. The end of the L-shaped sleeve extending into the processing box is fixedly connected to a double-slope plug. The right side of the top of the double-slope plug is fixedly connected to an expansion plug through a bracket. A first spring is sleeved on the surface of the lifting guide rod. The left end of the L-shaped sleeve is fixedly connected to a square ring. Both the double-headed locking mechanism and the radio frequency wire assembly are installed inside the processing box.

[0006] Preferably, an electric telescopic rod is fixedly installed on the left side of the processing box. The bottom end of the electric telescopic rod is fixedly connected with a bent plate. One end of the bent plate passes through the side opening and extends to the inside of the processing box. The end of the bent plate extending into the processing box is fixedly connected with a snap press. The other end of the bent plate is slidably installed with a multi-sided rod. One end of the multi-sided rod is fixedly connected with a rectangular plate. The other end of the multi-sided rod is fixedly connected with an inclined block that is used in cooperation with the square ring. A second spring is sleeved on the surface of the multi-sided rod.

[0007] Preferably, the left side of the processing box is fixedly connected with an inclined guide plate that is used in cooperation with the rectangular plate through a fixing block. The right side of the inner cavity of the processing box is fixedly connected with an arc-shaped toothed plate through a bracket. The right side of the processing box is fixedly connected with a hot air blower through a fixing plate. The air outlet of the hot air blower is fixedly connected with an air guide pipe, and one end of the air guide pipe penetrates through the processing box and extends to the inside of the processing box. The end of the air guide pipe extending into the processing box is fixedly connected with an arc-shaped air frame. A discharge port is opened at the bottom of the processing box.

[0008] Preferably, the right side of the rear part of the inner cavity of the processing box is fixedly connected with a curved guide frame through a bracket. The left end of the curved guide frame is provided with an expansion part. The right side of the bottom of the curved guide frame is provided with a pressing sleeve part.

[0009] Preferably, the double-headed locking mechanism includes a motor. The motor is fixedly installed on the top of the processing box through a bracket. The output shaft of the motor is fixedly connected with a rotating rod through a coupling. The bottom end of the rotating rod penetrates through the processing box and is rotatably connected with the bottom of the inner cavity of the processing box through a bearing member. A multi-sided seat is fixedly connected to the surface of the rotating rod and located inside the processing box.

[0010] Preferably, an L-shaped support frame is fixedly connected to the upper part of the surface of the multi-sided seat, and several L-shaped support frames are provided. The front end of the L-shaped support frame is fixedly connected with a circular sliding frame. A circular sliding ring is rotatably connected to the inside of the circular sliding frame. Side sliding frames are fixedly connected to both sides of the inner cavity of the circular sliding ring. A circular guide rod is fixedly connected between the side sliding frame and the inner wall of the circular sliding ring. An arcuate pressing plate is slidably installed on the surface of the circular guide rod inside the side sliding frame. A third spring is sleeved on the surface of the circular guide rod. The tops of the two arcuate pressing plates are fixedly connected with semi-gear cylinders that are used in cooperation with each other through a bracket. A multi-sided groove is opened at the top of the semi-gear cylinder.

[0011] Preferably, a concave circular rod is fixedly connected to the lower part of the surface of the multi-sided seat through a bracket. Compression sliding rods are slidably installed on both sides of the surface of the concave circular rod. The top ends of the two compression sliding rods are fixedly connected with fourth springs that are used in cooperation with each other. A return-shaped frame rod is fixedly connected between the two ends of the concave circular rod. A horizontal bent rod is fixedly connected to the inside of the return-shaped frame rod.

[0012] Preferably, the RF cable assembly includes an RF cable body, an adapter, a plug, and a sleeve. The plug is located inside the multi-angle groove, the adapter is located inside the round card frame, and the RF cable body is connected between the adapter and the plug. The sleeve is sleeved on the surface of the RF cable body.

[0013] The present invention provides a processing device for the production of pipelines for RF power supplies. Compared with the existing technology, it has the following beneficial effects: (1) In the processing device for the production of pipelines for RF power supplies, by using the crimping heating mechanism and the double-headed locking mechanism in combination, the settings of these two mechanisms enable the staff to first manually sleeve the required adapter and sleeve onto the RF cable body, and then install the entire RF cable assembly onto the double-headed locking mechanism. With the intermittent driving of the motor and the electric telescopic rod, and using the cooperation between the structures, the adapter and the sleeve can be sequentially subjected to the crimping and heating wrapping processes, and after each process is completed, the adapter and the plug can be sequentially unlocked, so as to facilitate subsequent processing and enable the entire RF cable assembly to automatically drop, improving the production efficiency, reducing the operation of the staff, and meeting the current use requirements.

[0014] (2) In the processing device for the production of pipelines for RF power supplies, by respectively installing a semi-gear cylinder and a round card frame on the surface of the multi-faceted seat and using the double-bevel plug and the expansion plug in combination, the settings of these structures can enable the bevel block to be docked with the square ring while the electric telescopic rod drives the crimper to rise for crimping. After the crimping process is completed, the electric telescopic rod can be lowered to drive the double-bevel plug and the expansion plug to descend synchronously, so that when the RF cable assembly is on the left and right sides, the round card frame and the semi-gear cylinder can be sequentially opened respectively, facilitating the heating shrinkage of the sleeve and subsequent blanking, and after the bending plate descends to the bottom, the double-bevel plug and the expansion plug can be reset by the extrusion of the inclined guide plate, improving the overall practicality and functionality of the device.

[0015] (3) In the processing device for the production of pipelines for RF power supplies, by installing a curved guide frame inside the processing box and respectively arranging an expansion part and a pressing sleeve part at the left end and the bottom of the curved guide frame, the settings of these structures can enable the round card frame to be opened by the double-bevel plug to make the entire RF cable body vertical after the RF cable body is crimped. With the rotation of the multi-faceted seat, the expansion part can guide and limit the RF cable body, enabling the RF cable body to move inside the curved guide frame. When the RF cable body continues to move, the sleeve will gradually come into contact with the pressing sleeve part, so that the pressing sleeve part presses down on the sleeve to wrap the adapter and the RF cable body, and the heating shrinkage of the sleeve is completed by using the arc-shaped air frame, making the process efficient and stable and improving the preparation efficiency.

[0016] (4) The processing equipment for the pipeline production of the radio frequency power supply is provided with an arc-shaped tooth plate that cooperates with the semi-gear cylinder at the rear of the inner cavity of the processing box. The setting of these structures enables the semi-gear cylinder to engage with the arc-shaped tooth plate after the sleeve is pressed down by the pressing sleeve part. Thus, when the multi-faceted seat rotates, the semi-gear cylinder drives the entire radio frequency wire assembly to rotate self-driven under the limitation of the circular sliding ring, so that the hot air blown out by the arc-shaped air frame can contact the sleeve more evenly, improving the sealing quality of the sleeve. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a bottom view of the processing box, hot air blower and discharge port structures of the present invention; Figure 3 is a cross-sectional view of the processing box structure of the present invention; Figure 4 is a schematic diagram of the electric telescopic rod, bent plate and pressing buckle machine structures of the present invention; Figure 5 is a schematic diagram of the double inclined plane plug board, expansion plug board and first spring structures of the present invention; Figure 6 is a schematic diagram of the curved guide frame, expansion part and pressing sleeve part structures of the present invention; Figure 7 is a side view of the internal structure of the processing box of the present invention; Figure 8 is a schematic diagram of the double-headed locking mechanism structure of the present invention; Figure 9 is a schematic diagram of the L-shaped support frame, circular sliding frame and return-shaped frame rod structures of the present invention; Figure 10 is a schematic diagram of the circular sliding frame, circular sliding ring and semi-gear cylinder structures of the present invention; Figure 11 is a schematic diagram of the round guide rod, semi-gear cylinder and multi-angle groove structures of the present invention; Figure 12 is a schematic diagram of the round clamping frame, return-shaped frame rod and horizontal bent rod structures of the present invention; Figure 13 is a schematic diagram of the radio frequency wire assembly structure of the present invention.

[0018] In the figure: 1. buckle heating mechanism; 2. double-head locking mechanism; 3. RF line assembly; 101. processing box; 102. lifting guide rod; 103. L-shaped sleeve; 104. double-bevel plug plate; 105. expansion plug plate; 106. first spring; 107. square ring; 108. side opening; 109. electric telescopic rod; 110. curved plate; 111. buckle machine; 112. polygonal rod; 113. rectangular plate; 114. bevel block; 115. second spring; 116. bevel guide plate; 117. arc tooth plate; 118. hot air blower; 119. air guide tube; 120. arc wind frame; 121. curved guide frame; 122. Expansion section; 123. Sleeve pressing section; 124. Discharge port; 201. Motor; 202. Rotating rod; 203. Multi-faceted seat; 204. L-shaped support frame; 205. Circular slide frame; 206. Circular slip ring; 207. Side slide frame; 208. Circular guide rod; 209. Bow-shaped pressure plate; 210. Third spring; 211. Half gear cylinder; 212. Polygonal groove; 213. Concave round rod; 214. Pressure slide rod; 215. Circular clamp frame; 216. Fourth spring; 217. Retractable frame rod; 218. Horizontal bending rod; 301. RF line body; 302. Adapter; 303. Plug; 304. Sleeve. DETAILED DESCRIPTION

[0019] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0020] See also Figures 1-13 , the present invention provides a technical solution: a processing device for producing a pipeline for a radio frequency power supply, comprising a buckle heating mechanism 1, a double-head locking mechanism 2 and a radio frequency line assembly 3, the buckle heating mechanism 1 comprising a processing box 101; Please refer to Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7, which shows the overall structure of the snap-fastening heating mechanism 1. On the left side of the processing box 101, a return guide rod 102 is fixedly connected through a fixing block. A sliding L-shaped sleeve 103 is installed on the surface of the return guide rod 102. A side port 108 is opened on the left side of the processing box 101. One end of the L-shaped sleeve 103 passes through the side port 108 and extends to the inside of the processing box 101. The end of the L-shaped sleeve 103 extending into the processing box 101 is fixedly connected with a double-beveled plug 104. On the right side of the top of the double-beveled plug 104, an expansion plug 105 is fixedly connected through a bracket. A first spring 106 is sleeved on the surface of the return guide rod 102. The left end of the L-shaped sleeve 103 is fixedly connected with a square ring 107. Both the double-headed locking mechanism 2 and the RF cable assembly 3 are installed inside the processing box 101. An electric telescopic rod 109 is fixedly installed on the left side of the processing box 101. The bottom end of the electric telescopic rod 109 is fixedly connected with a bent plate 110. One end of the bent plate 110 passes through the side port 108 and extends to the inside of the processing box 101. The end of the bent plate 110 extending into the processing box 101 is fixedly connected with a snap-fastening machine 111. The other end of the bent plate 110 is slidably installed with a multi-sided rod 112. One end of the multi-sided rod 112 is fixedly connected with a rectangular plate 113. The other end of the multi-sided rod 112 is fixedly connected with an inclined block 114 that cooperates with the square ring 107. A second spring 115 is sleeved on the surface of the multi-sided rod 112. On the left side of the processing box 101, an inclined guide plate 116 that cooperates with the rectangular plate 113 is fixedly connected through a fixing block. On the right side of the inner cavity of the processing box 101, an arc-shaped toothed plate 117 is fixedly connected through a bracket. On the right side of the processing box 101, a hot air blower 118 is fixedly connected through a fixing plate. After pre-adjustment, the hot air blown out by the hot air blower 118 can heat and shrink the sleeve 304. The air outlet of the hot air blower 118 is fixedly connected with an air guide pipe 119, and one end of the air guide pipe 119 penetrates through the processing box 101 and extends to the inside of the processing box 101. The end of the air guide pipe 119 extending into the processing box 101 is fixedly connected with an arc-shaped air frame 120. A discharge port 124 is opened at the bottom of the processing box 101. On the right side of the rear part of the inner cavity of the processing box 101, a curved guide frame 121 is fixedly connected through a bracket. The left end of the curved guide frame 121 is provided with an expansion part 122, and the right side of the bottom of the curved guide frame 121 is provided with a pressing sleeve part 123.

[0021] In use, first put the sleeve 304 on the surface of the RF cable body 301, then dock the adapter 302 with the bottom end of the RF cable body 301. Subsequently, push the two semi-gear cylinders 211 to open them under the guiding and limiting of the side-sliding frame 207. Then, pass the RF cable body 301 through the multi-angle groove 212 from top to bottom. Then, place the plug 303 inside the multi-angle groove 212 and then release the hand, so that the two semi-gear cylinders 211 use the elastic force of the third spring 210 to close and clamp the plug 303. Subsequently, bend the RF cable body 301 from the horizontal bending rod 218, and then pry open the two circular clamping frames 215 to clamp the adapter 302 inside the circular clamping frames 215. Then, start the motor 201 to drive the multi-faceted seat 203 to rotate through the rotating rod 202. Stop after the multi-faceted seat 203 rotates 90 degrees. At this time, the RF cable body 301 is on the left side. Then, the electric telescopic rod 109 pulls the bent plate 110 to rise. At the same time, the bent plate 110 drives the crimping machine 111 and the inclined plane block 114 to rise synchronously. When the bent plate 110 rises to the top, at this time, the crimping machine 111 is docked with the adapter 302. At the same time, the inclined plane block 114 is squeezed by the square ring 107 and finally inserted into the inside of the square ring 107. Subsequently, the crimping machine 111 starts to crimp the adapter 302, so that the adapter 302 is completely fixed to the RF cable body 301. Then, the electric telescopic rod 109 starts again to push the bent plate 110 to drive the crimping machine 111 to descend. The crimping machine 111 descends and disengages from the adapter 302. At the same time, the inclined plane block 114 drives the L-shaped sleeve 103 to descend together under the limiting of the rising guide rod 102 through the docking with the square ring 107. The L-shaped sleeve 103 also drives the double-inclined plane plug 104 and the expansion plug 105 to descend. First, the double-inclined plane plug 104 descends and passes through the L-shaped support frame 204 and then the bottom end presses the pressure-receiving sliding rod 214, so as to open the two circular clamping frames 215 under the limiting of the concave circular rod 213 and the pressure-receiving sliding rod 214. At this time, the adapter 302 falls off from the circular clamping frames 215 and vertically downward. After the inclined plane block 114 descends to the bottom, the inclined plane guide plate 116 presses the rectangular plate 113, so as to pull the inclined plane block 114 to separate from the square ring 107 by using the multi-angle rod 112. At this time, the square ring 107 loses the limit and is pushed upward by the elastic force of the first spring 106, and the double-inclined plane plug 104 and the expansion plug 105 are reset. Then, the motor 201 starts to drive the multi-faceted seat 203 to rotate 90 degrees again until the RF cable body 301 is at the rear and stops. During this movement, the RF cable body 301 will contact the expansion part 122 during the rotation process, and then under the guidance of the expansion part 122, the RF cable body 301 enters the inside of the curved guide frame 121, and at the same time, the RF cable body 301 is driven by the motor 201.

[0022] Please refer to Figure 8 、 Figure 9 、 Figure 10 、 Figure 11 andFigure 12 shows the overall structure of the double-headed locking mechanism 2. The double-headed locking mechanism 2 includes a motor 201, which is a servo motor. The motor 201 is fixedly installed on the top of the processing box 101 through a bracket. The output shaft of the motor 201 is fixedly connected with a rotating rod 202 through a coupling. The bottom end of the rotating rod 202 penetrates through the processing box 101 and is rotatably connected with the bottom of the inner cavity of the processing box 101 through a bearing member. A multi-faceted seat 203 is fixedly connected to the surface of the rotating rod 202 and located inside the processing box 101. An L-shaped support frame 204 is fixedly connected to the upper part of the surface of the multi-faceted seat 203, and a number of L-shaped support frames 204 are provided. The front end of the L-shaped support frame 204 is fixedly connected with a circular sliding frame 205. A circular sliding ring 206 is rotatably connected to the inside of the circular sliding frame 205. Side sliding frames 207 are fixedly connected to both sides of the inner cavity of the circular sliding ring 206. A circular guide rod 208 is fixedly connected between the side sliding frame 207 and the inner wall of the circular sliding ring 206. An arcuate pressing plate 209 is slidably installed on the surface of the circular guide rod 208 inside the side sliding frame 207. A third spring 210 is sleeved on the surface of the circular guide rod 208. The tops of the two arcuate pressing plates 209 are fixedly connected with a semi-gear cylinder 211 for cooperation. A multi-angle groove 212 is opened at the top of the semi-gear cylinder 211. A concave circular rod 213 is fixedly connected to the lower part of the surface of the multi-faceted seat 203 through a bracket. Compression sliding rods 214 are slidably installed on both sides of the surface of the concave circular rod 213. The tops of the two compression sliding rods 214 are fixedly connected with fourth springs 216 for cooperation. A return-shaped frame rod 217 is fixedly connected between the two ends of the concave circular rod 213. A horizontal bending rod 218 is fixedly connected to the inside of the return-shaped frame rod 217.

[0023] Please refer to Figure 13 shows the overall structure of the RF cable assembly 3. The RF cable assembly 3 includes an RF cable body 301, a connector 302, a plug 303 and a sleeve 304. The plug 303 is located inside the multi-angle groove 212. The connector 302 is located inside the circular clamping frame 215. And the RF cable body 301 is connected between the connector 302 and the plug 303. The sleeve 304 is sleeved on the surface of the RF cable body 301.

[0024] After the crimping machine 111 finishes its work again, the motor 201 drives the multi-faceted seat 203 to rotate again until the radio frequency cable body 301 moves to the right. During this movement, as the radio frequency cable body 301 moves and is guided from top to bottom by the curved guide frame 121, the sleeve 304 contacts the bottom of the crimping part 123 at this time, and the crimping part 123 presses the sleeve 304 down to wrap the connection between the adapter 302 and the radio frequency cable body 301. At the same time, the semi-gear cylinder 211 meshes with the crimping machine 111. As the multi-faceted seat 203 continues to rotate, during the process, the semi-gear cylinder 211 drives the entire radio frequency cable body 301 to rotate together under the action of the multi-faceted seat 203. When the sleeve 304 passes through the arc-shaped air frame 120, the hot air blown by the hot air blower 118 blows towards the sleeve 304 through the arc-shaped air frame 120. At this time, the sleeve 304 rotates and shrinks evenly after being heated, and finally tightly wraps the connection between the adapter 302 and the radio frequency cable body 301. When the radio frequency cable body 301 moves to the right, it stops. At the same time, the radio frequency cable body 301 disengages from the curved guide frame 121. As the expansion plug 105 descends, the bottom end of the expansion plug 105 will squeeze one end of the bow-shaped pressing plate 209, and then separate and open the two semi-gear cylinders 211 under the limit of the bow-shaped pressing plate 209. After the semi-gear cylinder 211 is opened, the entire radio frequency cable body 301 loosens and drops, and falls to the bottom of the processing box 101 through the discharge port 124 to complete the discharging. Subsequently, the motor 201 starts and continues to drive the multi-faceted seat 203 to rotate for the installation and processing of the radio frequency cable body 301.

[0025] At the same time, the content not described in detail in this specification belongs to the prior art well-known to those skilled in the art.

Claims

1. A processing device for producing a radio frequency power supply pipeline, comprising a buckle heating mechanism (1), a double-head locking mechanism (2) and a radio frequency line assembly (3), characterized in that: The buckle heating mechanism (1) comprises a processing box (101), the left side of the processing box (101) is fixedly connected to a lifting guide rod (102) via a fixing block, an L-shaped sleeve (103) is slidably mounted on the surface of the lifting guide rod (102), a side opening (108) is opened on the left side of the processing box (101), one end of the L-shaped sleeve (103) passes through the side opening (108) and extends to the inner side of the processing box (101), and the L-shaped sleeve (103) is slidably mounted on the surface of the lifting guide rod (102). ) is fixedly connected to one end of the processing box (101) extending into the interior of the processing box (101), and a double-bevel plug plate (104) is fixedly connected to the right side of the top of the double-bevel plug plate (104) via a bracket. An expansion plug plate (105) is fixedly connected to the surface of the recovery guide rod (102), and a first spring (106) is fixedly connected to the left end of the L-shaped sleeve (103). The double-head locking mechanism (2) and the radio frequency line assembly (3) are both installed on the inner side of the processing box (101).

2. The processing equipment for producing a radio frequency power supply pipeline according to claim 1, characterized in that: An electric telescopic rod (109) is fixedly mounted on the left side of the processing box (101); a curved plate (110) is fixedly connected to the bottom end of the electric telescopic rod (109); one end of the curved plate (110) passes through the side opening (108) and extends to the inside of the processing box (101); one end of the curved plate (110) extending to the inside of the processing box (101) is fixedly connected to a crimping machine (111); a polygonal rod (112) is slidably mounted on the other end of the curved plate (110); one end of the polygonal rod (112) is fixedly connected to a rectangular plate (113); the other end of the polygonal rod (112) is fixedly connected to an inclined block (114) used in conjunction with a square ring (107); and a second spring (115) is sleeved on the surface of the polygonal rod (112).

3. The processing equipment for producing a radio frequency power supply pipeline according to claim 2, characterized in that: The left side of the processing box (101) is fixedly connected to an inclined guide plate (116) used in conjunction with the rectangular plate (113) via a fixing block, the right side of the inner cavity of the processing box (101) is fixedly connected to an arc-shaped toothed plate (117) via a bracket, the right side of the processing box (101) is fixedly connected to a hot air blower (118) via a fixing plate, the air outlet of the hot air blower (118) is fixedly connected to an air guide pipe (119), one end of the air guide pipe (119) passes through the processing box (101) and extends to the inside of the processing box (101), one end of the air guide pipe (119) extending to the inside of the processing box (101) is fixedly connected to an arc-shaped wind frame (120), and a discharge port (124) is provided at the bottom of the processing box (101).

4. The processing equipment for producing a radio frequency power supply pipeline according to claim 1, characterized in that: A curved guide frame (121) is fixedly connected to the right side of the rear inner cavity of the processing box (101) via a bracket, an expansion portion (122) is provided at the left end of the curved guide frame (121), and a pressing sleeve portion (123) is provided at the right side of the bottom of the curved guide frame (121).

5. The processing equipment for producing a radio frequency power supply pipeline according to claim 3, characterized in that: The double-head locking mechanism (2) comprises a motor (201), the motor (201) being fixedly mounted on the top of the processing box (101) via a bracket, the output shaft of the motor (201) being fixedly connected to a rotating rod (202) via a coupling, the bottom end of the rotating rod (202) passing through the processing box (101) and being rotatably connected to the bottom of the inner cavity of the processing box (101) via a bearing, and a multi-faceted seat (203) being fixedly connected to the surface of the rotating rod (202) and located on the inner side of the processing box (101).

6. The processing equipment for producing a radio frequency power supply pipeline according to claim 5, characterized in that: An L-shaped support frame (204) is fixedly connected to the upper part of the surface of the multi-faceted seat (203), and a plurality of L-shaped support frames (204) are provided. A circular sliding frame (205) is fixedly connected to the front end of the L-shaped support frame (204). A circular sliding ring (206) is rotatably connected to the inner side of the circular sliding frame (205). Side sliding frames (207) are fixedly connected to the inner side of the circular sliding ring (206). 6), a round guide rod (208) is fixedly connected between the inner walls of the side sliding frame (207), a bow-shaped pressure plate (209) is slidably installed on the inner side of the side sliding frame (207) and located on the surface of the round guide rod (208), a third spring (210) is sleeved on the surface of the round guide rod (208), and the tops of the two bow-shaped pressure plates (209) are fixedly connected to a half gear cylinder (211) for use with each other through a bracket, and a polygonal groove (212) is provided on the top of the half gear cylinder (211).

7. The processing equipment for producing a radio frequency power supply pipeline according to claim 6, characterized in that: A concave round rod (213) is fixedly connected to the lower part of the surface of the multi-faceted seat (203) via a bracket, and pressure-bearing slide bars (214) are slidably mounted on both sides of the surface of the concave round rod (213), and the top ends of the two pressure-bearing slide bars (214) are fixedly connected to fourth springs (216) that cooperate with each other, and a return frame rod (217) is fixedly connected between the two ends of the concave round rod (213), and a transverse bending rod (218) is fixedly connected to the inner side of the return frame rod (217).

8. The processing equipment for producing a radio frequency power supply pipeline according to claim 1, characterized in that: The radio frequency line assembly (3) comprises a radio frequency line body (301), an adapter (302), a plug (303) and a sleeve (304); the plug (303) is located on the inner side of the polygonal groove (212); the adapter (302) is located on the inner side of the circular card frame (215); the radio frequency line body (301) is connected between the adapter (302) and the plug (303); and the sleeve (304) is sleeved on the surface of the radio frequency line body (301).

Citation Information

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