A coiling device for the production of new energy energy storage cables
By introducing a combined design of guide and clamping units into the cable looping equipment, the problem of loosening of the cable wire after winding is solved, and the stable looping of the cable wire is achieved.
Patent Information
- Application Number
- CN202411698479.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-26
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2044-11-26
AI Technical Summary
When existing cable loop equipment is suspended or suspended in the middle, the cable wire is likely to loosen due to its own elasticity, which affects the loop effect.
The combined design of the coil forming unit, the winding unit, the rotating unit, the limiting unit, the guiding unit and the clamping unit is adopted. The rotation guide of the guide unit and the intermittent compression of the clamping unit are used to prevent the cable from loosening and ensure the stability of the coil forming process.
Effectively prevent the cable from loosening after winding, ensure that the cable wire is evenly wound on the ring ring, and improve the ring formation effect of the ring formation equipment.
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Figure CN119190963B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of looping machines, and more particularly to a looping device for the production of new energy energy storage cables. Background Art
[0002] A Chinese patent (authorization announcement number: CN219792034U) discloses a cable looping machine, including: a base, on which two symmetric side plates are provided, and bearings are installed on the sides of the side plates; a rotating shaft mechanism, which is arranged between the two side plates and is rotatably connected to the bearings, and the rotating shaft mechanism is used for cable winding; a guiding mechanism, which is slidably connected to the rotating shaft mechanism, and the guiding mechanism is provided to prevent the middle end of the cable from sagging and avoid knotting; a cleaning mechanism, which is installed on the base, and the cleaning mechanism can keep the cable surface clean.
[0003] The cable looping machine in the above technical solution still has the following defects when in use: when the looping device finishes winding the cable or pauses midway, the wound cable is very likely to loosen under the action of its own elasticity, thus affecting the subsequent looping effect of the cable. Therefore, a looping device for the production of new energy energy storage cables is needed to solve the above problems. Summary of the Invention
[0004] Aiming at the deficiencies of the existing technology, the purpose of the embodiment of the present invention is to provide a looping device for the production of new energy energy storage cables to solve the problems in the above background art.
[0005] To achieve the above object, the present invention provides the following technical solutions:
[0006] A looping device for the production of new energy energy storage cables, including:
[0007] A looping machine body;
[0008] A looping unit, rotatably connected inside the looping machine body, and used for looping the cable;
[0009] A winding unit, rotatably connected to the looping unit, and used for winding the cable;
[0010] A rotating unit, installed on the looping machine body and connected to the looping unit, and used for cooperating with the looping unit to realize the rotation of the cable after looping;
[0011] A limiting unit, rotatably connected to the looping machine body and in rolling connection with the looping unit, and used for supporting and limiting the looping unit and the cable after looping;
[0012] A guiding unit, rotatably connected to the looping machine body, and used for guiding the cable;
[0013] The clamping unit is provided on the guiding unit and is used to cooperate with the guiding unit to realize the clamping and fixing of the cable.
[0014] As a preferred technical solution of the present invention, the coiling unit includes: a base fixed on the coiling machine body; a circular ring frame connected to the base, on which at least four groups of guiding wheels are rotatably connected at equal intervals; a rotating ring rolling on the surfaces of at least four groups of guiding wheels; a gear installed at the end of the guiding wheel; a gear ring rotatably connected to the side of the circular ring frame and meshingly connected with the gear; a driving member installed on the coiling machine body, and the end of one group of guiding wheels is connected to the output end of the driving member; openings are respectively provided on the circular ring frame, the rotating ring and the gear ring, and the circular ring frame, the rotating ring and the gear ring all penetrate through the coiling ring.
[0015] As a preferred technical solution of the present invention, the winding unit includes: a bracket fixed on the side of the rotating ring, with a driver installed on the side; a winding roller rotatably connected to the bracket, and the end is connected to the output end of the driver.
[0016] As a preferred technical solution of the present invention, the rotating unit includes: a fixing frame connected to the inner wall of the coiling machine body; a rotating rod rotatably connected to the fixing frame, with a driving roller installed on the surface, and the driving roller is in rolling connection with the surface of the coiling ring; a transmission rod connected to the end of one group of guiding wheels; a device frame fixed on the inner wall of the coiling machine body, and the end of the rotating rod away from the driving roller and the end of the transmission rod away from the guiding wheel are both rotatably connected in the device frame, and the above-mentioned ends of the rotating rod and the transmission rod are connected by two groups of bevel gears.
[0017] As a preferred technical solution of the present invention, the limiting unit includes: a U-shaped frame fixed on the coiling machine body, with a sliding rod rotatably connected inside; a sliding member slidably connected to the sliding rod, and two groups of sliding members are installed, and the two groups of sliding members are connected by an elastic member; a support rod fixed on the sliding member, with a support roller installed on the surface, and the coiling ring is in rolling connection with the side of the support roller.
[0018] As a preferred technical solution of the present invention, the guiding unit includes: a support rod fixed on the coiling machine body, with a slider slidably connected to the surface; a chute opened on the slider, and two groups of half-wheels are rotatably connected to the surface of the chute, and the two groups of half-wheels are connected by bolts; a half-groove is opened on the half-wheel.
[0019] As a preferred technical solution of the present invention, the clamping unit includes: a groove opened on the half-wheel and communicating with the half-groove; a clamping frame slidably connected in the groove, with an elastic pad installed on the side; a positioning groove opened on the clamping frame; a positioning post fixed on the groove, and the positioning post is slidably connected in the positioning groove; a clamping wheel rotatably connected to the slider, and the surface is in rolling connection with the clamping frame.
[0020] The embodiments of the present invention have the following beneficial effects compared with the prior art: The present invention can wind the cable through the winding unit. When the winding unit winds the cable, the guiding unit will rotate under the operation of the cable, so that the guiding unit can guide the cable, and the clamping unit will intermittently press the cable in cooperation with the guiding unit. When the winding unit finishes winding the cable or pauses winding the cable midway, at this time, the guiding unit will be limited under the operation of the clamping unit, so that the clamping unit continuously clamps the cable, preventing the problem that the cable loosens after winding ends.
[0021] When the winding unit finishes winding the cable, fix one end of the cable on the surface of the coiling unit, and start the coiling unit, so that the coiling unit can coil the cable on its surface through the winding unit.
[0022] To more clearly elaborate the structural features and functions of the present invention, the present invention will be described in detail below with reference to the accompanying drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic diagram of the overall structure of the coiling device for new energy energy storage cables provided by the embodiments of the present invention.
[0024] Figure 2 It is a schematic diagram of the structure of the coiling machine body provided in the embodiments of the present invention.
[0025] Figure 3 It is a schematic diagram of the structure of the coiling unit provided in the embodiments of the present invention.
[0026] Figure 4 It is a schematic diagram of the structure of the winding unit provided in the embodiments of the present invention.
[0027] Figure 5 It is a schematic diagram of the structure of the rotating unit provided in the embodiments of the present invention.
[0028] Figure 6 It is a schematic diagram of the structure of the limiting unit provided in the embodiments of the present invention.
[0029] Figure 7 For Figure 2 the partial enlarged view of part A in
[0030] Reference numerals: 1, coiling machine body; 2, coiling unit; 21, base; 22, circular ring frame; 23, guide wheel; 24, rotating ring; 241, opening; 25, driving member; 26, gear ring; 27, gear; 28, coiling ring; 3, winding unit; 31, bracket; 32, winding roller; 33, driver; 4, rotating unit; 41, fixing frame; 42, rotating rod; 43, driving roller; 44, device frame; 45, transmission rod; 5, limiting unit; 51, C-shaped frame; 52, sliding rod; 53, sliding member; 54, elastic member; 55, support rod; 56, support roller; 6, guiding unit; 61, support rod; 62, slider; 63, chute; 64, half wheel; 641, half wire groove; 65, bolt; 7, clamping unit; 71, groove; 72, clamping frame; 721, positioning groove; 73, positioning column; 74, elastic pad; 75, clamping wheel. Detailed implementation manners
[0031] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.
[0032] The following describes the specific implementation of the present invention in detail in conjunction with specific embodiments.
[0033] See Figures 1 to 7 , a coiling device for producing new energy storage cables, comprising:
[0034] Coiling machine body 1;
[0035] Coiling unit 2, rotatably connected inside the coiling machine body 1, and used for coiling the cable;
[0036] Winding unit 3, rotatably connected to the coiling unit 2, and used for winding the cable;
[0037] Rotating unit 4, installed on the coiling machine body 1 and connected to the coiling unit 2, and used for cooperating with the coiling unit 2 to realize the rotation of the cable after coiling;
[0038] Limiting unit 5, rotatably connected to the coiling machine body 1 and in rolling connection with the coiling unit 2, and used for supporting and limiting the coiling unit 2 and the cable after coiling;
[0039] Guiding unit 6, rotatably connected to the coiling machine body 1, and used for guiding the cable;
[0040] Clamping unit 7, opened on the guiding unit 6, and used for cooperating with the guiding unit 6 to realize the clamping and fixing of the cable.
[0041] In an embodiment of the present invention, the rewinding unit 3 can wind the cable. When the rewinding unit 3 winds the cable, the guiding unit 6 will rotate under the action of the cable, so that the guiding unit 6 can guide the cable, and the clamping unit 7 will intermittently press the cable in cooperation with the guiding unit 6. When the rewinding unit 3 finishes winding the cable, at this time, the guiding unit 6 will be limited under the action of the clamping unit 7, so that the clamping unit 7 continuously clamps the cable, preventing the problem that the cable loosens after the winding is completed.
[0042] When the rewinding unit 3 finishes winding the cable, fix one end of the cable on the surface of the coiling unit 2 on the surface of the rewinding unit 3, and turn on the coiling unit 2, so that the coiling unit 2 can coil the cable on its surface through the rewinding unit 3.
[0043] In an embodiment of the present invention, as Figure 3 shown, the coiling unit 2 includes:
[0044] A base 21, fixed on the coiling machine body 1;
[0045] A circular ring frame 22, connected to the base 21, and at least four groups of guide wheels 23 are rotatably connected at equal intervals on the circular ring frame 22;
[0046] A rotating ring 24, rolling on the surface of at least four groups of guide wheels 23;
[0047] A gear 27, installed at the end of the guide wheel 23;
[0048] A gear ring 26, rotatably connected to the side of the circular ring frame 22, and meshed with the gear 27;
[0049] A driving member 25, installed on the coiling machine body 1, and one end of one group of guide wheels 23 is connected to the output end of the driving member 25;
[0050] Openings 241 are respectively formed on the circular ring frame 22, the rotating ring 24 and the gear ring 26, and the circular ring frame 22, the rotating ring 24 and the gear ring 26 all penetrate through the coiling ring 28.
[0051] In this embodiment, when coiling the new energy energy storage cable, first, the rewinding unit 3 winds the cable, and the coiling ring 28 is placed in the coiling machine body 1, and one end of the cable on the surface of the rewinding unit 3 is fixed at a position on the surface of the coiling ring 28.
[0052] The ring frame 22, the rotating ring 24, and the gear ring 26 are respectively provided with openings 241. Through the openings 241, it is convenient to penetrate the forming ring 28 into the inside of the forming ring 28. When the driving member 25 is started, the output end of the driving member 25 can drive one set of guide wheels 23 to rotate within the ring frame 22. When this set of guide wheels 23 rotates, the gears 27 on their surfaces can be driven to rotate. The gears 27 can drive the gear ring 26 to rotate on the surface of the ring frame 22 through the connection with the gear ring 26. Since the gears 27 at the ends of each set of guide wheels 23 are meshed with the gear ring 26, the remaining gears 27 will drive the corresponding guide wheels 23 to rotate on the ring frame 22 under the action of the gear ring 26.
[0053] Since the outer surface of the rotating ring 24 is in rolling connection with each set of guide wheels 23, the rotating ring 24 will rotate under the action of each set of guide wheels 23, so that the rotating ring 24 can penetrate through the center of the forming ring 28 to rotate. Thus, the rotating ring 24 can wind the cable around the surface of the forming ring 28 through the winding unit 3.
[0054] Furthermore, a circular chute may be provided on the surface of the ring frame 22. A positioning column is fixed on the side surface of the rotating ring 24, and the end of the positioning column is slidably connected to the inside of the circular chute, so that the circular chute can guide and limit the rotating ring 24 through the positioning column, improving the stability of the rotation of the rotating ring 24 on the surface of the ring frame 22.
[0055] In an embodiment of the present invention, as Figure 4 shown, the winding unit 3 includes:
[0056] A bracket 31, fixed to the side surface of the rotating ring 24, and a driver 33 is installed on the side surface;
[0057] A winding roller 32, rotatably connected to the bracket 31, and the end is connected to the output end of the driver 33.
[0058] In this embodiment, before the cable is subjected to the forming process operation, the cable needs to be wound first. When the cable is wound, the cable is first passed through the guiding unit 6, and the end of the cable after passing through the guiding unit 6 is fixed on the surface of the winding roller 32. When the driver 33 is started, the output end of the driver 33 can drive the winding roller 32 to rotate within the bracket 31, so that the winding roller 32 can wind the cable.
[0059] In an embodiment of the present invention, as Figure 1 and Figure 4 shown, the rotating unit 4 includes:
[0060] A fixing frame 41, connected to the inner wall of the coiler body 1;
[0061] The rotating rod 42 is rotatably connected to the fixing frame 41, and a driving roller 43 is mounted on the surface thereof, and the surface of the driving roller 43 is in rolling connection with the forming ring 28;
[0062] The transmission rod 45 is connected to the end of a group of guide wheels 23;
[0063] The device frame 44 is fixed on the inner wall of the coiling machine body 1. The end of the rotating rod 42 far from the driving roller 43 and the end of the transmission rod 45 far from the guide wheel 23 are both rotatably connected in the device frame 44, and the above-mentioned ends of the rotating rod 42 and the transmission rod 45 are connected by two groups of bevel gears.
[0064] In this embodiment, when the winding unit 3 finishes winding the cable, the winding unit 3 is closed, and at the same time, one end of the cable on the surface of the winding unit 3 is fixed at a position on the surface of the forming ring 28. The driving member 25 is turned on, so that the rotating ring 24 can rotate through the center of the forming ring 28, and thus the rotating ring 24 can wind the cable on its surface around the surface of the forming ring 28 through the winding unit 3.
[0065] When the guide wheel 23 rotates, it can drive the transmission rod 45 to rotate in the device frame 44. The end of the transmission rod 45 can drive the two ends of the rotating rod 42 to rotate in the device frame 44 and the fixing frame 41 through the connection of two groups of bevel gears, so that the rotating rod 42 can drive the driving roller 43 on its surface to rotate. Since the surface of the driving roller 43 is in rolling connection with the forming ring 28, the forming ring 28 will rotate under the drive of the driving roller 43. Therefore, when the coiling unit 2 winds the cable around the surface of the forming ring 28, since the forming ring 28 will rotate, the cable will be evenly wound around the surface of the forming ring 28, preventing the phenomenon that the cable is too concentratedly wound at a certain position on the surface of the forming ring 28.
[0066] In an embodiment of the present invention, as Figure 2 and Figure 5 shown, the limiting unit 5 includes:
[0067] The U-shaped frame 51 is fixed on the coiling machine body 1, and a sliding rod 52 is rotatably connected inside;
[0068] The sliding member 53 is slidably connected to the sliding rod 52, and two sets of sliding members 53 are installed, and the two sets of sliding members 53 are connected by an elastic member 54;
[0069] The support rod 55 is fixed on the sliding member 53, and a support roller 56 is mounted on the surface, and the forming ring 28 is in rolling connection with the side surface of the support roller 56.
[0070] In this embodiment, when the forming ring 28 is placed between the two driving rollers 43, as Figure 2As shown, while the looping ring 28 is clamped between the two sets of support rollers 56, the two sets of support rollers 56 will respectively support both sides of the looping ring 28, so that the looping ring 28 can be stably placed on the surfaces of the two driving rollers 43. During the process of the looping unit 2 winding the cable around the surface of the looping ring 28, the driving roller 43 can drive the looping ring 28 to rotate, so that the looping ring 28 winds the cable evenly. At the same time, the two sliding members 53 will slide towards each other on the surface of the sliding rod 52 under the elastic force of the elastic member 54. Furthermore, the two sliding members 53 can drive the corresponding support rollers 56 to approach each other through the support rods 55, so that the two support rollers 56 can respectively support both sides of the looping ring 28.
[0071] The elastic member 54 can be a spring or elastic rubber, as long as it is convenient to pull the two sliding members 53 to slide towards each other on the surface of the sliding rod 52.
[0072] The driving member 25 and the driver 33 can be a motor or a pneumatic motor, and there is no unique limitation here.
[0073] In an embodiment of the present invention, as Figure 2 and Figure 7 shown, the guiding unit 6 includes:
[0074] A support rod 61, fixed on the looping machine body 1, with a slider 62 slidably connected to its surface;
[0075] A chute 63, opened on the slider 62, with a half-wheel 64 rotatably connected to the surface of the chute 63. Two sets of the half-wheels 64 are installed, and the two sets of half-wheels 64 are connected by a bolt 65;
[0076] A half-groove 641, opened on the half-wheel 64.
[0077] In this embodiment, after the two sets of half-wheels 64 are fixed by the bolt 65, the two sets of half-grooves 641 can form a complete groove. When winding the cable, place the cable in the half-grooves 641 between the two sets of half-wheels 64, and fix the end of the cable on the surface of the winding roller 32. Turn on the driver 33, and the output end of the driver 33 can drive the winding roller 32 to rotate, so that the winding roller 32 can wind the cable.
[0078] During the process of the cable being wound onto the surface of the winding roller 32, the cable can pull the half-wheel 64 to rotate on the chute 63 through the half-groove 641. At the same time, the slider 62 can slide on the surface of the support rod 61. When the slider 62 slides, it can pull the cable to slide synchronously through the half-wheel 64, so that the half-wheel 64 and the half-groove 641 can guide and limit the cable.
[0079] An elastic ring can also be installed on the inner wall of the semi-groove 641. The cable is placed in the semi-groove 641 through the elastic ring. When the cable is wound, the cable can stably drive the semi-wheel 64 to rotate on the surface of the chute 63 through the semi-groove 641. The slider 62 can also be connected to a motor and a lead screw that drive it to reciprocate on the surface of the support rod 61. The motor and the lead screw are prior arts. The slider 62 can be driven to reciprocate on the surface of the support rod 61 through the cooperation of the motor and the lead screw. When the slider 62 reciprocates on the surface of the support rod 61, the slider 62 can drive the cable to slide synchronously through the semi-wheel 64 and the semi-groove 641, so that the cable is evenly wound onto the surface of the winding roller 32.
[0080] In an embodiment of the present invention, as Figure 7 shown, the clamping unit 7 includes:
[0081] A groove 71 is opened on the semi-wheel 64 and communicates with the semi-groove 641;
[0082] A clamping frame 72 is slidably connected in the groove 71, and an elastic pad 74 is installed on the side;
[0083] A positioning groove 721 is opened on the clamping frame 72;
[0084] A positioning post 73 is fixed on the groove 71, and the positioning post 73 is slidably connected in the positioning groove 721;
[0085] A clamping wheel 75 is rotatably connected to the slider 62, and the surface is in rolling connection with the clamping frame 72.
[0086] In this embodiment, when the cable is wound through the guidance of two groups of semi-grooves 641, since the cable will pull the semi-wheel 64 to rotate on the chute 63 through the semi-groove 641, the semi-wheel 64 can drive the clamping frame 72 inside it to rotate synchronously through the groove 71 during the rotation process. When the clamping frame 72 rotates to contact the clamping wheel 75, the two clamping frames 72 will slide towards each other in the groove 71 under the push of the corresponding clamping wheel 75 until the elastic pad 74 inside the clamping wheel 75 is in close contact with the surface of the cable, so that the two clamping frames 72 will clamp the cable in the semi-groove 641 through the elastic pad 74 under the action of the clamping wheel 75.
[0087] During the process of the clamping frame 72 sliding in the groove 71, the clamping frame 72 will drive the positioning groove 721 to slide on the surface of the positioning post 73, so that the positioning post 73 can guide and limit the clamping frame 72 through the positioning groove 721.
[0088] When the winding unit 3 is normally winding the cable, when the clamping frame 72 rotates to contact the surface of the clamping wheel 75, the clamping frame 72 will compress the elastic pad 74 under the push of the clamping wheel 75. Thus, the clamping wheel 75 will roll on the surface of the clamping frame 72 until the clamping frame 72 rotates away from the surface of the clamping wheel 75. Therefore, the clamping frame 72 and the elastic pad 74 will intermittently press the cable.
[0089] When the winding unit 3 finishes winding the cable or stops winding the cable midway, at this time when the clamping frame 72 rotates to contact the surface of the clamping wheel 75, since there is no pulling force from the winding unit 3 on the cable at this time, the cable will not continue to pull the half-wheel 64 to rotate on the surface of the chute 63 through the half-groove 641. That is to say, at this time, the half-wheel 64 will stop rotating under the action of the clamping frame 72 and the clamping wheel 75. Therefore, the cable in the half-groove 641 will be limited by the clamping of the clamping frame 72 and the elastic pad 74, preventing the cable from becoming loose after the winding is completed.
[0090] The working principle of the present invention is: before performing the operation of forming the cable into loops, it is first necessary to wind the cable. When winding the cable, the cable is first passed through the guiding unit 6, and the end of the cable after passing through the guiding unit 6 is fixed on the surface of the winding roller 32. The driver 33 is turned on, and the output end of the driver 33 can drive the winding roller 32 to rotate in the bracket 31. Thus, the winding roller 32 can wind the cable.
[0091] When the winding unit 3 finishes winding the cable, the winding unit 3 is turned off, and at the same time, one end of the cable on the surface of the winding unit 3 is fixed at the position on the surface of the forming ring 28. The driving member 25 is turned on, so that the rotating ring 24 can rotate through the center of the forming ring 28. Thus, the rotating ring 24 can wind the cable on its surface around the surface of the forming ring 28 through the winding unit 3.
[0092] In the description of the present invention, it should be noted that unless otherwise clearly specified and limited, the terms "installation", "connection", and "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection, an electrical connection, or a connection that can communicate with each other; it can be directly connected, or indirectly connected through an intermediate medium, and it can be the communication inside two components or the interaction relationship between two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.
[0093] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A coiling device for the production of new energy energy storage cables, characterized in that, The coiling device for producing new energy energy storage cables includes: A coiling machine body (1); A coiling unit (2), rotatably connected inside the coiling machine body (1) for coiling the cable. The coiling unit (2) includes: a base (21) fixed on the coiling machine body (1); a circular ring frame (22) connected to the base (21), and at least four groups of guide wheels (23) are rotatably connected at equal intervals on the circular ring frame (22); a rotating ring (24) rolling on the surfaces of at least four groups of guide wheels (23); a gear (27) installed at the end of the guide wheel (23); a gear ring (26) rotatably connected to the side of the circular ring frame (22) and meshing with the gear (27); a driving member (25) installed on the coiling machine body (1), and the end of one of the guide wheels (23) is connected to the output end of the driving member (25); openings (241) are respectively formed on the circular ring frame (22), the rotating ring (24) and the gear ring (26), and the circular ring frame (22), the rotating ring (24) and the gear ring (26) all penetrate through the coiling ring (28); A winding unit (3), rotatably connected to the coiling unit (2) for winding the cable; A rotating unit (4), installed on the coiling machine body (1) and connected to the coiling unit (2) for cooperating with the coiling unit (2) to realize the rotation of the cable after coiling; A limiting unit (5), rotatably connected to the coiling machine body (1) and rolling-connected to the coiling unit (2) for supporting and limiting the coiling unit (2) and the cable after coiling; A guiding unit (6), rotatably connected to the coiling machine body (1) for guiding the cable. The guiding unit (6) includes: a support rod (61) fixed on the coiling machine body (1), with a slider (62) slidably connected to its surface; a chute (63) formed on the slider (62), and a half-wheel (64) is rotatably connected to the surface of the chute (63). There are two groups of the half-wheels (64), and the two groups of half-wheels (64) are connected by bolts (65); a half-groove (641) is formed on the half-wheel (64); A clamping unit (7) is formed on the guiding unit (6) for cooperating with the guiding unit (6) to realize the clamping and fixing of the cable. The clamping unit (7) includes: a groove (71) formed on the half-wheel (64) and communicating with the half-groove (641); a clamping frame (72) slidably connected in the groove (71), with an elastic pad (74) installed on its side; a positioning groove (721) formed on the clamping frame (72); a positioning post (73) fixed on the groove (71), and the positioning post (73) is slidably connected in the positioning groove (721); a clamping wheel (75) rotatably connected to the slider (62), and its surface is rolling-connected to the clamping frame (72).
2. The coiling device for producing new energy energy storage cables according to claim 1, characterized in that, The winding unit (3) includes: A bracket (31) fixed on the side of the rotating ring (24), with a driver (33) installed on its side; A winding roller (32) rotatably connected to the bracket (31), and its end is connected to the output end of the driver (33).
3. The coiling device for the production of new energy energy storage cables according to claim 2, characterized in that, The rotating unit (4) includes: The fixing frame (41) is connected to the inner wall of the looping machine body (1); The rotating rod (42) is rotatably connected to the fixing frame (41), and a driving roller (43) is installed on the surface. The driving roller (43) is in rolling connection with the surface of the looping ring (28); The transmission rod (45) is connected to the end of a group of guide wheels (23); The device frame (44) is fixed to the inner wall of the looping machine body (1). The end of the rotating rod (42) away from the driving roller (43) and the end of the transmission rod (45) away from the guide wheel (23) are both rotatably connected inside the device frame (44), and the above-mentioned ends of the rotating rod (42) and the transmission rod (45) are connected by two groups of bevel gears.
4. The coiling device for producing new energy energy storage cables according to claim 3, characterized in that, The limiting unit (5) includes: The U-shaped frame (51) is fixed to the looping machine body (1), and a sliding rod (52) is rotatably connected inside; The sliding member (53) is slidably connected to the sliding rod (52). There are two sets of sliding members (53), and the two sets of sliding members (53) are connected by an elastic member (54); The support rod (55) is fixed to the sliding member (53), and a support roller (56) is installed on the surface. The looping ring (28) is in rolling connection with the side surface of the support roller (56).
Citation Information
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