A high-voltage wire coating machine
By designing a high-voltage wire coating machine, the automatic application of high-voltage wires is achieved by using lifting, induction, limiting, driving and glue coating mechanisms, solving the safety risks and low efficiency of manual glue coating, and improving work efficiency and safety.
Patent Information
- Application Number
- CN202011398697.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2020-12-02
- Publication Date
- 2025-08-26
- Estimated Expiration
- 2040-12-02
AI Technical Summary
The coating of high-voltage wires in the prior art requires manual assistance, which poses safety risks and is not conducive to high-altitude operations.
A high-voltage wire coating machine is designed, including a lifting mechanism, induction mechanism, limiting device, drive mechanism, glue coating mechanism and glue extrusion mechanism, and glue coating is applied on the high-voltage wire through automated operations to replace human work.
The automation of high-voltage wire glue coating has been realized, which improves work efficiency, reduces safety risks and saves production time.
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Figure CN112547408B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the field of high-voltage wire glue coating, and in particular to a high-voltage wire coating machine. Background Art
[0002] The current high-voltage wires have high-voltage power conductors inside, and the outside of the high-voltage conductors is wrapped with a layer of insulating colloid to ensure that the conductors do not leak electricity and ensure the operation of the conductors.
[0003] In the prior art, high-voltage wires are generally coated with insulating colloid after being installed in corresponding positions. However, in some cases, the high-voltage wires are first installed in corresponding positions, and then the insulating colloid is provided on the high-voltage wires to form the high-voltage wires. However, in the prior art, manual assistance is generally required to apply the colloid to the high-voltage wires. Since the high-voltage wires are installed at high places, it is not conducive for workers to carry out the colloid application work, and the working environment is very dangerous for workers. Summary of the Invention
[0004] The purpose of the present invention is to provide a high-voltage wire coating machine to address the deficiencies of the prior art, so as to achieve the purpose of automatically coating the wire with glue.
[0005] The technical solution adopted by the present invention is: a high-voltage wire coating machine, including a frame; the frame is provided with a lifting mechanism for lifting the frame to the high-voltage wire, a sensing mechanism for sensing the high-voltage wire, a limiting device for hanging the frame on the high-voltage wire, a driving mechanism for driving the frame to move on the high-voltage wire, a gluing mechanism for gluing the high-voltage wire, a glue extruding mechanism for placing an insulating enameled bag and squeezing the glue in the insulating enameled bag to the gluing mechanism, and a control device; the lifting mechanism, the sensing mechanism, the limiting device, the driving mechanism, the gluing mechanism and the glue extruding mechanism are all electrically connected to the control device.
[0006] Furthermore, the lifting mechanism includes a lifting motor, a reducer, a take-up wheel, a connecting wire and a hook; the lifting motor is installed on the frame, the reducer is installed on the lifting motor, and the take-up wheel is installed on the reducer; one end of the connecting wire is fixedly connected to the wiring wheel, and the other end is fixedly connected to the hook; the lifting motor is electrically connected to the control device.
[0007] Furthermore, the driving mechanism includes a lifting cylinder, a support plate, a driving motor and a driving roller; the support plate is slidably mounted on the frame; the lifting cylinder is mounted on the frame, and the output rod of the lifting cylinder is fixedly connected to the support plate; the driving motor is mounted on the support plate, and the driving roller is connected to the output shaft of the driving motor; the lifting cylinder and the driving motor are both electrically connected to the control device.
[0008] Furthermore, the sensing mechanism includes two sensing blocks; both sensing blocks are installed at the upper end surface of the frame; V-shaped slots are provided on both sensing blocks, and sensing switches are provided at the slots, and the sensing switches are electrically connected to the control device.
[0009] Furthermore, the limiting device includes a first limiting mechanism and a second limiting mechanism; the first limiting mechanism and the second limiting mechanism are both installed at the upper end surface of the frame; the first limiting mechanism and the second limiting mechanism are both electrically connected to the control device.
[0010] Furthermore, the first limiting mechanism includes a first fixed block, a first limiting cylinder, a first support plate, and a first limiting wheel; the first fixed block is mounted on the frame, and the first limiting cylinder is mounted on the first fixed block; the first support plate is hinged to the frame, and the first support plate is fixedly connected to the output rod of the first limiting cylinder; the first limiting wheel is rotatably mounted on the first support plate; and the first limiting cylinder is electrically connected to the control device;
[0011] The second limiting mechanism includes a second fixed block, a second limiting cylinder, a second support plate and a second limiting wheel; the second fixed block is mounted on the frame, and the second limiting cylinder is mounted on the second fixed block; the second support plate is hinged to the frame, and the second support plate is fixedly connected to the output rod of the second limiting cylinder; the second limiting wheel is rotatably mounted on the second support plate; the second limiting cylinder is electrically connected to the control device.
[0012] Furthermore, the gluing mechanism includes a gluing piece for gluing the high-voltage wire, and a clamp for driving the gluing piece to open and close; the clamp is installed on the frame, and the gluing piece is installed on the clamp; an inner cavity for placing glue is provided inside the gluing piece.
[0013] Furthermore, the clamp is provided with two clamping claws, and the clamping claws are provided with mounting holes for mounting on the glue coating member.
[0014] Furthermore, the glue coating member includes a first glue coating block and a second glue coating block; the first glue coating block and the second glue coating block are engaged and connected;
[0015] The first gluing block includes a first mounting portion; the first gluing block is connected to the clamp at the first mounting portion; a first feeding portion is provided on the first gluing block;
[0016] The second gluing block includes a second mounting portion; the second gluing block is connected to the clamp at the second mounting portion; a second feeding portion is provided on the second gluing block;
[0017] The first glue-coated block and the second glue-coated block are engaged and connected to form a wire-passing port for the wire to pass through.
[0018] Furthermore, the glue squeezing mechanism includes a glue squeezing bracket, a glue squeezing motor, a first glue squeezing component, and a second glue squeezing component; the bracket is mounted on the frame, and the glue squeezing motor is mounted on the bracket; the first glue squeezing component and the second glue squeezing component are respectively mounted on both sides of the bracket, and the first glue squeezing component and the second glue squeezing component are both connected to the glue squeezing motor; the glue squeezing motor is electrically connected to the control device;
[0019] The first rubber extrusion assembly includes two first rubber rollers; the two first rubber rollers are both mounted on the frame and connected to the rubber extrusion motor;
[0020] The second rubber extrusion assembly includes two second rubber rollers; the two second rubber rollers are both installed on the frame and connected to the rubber extrusion motor.
[0021] To sum up, the present invention has the following beneficial effects: in the present invention, the coating machine can be lifted to the high-voltage wire by the lifting mechanism, and then the high-voltage wire is sensed by the sensing mechanism. After the signal is sensed, the coating machine is hung on the high-voltage wire by the limiting device, and at the same time, the high-voltage wire is wrapped inside by the gluing mechanism. Then, the coating machine is driven by the driving mechanism to move under the high-voltage wire, so that the high-voltage wire gradually passes through the gluing mechanism for gluing, and thereby replaces manual labor, realizes the automation of the gluing work, and can improve work efficiency and save production time. BRIEF DESCRIPTION OF THE DRAWINGS
[0022] Figure 1 It is a structural schematic diagram of the present invention;
[0023] Figure 2 It is a structural schematic diagram of the glue extrusion mechanism of the present invention;
[0024] Figure 3 It is a structural schematic diagram of the limiting device of the present invention;
[0025] Figure 4 It is a structural schematic diagram of the lifting mechanism of the present invention;
[0026] Figure 5 It is a structural schematic diagram of the clamp of the present invention;
[0027] Figure 6 It is a structural schematic diagram of the glue-coated part of the present invention;
[0028] Figure 7 It is a structural schematic diagram of the insulating enameled tape of the present invention.
[0029] Among them, 1. Frame; 2. Lifting mechanism; 201. Lifting motor; 202. Take-up wheel; 203. Hook; 204. Reducer; 3. Driving mechanism; 31. Lifting cylinder; 32. Driving motor; 33. Driving roller; 4. Induction mechanism; 5. First limiting mechanism; 501. First fixing block; 502. First limiting cylinder; 503. First support plate; 504. First limiting wheel; 6. Second limiting mechanism; 601. Second fixing block; 602. Second limiting cylinder; 60 3. Second support plate; 604. Second limiting wheel; 7. Gluing mechanism; 71. Clamp; 711. Mounting hole; 72. Gluing piece; 721. First gluing block; 722. Second gluing block; 723. First feeding section; 724. Second feeding section; 725. First mounting section; 726. Second mounting section; 727. Wire passing port; 8. Glue extrusion mechanism; 801. Bracket; 802. Glue extrusion motor; 803. First glue extrusion assembly; 804. Second glue extrusion assembly; 9. Insulating enameled tape. DETAILED DESCRIPTION
[0030] To make the objectives, features, and advantages of the present invention more readily apparent, the following detailed description of the present invention is provided with reference to the accompanying drawings. The accompanying drawings illustrate several embodiments of the present invention. However, the present invention may be implemented in many different forms and is not limited to the embodiments described herein.
[0031] In the present invention, unless otherwise expressly specified and limited, the terms "installed", "connected", "connected", "fixed" and the like 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 or an electrical connection; it can be a direct connection, or an indirect connection through an intermediate medium, or it can be a communication between the 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 the specific circumstances. The terms "second" and "second" are used for descriptive purposes only and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "second" and "second" may explicitly or implicitly include one or more of such features.
[0032] In the present invention, unless otherwise expressly specified and limited, the second feature being "above" or "below" the second feature may include the second and second features being in direct contact, and may also include the second and second features being in contact not directly but through another feature between them. Moreover, the second feature being "above", "above" and "above" the second feature includes the second feature being directly above and obliquely above the second feature, or simply means that the second feature is higher in level than the second feature. The second feature being "below", "below" and "below" the second feature includes the second feature being directly below and obliquely below the second feature, or simply means that the second feature is lower in level than the second feature. The terms "vertical", "horizontal", "left", "right", "up", "down" and similar expressions are for illustrative purposes only and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operate in a specific orientation, and therefore should not be understood as limiting the present invention.
[0033] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0034] like Figure 1-7 As shown, the present invention provides a high-voltage wire coating machine, comprising a frame 1; a lifting mechanism 2, a sensing mechanism 4, a limiting device, a driving mechanism 3, a gluing mechanism 7, a gluing mechanism 8 and a control device are arranged on the frame 1; the lifting mechanism 2, the sensing mechanism 4, the limiting device, the driving mechanism 3, the gluing mechanism 7 and the gluing mechanism 8 are all electrically connected to the control device; wherein, the coating machine is lifted to the high-voltage wire by the lifting mechanism 2, and then the high-voltage wire is sensed by the sensing mechanism 4. After the signal is sensed, the coating machine is hung at the high-voltage wire by the limiting device, and at the same time, the high-voltage wire is wrapped inside by the gluing mechanism 7, and then the coating machine is driven by the driving mechanism 3 to move under the high-voltage wire, so that the high-voltage wire gradually passes through the gluing mechanism 7, thereby performing gluing, and thereby replacing manual labor to realize the automation of the gluing work, and thereby improving work efficiency and saving production time.
[0035] The control device may be a single chip microcomputer, a PLC controller or other controllers that can achieve the corresponding effects of the present invention.
[0036] Furthermore, the lifting mechanism 2 includes a lifting motor 201, a reducer 204, a take-up wheel 202, a connecting wire and a hook 203; the lifting motor 201 is installed on the frame 1, the reducer 204 is installed on the lifting motor 201, and the take-up wheel 202 is installed on the reducer 204; one end of the connecting wire is fixedly connected to the wiring wheel, and the other end is fixedly connected to the hook 203; the lifting motor 201 is electrically connected to the control device; wherein, when performing the lifting work, the worker first places the hook 203 on the high-voltage wire, allows the hook 203 to hook the high-voltage wire, and then starts the lifting motor 201 to rotate the take-up wheel 202, so that it winds the connecting wire into the inside, thereby taking up the wire, and thereby slowly lifting the coating machine to the high-voltage wire.
[0037] In a preferred embodiment of the present invention, two lifting mechanisms 2 are provided and symmetrically mounted on the frame 1, so that when the coating machine is lifted to the high-voltage conductor, the balance of the coating machine can be ensured, so that it can rise stably.
[0038] Furthermore, the driving mechanism 3 includes a lifting cylinder 31, a support plate, a driving motor 32 and a driving roller 33; the support plate is slidably mounted on the frame 1; the lifting cylinder 31 is mounted on the frame 1, and the output rod of the lifting cylinder 31 is fixedly connected to the support plate; the driving motor 32 is mounted on the support plate, and the driving roller 33 is connected to the output shaft of the driving motor 32; the lifting cylinder 31 and the driving motor 32 are both electrically connected to the control device; wherein, the driving motor 32 and the driving roller 33 can be lifted upward by the lifting cylinder 31 so that the driving roller 33 can be attached to the high-voltage wire, and then the driving motor 32 is started to allow the driving roller 33 to rotate on the high-voltage wire, thereby moving the coating machine under the high-voltage wire.
[0039] Furthermore, the sensing mechanism 4 includes two sensing blocks; both of the sensing blocks are installed at the upper end surface of the frame 1; V-shaped slots are provided on the two sensing blocks, and sensing switches are provided at the slots, and the sensing switches are electrically connected to the control device; wherein, in the process of the lifting mechanism lifting the coating machine upward, the sensing mechanism 4 will gradually approach the high-voltage wire, and eventually the sensing switch will contact the high-voltage wire (here is the glue coating height), and at this time the high-voltage wire will generate a certain pressure on the sensing switch, thereby triggering the sensing switch, so that it transmits the signal to the control device, and then the lifting motor 201 of the lifting mechanism 2 is turned off through the control device, and then the glue coating work can be started.
[0040] Furthermore, the limiting device includes a first limiting mechanism 5 and a second limiting mechanism 6; the first limiting mechanism 5 and the second limiting mechanism 6 are both installed at the upper end surface of the frame 1; the first limiting mechanism 5 and the second limiting mechanism 6 are both electrically connected to the control device; wherein, the coating machine can be hung on the high-voltage wire through the first limiting mechanism 5 and the second limiting mechanism 6 to carry out the glue coating work.
[0041] Furthermore, the first limiting mechanism 5 includes a first fixed block 501, a first limiting cylinder 502, a first support plate 503 and a first limiting wheel 504; the first fixed block 501 is mounted on the frame 1, and the first limiting cylinder 502 is mounted on the first fixed block 501; the first support plate 503 is hinged to the frame 1, and the first support plate 503 is fixedly connected to the output rod of the first limiting cylinder 502; the first limiting wheel 504 is rotatably mounted; on the first support plate 503; the first limiting cylinder 502 and The control device is electrically connected; wherein, the first support plate 503 can be driven to rotate on the frame 1 through the first limiting cylinder 502, so that when the lifting mechanism 2 lifts the coater upward, the first support plate 503 and the first limiting wheel 504 are moved away by the first limiting cylinder 502 to leave space so that the coater can continue to be lifted upward. After the coater reaches the predetermined position, the first support plate 503 is rotated by the first limiting cylinder 502 to place the first limiting block on the high-voltage wire, thereby hanging the coater on the high-voltage wire.
[0042] The second limiting mechanism 6 includes a second fixed block 601, a second limiting cylinder 602, a second support plate 603 and a second limiting wheel 604; the second fixed block 601 is mounted on the frame 1, and the second limiting cylinder 602 is mounted on the second fixed block 601; the second support plate 603 is hinged to the frame 1, and the second support plate 603 is fixedly connected to the output rod of the second limiting cylinder 602; the second limiting wheel 604 is rotatably mounted on the second support plate 603; the second limiting cylinder 602 is hinged to the control The control device is electrically connected; wherein, the second support plate 603 can be driven to rotate on the frame 1 by the second limiting cylinder 602, so that when the lifting mechanism 2 lifts the coater upward, the second support plate 603 and the second limiting wheel 604 are moved away by the second limiting cylinder 602 to leave space so that the coater can continue to be lifted upward. After the coater reaches the predetermined position, the second support plate 603 is rotated by the second limiting cylinder 602 to place the second limiting block on the high-voltage wire, thereby hanging the coater on the high-voltage wire.
[0043] The first limiting mechanism 5 and the second limiting mechanism 6 can make the coating machine stably hung on the high-voltage wire, so as to stably perform the gluing work.
[0044] Furthermore, the gluing mechanism 7 includes a gluing member 72 and a clamp 71; the clamp 71 is installed on the frame 1, and the gluing member 72 is installed on the clamp 71; an inner cavity for placing glue is provided inside the gluing member 72; wherein, the clamp 71 can drive the gluing member 72 to open and close, so that it wraps the high-voltage wire inside and applies glue.
[0045] Furthermore, the clamp 71 is provided with two clamping claws, and a mounting hole 711 for mounting on the glue coating part 72 is provided on the clamping claws; wherein, the first glue coating block 721 and the second glue coating block 722 are respectively installed on a clamping claw, and then by driving the two clamping claws to move back and forth, the first glue coating block 721 and the second glue coating block 722 move together, thereby realizing the opening and closing of the glue coating part 72, so that it can wrap the high-voltage wire inside and perform the glue coating work.
[0046] Furthermore, the gluing member 72 includes a first gluing block 721 and a second gluing block 722 ; the first gluing block 721 and the second gluing block 722 are engaged with each other, thereby realizing the opening and closing of the gluing member 72 .
[0047] The first gluing block 721 includes a first mounting portion 725; the first gluing block 721 is connected to the clamp 71 at the first mounting portion 725; a first feeding portion 723 is provided on the first gluing block 721; wherein the first feeding portion 723 is connected to the insulating enamel bag on the glue extrusion mechanism 8, so that the glue can be guided into the inner cavity of the glue coating part 72, thereby enabling it to perform the gluing work.
[0048] The second gluing block 722 includes a second mounting portion 726; the second gluing block 722 is connected to the clamp 71 at the second mounting portion 726; a second feeding portion 724 is provided on the second gluing block 722; wherein the second feeding portion 724 is connected to the insulating enamel bag on the glue extrusion mechanism 8, so that the glue can be guided into the inner cavity of the gluing part 72, thereby enabling the gluing work to be carried out.
[0049] The first glue coating block 721 and the second glue coating block 722 are engaged and connected to form a wire passing port 727 for the wire to pass through. Two wire passing ports 727 are symmetrically arranged, so that the high-voltage wire can enter the inner cavity from one side and come out from the other side, so that the high-voltage wire can be coated with glue in the inner cavity during the movement of the coating machine.
[0050] Furthermore, the glue extrusion mechanism 8 includes a glue extrusion bracket 801, a glue extrusion motor 802, a first glue extrusion component 803 and a second glue extrusion component 804; the bracket 801 is mounted on the frame 1, and the glue extrusion motor 802 is mounted on the bracket 801; the first glue extrusion component 803 and the second glue extrusion component 804 are respectively mounted on both sides of the bracket 801, and the first glue extrusion component 803 and the second glue extrusion component 804 are both connected to the glue extrusion motor 802; the glue extrusion motor 802 is electrically connected to the control device;
[0051] The first rubber extrusion component 803 includes two first rubber rollers; the two first rubber rollers are both installed on the frame 1 and are connected to the rubber extrusion motor 802; the second rubber extrusion component 804 includes two second rubber rollers; the two second rubber rollers are both installed on the frame 1 and are connected to the rubber extrusion motor 802.
[0052] Among them, an insulating enameled bag can be placed on each of the first rubber extrusion component 803 and the second rubber extrusion component 804, and placed between the two first rubber rollers or between the two second rubber rollers, and then the first rubber roller and the second rubber roller are driven to rotate by the rubber extrusion motor, so that the rubber in the insulating enameled bag is squeezed into the inner cavity of the rubber coating part 72, and the insulating enameled bag on the first rubber roller is connected to the first feeding part 723 through a connecting pipe, and the insulating enameled bag on the second rubber roller is also connected to the second feeding part 724 through a connecting pipe, so that the rubber coating part 72 can be fed from two directions and the feeding rate is increased.
[0053] In the present invention, a worker first places the hook 203, such as an insulating rod, on the high-voltage wire and hooks the high-voltage wire. Then, the lifting motor 201 drives the take-up wheel 202 to take up the connecting wire, so that the coating machine can be slowly lifted up. At this time, the glue coating part 72 is in an open state, that is, the first glue coating block 721 and the second glue coating block 722 have not been connected together, and the output rods of the first limiting cylinder 502 and the second limiting cylinder 602 are both in a retracted state, so that the first support plate 503 and the second support plate 603 are in an inclined state.
[0054] The coating machine is lifted upward by the lifting mechanism 2, and eventually the high-voltage wire will contact the induction switch on the induction block, thereby activating the induction switch. At this time, the high-voltage wire enters between the first coating block 721 and the second coating block 722, and then the induction switch will transmit the signal to the control device. The control device then stops the operation of the lifting motor 201, so that the coating machine no longer lifts, and starts the clamp 71 to move the first coating block 721 and the second coating block 722 over and fit together, so as to wrap the high-voltage wire inside and place it at the wire passing port 727; at the same time, the control device will start the first limiting cylinder 502 and the second limiting cylinder 602 to straighten the first support plate 503 and the second support plate 603, so that the first limiting wheel 504 and the second limiting wheel 604 can be placed on the high-voltage wire, thereby hanging the coating machine on the high-voltage wire through the limiting wheels.
[0055] Next, the glue extrusion motor 802 is started, so that the first and second glue rollers squeeze the glue in the insulating enameled bag into the inner cavity of the glue coating part 72. Then, the control device starts the lifting cylinder 31 to lift the driving roller 33 to the bottom of the high-voltage wire and make contact with the high-voltage wire. Then, the driving motor 32 is started to rotate the driving roller 33, so that the coating machine can move under the high-voltage wire and make the high-voltage wire pass through the inner cavity of the glue coating part 72, so that the glue is applied to the high-voltage wire, thereby completing the gluing work.
[0056] The present invention can replace manual labor, realize the automation of gluing work, thereby improving work efficiency and saving production time.
[0057] The above description is only a preferred embodiment of the present invention. The present invention is not limited to the above embodiment. There may be local minor structural changes during implementation. If various changes or modifications of the present invention do not depart from the spirit and scope of the present invention and fall within the scope of the claims of the present invention and equivalent technologies, the present invention is also intended to include these changes and modifications.
Claims
1. A high-voltage wire coating machine, characterized in that: The machine comprises a frame; the frame is provided with a lifting mechanism for lifting the frame to the high-voltage conductor, a sensing mechanism for sensing the high-voltage conductor, a limiting device for hanging the frame on the high-voltage conductor, a driving mechanism for driving the frame to move on the high-voltage conductor, a gluing mechanism for gluing the high-voltage conductor, a glue squeezing mechanism for placing an insulating enameled bag and squeezing the glue in the insulating enameled bag to the gluing mechanism, and a control device; the lifting mechanism, the sensing mechanism, the limiting device, the driving mechanism, the glue squeezing mechanism, and the glue squeezing mechanism are all electrically connected to the control device; the driving mechanism comprises a lifting cylinder and a driving roller; the sensing mechanism comprises two sensing blocks; The limiting device includes a first limiting mechanism and a second limiting mechanism; the first limiting mechanism and the second limiting mechanism are both installed on the upper end surface of the frame; the first limiting mechanism and the second limiting mechanism are both electrically connected to the control device; The first limiting mechanism includes a first fixed block, a first limiting cylinder, a first support plate, and a first limiting wheel; the first fixed block is mounted on the frame, and the first limiting cylinder is mounted on the first fixed block; the first support plate is hinged to the frame, and the first support plate is fixedly connected to the output rod of the first limiting cylinder; the first limiting wheel is rotatably mounted on the first support plate; and the first limiting cylinder is electrically connected to the control device; The second limiting mechanism includes a second fixed block, a second limiting cylinder, a second support plate, and a second limiting wheel; the second fixed block is mounted on the frame, and the second limiting cylinder is mounted on the second fixed block; the second support plate is hinged to the frame, and the second support plate is fixedly connected to the output rod of the second limiting cylinder; the second limiting wheel is rotatably mounted on the second support plate; and the second limiting cylinder is electrically connected to the control device; The coating machine is lifted, and the output rods of the first limit cylinder and the second limit cylinder are in a retracted state, so that the first support plate and the second support plate are in an inclined state; the high-voltage wire contacts the induction switch on the induction block, and the control device starts the first limit cylinder and the second limit cylinder to straighten the first support plate and the second support plate, so that the first limit wheel and the second limit wheel can be placed on the high-voltage wire, and the coating machine is hung on the high-voltage wire through the limit wheels; the driving roller is lifted upward by the lifting cylinder so that the driving roller can fit on the high-voltage wire.
2. The high-voltage wire coating machine according to claim 1, characterized in that: The lifting mechanism includes a lifting motor, a reducer, a take-up wheel, a connecting line and a hook; The lifting motor is installed on the frame, the reducer is installed on the lifting motor, and the wire reel is installed on the reducer; one end of the connecting wire is fixedly connected to the wire reel, and the other end is fixedly connected to the hook; the lifting motor is electrically connected to the control device.
3. The high-voltage wire coating machine according to claim 1, characterized in that: The driving mechanism also includes a support plate and a driving motor; the support plate is slidably mounted on the frame; the lifting cylinder is mounted on the frame, and the output rod of the lifting cylinder is fixedly connected to the support plate; the driving motor is mounted on the support plate, and the driving roller is connected to the output shaft of the driving motor; the lifting cylinder and the driving motor are both electrically connected to the control device.
4. The high-voltage wire coating machine according to claim 1, characterized in that: The two induction blocks are both installed at the upper end surface of the frame; V-shaped slots are provided on the two induction blocks, and induction switches are provided at the slots, and the induction switches are electrically connected to the control device.
5. The high-voltage wire coating machine according to claim 1, characterized in that: The gluing mechanism includes a gluing piece for gluing high-voltage wires and a fixture for driving the gluing piece to open and close; the fixture is installed on the frame, and the gluing piece is installed on the fixture; an inner cavity for placing glue is provided inside the gluing piece.
6. The high-voltage wire coating machine according to claim 5, characterized in that: The clamp is provided with two clamping claws, and the clamping claws are provided with mounting holes for mounting on the glue coating piece.
7. The high-voltage wire coating machine according to claim 5, characterized in that: The gluing member comprises a first gluing block and a second gluing block; the first gluing block and the second gluing block are engaged with each other; The first gluing block includes a first mounting portion; the first gluing block is connected to the fixture at the first mounting portion; and a first feeding portion is provided on the first gluing block; The second gluing block includes a second mounting portion; the second gluing block is connected to the fixture at the second mounting portion; and a second feeding portion is provided on the second gluing block; The first glue-coated block and the second glue-coated block are engaged and connected to form a wire-passing port for the wire to pass through.
8. The high-voltage wire coating machine according to claim 1, characterized in that: The glue squeezing mechanism includes a glue squeezing bracket, a glue squeezing motor, a first glue squeezing assembly, and a second glue squeezing assembly; the bracket is mounted on a frame, and the glue squeezing motor is mounted on the bracket; the first glue squeezing assembly and the second glue squeezing assembly are mounted on both sides of the bracket, respectively, and both the first glue squeezing assembly and the second glue squeezing assembly are connected to the glue squeezing motor; the glue squeezing motor is electrically connected to a control device; The first rubber extrusion assembly includes two first rubber rollers; the two first rubber rollers are both mounted on the frame and connected to the rubber extrusion motor; The second rubber extrusion assembly includes two second rubber rollers; the two second rubber rollers are both installed on the frame and connected to the rubber extrusion motor.
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