Automatic processing equipment for aviation high-definition transmission cable
Through the design of the double-layer braiding mechanism of the turbine disc and braiding disc and the cleaning inner cylinder, the problems of low braiding efficiency and manual cleaning of high-definition transmission cables for aviation are solved, efficient braiding and impurity collection are achieved, and cable performance is improved.
Patent Information
- Application Number
- CN202510667750.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-07-25
AI Technical Summary
The existing high-definition transmission cable braiding method for aviation is inefficient and requires manual cleaning of the outer wall of the cable to increase the burden on staff.
A braiding mechanism combining a turbine disk and a braided disk is used to realize double-layer braiding, and during the braiding process, impurities are removed from cable outer wall by cleaning the inner cylinder, and impurities are collected using centrifugal force to reduce manual intervention.
It improves braiding efficiency, enhances the anti-interference and tensile strength of the cable, reduces the burden of manual cleaning, and ensures the braiding quality.
Smart Images

Figure CN120364520A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of aviation cables, and specifically to an automatic processing device for high-definition transmission cables for aviation. Background Art
[0002] High-definition transmission cables for aviation are usually used in aircraft and aviation equipment to carry high-definition signals such as video and data transmission. They have some special design requirements to ensure stable signal transmission and safe operation of the equipment. During the production process, high-definition transmission cables for aviation usually use lightweight and high-strength conductor materials such as silver-plated copper or gold-plated copper to reduce weight and improve electrical conductivity. In the design, the anti-interference ability and electromagnetic shielding ability of the cable need to be considered to ensure stable signal transmission. In some high-precision transmission cables for aviation, additional shielding layers (such as aluminum foil, braided copper wire, etc.) may be used to reduce external interference.
[0003] Most of the current braiding work of cable shielding layers is carried out in a single-layer braiding method. In order to ensure signal stability, aviation cables usually have a multi-layer shielding structure, including braided copper wire, aluminum wire, etc. When the existing braiding mechanism faces aviation cables, most of them complete the single-layer braiding and then carry out another layer of braiding. This braiding method not only reduces the overall braiding efficiency, but also easily affects the overall braiding effect. And before braiding the cable, it is necessary for the staff to clean the outer wall of the cable to ensure the cleanliness of the outer wall of the cable, thus increasing the work burden of the staff.
[0004] To sum up, the existing braiding method not only reduces the overall braiding efficiency, but also easily affects the overall braiding effect. And before braiding the cable, it is necessary for the staff to clean the outer wall of the cable, thus increasing the work burden of the staff. Summary of the Invention
[0005] Based on this, the purpose of the present invention is to provide an automatic processing device for high-definition transmission cables for aviation to solve the technical problems that the braiding method not only reduces the overall braiding efficiency, but also easily affects the overall braiding efficiency, and before braiding the cable, it is necessary for the staff to clean the outer wall of the cable, thus increasing the work burden of the staff.
[0006] To achieve the above purpose, the present invention provides the following technical solution: An automatic processing device for high-definition transmission cables for aviation, including a workbench, a braiding plate and a wire winding assembly. The wire winding assembly is located on both sides of the top of the workbench, and the braiding plate is between the wire winding assemblies. A turbine disc cooperating with the wire winding assembly is rotatably arranged on the braiding plate. A braiding disc is rotatably arranged inside the turbine disc on the braiding plate. A fixed gear is arranged between the braiding disc and the turbine disc. One end of the fixed gear is connected to the braiding plate. Braiding rollers are arranged on one side of both the braiding disc and the turbine disc; One end of the braiding disc is connected with a cleaning inner cylinder, one end of the cleaning inner cylinder penetrates through the braiding plate, an outer cleaning cylinder is sleeved on the outer wall of the cleaning inner cylinder, an array of filter holes is arranged on the cleaning inner cylinder inside the outer cleaning cylinder, and a collection box is connected to the bottom of the outer cleaning cylinder.
[0007] By adopting the above technical solution, the turbine disc and the braiding disc will rotate in opposite directions under the action of the fixed gear, and the double-layer braiding work of the cable is realized under the action of the braiding roller. In this process, the overall braiding efficiency is accelerated. At the same time, under the action of the turbine disc and the braiding disc, the braiding layer is braided in two different directions. The cleaning inner cylinder will remove the particulate impurities on the outer wall of the cable, effectively preventing the influence of the particulate impurities on the shielding layer braiding. And under the action of centrifugal force, the falling particulate impurities are discharged into the inner part of the outer cleaning cylinder through the filter holes, and are collected into the collection box under the action of the self-gravity of the particulate impurities.
[0008] The present invention is further configured that the wire winding assembly includes a winding motor, a wire feeding roller and a winding roller. The wire feeding roller is arranged on the top of the workbench on one side of the outer cleaning cylinder, and the winding roller is arranged on the other side of the top of the workbench at the same time. One ends of the wire feeding roller and the winding roller are both connected with the winding motor.
[0009] Preferably, the staff places the cable to be processed on the wire feeding roller, and then the other end is connected with the winding roller. By starting the winding motor to drive the wire feeding roller and the winding roller to rotate together, the cable is always in a taut state during the braiding process, further improving the overall processing effect.
[0010] The present invention is further configured that a first sliding groove and a second sliding groove are respectively arranged on the inner side of the braiding plate at the positions of the turbine disc and the braiding disc, and the first sliding groove and the second sliding groove are used for the turbine disc and the braiding disc to rotate on the braiding plate.
[0011] Preferably, under the action of the first sliding groove and the second sliding groove, the braiding disc and the turbine disc can rotate on the braiding plate, effectively preventing the situation of slipping, and further improving the stability of the overall processing.
[0012] The present invention is further configured that one end of the winding roller is connected with a transmission mechanism, and a worm is connected to the other end of the transmission mechanism, and the worm is used to drive the turbine disc to rotate.
[0013] Preferably, during the rotation of the winding roller by the winding motor, the transmission mechanism at one end will be driven to rotate. Under the action of the transmission mechanism, the worm rotates. Since one end of the worm penetrates into the braiding plate and is located at the bottom of the turbine disc, the worm will drive the turbine disc to rotate on the braiding plate during the rotation process.
[0014] The present invention is further configured such that the transmission mechanism includes a driving sprocket, a driven sprocket and a transmission chain. The driving sprocket and the driven sprocket are connected by the transmission chain. One end of the driving sprocket is connected to the winding roller, and one end of the driven sprocket is connected to the worm. And the diameter of the driving sprocket in the transmission mechanism is larger than that of its driven sprocket.
[0015] Preferably, when the winding roller rotates, it drives the driving sprocket to rotate. Under the action of the transmission chain, the driven sprocket rotates, thereby causing the worm to rotate accordingly. Since the diameter of the driving sprocket in the transmission mechanism is larger than that of its driven sprocket, when the winding roller slowly rotates to wind the woven cable, the driven sprocket drives the worm to rotate quickly, thereby accelerating the rotation of the turbine disc and improving the subsequent cable weaving effect.
[0016] The present invention is further configured such that adjusting gear rings are provided in both the first sliding groove and the second sliding groove. The bottom of the weaving roller is meshed with a transmission shaft through bevel gears, and an adjusting gear meshed with the adjusting gear ring is connected to one end of the transmission shaft.
[0017] Preferably, during the rotation and weaving process of the turbine disc and the weaving disc, the adjusting gear rotates under the action of the adjusting gear ring, and drives the weaving roller to rotate and pay out wire under the meshing with the bevel gear, realizing gradual wire payout during the cable weaving process, ensuring that the woven wire between the cable and the weaving roller is in a taut state, preventing the weaving layers from being relatively loose, and further improving the overall weaving effect.
[0018] The present invention is further configured such that a side bevel gear is connected to the bottom of the weaving roller, and a positive bevel gear is meshed with one side of the side bevel gear. One end of the positive bevel gear is connected to the transmission shaft.
[0019] Preferably, during the rotation process of the transmission shaft driven by the adjusting gear, it drives the positive bevel gear to rotate. Under the meshing of the positive bevel gear and the side bevel gear, the weaving roller is driven to rotate, thereby ensuring that during the rotation and weaving process of the turbine disc and the weaving disc, the weaving roller rotates and pays out wire accordingly.
[0020] The present invention is further configured such that an internal gear ring meshing with a fixed gear is provided on the inner wall of the turbine disc, and an external gear ring meshing with the fixed gear is provided on the outer wall of the weaving disc.
[0021] Preferably, when the turbine disc rotates under the action of the worm, the internal gear ring on the inner wall drives the fixed gear to rotate. Since the fixed gear rotates on its own on the weaving plate, the fixed gear meshes with the external gear ring during rotation to drive the weaving disc to rotate accordingly.
[0022] The present invention is further configured such that a blanking chute is provided at the bottom of the cleaning outer cylinder at the collection box, wherein the top of the blanking chute is open.
[0023] Preferably, under the action of the blanking chute, the particulate impurities in the cleaning outer cylinder flow downward to the blanking chute under the action of their own gravity, and the open setting effectively prevents the accumulation of impurity particles in the cleaning outer cylinder.
[0024] The present invention is further configured such that through holes for the cable to pass through are provided through the braiding disc and the braiding plate, wherein the cleaning inner cylinder is at the same horizontal height as the through holes.
[0025] Preferably, the setting of the through holes facilitates the cable to penetrate through the braiding plate and be connected to the winding roller at the other end.
[0026] In summary, the present invention mainly has the following beneficial effects: In the present invention, a turbine disc cooperating with the winding roller is rotatably provided in the braiding plate, and a braiding disc is also rotatably provided in the braiding plate through a fixed gear. During the rotation of the winding roller, the turbine disc and the braiding disc will rotate in opposite directions under the action of the fixed gear. Through the action of the braiding roller, the double-layer braiding work of the cable is realized simultaneously. In this process, the overall braiding efficiency is accelerated. At the same time, under the action of the turbine disc and the braiding disc, the braiding layers are braided in two different directions to enhance the anti-interference and tensile strength of the cable. And the turbine disc and the braiding disc rotate at different speeds under the action of the fixed gear, so that the braiding density of each layer is different, to ensure the shielding effect of the cable and the mechanical properties of the cable; In the present invention, a cleaning inner cylinder is provided on one side of the braiding disc, and a cleaning outer cylinder is sleeved on the outer wall of the cleaning inner cylinder. Before the cable is braided, it will be conveyed to one side through the cleaning inner cylinder. During the rotation of the braiding disc, the cleaning inner cylinder will be driven to rotate. At this time, the cleaning inner cylinder will remove the particulate impurities on the outer wall of the cable, effectively preventing the influence of particulate impurities on the shielding layer braiding. And under the action of centrifugal force, the dropped particulate impurities are discharged into the interior of the cleaning outer cylinder through the filter holes, and are uniformly collected into the collection box under the action of the self-gravity of the particulate impurities, preventing the splashing of impurities during the cleaning process, and reducing the subsequent collection burden of the staff; In the present invention, adjusting gear rings are provided in both the first sliding groove and the second sliding groove. During the rotation and weaving process of the turbine disk and the weaving disk, the adjusting gear will rotate under the action of the adjusting gear ring, and drive the weaving roller to rotate and pay off the wire under the meshing with the bevel gear, realizing step-by-step wire pay-off during the wire weaving process, ensuring that the weaving wire between the wire and the weaving roller is in a tight state, preventing the weaving layers from being relatively loose, and further improving the overall weaving effect. Description of the Drawings
[0027] Figure 1 Is a three-dimensional view of the present invention; Figure 2 Is a schematic structural diagram of the winding component of the present invention; Figure 3 Is a schematic structural diagram of the wire pay-off roller of the present invention; Figure 4 Is a schematic structural diagram of the turbine disk and the weaving disk of the present invention; Figure 5 Is a schematic internal structure diagram of the weaving plate of the present invention; Figure 6 For the present invention Figure 3 An enlarged view of A in; Figure 7 Is a schematic structural diagram of the turbine disk and the worm of the present invention; Figure 8 Is a side view of the present invention; Figure 9 Is a schematic structural diagram of the cleaning component of the present invention; Figure 10 Is a cross-sectional view of the cleaning component of the present invention; Figure 11 For the present invention Figure 10 An enlarged view of B in; Figure 12 Is a schematic partial structure diagram of the second embodiment of the present invention; Figure 13 Is a schematic structural diagram of the adjusting gear ring in the second embodiment of the present invention; Figure 14 For the present invention Figure 12 An enlarged view of C in.
[0028] Description of the Reference Numerals: 1. Workbench; 2. Wire pay-off roller; 3. Take-up roller; 4. Take-up motor; 5. Transmission mechanism; 6. Collection box; 7. Cleaning outer cylinder; 8. Weaving plate; 9. Weaving roller; 10. Turbine disc; 11. Fixed gear; 12. Weaving disc; 13. Outer tooth ring; 14. Inner tooth ring; 15. First chute; 16. Second chute; 17. Cleaning inner cylinder; 18. Worm; 19. Filter hole; 20. Feeding chute; 21. Adjusting tooth ring; 22. Transmission shaft; 23. Adjusting gear; 24. Side bevel gear; 25. Positive bevel gear. Detailed implementation manner
[0029] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention and should not be construed as a limitation to the present invention.
[0030] Next, the embodiments of the present invention will be described according to the overall structure of the present invention.
[0031] Embodiment 1:
[0032] Please refer to Figures 1-11 An automatic processing device for an aviation high-definition transmission cable shown in the figure, including a workbench 1, a wire pay-off roller 2, a take-up roller 3, a cleaning mechanism, a weaving mechanism and a conveying mechanism. A wire pay-off roller 2 is arranged on one side of the cleaning outer cylinder 7 at the top of the workbench 1, and a take-up roller 3 is arranged on the other side of the top of the workbench 1. One ends of the wire pay-off roller 2 and the take-up roller 3 are both connected with a take-up motor 4. In the initial state, the staff places the cable to be processed on the wire pay-off roller 2, and then the other end passes through the weaving plate 8 and is connected to the take-up roller 3. By starting the take-up motor 4, the wire pay-off roller 2 and the take-up roller 3 are driven to rotate together, so that the cable is always in a taut state during the process of processing and weaving. A weaving disc 12 is rotatably arranged on one side of the weaving plate 8, and one end of the weaving disc 12 passes through the weaving plate 8 and is connected with a cleaning inner cylinder 17; A cleaning outer cylinder 7 is sleeved on the outer wall of the cleaning inner cylinder 17, and a plurality of groups of filter holes 19 are arranged inside the cleaning outer cylinder 7 on the cleaning inner cylinder 17. When the cable to be processed passes through the cleaning inner cylinder 17, the cleaning inner cylinder 17 is driven to rotate by the weaving disc 12 to clean the particulate impurities on the outer wall of the cable, effectively preventing the particulate impurities from affecting the shielding layer weaving. Under the action of centrifugal force, the dropped particulate impurities are discharged into the cleaning outer cylinder 7 through the filter holes 19. At the same time, a collection box 6 is connected to the bottom of the cleaning outer cylinder 7, and a feeding chute 20 is arranged at the bottom of the cleaning outer cylinder 7 at the position of the collection box 6. Under the action of the feeding chute 20, the particulate impurities in the cleaning outer cylinder 7 flow downward to the feeding chute 20 under the action of their own gravity, realizing the unified collection of the particulate impurities; Subsequently, the cleaned cable will pass through the braiding plate 8. Since a turbine disc 10 that cooperates with the winding roller 3 is rotatably arranged in the braiding plate 8, during the process of the cable being conveyed by the winding roller 3, the turbine disc 10 will rotate within the braiding plate 8. An internal tooth ring 14 that meshes with a fixed gear 11 is arranged on the inner wall of the turbine disc 10, and an external tooth ring 13 that meshes with the fixed gear 11 is arranged on the outer wall of the braiding disc 12. When the turbine disc 10 rotates, the internal tooth ring 14 on the inner wall will drive the fixed gear 11 to rotate. Since the fixed gear 11 rotates on the braiding plate 8, during the rotation of the fixed gear 11, it will mesh with the external tooth ring 13 to drive the braiding disc 12 to rotate accordingly. Since braiding rollers 9 are arranged on both the braiding disc 12 and the turbine disc 10, during the rotation process, double-layer braiding work on the cable is achieved through the braiding rollers 9, and the overall braiding efficiency is accelerated in this process; Meanwhile, under the action of the turbine disc 10 and the braiding disc 12, the braiding layers are braided in two different directions to enhance the anti-interference and tensile strength of the cable. Moreover, the turbine disc 10 and the braiding disc 12 rotate at different speeds under the action of the fixed gear 11, so that the braiding density of each layer will be different to ensure the shielding effect of the cable and the mechanical properties of the cable.
[0033] In the above embodiment, specifically, please refer to Figure 5 , where a first chute 15 and a second chute 16 are respectively arranged at the positions of the turbine disc 10 and the braiding disc 12 on the inner side of the braiding plate 8. The first chute 15 and the second chute 16 are used for the turbine disc 10 and the braiding disc 12 to rotate on the braiding plate 8. Under the action of the first chute 15 and the second chute 16, the braiding disc 12 and the turbine disc 10 can rotate on the braiding plate 8, effectively preventing the situation of slippage and further improving the stability of the overall processing.
[0034] In the above embodiment, specifically, please refer to Figure 1 and Figure 7 , where a transmission mechanism 5 is connected to one end of the winding roller 3, and a worm 18 is connected to the other end of the transmission mechanism 5. The worm 18 is used to drive the turbine disc 10 to rotate. During the rotation of the winding roller 3 driven by the winding motor 4, it will drive the transmission mechanism 5 at one end to rotate. Under the action of the transmission mechanism 5, the worm 18 rotates. Since one end of the worm 18 penetrates into the braiding plate 8 and is located at the bottom of the turbine disc 10, during the rotation process, the worm 18 will drive the turbine disc 10 to rotate on the braiding plate 8.
[0035] In the above embodiment, specifically, please refer to Figure 1, wherein the transmission mechanism 5 includes a driving sprocket, a driven sprocket and a transmission chain. One end of the driving sprocket is connected to the winding roller 3, and one end of the driven sprocket is connected to the worm 18. When the winding roller 3 rotates, it drives the driving sprocket to rotate. Under the action of the transmission chain, the driven sprocket rotates, thereby causing the worm 18 to rotate accordingly. Since the diameter of the driving sprocket in the transmission mechanism 5 is larger than that of its driven sprocket, when the winding roller 3 slowly rotates to wind the woven cable, the driven sprocket drives the worm 18 to rotate rapidly, thereby accelerating the rotation of the turbine disk 10 and improving the subsequent cable weaving effect.
[0036] Embodiment 2:
[0037] Please refer to Figures 12-14 An automatic processing device for an aviation high-definition transmission cable shown in the figure. The overall structure is similar to that of the first embodiment. An adjusting gear ring 21 is provided in both the first chute 15 and the second chute 16. The bottom of the weaving roller 9 is connected to a transmission shaft 22 through the meshing of bevel gears, and an adjusting gear 23 meshing with the adjusting gear ring 21 is connected to one end of the transmission shaft 22. During the rotation and weaving process of the turbine disk 10 and the weaving disk 12, the adjusting gear 23 rotates under the action of the adjusting gear ring 21, and drives the weaving roller 9 to rotate and pay out wire through meshing with the bevel gear, realizing gradual wire pay-out during the cable weaving process, ensuring that the weaving wire between the cable and the weaving roller 9 is in a taut state, preventing the weaving layers from being relatively loose, and further improving the overall weaving effect.
[0038] In the above embodiment, specifically, please refer to Figure 12 again, wherein a side bevel gear 24 is connected to the bottom of the weaving roller 9, and a positive bevel gear 25 is meshed with one side of the side bevel gear 24. One end of the positive bevel gear 25 is connected to the transmission shaft 22. When the transmission shaft 22 rotates through the adjusting gear 23, it drives the positive bevel gear 25 to rotate. Through the meshing of the positive bevel gear 25 and the side bevel gear 24, the weaving roller 9 is driven to rotate, thereby ensuring that during the rotation and weaving process of the turbine disk 10 and the weaving disk 12, the weaving roller 9 rotates and pays out wire accordingly.
[0039] When the present invention is working specifically: during use, the cable to be processed is placed on the wire pay-off reel 2, and one end of the cable passes through the cleaning inner cylinder 17 and the braiding plate 8 and is connected to the winding reel 3. Under the action of the winding motor 4, the wire pay-off reel 2 and the winding reel 3 rotate. During this process, under the action of the transmission mechanism 5, the turbine disk 10 in the braiding plate 8 rotates, and the braiding disk 12 rotates in cooperation with the fixed gear 11. One end of the braiding disk 12 is connected to the cleaning inner cylinder 17. During rotation, the cleaning inner cylinder 17 rotates to clean the particulate impurities on the outer wall of the cable, and the dropped particulate impurities are discharged into the cleaning outer cylinder 7 through the filter holes 19 under the action of centrifugal force and fall into the collection box 6 at the bottom under the action of their own gravity to achieve unified collection thereof; Subsequently, the cable after cleaning is conveyed to the braiding roller 9. The turbine disk 10 drives the fixed gear 11 to rotate, and the fixed gear 11 drives the engaged braiding disk 12 to rotate. The double-layer braiding work of the cable is realized under the action of the braiding roller 9. During this process, the overall braiding efficiency is accelerated. Since the braiding disk 12 and the turbine disk 10 rotate in different directions, the braiding layers are braided in two different directions to enhance the anti-interference and tensile strength of the cable. Moreover, the turbine disk 10 and the braiding disk 12 also rotate at different speeds under the action of the fixed gear 11, so that the braiding density of each layer is different to ensure the shielding effect of the cable and the mechanical properties of the cable.
[0040] Although the embodiments of the present invention have been shown and described, the specific embodiments are only explanations of the present invention and do not limit the invention. The specific features, structures, materials or characteristics described can be combined in a suitable manner in any one or more embodiments or examples. After reading this specification, those skilled in the art can make modifications, substitutions and variations without creative contributions to the embodiments as needed, but as long as they are within the scope of the claims of the present invention, they are protected by the patent law.
Claims
1. An automatic processing device for a high-definition transmission cable for aviation, comprising a workbench (1), a braiding plate (8) and a wire-receiving assembly. The wire-receiving assembly is located on both sides of the top of the workbench (1), and the braiding plate (8) is between the wire-receiving assemblies. It is characterized in that: A turbine disc (10) which is rotatably arranged above the braiding plate (8) and cooperates with the wire winding assembly is provided. A braiding disc (12) is rotatably arranged inside the braiding plate (8) and on the inner side of the turbine disc (10). A fixed gear (11) is arranged between the braiding disc (12) and the turbine disc (10), and one end of the fixed gear (11) is connected to the braiding plate (8). Braiding rollers (9) are arranged on one side of both the braiding disc (12) and the turbine disc (10); One end of the braiding disc (12) is connected to a cleaning inner cylinder (17). One end of the cleaning inner cylinder (17) penetrates through the braiding plate (8). A cleaning outer cylinder (7) is sleeved on the outer wall of the cleaning inner cylinder (17). An array of filter holes (19) is arranged inside the cleaning outer cylinder (7) on the cleaning inner cylinder (17). At the same time, the bottom of the cleaning outer cylinder (7) is connected to a collection box (6).
2. The automatic processing device for an aviation high-definition transmission cable according to claim 1, characterized in that: The wire winding assembly includes a winding motor (4), a wire unwinding roller (2) and a winding roller (3). The wire unwinding roller (2) is arranged on the top of the workbench (1) on one side of the cleaning outer cylinder (7). At the same time, the winding roller (3) is arranged on the other side of the top of the workbench (1). Winding motors (4) are connected to one ends of both the wire unwinding roller (2) and the winding roller (3).
3. The automatic processing device for an aviation high-definition transmission cable according to claim 1, characterized in that: First chutes (15) and second chutes (16) are respectively arranged on the inner side of the braiding plate (8) at the positions of the turbine disc (10) and the braiding disc (12). The first chutes (15) and the second chutes (16) are used for the turbine disc (10) and the braiding disc (12) to rotate on the braiding plate (8).
4. The automatic processing device for an aviation high-definition transmission cable according to claim 2, characterized in that: One end of the winding roller (3) is connected to a transmission mechanism (5), and a worm (18) is connected to the other end of the transmission mechanism (5). The worm (18) is used to drive the turbine disc (10) to rotate.
5. The automatic processing device for an aviation high-definition transmission cable according to claim 4, characterized in that: The transmission mechanism (5) includes a driving sprocket, a driven sprocket and a transmission chain. The driving sprocket and the driven sprocket are connected by the transmission chain. One end of the driving sprocket is connected to the winding roller (3). One end of the driven sprocket is connected to the worm (18). And the diameter of the driving sprocket in the transmission mechanism (5) is larger than that of its driven sprocket.
6. The automatic processing device for an aviation high-definition transmission cable according to claim 3, wherein: Adjusting tooth rings (21) are arranged in both the first chutes (15) and the second chutes (16). The bottom of the braiding roller (9) is meshed with a transmission shaft (22) through bevel gears. And an adjusting gear (23) which is meshed with the adjusting tooth ring (21) is connected to one end of the transmission shaft (22).
7. The automatic processing device for an aviation high-definition transmission cable according to claim 6, characterized in that: A side bevel gear (24) is connected to the bottom of the braiding roller (9). And a positive bevel gear (25) is meshed with one side of the side bevel gear (24). One end of the positive bevel gear (25) is connected to the transmission shaft (22).
8. An automatic processing device for a high-definition transmission cable for aviation according to claim 1, characterized in that: An inner tooth ring (14) which is meshed with the fixed gear (11) is arranged on the inner wall of the turbine disc (10). An outer tooth ring (13) which is meshed with the fixed gear (11) is arranged on the outer wall of the braiding disc (12).
9. The automatic processing device for a high-definition transmission cable for aviation according to claim 1, characterized in that: A blanking chute (20) is arranged at the bottom of the cleaning outer cylinder (7) at the position of the collection box (6). The top of the blanking chute (20) is arranged in an open shape.
10. The automatic processing equipment for an aviation high-definition transmission cable according to claim 1, characterized in that: The braiding disc (12) and the braiding plate (8) are both provided with through holes for the cable to pass through, and the cleaning inner cylinder (17) is at the same horizontal height as the through holes.