A disc-type take-up device with a guide mechanism for processing enameled copper flat wire
The disc-type wire-taking device with guiding mechanism and straightening and heat dissipation structure solves the problem of difficult straightening and paint peeling of enameled copper flat wire after painting, realizes uniform wire-taking and protection of paint coating, and improves processing quality.
Patent Information
- Application Number
- CN202211404800.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-11-10
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2042-11-10
AI Technical Summary
Enameled copper flat wire is easy to bend and difficult to straighten after coating, and the paint is easy to fall off. Conventional processing methods cause damage to the coating layer, affecting subsequent wire winding operations.
A disc-type take-up device with a guide mechanism is adopted, and the take-up structure is driven by a servo motor. Combined with a straightening and heat dissipation structure, the wire is straightened and evenly taken up through friction and wind power, and coolant is used to reduce the temperature to prevent damage to the paint layer.
It can effectively straighten bent wires, prevent the paint coating from falling off, ensure a tight bond between the wire and the paint surface, and improve winding efficiency and product quality.
Smart Images

Figure CN115709925B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of copper flat wire take-up, and in particular to a disc-type take-up device for processing enameled copper flat wire with a guide mechanism. Background Art
[0002] Enameled flat copper wire is a conductor obtained by drawing, extruding or rolling oxygen-free copper rods or round copper wires through dies of certain specifications, and then coated with insulating varnish multiple times to form a winding wire. The surface of the varnished copper flat wire has excellent insulation and corrosion resistance. Compared with ordinary round-section enameled wire, enameled flat copper wire has superior performance in terms of space occupation and other aspects. Enameled flat copper wire has a wide range of uses, especially in the windings of various electrical equipment such as telecommunications equipment, transformers, motors and generators.
[0003] The processing method of enameled copper flat wire is copper rod straightening, flattening, annealing, paint coating and baking, cooling and winding. The most critical steps are paint coating, baking, cooling and winding. This step is to repeatedly paint the wire and then bake it to attach a layer of paint plating to the surface of the copper flat wire. After the copper wire is painted and baked, since the copper flat wire has just been heated, the copper flat wire is easy to bend and solidify and the paint is easy to fall off. The conventional processing method is to directly cool the bent flat wire. During this process, since the flat wire is still in a bent state, directly cooling the flat wire at this time will cause the flat wire to bend and solidify, and it will be difficult to straighten it later. If the wire is subsequently forced to pressurize and straighten it, the paint plating on the surface of the flat wire will be damaged, the number of defective products will increase, and the bent flat wire will be difficult to wind up. Summary of the Invention
[0004] In order to make up for the above shortcomings, the present invention provides a disc-type wire take-up device for processing enameled copper flat wire with a guide mechanism, aiming to improve the problem that the copper flat wire is difficult to straighten and easy to lose paint after being bent after being painted.
[0005] The present invention is achieved in that:
[0006] The present invention provides a disc-type wire take-up device for processing enameled copper flat wire with a guide mechanism, comprising: a side plate, a side wall of the side plate being fixedly connected to a servo motor, and a side wall of the servo motor being fixedly connected to a transmission shaft;
[0007] The wire-receiving structure is arranged on the side wall of the side panel. The wire-receiving structure utilizes the driving force provided by the servo motor so that the wire-receiving structure can wind and reel in the wire evenly.
[0008] The straightening heat dissipation structure is set on the side wall of the side panel, and is located on the same side of the side panel as the wire-taking structure. The power provided by the wire-taking structure is used to make the wire pass through the straightening heat dissipation structure, and the wire is taken up to straighten the bent wire. Secondly, heat dissipation is used to consolidate the wire and the paint on its surface.
[0009] By adopting the above technical solution and using the servo motor to provide power, the wire-winding function of the wire-winding structure is realized. Then, the force generated by pulling the wire by winding the wire drives the operation of various components in the straightening and heat dissipation structure, thereby consolidating the paint coating on the surface of the wire and straightening the bent wire.
[0010] Preferably, the wire-taking structure includes a rotating shaft, which passes through the side wall of the side plate and is fixedly connected to the side wall of the transmission shaft. The side wall of the rotating shaft is slidably connected to the wire-taking disk, and a fixing ring is threadedly connected to the bottom of the side wall of the rotating shaft.
[0011] By adopting the above technical solution, the take-up reel and the rotating shaft are fixed by using the fixing rings that are threadedly connected to the rotating shaft on the left and right sides of the take-up reel, so as to avoid the take-up reel shaking due to the gap between the take-up reel and the rotating shaft when the take-up reel rotates, thereby affecting the take-up effect. Secondly, the fixing ring is rotated to facilitate the removal of the take-up reel and facilitate operation.
[0012] Preferably, a cable arranging column is rotatably connected to the side wall of the side plate on the left side of the rotating shaft, a cable arranging block is threadedly connected to the side wall of the cable arranging column, and a crawler is rotatably connected between the rotating shaft and the cable arranging column on the same side of the side plate;
[0013] By adopting the above technical solution, the track that is rotatably connected between the wire arranging column and the rotating shaft is used to drive the wire arranging column to rotate, saving electricity to drive the wire arranging column to rotate. Secondly, the screw structure between the wire arranging column and the wire arranging block is used to achieve the left and right movement of the wire arranging block on the side wall of the wire arranging column, so that the wire can be evenly wound on the surface of the take-up drum.
[0014] Preferably, the side panels and side walls are fixedly connected to limiting posts, and the limiting posts pass through the wiring block, and the length of the limiting posts is greater than that of the wiring posts;
[0015] By adopting the above technical solution, due to the presence of the limiting column, the cable arranging block is prevented from rotating with the cable arranging column instead of moving left and right when the cable arranging column rotates. Secondly, the length setting prevents the cable arranging block from escaping the restriction of the limiting column when moving left and right and rotating with the cable arranging column.
[0016] Preferably, the take-up reel is arranged in an "H" shape, and the length of the take-up reel is equal to the length of the cable column;
[0017] By adopting the above technical solution, the "H"-shaped setting of the take-up reel ensures that when the wire is wound around the side of the take-up reel, the wire at the bottom will not be crushed by the wire on the top due to the support of the side wall, making the wire messy and unusable. Secondly, the length setting of the take-up reel can ensure that when the wire arranging block moves left and right on the side wall of the wire arranging column, the wire will be completely wound around the surface of the take-up reel.
[0018] Preferably, the straightening heat dissipation structure includes a studio, the studio is fixedly connected to the side wall of the side plate, the top and bottom of the inner wall of the studio are fixedly connected to the first connecting column, the inner wall of the studio on both sides of the first connecting column is fixedly connected to the second connecting column, the side wall of the first connecting column on the side close to the first connecting column is rotatably connected to the first rotating column, and the side wall of the first rotating column is fixedly connected to the first rotating ball;
[0019] Preferably, a second rotating column is rotatably connected to the inner cavity of the second connecting column on the side where the second connecting columns are close to each other, and a second rotating ball is fixedly connected to the side wall of the second rotating column;
[0020] By adopting the above technical solution, when the wire passes between the second rotating balls and the first rotating balls, the friction force drives the first rotating balls and the second rotating balls to rotate. During the rotation process, longitudinal and transverse pressures are applied to the wire respectively to straighten the wire. In the process of straightening, the wire and the paint surface are also consolidated.
[0021] Preferably, the inner cavities of the first connecting post, the second connecting post, the first rotating post, the second rotating post, the first rotating ball, and the second rotating ball are all provided with cooling liquid, and the first rotating post is connected with the first connecting post and the first rotating ball, and the second rotating post is connected with the second connecting post and the second rotating ball, and a pipe is fixedly connected between the first connecting post and the second connecting post;
[0022] By adopting the above technical solution, the rotation of the first rotating ball and the second rotating ball will drive the first rotating column and the second rotating column fixedly connected to their side walls to rotate. Since the first rotating column is connected to the first connecting column and the first rotating ball, and the second rotating column is connected to the second connecting column and the second rotating ball, the coolant inside them will flow among the various components, avoiding overheating of the friction surface with the wire and affecting the paint plating effect.
[0023] Preferably, the side walls of the first rotating column located in the inner cavity of the side walls on both sides of the working room are fixedly connected with fan blades, and an air inlet is opened at the top of the working room;
[0024] By adopting the above technical solution, the first rotating column is rotated to drive the fan blades to rotate, forming wind force. First, the surface of the wire is quickly blown, and secondly, the flow rate of the gas flowing from the inside of the studio to the outside is accelerated. The flow rate of the external air through the air inlet will also be accelerated, which will accelerate the exchange rate of the internal and external gases in the studio and accelerate the reduction of the temperature inside the studio.
[0025] Preferably, holes are provided on both side walls of the working chamber, and the width of the holes is greater than the distance between the second rotating balls, and the height of the holes is greater than the distance between the first rotating balls;
[0026] By adopting the above technical solution, the setting of the holes ensures that the wire can pass through the studio. Secondly, the size of the holes is set to prevent the wire from being squeezed and deformed by the holes when passing through the holes, which affects the size of the wire.
[0027] The beneficial effects of the present invention are:
[0028] The embodiment of the present invention provides a disc-type wire-winding device for processing enameled copper flat wire with a guide mechanism, which drives the rotating shaft to rotate through a servo motor, thereby causing the wire-winding reel to rotate, thereby improving the wire-winding power, and then utilizing the friction force generated by the wire and the first rotating ball and the second rotating ball during wire-winding to drive the first rotating ball and the second rotating ball to rotate, and then drives the first rotating column and the second rotating column fixedly connected to the side wall thereof to rotate, first driving the fan blades of the side wall thereof to rotate, forming wind force, accelerating the gas exchange inside and outside the working chamber, and improving the cooling effect, and then the formed wind force quickly dries the surface of the wire, and secondly the rotation of the first rotating column and the second rotating column will drive the cooling liquid in the inner cavities of the first rotating column, the first connecting column of the second rotating column, the second connecting column, the first rotating ball, and the second rotating ball to flow to each other, thereby avoiding overheating of the friction part with the wire, causing the paint plating on the surface of the wire to fall off. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the embodiments. It should be understood that the following drawings only illustrate certain embodiments of the present invention and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.
[0030] Figure 1 This is a schematic structural diagram of the side surface of a disc-type wire take-up device for processing enameled copper rectangular wire with a guide mechanism provided by an embodiment of the present invention;
[0031] Figure 2 This is a schematic structural diagram of the side surface of a disc-type wire take-up device for processing enameled copper rectangular wire with a guide mechanism provided by an embodiment of the present invention;
[0032] Figure 3 This is a structural diagram of the connection between the rotating shaft and the wire arrangement column of a disc-type wire take-up device for processing enameled copper flat wire with a guide mechanism provided by an embodiment of the present invention;
[0033] Figure 4 This is a schematic structural diagram of a take-up reel and a rotating shaft of a disc-type take-up device for processing enameled copper flat wire with a guide mechanism provided by an embodiment of the present invention;
[0034] Figure 5This is a schematic structural diagram of the inner side of a working chamber of a disc-type wire take-up device for processing enameled copper rectangular wires with a guide mechanism provided by an embodiment of the present invention;
[0035] Figure 6 This is a schematic structural diagram of the front interior of a working chamber of a disc-type wire take-up device for processing enameled copper rectangular wires with a guide mechanism, provided by an embodiment of the present invention;
[0036] Figure 7 This is a schematic structural diagram of a frontal section of a working chamber of a disc-type wire take-up device for processing enameled rectangular copper wire with a guide mechanism provided by an embodiment of the present invention;
[0037] Figure 8 The present invention provides a schematic structural diagram of a side view of the interior portion of a disc-type wire-taking device for processing enameled copper rectangular wires with a guide mechanism, provided in an embodiment of the present invention.
[0038] In the figure: 1. Side panel; 2. Servo motor; 3. Rotating shaft; 301. Wire take-up reel; 302. Fixed ring; 4. Wire arrangement column; 401. Wire arrangement block; 402. Track; 403. Limit column; 5. Working room; 501. First connecting column; 502. Second connecting column; 503. First rotating column; 504. First rotating ball; 505. Second rotating column; 506. Second rotating ball; 507. Pipeline; 6. Fan blades; 601. Air inlet; 7. Hole. DETAILED DESCRIPTION
[0039] To make the purpose, technical solutions, and advantages of the embodiments of the present invention more clear, the technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts shall fall within the scope of protection of the present invention.
[0040] Example
[0041] Reference Figure 1-8 A disc-type wire take-up device for processing enameled copper flat wire with a guide mechanism comprises: a side plate 1, a servo motor 2 is fixedly connected to the side wall of the side plate 1, and a transmission shaft is fixedly connected to the side wall of the servo motor 2;
[0042] The wire-receiving structure is arranged on the side wall of the side plate 1. The wire-receiving structure utilizes the driving force provided by the servo motor 2 so that the wire-receiving structure can wind and reel in the wire evenly.
[0043] The straightening heat dissipation structure is arranged on the side wall of the side panel 1 and is located on the same side of the side panel 1 as the wire-receiving structure. The wire is passed through the straightening heat dissipation structure by the power provided by the wire-receiving structure, and the bent wire is straightened by the wire-receiving structure. Then, heat dissipation is used to consolidate the wire and the paint on its surface.
[0044] It should be noted that: the power generated by the rotation of the servo motor 2 is used to drive the wire-taking structure, so that the wire rotates toward the wire-taking structure, and then the screw structure is used to make the servo motor 2 provide rotational force, and the wire-taking structure moves back and forth to make the wire-taking more uniform. Secondly, the wire-taking structure drives the wire to move inside the straightening and heat dissipation structure, providing power for the straightening and heat dissipation structure, straightening the bent wire, and using heat dissipation to consolidate the wire and the paint on its surface.
[0045] Reference Figure 1-4 , further; the take-up structure includes a rotating shaft 3, the rotating shaft 3 passes through the side wall of the side plate 1, and is fixedly connected to the side wall of the drive shaft, the rotating shaft 3 is slidably connected to the side wall of the take-up reel 301, located at the bottom of the side wall of the rotating shaft 3 is threadedly connected to a fixing ring 302;
[0046] Further; the side wall of the side plate 1 on the left side of the rotating shaft 3 is rotatably connected to the cable post 4, the side wall of the cable post 4 is threadedly connected to the cable block 401, and the side plate 1 on the same side of the rotating shaft 3 and the cable post 4 is rotatably connected to the track 402;
[0047] It should be noted that the side wall of the rotating shaft 3 pushes the wire take-up drum 301 until the wire take-up drum 301 is close to the fixing ring 302, and then the other fixing ring 302 is rotated to make it close to the other side of the wire take-up drum 301. At this time, the wire take-up drum 301 is fixed to the rotating shaft 3 through the fixing ring 302, and then the servo motor 2 is turned on. The servo motor 2 drives the transmission shaft and the rotating shaft 3 to rotate, and the rotating shaft 3 drives the wire take-up drum 301 on its side wall to rotate, providing power for winding the wire around the wire take-up drum 301. At the same time, the rotating shaft 3 drives the wire arranging column 4 to rotate through the crawler 402. Since the wire arranging column 4 and the wire arranging block 401 are a screw structure, when the wire arranging column 4 rotates, the wire arranging block 401 reciprocates on the side wall of the wire arranging column 4, and the wire is evenly wound on the wire take-up drum 301, avoiding the wire being in a mess after being taken up and being unusable.
[0048] Reference Figure 1-4 , further; the side wall of the side panel 1 is fixedly connected to the limiting column 403, and the limiting column 403 passes through the wiring block 401, the length of the limiting column 403 is greater than the wiring column 4;
[0049] Further; the take-up reel 301 is an "H"-shaped arrangement, and the length of the take-up reel 301 is equal to the length of the cable post 4;
[0050] It should be noted that the setting of the limiting post 403 ensures that when the wire arranging post 4 rotates, the wire arranging block 401 will not rotate with the wire arranging post 4 due to the limiting post 403, but will only rotate with the wire arranging post 4 and make back and forth motion on the side wall of the wire arranging post 4. Secondly, the setting of the wire taking-up drum 301 ensures that when the wire is wound around the side of the wire taking-up drum 301, the wire at the bottom will not be crushed by the wire at the top due to the support of the side wall, making the wire messy and unusable.
[0051] Reference Figure 5-8 , further; the straightening heat dissipation structure includes a studio 5, the studio 5 is fixedly connected to the side wall of the side plate 1, the top and bottom of the inner wall of the studio 5 are fixedly connected to the first connecting column 501, the inner wall of the studio 5 on both sides of the first connecting column 501 is fixedly connected to the second connecting column 502, the side wall of the first connecting column 501 close to each other on the side of the first connecting column 501 is rotatably connected to the first rotating column 503, and the side wall of the first rotating column 503 is fixedly connected to the first rotating ball 504;
[0052] Further; the second connecting column 502 is located close to each other on one side and the inner cavity of the second connecting column 502 is rotatably connected to the second rotating column 505, and the side wall of the second rotating column 505 is fixedly connected to the second rotating ball 506;
[0053] It should be noted that the wire-receiving structure pulls the flat wire to move in the inner cavity of the studio 5. Since the flat wire has undergone a series of treatments such as painting before entering the studio 5, the flat wire is in a curved shape at this time. The wire has just been painted, and the temperature of the wire surface is relatively high. The bonding between the wire and the paint surface is not very stable. When the wire passes between the second rotating balls 506 and the first rotating balls 504, the first rotating balls 504 and the second rotating balls 506 are driven to rotate, and the wire is squeezed longitudinally by the two first rotating balls 504 and laterally by the second rotating balls 506. At this time, after the wire is squeezed, the internal stress is eliminated, and the wire becomes straight, completing the straightening process.
[0054] Reference Figure 5-8 , further; the inner cavities of the first connecting column 501, the second connecting column 502, the first rotating column 503, the second rotating column 505, the first rotating ball 504 and the second rotating ball 506 are all provided with cooling liquid, and the first rotating column 503 is connected to the first connecting column 501 and the first rotating ball 504, the second rotating column 505 is connected to the second connecting column 502 and the second rotating ball 506, and a pipe 507 is fixedly connected between the first connecting column 501 and the second connecting column 502;
[0055] Further; located on both sides of the side wall of the inner cavity of the studio 5, the side walls of the first rotating column 503 are fixedly connected to the fan blades 6, the top of the studio 5 is provided with an air inlet 601;
[0056] Further; the side walls of the studio 5 are provided with holes 7, and the width of the hole 7 is greater than the distance between the second rotating balls 506, and the height of the hole 7 is greater than the distance before the first rotating ball 504;
[0057] It should be noted that when the wire passes between the second rotating balls 506 and the first rotating balls 504, the friction force drives the first rotating balls 504 and the second rotating balls 506 to rotate. The rotation of the first rotating ball 504 drives the first rotating column 503 fixedly connected to its side wall to rotate. The rotation of the second rotating ball 506 drives the second rotating column 505 to rotate. The rotation of the first rotating column 503 drives the fan blades 6 fixedly connected to its side wall to rotate, forming wind force, blowing air to the outside of the studio 5, and then the external air enters the studio 5 through the air inlet 601, completing the exchange of internal and external gases and accelerating the cooling. Secondly, due to its inner cavity and the first connecting column 50 1. The second connecting post 502, the first rotating ball 504 and the second rotating ball 506 are all connected, and the inner cavities are all provided with cooling liquid. Therefore, when the first rotating post 503 and the second rotating post 505 rotate, the cooling liquid in their inner cavities begins to shake, and with the shaking, the cooling liquid in the inner cavities of the first rotating post 503, the second rotating post 505, the first connecting post 501, the second connecting post 502, the first rotating ball 504 and the second rotating ball 506 flow with each other, so that the cooling liquid near the center of the studio 5 is cooled, thereby enhancing the cooling effect on the wire, ensuring that the wire is pressed straight, and at the same time, as the temperature drops, the wire and the paint surface are more tightly bonded.
[0058] Reference Figure 1-8The working principle of the disc-type wire-winding device for processing enameled copper flat wire with a guide mechanism is as follows: first, the wire material after being painted passes through the working room 5, and then passes through the wire arrangement block 401, and finally the wire material is fixed on the side wall of the wire-winding drum 301, and then the servo motor 2 is turned on, and then the servo motor 2 drives the transmission shaft to rotate, and the transmission shaft drives the rotating shaft 3 fixedly connected to its bottom to rotate, because the side walls of the rotating shaft 3 on the left and right sides of the wire-winding drum 301 are threadedly connected with a fixing ring 302, so the wire-winding drum 301 is fixed to the side wall of the rotating shaft 3 by the fixing ring 302, and then the wire-winding drum 301 rotates with the rotating shaft 3, and then drives the flat wire material on the wire-winding drum 301, and then is located at the working The wire in the inner cavity of chamber 5 begins to move. Since the wire has undergone a series of treatments such as painting before entering the studio 5, the flat wire is now curved. The wire has just been painted, and the surface temperature of the wire is relatively high. The bonding between the wire and the paint surface is not very stable. Then, when the wire passes between the second rotating balls 506 and the first rotating balls 504, the first rotating balls 504 and the second rotating balls 506 are driven to rotate. The wire is squeezed longitudinally by the two first rotating balls 504 and laterally by the second rotating balls 506. After being squeezed, the internal stress of the wire is eliminated, and the wire becomes straight, completing the straightening process. In addition, the bonding between the wire and the paint surface is strengthened during the squeezing process, thus preventing paint peeling.
[0059] At the same time, when the wire passes between the second rotating balls 506 and the first rotating balls 504, the friction force drives the first rotating balls 504 and the second rotating balls 506 to rotate. The rotation of the first rotating ball 504 drives the first rotating column 503 fixedly connected to its side wall to rotate. The rotation of the second rotating ball 506 drives the second rotating column 505 to rotate. The rotation of the first rotating column 503 drives the fan blades 6 fixedly connected to its side wall to rotate, forming wind force, blowing air to the outside of the studio 5, and then the external air enters the studio 5 through the air inlet 601, completing the exchange of internal and external gases, accelerating the drying of the surface of the flat wire. Secondly, due to its inner cavity and the first connecting column 5 01. The second connecting post 502, the first rotating ball 504, and the second rotating ball 506 are all connected, and the inner cavities are all provided with cooling liquid. Therefore, when the first rotating post 503 and the second rotating post 505 rotate, the cooling liquid in their inner cavities begins to shake. As the shaking occurs, the cooling liquid in the inner cavities of the first rotating post 503, the second rotating post 505, the first connecting post 501, the second connecting post 502, the first rotating ball 504, and the second rotating ball 506 flow with each other, so that the cooling liquid near the center of the working room 5 is cooled, thereby enhancing the cooling effect on the wire, ensuring that the wire is pressed straight, and at the same time, as the temperature drops, the wire and the paint surface are more tightly bonded;
[0060] After passing through the studio 5, since the rotating shaft 3 and the wire arranging column 4 are connected by the crawler belt 402, the rotating shaft 3 drives the wire arranging column 4 to rotate. Since the wire arranging column 4 and the wire arranging block 401 are a screw structure, when the wire arranging column 4 rotates, the wire arranging block 401 reciprocates on the side wall of the wire arranging column 4. When the wire take-up drum 301 rotates to take up the wire, the wire moves left and right under the drive of the wire arranging block 401, and the wire is evenly wound on the surface of the wire take-up drum 301, so as to avoid the wire being in a disorderly manner after being taken up, and being entangled with each other on the surface of the wire take-up drum 301, and being unable to be released again;
[0061] In summary, the power provided by the servo motor 2 allows the wire reel 301 to rotate and rewind the wire. Combined with the screw structure between the wire arrangement block 401 and the wire arrangement column 4, the wire can be moved left and right on the surface of the wire reel 301 to rewind the wire, avoiding the wire being fixed at one position of the wire reel 301 and winding up, wasting the rest of the space of the wire reel 301. Secondly, when the wire reel 301 rewinds the wire, it pulls the wire, so that the wire provides power through friction to drive the fan blades 6 to rotate, forming wind force to dry the surface of the wire, and at the same time, the coolant in the inner cavity of each component inside the studio 5 flows to each other, avoiding overheating at the friction position with the wire, achieving the effect of local cooling, and making the wire and the paint surface more tightly bonded.
[0062] The foregoing description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Those skilled in the art will readily appreciate that various modifications and variations are possible. Any modifications, equivalent substitutions, or improvements made within the spirit and principles of the present invention are intended to be within the scope of protection of the present invention.
Claims
1. A disc-type take-up device for processing enameled rectangular copper wire with a guide mechanism, comprising: The side plate (1) is characterized in that a servo motor (2) is fixedly connected to the side wall of the side plate (1), and a transmission shaft is fixedly connected to the side wall of the servo motor (2); A wire-receiving structure, the wire-receiving structure being arranged on the side wall of the side plate (1), and utilizing the driving force provided by the servo motor (2) so that the wire-receiving structure can wind and evenly reel in the wire; A straightening heat dissipation structure is provided on the side wall of the side plate (1) and is located on the same side of the side plate (1) as the wire-receiving structure. The wire is passed through the straightening heat dissipation structure by using the power provided by the wire-receiving structure. The bent wire is first straightened and then heat is dissipated to consolidate the wire and the paint on its surface. The straightening heat dissipation structure comprises a studio (5), the studio (5) being fixedly connected to the side wall of the side plate (1), the top and bottom of the inner wall of the studio (5) being fixedly connected to first connecting columns (501), the inner wall of the studio (5) being fixedly connected to second connecting columns (502) on both sides of the first connecting columns (501), the side wall of the first connecting column (501) being rotatably connected to a first rotating column (503), and the side wall of the first rotating column (503) being fixedly connected to a first rotating ball (504); Located on one side of the second connecting pillars (502) close to each other, the inner cavity of the second connecting pillar (502) is rotatably connected to a second rotating pillar (505), and the side wall of the second rotating pillar (505) is fixedly connected to a second rotating ball (506); The inner cavities of the first connecting column (501), the second connecting column (502), the first rotating column (503), the second rotating column (505), the first rotating ball (504) and the second rotating ball (506) are all provided with cooling liquid, and the first rotating column (503) is connected to the first connecting column (501) and the first rotating ball (504), and the second rotating column (505) is connected to the second connecting column (502) and the second rotating ball (506), and a pipe (507) is fixedly connected between the first connecting column (501) and the second connecting column (502); The side walls of the first rotating column (503) located in the inner cavity of the side walls on both sides of the working room (5) are fixedly connected with fan blades (6), and the top of the working room (5) is provided with an air inlet (601).
2. A disc-type wire take-up device for processing enameled rectangular copper wire with a guide mechanism according to claim 1, characterized in that: The wire-taking structure comprises a rotating shaft (3), the rotating shaft (3) passing through the side wall of the side plate (1) and fixedly connected to the side wall of the transmission shaft, a wire-taking reel (301) being slidably connected to the side wall of the rotating shaft (3), and a fixing ring (302) being threadedly connected to the bottom of the side wall of the rotating shaft (3).
3. A disc-type wire take-up device for processing enameled rectangular copper wire with a guide mechanism according to claim 2, characterized in that: A wire arrangement column (4) is rotatably connected to the side wall of the side plate (1) on the left side of the rotating shaft (3), a wire arrangement block (401) is threadedly connected to the side wall of the wire arrangement column (4), and a crawler (402) is rotatably connected between the rotating shaft (3) and the wire arrangement column (4) on the same side of the side plate (1).
4. A disc-type wire take-up device for processing enameled rectangular copper wire with a guide mechanism according to claim 3, characterized in that: The side wall of the side plate (1) is fixedly connected to a limiting column (403), and the limiting column (403) passes through the wiring block (401), and the length of the limiting column (403) is greater than that of the wiring column (4).
5. The disc-type wire take-up device for processing enameled rectangular copper wire with a guide mechanism according to claim 4, characterized in that: The wire take-up reel (301) is arranged in an "H" shape, and the length of the wire take-up reel (301) is equal to the length of the wire arrangement column (4).
6. The disc-type wire take-up device for processing enameled rectangular copper wire with a guide mechanism according to claim 1, characterized in that: Holes (7) are provided on both side walls of the studio (5), and the width of the holes (7) is greater than the distance between the second rotating balls (506), and the height of the holes (7) is greater than the distance between the first rotating balls (504).
Citation Information
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