An amorphous nanocrystalline soft magnetic tape winding device

By designing an amorphous and nanocrystalline soft magnetic tape winding device, and utilizing magnetic adsorption and baffle adjustment of the winding area, the problem of low winding efficiency of amorphous and nanocrystalline soft magnetic tape was solved, achieving a highly efficient and safe tape winding process.

CN120039691BActive Publication Date: 2025-12-16SHANXI XINCI TECH CO LTD
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Patent Information

Application Number
CN202510043669.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-10
Publication Date
2025-12-16
Estimated Expiration
2045-01-10

AI Technical Summary

Technical Problem

In the existing technology, the operation efficiency of amorphous and nanocrystalline soft magnetic tape is low and prone to errors during winding, and there is a lack of effective winding devices.

Method used

An amorphous and nanocrystalline soft magnetic tape winding device was designed, including a body, a winding mechanism, a reel, and magnetic components. The magnetic components attract the tape and wind it through a winding shaft. The width of the winding area is adjusted by baffles and elastic components to ensure the tension stability and flatness of the tape.

Benefits of technology

It improves the winding efficiency of amorphous and nanocrystalline soft magnetic tape, reduces manual operation and labor burden, and improves safety and winding quality by removing burrs and flash from the tape through limiting and friction.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to the technical field of amorphous nanocrystalline soft magnetic tape production, and particularly relates to an amorphous nanocrystalline soft magnetic tape winding device. The amorphous nanocrystalline soft magnetic tape winding device comprises a machine body, a winding mechanism, a disc body and a magnetic component. The winding mechanism is installed on the tabletop of the machine body, and comprises a tape winding shaft, wherein a magnetic element for adsorbing the tape is arranged on the tape winding shaft. The disc body is sleeved on the tape winding shaft and coaxially arranged with the tape winding shaft, and a limiting surface is formed on the side of the disc body away from the winding mechanism, and the axis of the tape winding shaft is perpendicular to the limiting surface. The magnetic component is installed on the tabletop of the machine body. The amorphous nanocrystalline soft magnetic tape winding device can efficiently wind the amorphous nanocrystalline soft magnetic tape without manual winding, thereby improving the work efficiency and reducing the labor burden.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of amorphous nanocrystalline soft magnetic tape production, and particularly relates to a kind of amorphous nanocrystalline soft magnetic tape winding device. BACKGROUND

[0002] At present, when amorphous nanocrystalline soft magnetic tape is wound, the tape is wound on the winding drum manually, which is low in operation efficiency and prone to error, and there is currently a lack of a device that can effectively wind amorphous nanocrystalline soft magnetic tape. SUMMARY

[0003] (1) The problem to be solved by the present application is that, at present, when amorphous nanocrystalline soft magnetic tape is wound, the tape is wound on the winding drum manually, which is low in operation efficiency and prone to error.

[0004] (2) Technical solution

[0005] An amorphous nanocrystalline soft magnetic tape winding device, comprising a body, a winding mechanism, a disc body and a magnetic component;

[0006] The winding mechanism is installed on the table top of the body, and the winding mechanism comprises a tape winding shaft, and a magnetic piece for adsorbing the tape is arranged on the tape winding shaft;

[0007] The disc body is sleeved on the tape winding shaft and is coaxially arranged with the tape winding shaft, and a limiting surface is formed on the side of the disc body away from the winding mechanism, and the axis of the tape winding shaft is perpendicular to the limiting surface;

[0008] The magnetic component is installed on the table top of the body, and when the tape is wound, the tape passes through the magnetic component and is adsorbed by the magnetic component.

[0009] According to one embodiment of the present application, the tape winding device further comprises a plate body and an elastic piece, the plate body is movably sleeved on the tape winding shaft, and a winding area is formed between the end surface of the disc body away from the winding mechanism and the plate body;

[0010] A rod body connected with the disc body is arranged on the body, and the rod body is used to support the disc body;

[0011] The elastic piece is used to apply an elastic force to the plate body along the axis direction of the tape winding shaft, so as to adjust the width of the winding area.

[0012] According to one embodiment of the present application, the length of the plate body is not less than the diameter of the disc body, and the width of the plate body is less than the radius of the disc body.

[0013] According to one embodiment of the present application, the strip winding device further comprises a baffle mechanism, the baffle mechanism comprises a baffle and a support, the bottom end of the baffle is hinged to the table top of the machine body, one end of the elastic member acts on the plate body and the other end acts on the baffle, and the support is used to support the baffle.

[0014] According to one embodiment of the present application, the baffle mechanism comprises a hinge, and the bottom of the baffle is hingedly installed on the table top of the machine body.

[0015] The support comprises a support rod and an axle seat, the axle seat is fixed to the table top, the support rod is a telescopic rod, the bottom of the support rod is provided with a crossbar, the crossbar is rotatably installed in the axle seat, and the top end of the support rod is inserted into the side of the baffle away from the elastic member to support the baffle.

[0016] According to one embodiment of the present application, the side of the baffle away from the elastic member is provided with a connecting block, and the connecting block is provided with a insertion hole for the insertion of the support rod.

[0017] According to one embodiment of the present application, the magnetic component comprises a steel pipe and a magnet column, the magnet column is coaxially sleeved in the steel pipe, and the steel pipe is installed on the table top of the machine body.

[0018] According to one embodiment of the present application, the table top of the machine body is provided with a blocking member, the top of the blocking member is higher than the steel pipe, the length direction of the blocking member is the same as the length direction of the steel pipe, a limiting area is formed between the top of the blocking member and the steel pipe, and the limiting area is used for the strip to pass through.

[0019] According to one embodiment of the present application, the steel pipe is installed on the table top through a retaining member, the retaining member comprises a curved plate, a half-enclosing area is formed at the first end of the curved plate, the half-enclosing area is used for limiting the steel pipe, and the second end of the curved plate is fixed to the table top through a screw.

[0020] According to one embodiment of the present application, the strip winding device comprises a forward-reverse switch used for controlling the forward rotation or reverse rotation of the take-up shaft and a speed regulating potentiometer used for adjusting the speed of the take-up shaft.

[0021] The present application has the following beneficial effects:

[0022] The application provides a kind of amorphous nanocrystalline soft magnetic tape winding device, including body, winding mechanism, disc body and magnetic component;Winding mechanism is installed on the table top of body, and winding mechanism includes tape reel, and magnetic piece is arranged on tape reel for adsorbing tape;Disc body is sleeved on tape reel, and is coaxially arranged with tape reel, and the side of disc body away from winding mechanism forms a limit surface, and the axis of tape reel is perpendicular to the limit surface;Magnetic component is installed on the table top of body, and when winding tape, tape passes through magnetic component and is adsorbed by magnetic component.

[0023] When winding amorphous nanocrystalline soft magnetic tape, first, disc body is sleeved and installed on the tape reel of winding mechanism, then one end of amorphous nanocrystalline soft magnetic tape is attached to the tape reel of winding mechanism, because magnetic piece is arranged on tape reel, so one end of amorphous nanocrystalline soft magnetic tape can be adsorbed, then winding mechanism is started, so as to wind amorphous nanocrystalline soft magnetic tape on tape reel, while tape moves, it passes through magnetic component, magnetic component adsorbs amorphous nanocrystalline soft magnetic tape, so that the tape from magnetic component to tape reel can maintain a certain tension, to ensure the stability of tape during winding, to avoid damage or deformation of tape due to excessive or insufficient tension, to reduce the phenomenon of broken tape.This amorphous nanocrystalline soft magnetic tape winding device can efficiently wind amorphous nanocrystalline soft magnetic tape, without manual winding, to improve work efficiency and reduce labor burden, and it is not easy to make mistakes during winding. BRIEF DESCRIPTION OF DRAWINGS

[0024] In order to more clearly illustrate the specific embodiments of the present application or the technical solutions in the prior art, the following will briefly introduce the drawings needed to be used in the specific embodiments or prior art description. Obviously, the drawings described below are some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative labor.

[0025] Figure 1 The structural diagram provided for the embodiments of the present application;

[0026] Figure 2 The structural diagram of winding mechanism, disc body, plate body, spring and baffle mechanism provided for the embodiments of the present application;

[0027] Figure 3 The structural diagram of disc body, plate body, spring and baffle mechanism provided for the embodiments of the present application;

[0028] Figure 4 The structural diagram of baffle mechanism provided for the embodiments of the present application;

[0029] Figure 5 The structural diagram of magnetic component provided for the embodiments of the present application;

[0030] Figure 6 A part of the embodiment of the present application is provided Figure 1 Enlarged view of A part of the embodiment of the present application is provided

[0031] Figure 7 The structure diagram of the embodiment of the present application is provided after removing the machine door

[0032] Figure 8 The structure diagram of another amorphous nanocrystalline soft magnetic tape winding device provided by the embodiment of the present application is provided

[0033] Figure 9 The structure diagram of the disc body provided by the embodiment of the present application is provided

[0034] Icon: 1, machine body; 101, machine door; 2, winding mechanism; 201, tape winding shaft; 202, rotating rod; 203, transmission belt; 204, winding motor; 205, bearing seat; 206, fixed seat; 3, magnetic component; 301, steel pipe; 302, magnet column; 303, retaining member; 4, disc body; 401, rod body; 5, plate body; 6, elastic member; 7, baffle mechanism; 701, baffle; 702, fixed block; 703, connecting block; 704, hinge; 705, support rod; 706, shaft seat; 8, jog switch; 9, stop switch; 10, speed regulating potentiometer; 11, forward and reverse switch; 12, main switch; 13, blocking member. DETAILED DESCRIPTION

[0035] The technical solutions of the present application will be described clearly and completely below in conjunction with the embodiments. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0036] As Figures 1-9 shown, one embodiment of the present application provides an amorphous nanocrystalline soft magnetic tape winding device, which comprises a machine body 1, a winding mechanism 2, a disc body 4 and a magnetic component 3; the winding mechanism 2 is installed on the table top of the machine body 1, and the winding mechanism 2 comprises a tape winding shaft 201, and the tape winding shaft 201 is provided with a magnetic member for adsorbing the tape; the disc body 4 is sleeved on the tape winding shaft 201 and coaxially arranged with the tape winding shaft 201, and the side of the disc body 4 away from the winding mechanism 2 forms a limiting surface, and the axis of the tape winding shaft 201 is perpendicular to the limiting surface; the magnetic component 3 is installed on the table top of the machine body 1, and when the tape is wound, the tape passes through the magnetic component 3 and is adsorbed by the magnetic component 3.

[0037] When the amorphous nanocrystalline soft magnetic tape is wound, the disc body 4 is first sleeved and installed on the tape winding shaft 201 of the winding mechanism 2, and then one end of the amorphous nanocrystalline soft magnetic tape is attached to the tape winding shaft 201 of the winding mechanism 2. Since the tape winding shaft 201 is provided with a magnetic member, the one end of the amorphous nanocrystalline soft magnetic tape can be adsorbed. Then the winding mechanism 2 is started to wind the amorphous nanocrystalline soft magnetic tape on the tape winding shaft 201. While the tape is moving, it passes through the magnetic member 3, which adsorbs the amorphous nanocrystalline soft magnetic tape to maintain a certain tension on the tape from the magnetic member 3 to the tape winding shaft 201, ensuring the stability of the tape during winding, avoiding damage or deformation of the tape due to excessive or insufficient tension, and reducing the phenomenon of broken tape.

[0038] The amorphous nanocrystalline soft magnetic tape winding device can efficiently wind the amorphous nanocrystalline soft magnetic tape without manual winding, improving work efficiency and reducing labor burden, and reducing errors during winding.

[0039] As a preferred embodiment, as shown in Figure 5 The magnetic member 3 includes a steel pipe 301 and a magnet column 302, the magnet column 302 is coaxially sleeved in the inside of the steel pipe 301, and the steel pipe 301 is installed on the table surface of the machine body 1.

[0040] It should be noted that when winding the tape, the tape is very thin and easy to break. Once the breakage occurs, due to the fast winding speed, the broken end of the tape generates a large linear speed, which is easy to harm the workers beside the machine and cause safety accidents.

[0041] In order to avoid such accidents, as shown in Figure 1 A blocking member 13 is provided on the table surface of the machine body 1, which is a steel wire in a zigzag shape. The top end of the steel wire is located directly above the steel pipe 301, and the length direction of the steel wire is the same as the length direction of the steel pipe 301. The length of the top of the steel wire is greater than the length of the steel pipe 301, so that a limiting area is formed between the top of the steel wire and the steel pipe 301, and the tape passes through the limiting area. In this way, the tape passes through the limiting area during winding. Since the steel wire limits the tape, even if the tape breaks, it will not harm the workers, improving safety.

[0042] Optionally, the steel pipe 301 is installed on the table surface through a retaining member 303, which includes a curved plate. One end of the curved plate is formed in a curved shape and forms a semi-enclosing area. An installation hole is formed at the other end of the curved plate. When fixing the steel pipe 301, the steel pipe 301 is first buckled into the semi-enclosing area of the curved plate, and then the curved plate is fixed to the table surface by screws.

[0043] As a preferred embodiment, as shown in Figure 2As shown, the strip winding device comprises a plate body 5, an elastic member 6 and a baffle mechanism 7, wherein the plate body 5 movably sheaths the take-up shaft 201, and the plate body 5 is located at the outer side of the disc body 4, i.e. the disc body 4 is closer to the winding mechanism 2. A winding area is formed between the end face of the disc body 4 away from the winding mechanism 2 and the side face of the plate body 5 facing the disc body 4, and the strip is wound in the winding area.

[0044] Further, the baffle mechanism 7 is installed on the table top of the machine body 1, and the baffle mechanism 7 faces the take-up shaft 201. One end of the elastic member 6 acts on the plate body 5, and the other end acts on the baffle mechanism 7. Thus, the elastic member 6 can apply an elastic force to the plate body 5 along the axial direction of the take-up shaft 201 to push the plate body 5 to move towards the disc body 4, so as to limit the strip in the winding area and ensure the flatness of the strip coil, avoiding the strip from being twisted during winding.

[0045] Preferably, as shown in the drawings, Figure 9 As shown, the disc body 4 is disc-shaped, a circular hole is formed at the center position of the disc body 4, a bearing is installed in the circular hole, the disc body 4 movably sheaths the take-up shaft 201, a rod body 401 is arranged on the side face of the disc body 4, and the other end of the rod body 401 is fixed to the machine body 1. The rod body 401 serves to support the disc body 4.

[0046] It should be noted that when the strip is produced, the molten steel in the tundish flows out from the bottom discharge port of the tundish to the upper surface of the copper roller. Under the condition that the copper roller rotates at a high speed, the molten steel is rapidly cooled and forms the strip adhering to the surface of the copper roller. The air knife assembly blows nitrogen gas towards the strip to separate the strip from the copper roller. However, burrs and flash are easily generated on the side face of the produced strip.

[0047] In the embodiment, as shown in the drawings, Figure 9 Since the disc body 4 is supported by the rod body 401, the disc body 4 is stationary, and the plate body 5 is in contact with the strip in the winding area under the action of the elastic force of the elastic member 6. Therefore, the plate body 5 is also stationary during winding. Thus, when the take-up shaft 201 rotates to wind the strip, since the disc body 4 and the plate body 5 remain relatively stationary, the two side faces of the strip rub against the disc body 4 and the plate body 5 respectively, thereby effectively removing the flash and burrs on the two side faces of the strip.

[0048] Preferably, a circular ring body is coaxially arranged on the take-up shaft 201, and the diameter of the circular ring body is smaller than the diameter of the disc body 4. The circular ring body serves to limit the position of the disc body 4, and when the disc body 4 is sheathed, the disc body 4 can only move to the position in contact with the circular ring body.

[0049] Preferably, a through hole is formed in the plate body 5, and a bearing is arranged in the through hole.

[0050] Preferably, the plate body 5 is a rectangular plate, the length of the rectangular plate is not less than the diameter of the disc body 4, and the width of the rectangular plate is 1 / 5-1 / 3 of the diameter of the disc body 4. It should be noted that the plate body 5 is arranged as a rectangular plate, and the width and length of the plate body 5 are limited, so as to facilitate observation of the flash and burr conditions of the two sides of the strip, and facilitate real-time adjustment of the elastic force of the elastic member 6 on the plate body 5.

[0051] As shown in Figure 2 , since the length of the plate body 5 is slightly greater than the diameter of the disc body 4, the plate body 5 can effectively limit the strip in the winding area, and can ensure that the strip is wound to the set specification without being twisted. The width of the plate body 5 is set to be 1 / 4 of the diameter of the disc body 4, so as to observe the flash and burr conditions of the side of the strip at any time.

[0052] Optionally, the elastic member 6 is a spring.

[0053] Preferably, as shown in Figure 2 , Figure 3 and Figure 4 , the baffle mechanism 7 includes a baffle 701, a hinge 704 and a support. The bottom end of the baffle 701 and the table top of the machine body 1 are hingedly connected through the hinge 704, so that the baffle 701 can rotate relative to the table top. The support is installed on the table top and is used to support the baffle 701 to avoid the baffle 701 from falling down. One end of the elastic member 6 acts on the plate body 5, and the other end of the elastic member 6 acts on the baffle 701.

[0054] Preferably, as shown in Figure 4 , a connecting block 703 is arranged on the left side of the baffle 701, and a insertion hole is formed in the bottom of the connecting block 703, which is used for inserting the support.

[0055] Further, the support includes a support rod 705 and two shaft seats 706, the two shaft seats 706 are fixed to the table top, and the bottom of the support rod 705 is provided with a cross bar, the cross bar and the support rod 705 form a T-shaped rod, and the cross bar is rotatably installed between the two shaft seats 706. Further, the support rod 705 is a telescopic rod, so as to flexibly adjust the length of the support rod 705 to adapt to the baffle 701 at different inclination angles.

[0056] It should be noted that since the inclination angle of the baffle 701 is adjustable, the pressure applied by the baffle 701 to the spring is adjustable, so that the elastic force applied by the spring to the plate body 5 is adjustable, which is more conducive to removing the burrs and flash on the side of the strip.

[0057] For example, when the staff observes that the strip side burrs and the removal rate of flash is low, the inclination angle of the small baffle 701 can be adjusted so that the baffle 701 is closer to the disc body 4, so that the spring is further extruded, the spring thus exerts greater elastic force on the plate body 5, and finally increases the friction between the strip side and the plate body 5 and the disc body 4, thereby improving the deburring and flash removal effect.

[0058] It should be noted that when the strip is wound, the disc body 4 is first installed on the take-up shaft 201, and then one end of the strip is attached to the take-up shaft 201, and the one end of the strip is attracted by the magnetic frame on the take-up shaft 201. After that, the winding mechanism 2 is started to drive the take-up shaft 201 to rotate for take-up operation, that is, the take-up shaft 201 rotates at low speed for several revolutions to wind the strip head on the take-up shaft 201. After the strip head is started, the staff installs the plate body 5 on the take-up shaft 201, then lifts the baffle 701 and places the spring, so that one end of the spring acts on the plate body 5 and the other end acts on the baffle 701, and finally rotates the support rod 705 and adjusts the length of the support rod 705 to insert the top end of the support rod 705 into the insertion hole on the connecting block 703.

[0059] In this way, during the take-up process, the strip is limited between the disc body 4 and the plate body 5, which ensures the flatness of the strip roll and prevents the strip from being twisted.

[0060] Preferably, as shown in Figure 3 , a fixed block 702 is arranged on the right side of the baffle 701, and the fixed block 702 is a cylindrical block. As shown in Figure 2 , one end of the spring acts on the right side of the baffle 701, and the fixed block 702 is inserted into the spring, and the side surface of the fixed block 702 is in contact with the spring. In this way, the spring can be better limited to avoid relative sliding between the spring and the baffle 701.

[0061] Preferably, as shown in Figure 7 , the strip winding device is provided with two groups, and the winding mechanism 2 in the strip winding device includes a fixed seat 206 installed on the table surface of the machine body 1, a winding motor 204, a take-up shaft 201, a driving wheel, a driven wheel and a transmission belt 203. The take-up shaft 201 is rotatably installed on the fixed seat 206, and the driven wheel is installed on the take-up shaft 201. The winding motor 204 is installed in the machine body 1, and the driving wheel is installed on the output end of the winding motor 204. The driving wheel and the driven wheel are transmissionally connected through the transmission belt 203. In this way, the transmission belt 203 is driven to rotate by the winding motor 204 to drive the take-up shaft 201 to rotate.

[0062] As an alternative embodiment, as shown in Figure 8The difference between the embodiment and the above-mentioned embodiments is that only one winding motor 204 is arranged in the embodiment, and the winding mechanism 2 further comprises a rotating rod 202 and a bearing seat 205. The bearing seat 205 is fixedly installed on the inner bottom wall of the machine body 1, and the rotating rod 202 is rotatably installed on the bearing seat 205. The bearing seat 205 serves to support the rotating rod 202. Two driving wheels are fixedly installed on the rotating rod 202. The driving wheels are rotatably connected to the driven wheels on the winding shaft 201 through transmission belts 203. The output end of the winding motor 204 is fixedly connected to one end of the rotating rod 202.

[0063] The rotating rod 202 is driven to rotate by the winding motor 204, and the two driving wheels are driven to rotate together by the rotating rod 202, thereby driving the two transmission belts 203 to synchronously rotate, and finally driving the two winding shafts 201 to synchronously rotate. In this way, the winding work of two winding materials can be completed at the same time, only one winding motor 204 is needed, and the cost is saved.

[0064] Preferably, as shown in Figure 1 and Figure 6 The strip winding device comprises a general switch 12 for controlling the on-off of a general power supply, a forward-reverse switch 11 for controlling the forward rotation or reverse rotation of the winding motor 204, a speed regulating potentiometer 10 for adjusting the speed of the winding motor 204, and a stop switch 9 for controlling the emergency stop.

[0065] It should be noted that if the winding motor 204 cannot reduce the rotating speed during the winding process, the operator is likely to cause the fingers to be cut in the operation. Therefore, the speed regulating potentiometer 10 is arranged for adjusting the speed of the winding motor 204. The speed regulating potentiometer 10 is signal connected to the control unit in the winding motor 204. The rotating speed of the winding shaft 201 is lowered to reduce the winding speed of the strip, so that the operator can avoid being cut by the fast winding strip when touching the strip.

[0066] In addition, in order to prevent other accidents, the equipment needs to have an emergency stop function. Therefore, the stop switch 9 is arranged. The operator can quickly stop the rotation of the winding motor 204 through the stop switch 9. On the one hand, the operator can play an emergency stop role when being injured. On the other hand, the operator can quickly stop the winding motor 204 during the winding operation to perform the strip starting or strip connecting operation, thereby greatly improving the work efficiency and safety degree and reducing the risk of mechanical injury.

[0067] Optionally, as shown in Figure 1 A jog switch 8 is arranged on the machine body 1. The jog switch 8 is connected to the speed regulating potentiometer 10. After the operator presses the jog switch 8, the winding mechanism 2 will rotate at a low speed. After the jog switch 8 is released, the winding motor 204 will immediately stop.

[0068] Preferably, as shown in Figure 1As shown, the body 1 is hollow, the front of the body 1 is provided with a machine door 101, and the control system is installed in the body 1.

[0069] In the description of the present application, it should be noted that the terms "upper", "lower" and the like indicate the orientation or positional relationship shown in the drawings, and are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as a limitation on the present application. In addition, the terms "first", "second" are only for the purpose of description, and cannot be understood as indicating or implying relative importance.

[0070] In the description of the present application, it should be noted that unless otherwise specified and limited, the terms "mounting", "communication", "connection" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly communicated, or it can be indirectly communicated through an intermediate medium, or it can be the communication between the two elements inside. For those skilled in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances. In addition, in the description of the present application, unless otherwise stated, the meaning of "a plurality of" is two or more.

[0071] The above is only the preferred embodiment of the present application, and is not intended to limit the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principles of the present application shall be included in the protection scope of the present application.

Claims

1. An amorphous nanocrystalline soft magnetic tape winding apparatus, characterized by, The tape winding device comprises a machine body (1), a winding mechanism (2), a disc body (4) and a magnetic component (3). The winding mechanism (2) is installed on the table top of the machine body (1), and comprises a tape winding shaft (201) provided with a magnetic component for adsorbing the tape. The disc body (4) is sleeved on the tape winding shaft (201) and coaxially arranged with the tape winding shaft (201), and a limiting surface is formed on the side of the disc body (4) away from the winding mechanism (2), and the axis of the tape winding shaft (201) is perpendicular to the limiting surface. The magnetic component (3) is installed on the table top of the machine body (1), and the tape passes through the magnetic component (3) and is adsorbed by the magnetic component (3) during winding. The tape winding device further comprises a plate body (5) and an elastic component (6), the plate body (5) is movably sleeved on the tape winding shaft (201), and a winding area is formed between the end surface of the disc body (4) away from the winding mechanism (2) and the plate body (5). A rod body (401) connected with the disc body (4) is arranged on the machine body (1), and the rod body (401) is used for supporting the disc body (4). The elastic component (6) is used for applying elastic force to the plate body (5) along the axis direction of the tape winding shaft (201) to adjust the width of the winding area. The tape winding device further comprises a baffle mechanism (7), the baffle mechanism (7) comprises a baffle (701) and a supporting component, the bottom end of the baffle (701) is hingedly connected to the table top of the machine body (1), one end of the elastic component (6) acts on the plate body (5), and the other end thereof acts on the baffle (701), and the supporting component is used for supporting the baffle (701). The baffle mechanism (7) comprises a hinge (704), and the bottom of the baffle (701) is hingedly connected to the table top of the machine body (1) through the hinge (704). The supporting component comprises a supporting rod (705) and an axle seat (706), the axle seat (706) is fixed to the table top, the supporting rod (705) is a telescopic rod, the bottom of the supporting rod (705) is provided with a horizontal rod, the horizontal rod is rotatably arranged in the axle seat (706), and the top end of the supporting rod (705) is inserted into the side of the baffle (701) away from the elastic component (6) to support the baffle (701). A connecting block (703) is arranged on the side of the baffle (701) away from the elastic component (6), and a plug hole is formed in the connecting block (703) for inserting the supporting rod (705).

2. The amorphous nanocrystalline soft magnetic tape winding apparatus of claim 1, wherein, The length of the plate body (5) is not less than the diameter of the disc body (4), and the width of the plate body (5) is less than the radius of the disc body (4).

3. The amorphous nanocrystalline soft magnetic tape winding apparatus of claim 1, wherein, The magnetic component (3) comprises a steel pipe (301) and a magnet column (302), the magnet column (302) is coaxially sleeved in the steel pipe (301), and the steel pipe (301) is installed on the table top of the machine body (1).

4. The amorphous nanocrystalline soft magnetic tape winding apparatus according to claim 3, wherein The machine body (1) is provided with a blocking piece (13) installed on the table top, the top of the blocking piece (13) is higher than the steel pipe (301), the length direction of the blocking piece (13) is the same as the length direction of the steel pipe (301), and a limiting area is formed between the top of the blocking piece (13) and the steel pipe (301) for the strip to pass through.

5. The amorphous nanocrystalline soft magnetic tape winding apparatus according to claim 3, wherein The steel pipe (301) is installed on the table top through a retaining piece (303), the retaining piece (303) comprises a curved plate, a first end of the curved plate is provided with a semi-enclosing area for limiting the steel pipe (301), and a second end of the curved plate is fixed on the table top through a screw.

6. The amorphous nanocrystalline soft magnetic tape winding apparatus of claim 1, wherein, The strip winding device comprises a forward-reverse switch (11) for controlling the forward rotation or reverse rotation of the take-up shaft (201) and a speed regulating potentiometer (10) for adjusting the speed of the take-up shaft (201).

Citation Information

Patent Citations

  • Tape unit is received in automation that nanocrystalline iron core was used

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