Disassembling and assembling device for hot zinc plating electromagnetic induction heater

By designing a disassembly and assembly device of a frame, a lifting platform and a push-pull mechanism, the problems of time-consuming, labor-intensive and high safety risk in disassembly and assembly of electromagnetic induction heaters are solved, a fast and efficient disassembly and assembly process is achieved, and labor intensity and safety risks are reduced.

CN223480691UActive Publication Date: 2025-10-28SHANGHAI BAOSTEEL METALLURGICAL CONSTRUCTION CORP +1
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Patent Information

Application Number
CN202422496408.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-15
Publication Date
2025-10-28
Estimated Expiration
2034-10-15

AI Technical Summary

Technical Problem

In the prior art, the disassembly and assembly of electromagnetic induction heaters is time-consuming and labor-intensive, with high labor intensity and high safety risks.

Method used

A disassembly and assembly device consisting of a frame, a lifting platform and a push-pull mechanism was designed. The driving mechanism and transmission assembly were used to realize the rapid disassembly and assembly of the electromagnetic induction heater. The lifting platform was adjusted to the corresponding height, and the push-pull rod and driving mechanism were used to complete the disassembly and installation of the electromagnetic induction heater.

Benefits of technology

The rapid disassembly and assembly of the electromagnetic induction heater is realized, which reduces labor intensity and labor costs, reduces safety risks and improves operating efficiency.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223480691U_ABST
Patent Text Reader

Abstract

The utility model provides a hot zinc plating electromagnetic induction heater disassembling and assembling device which comprises a frame, a containing space is arranged in the frame, and a walking mechanism is arranged at the bottom of the frame. The lifting platform is arranged in the containing space, the lifting platform is connected with the frame through a first driving mechanism, and the first driving mechanism can drive the lifting platform to ascend and descend up and down; and the push-pull mechanism is arranged on the lifting platform, the push-pull mechanism comprises a push-pull rod and a second driving mechanism, the second driving mechanism is in transmission connection with the push-pull rod, and the second driving mechanism can drive the push-pull rod to move in the length direction of the lifting platform. The problems that in the prior art, when the electromagnetic induction heater is disassembled and assembled, time and labor are wasted, the labor intensity is large, and the safety risk is high are solved.
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Description

Technical Field

[0001] This utility model relates to a disassembly and assembly device, and in particular to a disassembly and assembly device for a hot zinc-coated electromagnetic induction heater. Background Technology

[0002] Each electromagnetic induction heater in the galvanizing unit consists of two layers. Due to the heavy weight of the heater and its installation within a fixed frame, disassembling and assembling it requires the use of multiple hand-operated hoists and close coordination among several people. This operation presents significant safety risks, including lifting injuries and the risk of being struck by falling objects. Errors in personnel coordination can easily lead to equipment damage and personal injury, resulting in a high safety risk factor and a lengthy operation time. Summary of the Invention

[0003] In view of the shortcomings of the prior art described above, the purpose of this utility model is to provide a disassembly and assembly device for hot-dip zinc electromagnetic induction heaters, which solves the problems of time-consuming, labor-intensive, and high safety risks in the disassembly and assembly of electromagnetic induction heaters in the prior art.

[0004] To achieve the above and other related objectives, this utility model provides a disassembly and assembly device for a hot-dip zinc electromagnetic induction heater, comprising a frame with an accommodating space inside and a traveling mechanism at the bottom of the frame; a lifting platform disposed within the accommodating space, the lifting platform being connected to the frame via a first driving mechanism capable of driving the lifting platform to move up and down; and a push-pull mechanism disposed on the lifting platform, the push-pull mechanism including a push-pull rod and a second driving mechanism, the second driving mechanism being tractively connected to the push-pull rod and capable of driving the push-pull rod to move along the length direction of the lifting platform.

[0005] Preferably, the first driving mechanism includes a first driving device, a first transmission assembly, a first screw lifting device, a second screw lifting device, a third screw lifting device, and a fourth screw lifting device. The first and second screw lifting devices are located on one side of the frame, and the third and fourth screw lifting devices are located on the other side of the frame. The first screw lifting device includes a first vertical screw rotatably mounted on the frame and a first lifting block threadedly connected to the first vertical screw. The second screw lifting device includes a second vertical screw rotatably mounted on the frame and a first lifting block threadedly connected to the second vertical screw. The second lifting block; the third screw lifting device includes a third vertical screw rotatably mounted on the frame and a third lifting block threadedly connected to the third vertical screw; the fourth screw lifting device includes a fourth vertical screw rotatably mounted on the frame and a fourth lifting block threadedly connected to the fourth vertical screw; the first driving device is connected to the first vertical screw, the second vertical screw, the third vertical screw and the fourth vertical screw via the first transmission assembly; the first driving device can synchronously drive the first vertical screw, the second vertical screw, the third vertical screw and the fourth vertical screw to rotate via the first transmission assembly.

[0006] Preferably, the first driving device includes a first driving motor, and the first transmission assembly includes a first T-type reducer, a second T-type reducer, a third T-type reducer, a first worm gear module, a second worm gear module, a third worm gear module, and a fourth worm gear module, all fixedly mounted on the frame. The first T-type reducer includes one input shaft and two output shafts, and both the second and third T-type reducers include one input shaft and one output shaft. The first driving motor is connected to the input shaft of the first T-type reducer, one output shaft of the first T-type reducer is connected to the input shaft of the second T-type reducer, and the other output shaft of the first T-type reducer is connected to the third T-type reducer. The input shaft of the T-type reducer is connected; the output shaft of the second T-type reducer is connected to the worm of the first worm gear module, and the output shaft of the third T-type reducer is connected to the worm of the third worm gear module; the first vertical screw is connected to the turbine of the first worm gear module, the second vertical screw is connected to the turbine of the second worm gear module, and the worm of the first worm gear module is connected to the worm of the second worm gear module; the third vertical screw is connected to the turbine of the third worm gear module, the fourth vertical screw is connected to the turbine of the fourth worm gear module, and the worm of the third worm gear module is connected to the worm of the fourth worm gear module.

[0007] Preferably, the worm of the first worm gear module is connected to the worm of the second worm gear module via a first connecting shaft. One end of the first connecting shaft is connected to the worm of the first worm gear module via a coupling, and the other end of the first connecting shaft is connected to the worm of the second worm gear module via a coupling. The worm of the third worm gear module is connected to the worm of the fourth worm gear module via a second connecting shaft. One end of the second connecting shaft is connected to the worm of the third worm gear module via a coupling, and the other end of the second connecting shaft is connected to the worm of the fourth worm gear module via a coupling.

[0008] Preferably, the second driving mechanism includes a second driving device, a second transmission assembly, a first horizontal screw, and a second horizontal screw disposed on the lifting platform. The first horizontal screw and the second horizontal screw are rotatably disposed on both sides of the lifting platform. The second driving device is connected to the first horizontal screw and the second horizontal screw via the second transmission assembly, and the second driving device can synchronously drive the first horizontal screw and the second horizontal screw to rotate via the second transmission assembly. One end of the push-pull rod is threadedly connected to the first horizontal screw, and the other end of the push-pull rod is threadedly connected to the second horizontal screw.

[0009] Preferably, the second drive device includes a second drive motor, and the second transmission assembly includes a fourth T-type reducer, a fifth worm gear module, and a sixth worm gear module. The fourth T-type reducer includes an input shaft and two output shafts. The first horizontal screw is connected to the worm gear of the fifth worm gear, and the second horizontal screw is connected to the worm gear of the sixth worm gear. The second drive motor is connected to the input shaft of the fourth T-type reducer, and the two output shafts of the fourth T-type reducer are respectively connected to the worm gear of the fifth worm gear module and the worm gear of the sixth worm gear module.

[0010] Preferably, the walking mechanism is a roller.

[0011] As described above, the hot-dip zinc electromagnetic induction heater disassembly and assembly device of this utility model has the following beneficial effects: When disassembling the electromagnetic induction heater, the lifting platform is adjusted to the height corresponding to the electromagnetic induction heater to be disassembled by the first drive mechanism. Then, the push-pull rod of the push-pull mechanism is connected to the electromagnetic induction heater. Then, the push-pull rod is driven by the second drive mechanism to move, thereby pulling the electromagnetic induction heater onto the lifting platform. Then, the disassembly and assembly device is pushed to move, transporting the disassembled electromagnetic induction heater to another area for unloading. When installing a new electromagnetic induction heater, the above operation is reversed, and will not be described in detail here. Therefore, the hot-dip zinc electromagnetic induction heater disassembly and assembly device of this utility model can quickly complete the disassembly and assembly of electromagnetic induction heaters, improve the replacement efficiency of electromagnetic induction heaters, eliminate the need for multiple hand-operated hoists and close cooperation of many people, greatly reduce labor intensity and labor costs, and also reduce the risk of disassembly and assembly operations. Attached Figure Description

[0012] Figure 1 The diagram shown is a three-dimensional structural schematic of the disassembly and assembly device for the hot-dip zinc electromagnetic induction heater provided by this utility model.

[0013] Figure 2 The image shown is a first view of the disassembly and assembly device for the hot-dip zinc electromagnetic induction heater provided by this utility model.

[0014] Figure 3 This is a second view of the disassembly and assembly device for the hot-dip zinc electromagnetic induction heater provided by this utility model.

[0015] Figure 4 The present invention is shown to provide Figure 1 Enlarged view of point A in the middle.

[0016] Explanation of reference numerals in the attached figures

[0017] 10 Framework

[0018] 20 Lifting Platforms

[0019] 21 First screw lifting device

[0020] 211 First vertical screw

[0021] 212 First lifting block

[0022] 22 Second Screw Lifting Device

[0023] 221 Second vertical screw

[0024] 222 Second lifting block

[0025] 23 Third Bolt Lifting Device

[0026] 231 Third vertical screw

[0027] 232 Third lifting block

[0028] 24. Fourth screw lifting device

[0029] 241 Fourth vertical screw

[0030] 242 Fourth lifting block

[0031] 40 First drive motor

[0032] 51 First T-type reducer

[0033] 52 Second T-type reducer

[0034] 53 Third T-type reducer

[0035] 54. Fourth T-type reducer

[0036] 61 First worm gear module

[0037] 62 Second worm gear module

[0038] 63 Third worm gear module

[0039] 64 Fourth worm gear module

[0040] 65 Fifth worm gear module

[0041] 66. Sixth worm gear module

[0042] 71 First horizontal screw

[0043] 72 Second horizontal screw

[0044] 301 push-pull rod

[0045] 80 rollers Detailed Implementation

[0046] The following specific examples illustrate the implementation of this utility model. Those skilled in the art can easily understand other advantages and effects of this utility model from the content disclosed in this specification. This utility model can also be implemented or applied through other different specific embodiments, and various details in this specification can also be modified or changed based on different viewpoints and applications without departing from the spirit of this utility model.

[0047] In the description of this utility model, it should be noted that, unless otherwise specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or a connection through an intermediate medium; and they can refer to the internal communication between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0048] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., used to indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," and "third" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0049] Please see Figures 1 to 4 It should be noted that the illustrations provided in this embodiment are only schematic representations of the basic concept of this utility model. Therefore, the drawings only show the components related to this utility model and are not drawn according to the actual number, shape and size of the components. In actual implementation, the form, quantity and proportion of each component can be arbitrarily changed, and the layout of the components may also be more complex.

[0050] This utility model provides a disassembly and assembly device for a hot-dip zinc electromagnetic induction heater, specifically as follows: Figures 1 to 4 As shown, the disassembly and assembly device includes a frame 10, a lifting platform 20, and a push-pull mechanism. The frame 10 has a receiving space and a traveling mechanism at its bottom. The lifting platform 20 is located in the receiving space and is connected to the frame 10 via a first drive mechanism that can drive the lifting platform 20 to move up and down. The push-pull mechanism is located on the lifting platform 20 and includes a second drive mechanism and a push-pull rod 301. The second drive mechanism is connected to the push-pull rod 301 and can drive the push-pull rod 301 to move along the length of the lifting platform 20.

[0051] The beneficial effects of the hot-dip zinc electromagnetic induction heater disassembly and assembly device of the present invention are as follows: During operation, the upper electromagnetic induction heater can be disassembled first. That is, the lifting platform 20 is adjusted to the corresponding height by the first drive mechanism, and then the push-pull rod 301 of the push-pull mechanism is connected to the electromagnetic induction heater. Then, the push-pull rod 301 is driven to move by the second drive mechanism, and the electromagnetic induction heater can be pulled onto the lifting platform 20 by the push-pull rod 301. Then, the disassembly and assembly device is pushed to move and transport the disassembled electromagnetic induction heater to another area for unloading. Then, the lower electromagnetic induction heater is disassembled. The principle of disassembling the lower electromagnetic induction heater is the same as that of disassembling the upper electromagnetic induction heater, and will not be repeated here. When installing a new electromagnetic induction heater, the operation is reversed as described above, and will not be repeated here. Therefore, the hot-dip zinc electromagnetic induction heater disassembly and assembly device of this utility model can quickly complete the disassembly and assembly of electromagnetic induction heaters, improve the replacement efficiency of electromagnetic induction heaters, eliminate the need for multiple hand chain hoists and close cooperation of multiple people, greatly reduce labor intensity and labor costs, and also reduce the risk of disassembly and assembly operations.

[0052] Further, such as Figure 1 As shown, in this embodiment, the walking mechanism is specifically a set of rollers 80 located at the bottom of the frame. The mechanism is simple and low in cost. Specifically, in this embodiment, four rollers 80 are provided, with two rollers 80 located on one side of the frame 10 and the other two rollers 80 located on the other side of the frame 10.

[0053] Further, such as Figure 2 and Figure 3As shown, in this embodiment, the first driving mechanism includes a first driving device, a first transmission assembly, a first screw lifting device 21, a second screw lifting device 22, a third screw lifting device 23, and a fourth screw lifting device 24. Specifically, the first screw lifting device 21 and the second screw lifting device 22 are disposed on one side of the frame 10, and the third screw lifting device 23 and the fourth screw lifting device 24 are disposed on the other side of the frame 10. The first screw lifting device 21 includes a first vertical screw 211 rotatably disposed on the frame 10 and a first lifting block 212 threadedly connected to the first vertical screw 211. The second screw lifting device 22 includes a second vertical screw 221 rotatably disposed on the frame 10 and a first lifting block 212 threadedly connected to the second vertical screw 221. The second lifting block 222 is connected to the third screw lifting device 23, which includes a third vertical screw 231 rotatably mounted on the frame 10 and a third lifting block 232 threadedly connected to the third vertical screw 231. The fourth screw lifting device 24 includes a fourth vertical screw 241 rotatably mounted on the frame 10 and a fourth lifting block 242 threadedly connected to the fourth vertical screw 241. The first driving device is connected to the first vertical screw 211, the second vertical screw 221, the third vertical screw 231 and the fourth vertical screw 241 through a first transmission assembly. That is, the first driving device can synchronously drive the first vertical screw 211, the second vertical screw 221, the third vertical screw 223 and the fourth vertical screw 224 to rotate through the first transmission assembly. With this design, when the lifting platform 20 is driven to move up and down, the first driving device synchronously drives the first vertical screw 211, the second vertical screw 221, the third vertical screw 223, and the fourth vertical screw 224 to rotate. Then, the first lifting block 212 threaded to the first vertical screw 211, the second lifting block 222 threaded to the second vertical screw 221, the third lifting block 232 threaded to the third vertical screw 231, and the fourth lifting block 242 threaded to the fourth vertical screw 241 will move up and down synchronously along their corresponding vertical screws, thereby synchronously driving the lifting platform 20 to move up and down.

[0054] Further, such as Figure 3 and Figure 4As shown, in this embodiment, the first driving device includes a first driving motor 40, and the first transmission assembly includes a first T-shaped reducer 51, a second T-shaped reducer 52, a third T-shaped reducer 53, a first worm gear module 61, a second worm gear module 62, a third worm gear module 63, and a fourth worm gear module 64, all fixedly mounted on the frame 10. Specifically, the first T-shaped reducer 51 includes one input shaft and two output shafts, namely a first output shaft and a second output shaft. The second T-shaped reducer 52 and the third T-shaped reducer 53 each include one input shaft and one output shaft. The first driving motor 40 is connected to the input shaft of the first T-shaped reducer 51, and the first output shaft of the first T-shaped reducer is connected to the input shaft of the second T-shaped reducer 52. The second output shaft is connected to the input shaft of the third T-type reducer 53. Specifically, the output shaft of the second T-type reducer 52 is connected to the worm of the first worm gear module 61, and the output shaft of the third T-type reducer 53 is connected to the worm of the third worm gear module 63. The first vertical screw 211 is connected to the turbine of the first worm gear module 61, the second vertical screw 221 is connected to the turbine of the second worm gear module 62, and the worm of the first worm gear module 61 is connected to the worm of the second worm gear module 62. The third vertical screw 231 is connected to the turbine of the third worm gear module 63, and the fourth vertical screw 241 is connected to the turbine of the fourth worm gear module 64, and the worm of the third worm gear module 63 is connected to the worm of the fourth worm gear module 64. With this structural design, the first drive motor 40 drives the first T-type reducer 51 to rotate. The first and third output shafts of the first T-type reducer 51 synchronously drive the second T-type reducer 52 and the third T-type reducer 53 to rotate, respectively. The output shafts of the second T-type reducer 52 and the third T-type reducer 53 synchronously drive the worm of the first worm gear module 61 and the worm of the third worm gear module 63, respectively. Since the worm of the first worm gear module 61 is connected to the worm of the second worm gear module 62, and the worm of the third worm gear module 63 is connected to the worm of the fourth worm gear module 64, the worms of the first worm gear module 61 and the third worm gear module 63 will synchronously drive the worms of the second worm gear module 62 and the fourth worm gear module 64 to rotate synchronously when they rotate, thereby realizing the synchronous rotation of the first vertical screw 211, the second vertical screw 221, the third vertical screw 223, and the fourth vertical screw 224.

[0055] Specifically, such as Figure 3As shown, in this embodiment, the worm of the first worm gear module 61 is connected to the worm of the second worm gear module 62 via a first connecting shaft 611. That is, one end of the first connecting shaft 611 is connected to the worm of the first worm gear module 61 via a coupling, and the other end of the first connecting shaft 611 is also connected to the worm of the second worm gear module 62 via a coupling. Similarly, the worm of the third worm gear module 63 is connected to the worm of the fourth worm gear module 64 via a second connecting shaft 631. That is, one end of the second connecting shaft 631 is connected to the worm of the third worm gear module 63 via a coupling, and the other end of the second connecting shaft 631 is also connected to the worm of the fourth worm gear module 64 via a coupling.

[0056] Further, such as Figure 4 As shown, in this embodiment, the second driving mechanism includes a second driving device, a second transmission assembly, a first horizontal screw 71, and a second horizontal screw 72, all mounted on the lifting platform 20. Specifically, the first horizontal screw 71 and the second horizontal screw 72 are rotatably mounted on both sides of the lifting platform 20. The second driving device is connected to the first horizontal screw 71 and the second horizontal screw 72 via the second transmission assembly. The second driving device can synchronously drive the first horizontal screw 71 and the second horizontal screw 72 to rotate via the second transmission assembly. One end of the push-pull rod 301 is threadedly connected to the first horizontal screw 71, and the other end of the push-pull rod 301 is threadedly connected to the second horizontal screw 72. When it is necessary to drive the push-pull rod 301 to move, the second driving device drives the first horizontal screw 71 and the second horizontal screw 72 to rotate synchronously via the second transmission assembly. The push-pull rod 301, threadedly connected to the first horizontal screw 71 and the second horizontal screw 72, will then move along the axial direction of the first horizontal screw 71 and the second horizontal screw 72, thereby achieving the push-pull action on the electromagnetic heating sensor.

[0057] Specifically, such as Figure 1As shown, in this embodiment, the second driving device includes a second driving motor (not shown in the figure), and the second transmission assembly includes a fourth T-type reducer 54, a fifth worm gear module 65, and a sixth worm gear module 66. Specifically, the first horizontal screw 71 is connected to the worm gear of the fifth worm gear 65, and the second horizontal screw 72 is connected to the worm gear of the sixth worm gear 66. The fourth T-type reducer 54 includes an input shaft and two output shafts. The second driving motor is connected to the input shaft of the fourth T-type reducer, and the two output shafts of the fourth T-type reducer are respectively connected to the worm gear of the fifth worm gear module 65 and the worm gear of the sixth worm gear module 66. When the push-pull rod moves, the second driving motor drives the fourth T-type reducer 54, and the two output shafts of the fourth T-type reducer 54 drive the fifth worm gear module 65 and the sixth worm gear module 66 to rotate synchronously. The fifth worm gear module 65 and the sixth worm gear module 66 then drive the first horizontal screw 71 and the second horizontal screw 72 to rotate synchronously.

[0058] In summary, the hot-dip galvanized electromagnetic induction heater disassembly and assembly device of this invention can quickly complete the disassembly and assembly of electromagnetic induction heaters, improving the replacement efficiency of electromagnetic induction heaters. It eliminates the need for multiple hand-operated hoists and close cooperation from multiple people, greatly reducing labor intensity and labor costs, while also lowering the risks of disassembly and assembly operations. Therefore, this invention effectively overcomes the various shortcomings of existing technologies and has high industrial application value.

[0059] The above embodiments are merely illustrative of the principles and effects of this utility model and are not intended to limit the scope of this utility model. Any person skilled in the art can modify or alter the above embodiments without departing from the spirit and scope of this utility model. Therefore, all equivalent modifications or alterations made by those skilled in the art without departing from the spirit and technical concept disclosed in this utility model should still be covered by the claims of this utility model.

Claims

1. A disassembly and assembly device for a hot-dip zinc electromagnetic induction heater, characterized in that, include: A frame, wherein the frame has a receiving space and the bottom of the frame has a walking mechanism; A lifting platform is provided within the accommodating space. The lifting platform is connected to the frame via a first drive mechanism, which is capable of driving the lifting platform to move up and down. A push-pull mechanism is provided on the lifting platform. The push-pull mechanism includes a push-pull rod and a second drive mechanism. The second drive mechanism is induced to drive the push-pull rod to move along the length direction of the lifting platform.

2. The disassembly and assembly device for a hot-dip zinc electromagnetic induction heater according to claim 1, characterized in that, The first driving mechanism includes a first driving device, a first transmission assembly, a first screw lifting device, a second screw lifting device, a third screw lifting device, and a fourth screw lifting device. The first and second screw lifting devices are located on one side of the frame, while the third and fourth screw lifting devices are located on the other side of the frame. The first screw lifting device includes a first vertical screw rotatably mounted on the frame and a first lifting block threadedly connected to the first vertical screw. The second screw lifting device includes a second vertical screw rotatably mounted on the frame and a second lifting block threadedly connected to the second vertical screw. The third screw lifting device includes a third vertical screw rotatably mounted on the frame and a third lifting block threadedly connected to the third vertical screw. The fourth screw lifting device includes a fourth vertical screw rotatably mounted on the frame and a fourth lifting block threadedly connected to the fourth vertical screw. The first driving device is connected to the first vertical screw, the second vertical screw, the third vertical screw and the fourth vertical screw via the first transmission assembly. The first driving device can synchronously drive the first vertical screw, the second vertical screw, the third vertical screw and the fourth vertical screw to rotate via the first transmission assembly.

3. The disassembly and assembly device for a hot-dip zinc electromagnetic induction heater according to claim 2, characterized in that, The first driving device includes a first drive motor, and the first transmission assembly includes a first T-type reducer, a second T-type reducer, a third T-type reducer, a first worm gear module, a second worm gear module, a third worm gear module, and a fourth worm gear module, all fixedly mounted on the frame. The first T-type reducer includes one input shaft and two output shafts, while the second and third T-type reducers each include one input shaft and one output shaft. The first drive motor is connected to the input shaft of the first T-type reducer, one output shaft of the first T-type reducer is connected to the input shaft of the second T-type reducer, and the other output shaft of the first T-type reducer is connected to the third T-type reducer. The input shaft of the reducer is connected; the output shaft of the second T-type reducer is connected to the worm of the first worm gear module, and the output shaft of the third T-type reducer is connected to the worm of the third worm gear module; the first vertical screw is connected to the worm wheel of the first worm gear module, the second vertical screw is connected to the worm wheel of the second worm gear module, and the worm of the first worm gear module is connected to the worm of the second worm gear module; the third vertical screw is connected to the worm wheel of the third worm gear module, the fourth vertical screw is connected to the worm wheel of the fourth worm gear module, and the worm of the third worm gear module is connected to the worm of the fourth worm gear module.

4. The disassembly and assembly device for a hot-dip zinc electromagnetic induction heater according to claim 3, characterized in that, The worm of the first worm gear module is connected to the worm of the second worm gear module through a first connecting shaft. One end of the first connecting shaft is connected to the worm of the first worm gear module through a coupling, and the other end of the first connecting shaft is connected to the worm of the second worm gear module through a coupling. The worm of the third worm gear module is connected to the worm of the fourth worm gear module via a second connecting shaft. One end of the second connecting shaft is connected to the worm of the third worm gear module via a coupling, and the other end of the second connecting shaft is connected to the worm of the fourth worm gear module via a coupling.

5. The disassembly and assembly device for a hot-dip zinc electromagnetic induction heater according to claim 1, characterized in that, The second driving mechanism includes a second driving device, a second transmission assembly, a first horizontal screw, and a second horizontal screw, all disposed on the lifting platform. The first horizontal screw and the second horizontal screw are rotatably disposed on both sides of the lifting platform. The second driving device is connected to the first horizontal screw and the second horizontal screw via the second transmission assembly, and the second driving device can synchronously drive the first horizontal screw and the second horizontal screw to rotate via the second transmission assembly. One end of the push-pull rod is threadedly connected to the first horizontal screw, and the other end of the push-pull rod is threadedly connected to the second horizontal screw.

6. The disassembly and assembly device for a hot-dip zinc electromagnetic induction heater according to claim 5, characterized in that, The second drive device includes a second drive motor, and the second transmission assembly includes a fourth T-type reducer, a fifth worm gear module, and a sixth worm gear module. The fourth T-type reducer includes an input shaft and two output shafts. The first horizontal screw is connected to the worm wheel of the fifth worm gear module, and the second horizontal screw is connected to the worm wheel of the sixth worm gear module. The second drive motor is connected to the input shaft of the fourth T-type reducer, and the two output shafts of the fourth T-type reducer are respectively connected to the worm of the fifth worm gear module and the worm of the sixth worm gear module.

7. The disassembly and assembly device for a hot-dip zinc electromagnetic induction heater according to claim 1, characterized in that, The walking mechanism is a roller.