Continuously moving electromagnetic wave descaling device

By designing an electromagnetic wave descaling device that uses components such as worm gears and worm wheels, the wear problem of fixed component positions under different pipe sizes has been solved, enabling flexible adjustment and efficient cleaning of the device, reducing costs and improving versatility.

CN224559535UActive Publication Date: 2026-07-28SHANGHAI YUANDI INTELLIGENT TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
SHANGHAI YUANDI INTELLIGENT TECH CO LTD
Filing Date
2025-07-31
Publication Date
2026-07-28

AI Technical Summary

Technical Problem

Existing electromagnetic descaling devices have fixed component positions when dealing with different types of pipelines, which leads to wear and damage and reduces applicability. Users need to prepare multiple specifications of devices, which increases procurement costs and inventory management difficulty.

Method used

A continuously moving electromagnetic wave descaling device was designed. Through the cooperation of components such as worm gear, worm wheel, gear and rotating wheel, the device shell can be flexibly adjusted to adapt to different pipe sizes, reduce wear caused by relatively fixed component positions, and adopt a movable mechanism and moving wheel structure to increase friction to stabilize the movement of the device on the pipeline.

Benefits of technology

This allows the device to adapt flexibly to different pipe sizes, reducing wear, lowering procurement costs, and improving the efficiency and versatility of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of electromagnetic wave descaling, and disclose a continuous movement's electromagnetic wave descaling device, including device shell still have worm and movable mechanism, the inside movable mechanism of device shell is provided with the activity of control device shell, the inside rotationally connected of device shell has the worm, the outside of worm has the worm wheel, the top fixed connection of worm has first knob, the inside fixed connection of worm wheel has first gear, first sliding block sliding connection is in the inside of device shell, the inside fixed shell is provided with the electromagnetic coil body. According to the specific size of different pipeline flexible adjustment, by adjusting fixed shell to the best position, reduced the continuous movement, the position of internal component is relatively fixed, make the whole mobile device become limited, solved for different pipeline and need to reserve the cost of multiple descaling device, also improved the use efficiency of equipment, let a set of device can be used in multiple scenes, greatly expand its application range.
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Description

Technical Field

[0001] This utility model relates to the field of electromagnetic wave descaling technology, and in particular to a continuously moving electromagnetic wave descaling device. Background Technology

[0002] Electromagnetic wave descaling devices, as a highly efficient and environmentally friendly descaling method, have gradually gained widespread attention and application in various industries. The basic principle of this device is to use electromagnetic waves of a specific frequency to act on the water flow and scale layer inside the pipe in a non-contact manner, thereby achieving the purpose of descaling.

[0003] In existing technologies, electromagnetic wave descaling devices work by moving outside the pipe, emitting electromagnetic waves that penetrate the pipe wall, causing scale to loosen, fall off, and be discharged with the flowing water. However, in actual use, pipes come in various models and sizes, and existing electromagnetic wave descaling devices typically have fixed opening sizes. They cannot be adjusted according to the actual pipe dimensions during continuous movement. This means that when dealing with different pipe models, the internal components remain relatively fixed in position, and movement causes friction between these components and the pipe's outer wall, resulting in wear and damage. This reduces the device's applicability. To clean pipes of different sizes, users may need to prepare multiple devices of different specifications to meet the needs of different pipes, ultimately increasing procurement costs and inventory management difficulties. Therefore, an improved, continuously moving electromagnetic wave descaling device is needed to solve these problems. Utility Model Content

[0004] To overcome the problem that existing descaling devices can be used for mobile descaling, but different pipe models and sizes exist, and the positions of components such as coils are relatively fixed, making continuous movement inconvenient.

[0005] The technical solution of this utility model is as follows: a continuously moving electromagnetic wave descaling device, including a device housing, a worm gear and a movable mechanism. The movable mechanism controlling the movement of the device housing is located inside the device housing. A worm gear is rotatably connected inside the device housing, and a worm wheel meshes with the outside of the worm gear. A first knob is fixedly connected to the top of the worm gear. A first gear is fixedly connected inside the worm wheel and rotatably connected inside the device housing. A rotating wheel meshes with the outside of the first gear and rotatably connects to the inside of the device housing. A first fixed rod is slidably connected inside the rotating wheel. A first sliding block is fixedly connected to the outside of the first fixed rod and slidably connected to the inner side of the device housing. A fixed outer shell is fixedly connected to the outside of the first sliding block, and an electromagnetic coil body is located inside the fixed outer shell.

[0006] Preferably, the outer casing of the device has a groove at the relative position of the rotating wheel, and the rotating wheel is rotatably connected inside the groove.

[0007] Preferably, the rotating wheel has a guide groove at the relative position of the first fixed rod, and the first fixed rod is slidably connected inside the guide groove.

[0008] Preferably, the outer surface of the device housing is threaded with a second knob, the outer surface of the device housing is slidably connected with a sliding plate, the outer surface of the sliding plate is fixedly connected with a second fixing rod, the inner surface of the device housing is fixedly connected with a slide rail, the inner surface of the slide rail is slidably connected with a second sliding block, the inner surface of the second sliding block is rotatably connected with a limit wheel, the outer surface of the second sliding block is fixedly connected with a fixing block, the inner side of the second fixing rod is fixedly connected with a third fixing rod, and the third fixing rod is slidably connected inside the fixing block.

[0009] Preferably, the outer casing of the device has a groove at the relative position of the sliding plate, and the sliding plate is slidably connected inside the groove.

[0010] Preferably, the fixing block has a groove at the relative position of the third fixing rod, and the third fixing rod is slidably connected inside the groove.

[0011] Preferably, the moving mechanism includes a first telescopic rod, which is fixedly connected to the inside of the device housing. A first connecting frame is fixedly connected to the bottom of the first telescopic rod, and a movable wheel body is provided inside the first connecting frame. A second telescopic rod is fixedly connected to the inside of the device housing, and a second connecting frame is fixedly connected to the bottom of the second telescopic rod. An anti-slip block is fixedly connected inside the second connecting frame.

[0012] The beneficial effects of this utility model are as follows: It allows for flexible adjustment according to the specific dimensions of different pipes. By adjusting the fixed outer shell to the optimal position, it reduces the limitation of the overall mobile device due to the relatively fixed positions of internal components during continuous movement. This solves the cost problem of needing to stock multiple descaling devices for different pipes and improves the efficiency of equipment use. It allows one device to be used in multiple scenarios, greatly expanding its application range. This avoids the problem that existing descaling devices, when used for mobile descaling, are not suitable for continuous movement due to the different pipe models and sizes and the relatively fixed positions of components such as coils. Attached Figure Description

[0013] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0014] Figure 2 This is a cross-sectional view of the outer casing of the device of this utility model;

[0015] Figure 3 This is an exploded structural diagram of the worm gear and its connected components of this utility model;

[0016] Figure 4 This is an exploded structural diagram of the rotating wheel and its connected components of this utility model;

[0017] Figure 5 This is a schematic diagram of the sliding plate and its connected components of this utility model;

[0018] Figure 6 This is an exploded structural diagram of the second sliding block and its connected components of this utility model;

[0019] Figure 7 This is a schematic diagram of the structure of the first telescopic rod and its connected components of the movable mechanism of this utility model;

[0020] Figure 8 This is a schematic diagram of the second telescopic rod of the movable mechanism of this utility model and its connected components.

[0021] Explanation of reference numerals in the attached drawings: 1. Device housing; 21. Worm gear; 22. Worm wheel; 23. First knob; 24. First gear; 25. Rotating wheel; 26. First fixed rod; 27. First sliding block; 28. Fixed housing; 29. ​​Electromagnetic coil body; 210. Second knob; 211. Sliding plate; 212. Second fixed rod; 213. Slide rail; 214. Second sliding block; 215. Limiting wheel; 216. Fixed block; 217. Third fixed rod; 31. First telescopic rod; 32. First connecting frame; 33. Moving wheel body; 34. Second telescopic rod; 35. Second connecting frame; 36. Anti-slip block. Detailed Implementation

[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0023] Please see Figure 1 - Figure 8This utility model provides an embodiment of a continuously moving electromagnetic wave descaling device, including a device housing 1, a worm gear 21, and a movable mechanism. The movable mechanism controls the movement of the device housing 1 inside the housing 1. The worm gear 21 is rotatably connected inside the housing 1, and a worm wheel 22 meshes with the outside of the worm gear 21. A first knob 23 is fixedly connected to the top of the worm gear 21. A first gear 24 is fixedly connected inside the worm wheel 22 and rotatably connected inside the housing 1. A rotating wheel 25 meshes with the outside of the first gear 24 and is rotatably connected inside the housing 1. A first fixed rod 26 is slidably connected inside the rotating wheel 25, and a first sliding block 27 is fixedly connected to the outside of the first fixed rod 26. The first sliding block 27 is slidably connected to the inner side of the device housing 1. A fixed housing 28 is fixedly connected to the outside of the first sliding block 27. An electromagnetic coil body 29 is disposed inside the fixed housing 28. In use, rotating the first knob 23 drives the worm gear 21 to rotate, which in turn drives the worm wheel 22. The worm wheel 22, in turn, drives the rotating wheel 25 to rotate via the first gear 24. The rotating wheel 25, in turn, drives the first sliding block 27 to slide via the first fixed rod 26, thereby adjusting the position of the fixed housing 28. A groove is provided in the device housing 1 at the relative position of the rotating wheel 25. The rotating wheel 25 is rotatably connected inside the groove, which restricts the rotation of the rotating wheel 25 and prevents it from interfering with the device's external components during rotation. When the housing 1 detaches, the rotating wheel 25 has a guide groove at the relative position of the first fixed rod 26. The first fixed rod 26 is slidably connected inside the guide groove. The guide groove restricts the first fixed rod 26, preventing it from detaching from the rotating wheel 25. At the same time, the first fixed rod 26 cooperates with the rotating wheel 25 to adjust the sliding of the first sliding block 27. The outer surface of the housing 1 is threaded with a second knob 210. The outer surface of the housing 1 is slidably connected with a sliding plate 211. The outer surface of the sliding plate 211 is fixedly connected with a second fixed rod 212. The inner surface of the housing 1 is fixedly connected with a slide rail 213. The inner surface of the slide rail 213 is slidably connected with a second sliding block 214. The inner surface of the second sliding block 214 is rotatably connected with a limit wheel 215. The external of the second sliding block 214 is fixedly connected to a fixing block 216, and the internal side of the second fixing rod 212 is fixedly connected to a third fixing rod 217. The third fixing rod 217 is slidably connected inside the fixing block 216 and contacts the pipe through a limiting wheel 215, increasing the lateral friction between the device housing 1 and the water pipe, preventing the device housing 1 from rotating outside the water pipe and affecting the operation of the electromagnetic coil body 29 to clean scale. The device housing 1 has a sliding groove at the relative position of the sliding plate 211, and the sliding plate 211 is slidably connected inside the sliding groove. The sliding groove restricts the sliding of the sliding plate 211, preventing it from detaching from the device housing 1 or tilting when sliding, thus avoiding affecting the position of the second fixing rod 212 and the third fixing rod 217.The fixing block 216 has a groove at a position opposite to the third fixing rod 217. The third fixing rod 217 is slidably connected inside the groove. The groove restricts the position of the third fixing rod 217, preventing it from disengaging from the fixing block 216. Simultaneously, the cooperation between the third fixing rod 217 and the groove controls the sliding of the second sliding block 214.

[0024] Please see Figure 2 , Figure 7 - Figure 8 In this embodiment, the movable mechanism includes a first telescopic rod 31, which is fixedly connected to the inside of the device housing 1. A first connecting frame 32 is fixedly connected to the bottom of the first telescopic rod 31. A movable wheel body 33 is provided inside the first connecting frame 32. A second telescopic rod 34 is fixedly connected to the inside of the device housing 1. A second connecting frame 35 is fixedly connected to the bottom of the second telescopic rod 34. An anti-sliding block 36 is fixedly connected inside the second connecting frame 35. The movable wheel body 33 drives the entire device housing 1 to move, thereby continuously moving and cleaning the scale on the pipe. During cleaning, the anti-sliding block 36 increases the linear friction between the device housing 1 and the water pipe support through water pipe contact, further preventing the device housing 1 from moving when the electromagnetic coil body 29 is working, thus affecting the descaling work.

[0025] During operation, the entire outer casing 1 of the device is installed outside the pipe. Depending on the size of the pipe, the first knob 23 is rotated. Rotating the first knob 23 drives the worm gear 21 to rotate. The worm gear 21, in conjunction with the worm wheel 22, drives the first gear 24 to rotate. The first gear 24, in turn, drives the rotating wheel 25 to rotate. As the rotating wheel 25 rotates, the first fixed rod 26 slides in the guide groove inside the rotating wheel 25, causing the first sliding block 27 to slide inwards, thereby adjusting the position of the fixed outer casing 28. Then, the second knob 210 is rotated. Rotating the second knob 210 causes the sliding plate 211 to slide outside the outer casing 1. The sliding plate 211, through the second fixed rod 212, drives the third fixed rod 217 to move. As the third fixed rod 217 moves, in conjunction with the fixed block 216, it drives the second sliding block 214 to slide inside the slide rail 213. The device moves, thereby adjusting the contact between the limiting wheel 215 and the pipe, increasing the lateral friction between them, and preventing the outer casing 1 of the device from rotating outside the water pipe during movement. When moving, the first connecting frame 32 is moved by the first telescopic rod 31, which drives the moving wheel body 33 to contact the pipe. Then, the moving wheel body 33 drives the entire outer casing 1 to move to the desired position. When descaling is required, the second telescopic rod 34 works, pushing the second connecting frame 35 downward, which drives the anti-sliding block 36 to contact the water pipe, increasing the linear friction between the entire outer casing 1 and the water pipe. Then, the electromagnetic coil body 29 inside the fixed outer casing 28 works, emitting electromagnetic waves. The electromagnetic waves pass through the pipe to clean the scale inside. After cleaning, the second telescopic rod 34 drives the anti-sliding block 36 to rise, and then the moving wheel body 33 works to move continuously.

[0026] Through the above steps, flexible adjustments can be made according to the specific dimensions of different pipes. By adjusting the fixed outer shell 28 to the optimal position, the problem of existing descaling devices being mobile for descaling, where different pipe models have different sizes and the positions of components such as coils are relatively fixed and not convenient for continuous movement, can be solved.

Claims

1. A continuously moving electromagnetic wave descaling device, comprising a device housing (1), characterized in that: It also includes a worm (21) and a moving mechanism. The moving mechanism that controls the movement of the device housing (1) is provided inside the device housing (1). The worm (21) is rotatably connected inside the device housing (1). A worm wheel (22) meshes with the outside of the worm (21). A first knob (23) is fixedly connected to the top of the worm (21). A first gear (24) is fixedly connected inside the worm wheel (22). The first gear (24) is rotatably connected inside the device housing (1). A rotating wheel (25) meshes with the outside of the first gear (24). The rotating wheel (25) is rotatably connected inside the device housing (1). A first fixed rod (26) is slidably connected inside the rotating wheel (25). A first sliding block (27) is fixedly connected to the outside of the first fixed rod (26). The first sliding block (27) is slidably connected to the inside of the device housing (1). A fixed housing (28) is fixedly connected to the outside of the first sliding block (27). An electromagnetic coil body (29) is provided inside the fixed housing (28).

2. The continuously moving electromagnetic wave descaling device according to claim 1, characterized in that: The outer casing (1) of the device has a groove at the relative position of the rotating wheel (25), and the rotating wheel (25) is rotatably connected inside the groove.

3. The continuously moving electromagnetic wave descaling device according to claim 1, characterized in that: The rotating wheel (25) has a guide groove at the relative position of the first fixed rod (26), and the first fixed rod (26) is slidably connected inside the guide groove.

4. The continuously moving electromagnetic wave descaling device according to claim 1, characterized in that: The outer shell (1) of the device is threaded with a second knob (210), the outer shell (1) of the device is slidably connected with a sliding plate (211), the outer shell (211) of the device is fixedly connected with a second fixing rod (212), the outer shell (1) of the device is fixedly connected with a slide rail (213), the slide rail (213) of the device is slidably connected with a second sliding block (214), the second sliding block (214) of the device is rotatably connected with a limit wheel (215), the outer shell (214) of the device is fixedly connected with a fixing block (216), the inner side of the second fixing rod (212) is fixedly connected with a third fixing rod (217), and the third fixing rod (217) is slidably connected inside the fixing block (216).

5. The continuously moving electromagnetic wave descaling device according to claim 3, characterized in that: The outer casing (1) of the device has a groove at the relative position of the sliding plate (211), and the sliding plate (211) is slidably connected inside the groove.

6. The continuously moving electromagnetic wave descaling device according to claim 3, characterized in that: The fixing block (216) has a groove at the relative position of the third fixing rod (217), and the third fixing rod (217) is slidably connected inside the groove.

7. The continuously moving electromagnetic wave descaling device according to claim 1, characterized in that: The active mechanism includes a first telescopic rod (31), which is fixedly connected to the inside of the device housing (1). A first connecting frame (32) is fixedly connected to the bottom of the first telescopic rod (31). A movable wheel body (33) is provided inside the first connecting frame (32). A second telescopic rod (34) is fixedly connected to the inside of the device housing (1). A second connecting frame (35) is fixedly connected to the bottom of the second telescopic rod (34). An anti-slip block (36) is fixedly connected inside the second connecting frame (35).