Quick cable drying device for cable production
By designing a cable rapid drying device and utilizing the synergistic effect of the drive assembly and the extrusion unit, the problem of residual moisture in cable production is solved, achieving rapid drying and efficient production.
Patent Information
- Application Number
- CN202510854278.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-24
- Publication Date
- 2025-09-23
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
In existing cable production, it is difficult to quickly remove the residual moisture after the cable is drawn out of the water tank, which leads to accelerated cable aging and safety hazards. The existing drying method is inefficient, affecting production efficiency.
A cable rapid drying device was designed, which included a placement unit, a driving unit and an extrusion unit. The driving component controlled the rotation of the cable and the horizontal movement of the extrusion unit, and combined with the heating component, the cable could be fully extruded and dried.
It achieves rapid squeezing and drying of moisture inside the cable, improves drying efficiency, extends the service life of the cable and improves production efficiency.
Smart Images

Figure CN120690522A_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of cable drying, and in particular relates to a cable rapid drying device for cable production. Background Art
[0002] Cables are wire products used to transmit electrical energy or signals. During cable production, an extruder is used to extrude materials such as plastic or rubber into the cable's insulation or protective layer, providing electrical isolation and insulation protection between the cable conductor and the external environment.
[0003] After existing cables are drawn out of the water tank, moisture will adhere to the cable surface. This residual moisture will accelerate the cable's aging process, shortening its service life. Moisture can also cause electrochemical corrosion, posing a threat to the cable's safe use. Therefore, during cable production, the cables need to be dried after being drawn out of the water tank. Currently, fans are commonly used to blow air through the cables to evaporate the residual moisture, but this drying efficiency is low, reducing cable production efficiency.
[0004] In view of this, the present invention is proposed. Summary of the Invention
[0005] In order to solve the above technical problems, the basic concept of the technical solution adopted by the present invention is: A cable quick drying device for cable production, comprising a placing unit, a driving unit and an extrusion unit, the placing unit comprising a placing shell, placing slots being provided on opposite sides of the placing shell, a cable body being passed through the two placing slots; the extrusion unit comprising four extrusion rotating balls, the four extrusion rotating balls being distributed circumferentially, a rotating shaft being fixed on the four extrusion rotating balls, bearings being provided at both ends of the four rotating shafts, a side plate being provided at the end of each bearing away from the rotating shaft, a fixing rod being provided between each of the side plates, and a placing block being provided on each fixing rod; the driving unit comprising a driving assembly and a hydraulic cylinder and a first clamping plate and a second clamping plate, the hydraulic cylinder being used to drive the first clamping plate and the second clamping plate to clamp the cable body, the driving assembly being used to drive the cable body to rotate, the driving assembly being also used to drive the extrusion unit to move horizontally, and a circular ring being provided for sliding on the hydraulic cylinder.
[0006] As a preferred embodiment of the present invention, a mounting base is provided at the bottom of the placement shell, two mutually symmetrical positioning rods are provided on the opposite side walls of the placement shell, a positioning plate is provided on the opposite end of each positioning rod, a fixing plate is provided above the two positioning plates, and a first slide rail is provided on the opposite side walls of the two fixing plates, two mutually symmetrical connecting rods are also provided above the placement shell, a connecting plate is also provided above the two connecting rods, and the two connecting plates are symmetrical to each other.
[0007] As a preferred embodiment of the present invention, the drive assembly includes a servo motor, the servo motor is arranged on a positioning plate, a rotating rod is provided at the output end of the servo motor, a rectangular mounting plate is provided at the end of the rotating rod away from the servo motor, a movable slide groove is provided on the side wall of the rectangular mounting plate, a movable slider is slidingly provided in the inner cavity of the movable slide groove, and the movable slider is connected to the rotating rod.
[0008] As a preferred embodiment of the present invention, a rectangular plug-in plate is plugged into the inner cavity of the rectangular mounting plate, and a limit plate is provided on the opposite ends of the rectangular plug-in plate and the rectangular mounting plate, and the two limit plates are symmetrical to each other, and the two limit plates are respectively provided with a limit rod on the side wall opposite to one end of the rectangular mounting plate, and the two limit rods are symmetrical to each other, and the opposite ends of the two limit rods are respectively provided with a first clamping plate and a second clamping plate, and the opposite side walls of the two limit plates are respectively provided with a first telescopic rod and a second telescopic rod, and the opposite side walls of the first telescopic rod and the second telescopic rod are respectively slidably set on a circular ring, and a mounting bracket is slidably set above the circular ring, and the other end of the mounting bracket is set on a connecting plate.
[0009] As a preferred embodiment of the present invention, the rotating rod is also provided with a driving gear, the driving gear is meshed with a driven gear, the driven gear is fixed with a rotating rod, a first slide rail is provided on one side wall of the driven gear, the two ends of the rotating rod are respectively rotatably arranged on two positioning plates, a guide slot is provided on the rotating rod, a guide slider is slidably provided in the inner cavity of the guide slot, a guide sleeve is provided on the guide slider, the guide sleeve is sleeved on the rotating rod, and two mutually symmetrical guide rods are movably passed through the guide sleeve, and the two ends of the two guide rods are respectively provided on the positioning plate and the first slide rail.
[0010] As a preferred embodiment of the present invention, the top of the four placement blocks located above the cable body is provided with a placement rod, and the three placement blocks are respectively provided with a third telescopic rod on one side wall close to the placement shell.
[0011] As a preferred embodiment of the present invention, the four placement blocks are located on the upper and lower ends of the cable body, and placement plates are provided at both ends of the two placement blocks. Each of the two opposite side walls of the placement plates is provided with a swing arm, and the other end of each swing arm is respectively provided on the remaining two placement blocks.
[0012] As a preferred embodiment of the present invention, a circular notch is provided on the placement rod, and a moving rod movably passes through the inner cavity of the circular notch, and both ends of the moving rod are respectively arranged on the second slide rail.
[0013] As a preferred embodiment of the present invention, a mounting bracket is provided on one side wall of the side plate, and a cleaning collar is provided on one end of the mounting bracket away from the side plate.
[0014] As a preferred embodiment of the present invention, a fixed block is provided at one end of the hydraulic cylinder away from the circular ring, two movable rods are movably provided on the fixed block, the other ends of the two movable rods are movably provided on the first clamping plate and the second clamping plate respectively, and the circular ring is provided on the positioning rod.
[0015] Compared with the prior art, the present invention has the following beneficial effects: The present invention can control the rotation of the cable body through the driving component and can also control the horizontal movement of the extrusion unit, thereby ensuring that the cable body can be squeezed in all directions by squeezing the rotating ball, so that the moisture contained in the cable body can be squeezed out quickly.
[0016] The present invention can quickly dry the cable body by activating the heating component arranged in the shell, and because the cable body is in a rotating state, the heating effect on the cable body is better.
[0017] The specific embodiments of the present invention will be described in further detail below with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] In the attached figure: Figure 1 This is a schematic diagram of the three-dimensional structure of a cable rapid drying device used in cable production; Figure 2 This is a rear structural schematic diagram of a cable rapid drying device for cable production; Figure 3 This is a schematic diagram of the partial structure of a cable rapid drying device used in cable production; Figure 4 This is a schematic diagram of the partial structure of a rectangular mounting plate of a cable rapid drying device used in cable production; Figure 5 This is a schematic diagram of the inner structure of a housing for a cable rapid drying device used in cable production; Figure 6A cable rapid drying device for cable production Figure 5 A in the middle is an enlarged structural diagram; Figure 7 A cable rapid drying device for cable production Figure 6 The enlarged structural diagram at B in the middle; Figure 8 This is a schematic diagram of the positioning plate structure of a cable rapid drying device used in cable production.
[0019] In the picture: 100, placement unit; 101, mounting base; 102, placement housing; 1021, placement notch; 1022, connecting rod; 1023, connecting plate; 103, positioning rod; 1031, positioning plate; 1032, fixing plate; 104, cable body; 200, drive unit; 201, servo motor; 2011, rotating rod; 2012, driving gear; 2013, driven gear; 202, rectangular mounting plate; 2021, movable slide; 2022, movable slider; 2023, rectangular plug-in plate; 2024, limiting plate; 2025, limiting rod; 2026, first clamping plate; 2027, second clamping plate; 203, hydraulic cylinder; 2031, fixed block; 2032, movable rod; 2033, first telescopic rod; 2034, second telescopic rod; 204, rotating rod; 2041, guide slide; 2042, guide slider; 2043, guide sleeve; 2044, guide rod; 2045, first slide rail; 205, ring; 2051, mounting bracket; 300, extrusion unit; 301, extrusion rotating ball; 3011, rotating shaft; 3012, bearing; 3013, side plate; 3014, fixed rod; 3015, placement block; 3016, third telescopic rod; 302, placement plate; 3021, swing arm; 3022, placement rod; 3023, moving rod; 3024, second slide rail; 303, mounting frame; 3031, cleaning ring. DETAILED DESCRIPTION
[0020] In order to make the purpose, technical solutions and advantages of the embodiments of the present invention clearer, the technical solutions in the embodiments will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. The following embodiments are used to illustrate the present invention.
[0021] Example 1: like Figures 1 to 8As shown, a cable rapid drying device for cable production includes a placement unit 100, a driving unit 200 and an extrusion unit 300. The placement unit 100 includes a placement shell 102. The placement shell 102 has placement slots 1021 on both opposite sides. The cable body 104 is penetrated in the two placement slots 1021. The extrusion unit 300 includes four extrusion rotating balls 301. The four extrusion rotating balls 301 are distributed in a circle. A rotating shaft 3011 is fixed on each of the four extrusion rotating balls 301. Bearings 3012 are provided at both ends of the four rotating shafts 3011. Each bearing 3012 is away from the rotating shaft 3011. A side plate 3013 is provided at one end of the shaft 3011. A fixing rod 3014 is provided between each pair of side plates 3013. Each fixing rod 3014 is provided with a placement block 3015. The drive unit 200 includes a drive assembly, a hydraulic cylinder 203, and a first clamping plate 2026 and a second clamping plate 2027. The hydraulic cylinder 203 is used to drive the first clamping plate 2026 and the second clamping plate 2027 to clamp the cable body 104. The drive assembly is used to rotate the cable body 104 and also to drive the squeezing unit 300 to move horizontally. A ring 205 is slidably provided on the hydraulic cylinder 203. The drive assembly can control the rotation of the cable body 104 and the horizontal movement of the squeezing unit 300. This ensures that the cable body 104 can be squeezed in all directions by squeezing the rotating ball 301, so that moisture contained in the cable body 104 can be quickly squeezed out.
[0022] like Figures 1 to 3 As shown, in a specific embodiment, a mounting base 101 is provided at the bottom of the placement housing 102, and two symmetrical positioning rods 103 are provided on opposite side walls of the placement housing 102. A positioning plate 1031 is provided on opposite ends of each positioning rod 103. A fixing plate 1032 is provided above each positioning plate 1031. A first slide rail 2045 is provided on opposite side walls of each fixing plate 1032. Two symmetrical connecting rods 1022 are also provided above the placement housing 102, and a connecting plate 1023 is provided above each connecting rod 1022. The two connecting plates 1023 are symmetrical to each other. In this configuration, the mounting components and parts around the placement housing 102 are determined.
[0023] Example 2: The difference between Example 1 and this example is that: Figures 1 to 5 and Figure 8As shown, a cable rapid drying device for cable production includes a drive assembly including a servo motor 201 mounted on a positioning plate 1031. A rotating rod 2011 is provided at the output end of the servo motor 201. A rectangular mounting plate 202 is provided at the end of the rotating rod 2011 away from the servo motor 201. A movable chute 2021 is defined on the sidewall of the rectangular mounting plate 202. A movable slider 2022 is slidably mounted within the inner cavity of the movable chute 2021. The movable slider 2022 is connected to the rotating rod 2011. This configuration defines the installation location and components of the drive assembly.
[0024] like Figures 1 to 5 and Figure 8 As shown, in a specific embodiment, a rectangular plug-in plate 2023 is plugged into the inner cavity of the rectangular mounting plate 202, and a limit plate 2024 is provided on the opposite ends of the rectangular plug-in plate 2023 and the rectangular mounting plate 202, and the two limit plates 2024 are symmetrical to each other, and the two limit plates 2024 are respectively provided with a limit rod 2025 on the side wall opposite to one end of the rectangular mounting plate 202, and the two limit rods 2025 are symmetrical to each other, and the opposite ends of the two limit rods 2025 are respectively provided with a first clamping plate 2026 and a second clamping plate 2027, and the opposite side walls of the two limit plates 2024 are respectively provided with a first telescopic rod 2033 and a second telescopic rod 2034, and the opposite side walls of the first telescopic rod 2033 and the second telescopic rod 2034 are respectively slidably set on the circular ring 205, and a mounting bracket 2051 is slidably set above the circular ring 205, and the other end of the mounting bracket 2051 is set on the connecting plate 1023. In this setting, it is ensured that the staff starts the servo motor 201, so that the servo motor 201 can drive the rotating rod 2011 to rotate. When the rotating rod 2011 rotates, the rotating rod 2011 can drive the movable slider 2022 to rotate, thereby driving the rectangular mounting plate 202 to rotate. When the rectangular mounting plate 202 rotates, it will be able to drive the rectangular plug-in plate 2023 to rotate. Therefore, the rectangular mounting plate 202 and the rectangular plug-in plate 2023 can drive the limit plate 2024 to rotate, and the limit plate 2024 can drive the limit rod 2025 to rotate, so that the limit rod 2025 can drive the first clamping plate 2026 and the second clamping plate 2027 to rotate, thereby driving the cable body 104 to rotate.
[0025] like Figures 1 to 7As shown, further, a driving gear 2012 is provided on the rotating rod 2011, and a driven gear 2013 is meshed with the driving gear 2012. The driven gear 2013 is fixed with a rotating rod 204, and a first slide rail 2045 is provided on one side wall of the driven gear 2013. The two ends of the rotating rod 204 are respectively rotatably set on the two positioning plates 1031. A guide groove 2041 is provided on the rotating rod 204, and a guide slider 2042 is slidably provided in the inner cavity of the guide groove 2041. A guide sleeve 2043 is provided on the guide slider 2042, and the guide sleeve 2043 is sleeved on the rotating rod 204. Two mutually symmetrical guide rods 2044 are movably passed through the guide sleeve 2043, and the two ends of the two guide rods 2044 are respectively provided on the positioning plate 1031 and the first slide rail 2045. In this arrangement, it is ensured that when the rotating rod 2011 rotates, the rotating rod 2011 can also drive the driving gear 2012 to rotate, and the driving gear 2012 can drive the driven gear 2013 to rotate. When the driven gear 2013 rotates, the driven gear 2013 can drive the rotating rod 204 to rotate. When the rotating rod 204 rotates, it can drive the guide sleeve 2043 to move horizontally through the guide slot 2041, the guide slider 2042 and the guide rod 2044.
[0026] Example 3: The difference between Example 2 and this example is that: Figures 5 to 7 As shown, a cable rapid drying device for cable production includes four placement blocks 3015 located above the cable body 104. A placement rod 3022 is provided at the top of each placement block 3015, and a third telescopic rod 3016 is provided on each of the three placement blocks 3015, adjacent to a side wall of the placement housing 102. In this configuration, specific mounting components are defined around the placement blocks 3015.
[0027] like Figures 5 to 7 As shown, in a specific embodiment, four placement blocks 3015 are located on the cable body 104. A placement plate 302 is provided at each end of the upper and lower placement blocks 3015. Opposite side walls of each placement plate 302 are provided with a swing arm 3021, with the other end of each swing arm 3021 being respectively provided on the other two placement blocks 3015. This arrangement ensures that when the guide sleeve 2043 moves, it can drive the third telescopic rod 3016 to move horizontally, thereby driving the squeezing unit 300 to move horizontally, allowing the squeezing rotating ball 301 to move horizontally on the cable body 104. Because the cable body 104 is in a rotating state at this time, the squeezing rotating ball 301 can squeeze the cable body 104 in all directions, thereby quickly squeezing out the moisture contained in the cable body 104.
[0028] like Figures 1 to 8As shown, further, a circular notch is formed on the placement rod 3022, and a movable rod 3023 is movably inserted into the inner cavity of the circular notch. The two ends of the movable rod 3023 are respectively arranged on the second slide rail 3024. This arrangement ensures that when the second telescopic rod 2034 moves vertically, it can drive the movable rod 3023 to move vertically downward with the assistance of the second slide rail 3024. When the movable rod 3023 moves vertically downward, it can drive the placement rod 3022 to move vertically downward. When the placement rod 3022 moves vertically downward, the placement rod 3022 can drive the placement block 3015 to move vertically downward.
[0029] like Figures 5 to 7 As shown, further, a mounting bracket 303 is provided on one side wall of the side plate 3013, and a cleaning ring 3031 is provided on one end of the mounting bracket 303 away from the side plate 3013. In this arrangement, it is ensured that the cleaning ring 3031 can clean the residual water droplets on the cable body 104.
[0030] like Figures 1 to 5 and Figure 8 As shown, further, a fixed block 2031 is provided at one end of the hydraulic cylinder 203 away from the ring 205. Two movable rods 2032 are movably provided on the fixed block 2031. The other ends of the two movable rods 2032 are movably provided on the first clamping plate 2026 and the second clamping plate 2027, respectively. The ring 205 is provided on the positioning rod 103. In this configuration, the operator can pass the cable body 104 through the two placement slots 1021 provided in the placement housing 102 and control the operation of the hydraulic cylinder 203. Therefore, the hydraulic cylinder 203 can drive the fixed block 2031 to move horizontally. When the fixed block 2031 moves horizontally, the fixed block 2031 can also drive the movable rods 2032 to move, thereby driving the first clamping plate 2026 and the second clamping plate 2027 to move vertically relative to each other with the assistance of the first telescopic rod 2033 and the second telescopic rod 2034, thereby ensuring that the first clamping plate 2026 and the second clamping plate 2027 can clamp the placed cable body 104.
[0031] The implementation principle of the cable rapid drying device for cable production of the present invention is as follows: First, the staff passes the cable body 104 through the two placement slots 1021 provided on the placement housing 102 and controls the operation of the hydraulic cylinder 203, so that the hydraulic cylinder 203 can drive the fixed block 2031 to move horizontally. When the fixed block 2031 moves horizontally, the fixed block 2031 can drive the movable rod 2032 to move, thereby driving the first clamping plate 2026 and the second clamping plate 2027 to move vertically relative to each other with the assistance of the first telescopic rod 2033 and the second telescopic rod 2034, thereby ensuring that the first clamping plate 2026 and the second clamping plate 2027 can clamp the placed cable body 104 (wherein the cable body 104 is clamped by the existing clamping mechanism); At the same time, when the second telescopic rod 2034 moves vertically, it can drive the moving rod 3023 to move vertically downward with the assistance of the second slide rail 3024. When the moving rod 3023 moves vertically downward, it can drive the placement rod 3022 to move vertically downward. When the placement rod 3022 moves vertically downward, the placement rod 3022 can drive the placement block 3015 to move vertically downward. Therefore, the placement block 3015 can drive the placement plate 302 to move vertically downward. When the placement plate 302 moves vertically downward, it can drive the swing arm 3021 to move. The swing arm 3021 can drive the remaining placement blocks 3015 to move toward the side of the cable body 104, so that the extrusion rotating ball 301 provided can continue to squeeze the cable body 104. The staff starts the servo motor 201, so the servo motor 201 can drive the rotating rod 2011 to rotate. When the rotating rod 2011 rotates, the rotating rod 2011 can drive the moving slider 2022 to rotate, thereby driving the rectangular mounting plate 202 to rotate. When the rectangular mounting plate 202 rotates, it can drive the rectangular plug plate 2023 to rotate. Therefore, the rectangular mounting plate 202 and the rectangular plug plate 2023 can drive the limit plate 2024 to rotate, and through the limit plate 2 024 can drive the limiting rod 2025 to rotate, thereby enabling the limiting rod 2025 to drive the first clamping plate 2026 and the second clamping plate 2027 to rotate, thereby driving the cable body 104 to rotate (because the hydraulic cylinder 203 and the first telescopic rod 2033 and the second telescopic rod 2034 are slidably arranged on the ring 205, the hydraulic cylinder 203 and the first telescopic rod 2033 and the second telescopic rod 2034 can also rotate without interference); At the same time, when the rotating rod 2011 rotates, the rotating rod 2011 can also drive the driving gear 2012 to rotate, and the driving gear 2012 can drive the driven gear 2013 to rotate. When the driven gear 2013 rotates, the driven gear 2013 can drive the rotating rod 204 to rotate. When the rotating rod 204 rotates, the guide sleeve 2043 can be driven to move horizontally through the guide slot 2041, the guide slider 2042 and the guide rod 2044. When the guide sleeve 2043 moves, it can drive the third telescopic rod 3016 to move horizontally. The cable body 104 is rotated at this time, so that the cable body 104 can be squeezed in all directions by squeezing the rotating ball 301, so that the moisture contained in the cable body 104 can be squeezed out quickly, and the heating component provided in the housing 102 is started at the same time, so that the cable body 104 can be quickly dried. Because the cable body 104 is in a rotating state, the heating effect of the cable body 104 is better.
Claims
1. A cable rapid drying device for cable production, comprising a placement unit (100), a drive unit (200) and an extrusion unit (300), characterized in that: The placement unit (100) comprises a placement shell (102), and two opposite sides of the placement shell (102) are provided with placement slots (1021), and the cable bodies (104) are provided through the two placement slots (1021); The extrusion unit (300) comprises four extrusion rotating balls (301), the four extrusion rotating balls (301) being distributed in a circular pattern, a rotating shaft (3011) being fixedly passed through each of the four extrusion rotating balls (301), bearings (3012) being provided at both ends of the four rotating shafts (3011), a side plate (3013) being provided at one end of each bearing (3012) away from the rotating shaft (3011), a fixing rod (3014) being provided between each of the side plates (3013), and a placement block (3015) being provided on each of the fixing rods (3014); The driving unit (200) comprises a driving assembly and a hydraulic cylinder (203) as well as a first clamping plate (2026) and a second clamping plate (2027); the hydraulic cylinder (203) is used to drive the first clamping plate (2026) and the second clamping plate (2027) to clamp the cable body (104); the driving assembly is used to drive the cable body (104) to rotate; the driving assembly is also used to drive the extrusion unit (300) to move horizontally; and a ring (205) is slidably provided on the hydraulic cylinder (203).
2. A cable rapid drying device for cable production according to claim 1, characterized in that: A mounting base (101) is provided at the bottom of the placement shell (102), and two mutually symmetrical positioning rods (103) are provided on opposite side walls of the placement shell (102), and a positioning plate (1031) is provided on opposite ends of each positioning rod (1033), and a fixing plate (1032) is provided above the two positioning plates (1031), and a first slide rail (2045) is provided on opposite side walls of the two fixing plates (1032), and two mutually symmetrical connecting rods (1022) are further provided above the placement shell (102), and a connecting plate (1023) is further provided above the two connecting rods (1022), and the two connecting plates (1023) are symmetrical to each other.
3. A cable rapid drying device for cable production according to claim 1, characterized in that: The driving assembly comprises a servo motor (201), the servo motor (201) being arranged on a positioning plate (1031), a rotating rod (2011) being arranged at an output end of the servo motor (201), a rectangular mounting plate (202) being arranged at one end of the rotating rod (2011) away from the servo motor (201), a movable slide groove (2021) being provided on a side wall of the rectangular mounting plate (202), a movable slider (2022) being slidably arranged in an inner cavity of the movable slide groove (221), and the movable slider (2022) being connected to the rotating rod (2011).
4. A cable rapid drying device for cable production according to claim 3, characterized in that: A rectangular plug-in plate (2023) is plugged into the inner cavity of the rectangular mounting plate (202), and a limiting plate (2024) is provided at opposite ends of the rectangular plug-in plate (2023) and the rectangular mounting plate (202), and the two limiting plates (224) are symmetrical to each other. A limiting rod (225) is provided on one side wall opposite to one end of the two limiting plates (224) away from the rectangular mounting plate (202), and the two limiting rods (225) are symmetrical to each other, and the opposite ends of the two limiting rods (225) are respectively A first clamping plate (2026) and a second clamping plate (2027) are provided, and opposite side walls of the two limiting plates (2024) are respectively provided with a first telescopic rod (2033) and a second telescopic rod (2034), and opposite side walls of the first telescopic rod (2033) and the second telescopic rod (2034) are respectively slidably provided on a circular ring (205), and a mounting bracket (2051) is slidably provided above the circular ring (205), and the other end of the mounting bracket (2051) is provided on the connecting plate (1023).
5. A cable rapid drying device for cable production according to claim 2, characterized in that: The rotating rod (2011) is also provided with a driving gear (2012), and the driving gear (2012) is meshed with a driven gear (2013), and a rotating rod (204) is fixedly passed through the driven gear (2013), and a first slide rail (2045) is provided on one side wall of the driven gear (2013), and the two ends of the rotating rod (204) are respectively rotatably provided on two positioning plates (1031), and a guide slot (2045) is provided on the rotating rod (204). 41), a guide slider (2042) is slidably provided in the inner cavity of the guide slot (2041), a guide sleeve (2043) is provided on the guide slide (2042), the guide sleeve (2043) is sleeved on the rotating rod (204), and two mutually symmetrical guide rods (2044) are movably passed through the guide sleeve (2043), and the two ends of the two guide rods (2044) are respectively provided on the positioning plate (1031) and the first slide rail (2045).
6. A cable rapid drying device for cable production according to claim 1, characterized in that: The top of the four placement blocks (3015) located above the cable body (104) is provided with a placement rod (3022), and the three placement blocks (3015) are respectively provided with a third telescopic rod (3016) close to a side wall of the placement shell (102).
7. A cable rapid drying device for cable production according to claim 6, characterized in that: The four placement blocks (3015) are located on the cable body (104), and placement plates (302) are provided at both ends of the upper and lower placement blocks (3015). A swing arm (3021) is provided on each of the two opposite side walls of each placement plate (302), and the other end of each swing arm (3021) is respectively provided on the remaining two placement blocks (3015).
8. A cable rapid drying device for cable production according to claim 6, characterized in that: A circular notch is provided on the placement rod (3022), and a moving rod (3023) is movably passed through the inner cavity of the circular notch. Both ends of the moving rod (3023) are respectively arranged on the second slide rail (3024).
9. A cable rapid drying device for cable production according to claim 1, characterized in that: A mounting frame (303) is provided on one side wall of the side plate (3013), and a cleaning collar (3031) is provided on one end of the mounting frame (303) away from the side plate (3013).
10. A cable rapid drying device for cable production according to claim 1, characterized in that: A fixed block (2031) is provided at one end of the hydraulic cylinder (203) away from the circular ring (205); two movable rods (2032) are movably provided on the fixed block (2031); the other ends of the two movable rods (2032) are movably provided on the first clamping plate (2026) and the second clamping plate (2027), respectively; and the circular ring (205) is provided on the positioning rod (103).