Intelligent control system for induction heating of hammerhead

The intelligent induction heating control system enables gradient heating of the hammerhead from top to bottom, solving the problem of uneven hardness and toughness of the hammerhead and extending its service life.

CN120519685BActive Publication Date: 2026-01-30ZHEJIANG HUASHENG METAL PROD CO LTD
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Patent Information

Application Number
CN202510659732.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-05-21
Publication Date
2026-01-30
Estimated Expiration
2045-05-21

AI Technical Summary

Technical Problem

The existing hammerheads cannot achieve top-to-bottom zone control during the heat treatment process, resulting in uneven hardness and toughness at the hammerhead head, which affects the service life.

Method used

The system employs an induction heating intelligent control system. The hammer head is held in place by a moving trolley and immersed in water to maintain a low temperature. At the same time, a heating isolation frame and a linkage mechanism are used to achieve gradient heating from the top to the bottom of the hammer head, ensuring that the hardness of the bottom of the hammer head matches the toughness of the top.

Benefits of technology

It improves the service life of the hammerhead, avoids breakage due to insufficient toughness at the top, and enhances the overall uniformity of the hammerhead's performance.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

This invention discloses an intelligent induction heating control system for a hammerhead, comprising a mobile trolley for immersing, clamping, and moving the bottom of the hammerhead in water, and two heating systems disposed on both sides of a heating space. The two heating systems automatically adjust the angle of the heating devices during advancement. This application immerses the bottom of the hammerhead in water and heats the top of the hammerhead to ensure the hardness of the bottom while increasing the toughness of the top, preventing breakage during impact. Furthermore, a propulsion mechanism drives the electromagnetic heating device to approach and heat the hammerhead, continuously heating it during the advancement process. During heating, the angle of the electromagnetic heating device is gradually adjusted according to the mounting frame, causing the heating amplitude from top to bottom of the hammerhead to decrease progressively. This results in a structure where the impact area at the top of the hammerhead exhibits decreasing toughness and increasing hardness, significantly improving the hammerhead's service life.
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Description

Technical Field

[0001] This invention relates to the field of hammerhead heat treatment, and more particularly to an intelligent control system for induction heating of hammerheads. Background Technology

[0002] The hammerhead is the core component of a crusher. It uses centrifugal force generated by high-speed rotation to impact, shear, and grind materials, achieving the crushing effect. It is typically made of wear-resistant materials such as high-manganese steel, high-chromium cast iron, or alloy steel, and comes in various shapes. It is mounted on the rotor for easy replacement and maintenance. Hammerheads wear relatively quickly, especially when crushing high-hardness materials, therefore regular inspection and timely replacement are necessary.

[0003] As described in the background of patent application CN202411704476.3, the current manufacturing process for an integrated dual-hardness hammerhead involves pouring molten steel into a sand mold to form a hammerhead casting. The hammerhead as a whole is first heated, and then the head is separately quenched and tempered to give the head good hardness and the handle good toughness. In this way, the hardness and toughness of the hammerhead's handle and head are different to meet the hammerhead's operational requirements. However, while the hammerhead obtained using this manufacturing method has good hardness, its toughness is inconsistent, which can cause cracks during prolonged use, ultimately leading to hammerhead damage and significantly shortening its service life.

[0004] During the heat treatment process, the hammerhead achieves a gradient effect in hardness and toughness by decreasing the temperature and heating time from top to bottom, which can meet the crushing requirements and extend its service life. However, the aforementioned patent uses magnetic coils for heating, which obviously cannot achieve the effect of zoned control from top to bottom. Summary of the Invention

[0005] To address the shortcomings of existing technologies that cannot provide gradient heating to improve the performance of different parts of the hammerhead, this invention provides an intelligent induction heating control system for the hammerhead.

[0006] The technical solution adopted by the present invention to solve the above-mentioned technical problems is as follows:

[0007] The intelligent control system for induction heating of the hammerhead includes,

[0008] A mobile trolley is equipped with a water tank and a clamping mechanism for holding the hammer head inside the water tank. The mechanism is used to hold the bottom part of the hammer head and immerse it in water to keep the bottom of the hammer head at a low temperature.

[0009] The heating system comprises two sets symmetrically arranged on the left and right sides, including:

[0010] Heated partitions are used to isolate spaces and create heated zones.

[0011] A telescopic mechanism is mounted on the isolation frame, with its output end penetrating the isolation frame and extending into the heating area;

[0012] A movable plate is located at the output end of the telescopic mechanism and moves horizontally within the heating area;

[0013] A retraction mechanism, which is located on the upper side of the movable plate and has a retraction rod that retracts under pressure;

[0014] The mounting bracket has its top side hinged to the retractable rod;

[0015] The linkage mechanism includes two sets symmetrically arranged front and rear. Each set includes a first link hinged to the lower side of the moving plate, a second link and a third link coaxially hinged to the first link, the second link hinged to the retracting rod, and the third link hinged to the bottom side of the mounting frame.

[0016] A heating mechanism, comprising a heating device mounted on a mounting bracket;

[0017] Pressure sensors are mounted on the top and bottom sides of the mounting bracket;

[0018] When the mounting bracket is initially tilted and the telescopic mechanism drives the moving plate to move towards the center of the heating area, the pressure sensor on the top side of the mounting bracket senses the pressure and provides feedback to activate the heating mechanism to start heating. At the same time, the moving plate continues to move and drives the connecting rod to move until the bottom of the mounting bracket is in contact with the hammer head. At this time, the pressure sensor on the bottom side senses the pressure. When the pressure value exceeds the preset threshold, the telescopic mechanism stops moving and remains in place for a certain period of time to allow for heating. In the initial state of the mounting bracket, the first and third connecting rods are bent upward to form an inverted V-shaped structure, and the second connecting rod and the retraction rod form an acute angle.

[0019] Preferably, the threshold value of the pressure sensor on the top side of the mounting bracket is lower than the threshold value of the pressure sensor on the bottom side.

[0020] Preferably, the heating system also includes a first controller and a temperature sensor. The temperature sensor is mounted on a mounting bracket, and the first controller is electrically connected to the temperature sensor, the pressure sensor, and the telescopic mechanism for unified control.

[0021] Preferably, the telescopic mechanism is a telescopic cylinder or an electric push rod.

[0022] Preferably, the retraction mechanism includes a sleeve disposed on a movable plate, a first sliding plate disposed inside the sleeve, a second sliding plate disposed inside the sleeve, and a spring disposed inside the sleeve and located between the first and second sliding plates. The spring is a spring spring or a gas spring. The first sliding plate has threaded posts on both sides, and the sleeve sidewall has two axial slotted holes for the threaded posts to extend out. The threaded posts are provided with locking nuts for locking the first sliding plate. The retraction rod is disposed on the second movable plate, and the second movable plate passes through the sleeve and extends out.

[0023] Preferably, the movable plate is also provided with guide posts, and the movable plate is slidably mounted on the guide posts.

[0024] Preferably, the ground is provided with a track for the movement of the mobile trolley, the mobile trolley is set on the track and moves along the track, the top of the mobile trolley is provided with a water tank, and the clamping mechanism is two telescopic clamps set on the left and right sides of the water tank.

[0025] As a preferred option, the bottom of the mobile trolley is also equipped with an installation platform, on which a water tank and a water pump are installed. The water tank, pump and water trough are connected by pipelines to form a circulating water circuit.

[0026] Preferably, a second controller is also provided on the mounting platform, and a Hall sensor and a magnet are provided between the track and the moving trolley to sense the stop position. The Hall sensor is electrically connected to the second controller.

[0027] Preferably, an electric regulating valve is installed at the pipeline between the water tank and the water tank. An electronic water level gauge and a second temperature sensor are installed in the water tank. The electronic water level gauge, the second temperature sensor, and the electric regulating valve are electrically connected to a second controller. The electronic water level gauge detects the water level in the water tank, while the second temperature sensor senses the temperature of the water in the water tank and feeds it back to the second controller. The second controller controls the opening of the electric regulating valve and the speed of the pump to regulate the water level in the water tank and the circulation speed.

[0028] Compared with the prior art, the advantages of this invention are as follows: This application immerses the bottom of the hammer head in water and heats the top of the hammer head to ensure the hardness of the bottom of the hammer head while improving the toughness of the top position to prevent breakage during impact. In addition, by setting up a propulsion mechanism to drive the electromagnetic heating device to approach and heat the hammer head, the hammer head is continuously heated during the propulsion process. During the heating process, the angle of the electromagnetic heating device is gradually adjusted according to the mounting frame, so that the heating amplitude of the hammer head decreases from top to bottom. This results in a structure in which the toughness of the impact part of the hammer head decreases and the hardness increases, which greatly improves the service life of the hammer head. Attached Figure Description

[0029] The present invention will be further described in detail below with reference to the accompanying drawings and preferred embodiments. However, those skilled in the art will understand that these drawings are drawn only for the purpose of explaining the preferred embodiments and therefore should not be construed as limiting the scope of the invention. Furthermore, unless specifically indicated, the drawings are only schematic representations of the composition or structure of the described objects and may contain exaggerated depictions, and the drawings are not necessarily drawn to scale.

[0030] Figure 1 This is the front view of this application;

[0031] Figure 2This is a perspective view of the present application;

[0032] Figure 3 This is a 3D diagram of a linkage mechanism;

[0033] Figure 4 This is a sectional view of the retraction mechanism;

[0034] Figure 5 This is a 3D view of the moving car (top view).

[0035] Figure 6 This is a 3D view of the moving car (bottom view).

[0036] In the diagram: 10. Heating isolation frame; 101. Heating area; 20. Heating system; 201. Telescopic mechanism; 202. Moving plate; 203. Linkage mechanism; 203. First link; 2032. Second link; 2033. Third link; 2034. Mounting frame; 204. Retraction mechanism; 2041. Sleeve; 20411. Strip hole; 2042. Retraction rod; 2043. First sliding plate; 20431. Threaded column; 2044. Locking nut; 2045. Second sliding plate; 2046. Spring; 205. Moving trolley; 2051. Water tank; 2052. Mounting platform; 2053. Clamping mechanism; 20531. Telescopic clamping platform; 2054. Water tank; 2055. Pump; 2056. Electric regulating valve; 206. Heating device; 30. Track. Detailed Implementation

[0037] Preferred embodiments of the present invention will now be described in detail with reference to the accompanying drawings. Those skilled in the art will appreciate that these descriptions are merely descriptive and exemplary and should not be construed as limiting the scope of protection of the present invention.

[0038] It should be noted that similar labels in the following figures indicate similar items; therefore, once an item is defined in one figure, it may not be further defined and explained in subsequent figures.

[0039] Example 1:

[0040] This embodiment mainly describes the title of the intelligent control system for induction heating of the hammer head, as follows:

[0041] Intelligent control system for induction heating of hammerhead, such as Figure 1-6 As shown, including,

[0042] The mobile trolley 205 is equipped with a water tank 2051 and a clamping mechanism 2053 for clamping the hammer head is provided in the water tank 2051. The mechanism is used to clamp the bottom part of the hammer head and immerse it in water to keep the bottom of the hammer head at a low temperature.

[0043] Heating system 20, comprising two sets symmetrically arranged on the left and right, including:

[0044] A heated isolation frame 10 is used to isolate a space to form a heated zone 101;

[0045] Telescopic mechanism 201 is mounted on the isolation frame and its output end passes through the heating isolation frame 10 and extends into the heating area 101;

[0046] The movable plate 202 is located at the output end of the telescopic mechanism 201 and moves horizontally within the heating zone 101.

[0047] The retraction mechanism 204 is disposed on the upper side of the movable plate 202 and has a retraction rod 2042 that retracts under pressure;

[0048] Mounting bracket 2034, the top side of which is hinged to retracting rod 2042;

[0049] The linkage mechanism 203 includes two sets symmetrically arranged front and rear. Each set includes a first link 2031 hinged to the lower side of the movable plate 202, a second link 2032 and a third link 2033 coaxially hinged to the first link 2031. The second link 2032 is hinged to the retracting rod 2042, and the third link 2033 is hinged to the bottom side of the mounting frame 2034.

[0050] The heating mechanism includes a heating device 206 disposed on the mounting bracket 2034, wherein the heating device 206 is an electromagnetic heating coil;

[0051] Pressure sensors are mounted on the top and bottom sides of mounting bracket 2034;

[0052] When the mounting bracket 2034 is initially tilted and the telescopic mechanism 201 drives the moving plate 202 to move towards the center of the heating area 101, the pressure sensor on the top side of the mounting bracket 2034 senses the pressure and provides feedback to open the heating mechanism to start heating. At the same time, the moving plate 202 continues to move and drives the connecting rod to move until the bottom of the mounting bracket 2034 is in contact with the hammer. At this time, the pressure sensor on the bottom side senses the pressure. When the pressure value exceeds the preset threshold, the telescopic mechanism 201 stops moving and remains for a certain period of time for heating. In the initial state of the mounting bracket 2034, the first connecting rod 2031 and the third connecting rod 2033 are bent upward to form an inverted V-shaped structure and the second connecting rod 2032 forms an acute angle with the retracting rod 2042.

[0053] Preferably, the threshold value of the pressure sensor on the top side of the mounting bracket 2034 is lower than the threshold value of the pressure sensor on the bottom side. Since the retraction rod 2042 has a retraction travel space, the threshold value of the pressure sensor on the top side needs to be smaller.

[0054] Preferably, the heating system 20 also includes a first controller and a temperature sensor. The temperature sensor is mounted on the mounting bracket 2034, and the first controller is electrically connected to the temperature sensor, the pressure sensor, and the telescopic mechanism 201 for unified control.

[0055] Preferably, the telescopic mechanism 201 is a telescopic cylinder or an electric push rod. During operation, the extension and retraction stroke and the time required for that stroke are set. When the pressure sensor on the upper side sends a feedback signal, the extension and retraction speed is slowed down and the device extends slowly. After the pressure sensor on the lower side stops sending a feedback signal, the device stops for a period of time until heating is complete, and then the heating device 206 is turned off and the device retracts.

[0056] Preferably, the retraction mechanism 204 includes a sleeve 2041 disposed on the movable plate 202, a first sliding plate 2043 disposed inside the sleeve 2041, a second sliding plate 2045 disposed inside the sleeve 2041, and a spring 2046 disposed inside the sleeve 2041 and located between the first sliding plate 2043 and the second sliding plate 2045. The spring 2046 is a spring spring or a gas spring. The first sliding plate 2043 has threaded posts 20431 on both sides, and the side wall of the sleeve 2041 has two axial slotted holes 20411 for the threaded posts 20431 to extend out. The threaded posts 20431 are provided with locking nuts 2044 for locking the first sliding plate 2043. The retraction rod 2042 is disposed on the second movable plate, and the second movable plate passes through the sleeve 2041 and extends out. In this scheme, the first sliding plate 2043 can slide along the sleeve 2041 to adjust its position. After adjusting the position, it is locked by the locking nut 2044. When its position is adjusted, the position of the retracting rod 2042 is also adjusted, which ultimately adjusts the initial angle of the mounting bracket 2034. The larger the angle between the mounting bracket 2034 and the hammer, the greater the difference in heating amplitude at different heights of the hammer, and vice versa. Therefore, by adjusting the position of the first sliding plate 2043, the purpose of adjusting the heating amplitude difference can be achieved.

[0057] Preferably, the movable plate 202 is also provided with guide posts, and the movable plate 202 is slidably disposed on the guide posts. The guide posts are used for guidance to ensure that the movable plate 202 moves in the horizontal direction.

[0058] Preferably, the ground is provided with a track 30 for the movement of the mobile trolley 205. The mobile trolley 205 is mounted on the track 30 and travels along the track 30. A water tank 2051 is provided on the top of the mobile trolley. The clamping mechanism 2053 consists of two telescopic clamping platforms 20531 located on the left and right sides of the water tank 2051. The telescopic clamping platforms 20531 move towards each other to clamp and fix the hammer head.

[0059] Preferably, the bottom of the mobile trolley 205 is also equipped with an installation platform 2052, on which a water tank 2054 and a water pump 2055 are installed. The water tank 2054, the pump 2055, and the water tank 2051 are connected by pipelines to form a circulating water circuit. In this solution, the temperature of the water in the water tank 2051 is maintained by setting up a circulating water circuit.

[0060] Preferably, the mounting platform 2052 is also equipped with a second controller, and a Hall sensor and a magnet are installed between the track 30 and the mobile trolley 205 to sense the stop position. The Hall sensor is electrically connected to the second controller. In this scheme, when the mobile trolley 205 moves to the predetermined position, the Hall sensor senses the magnet and sends a signal to the second controller, which then controls the mobile trolley 205 to brake and stop.

[0061] Preferably, an electric regulating valve is installed in the pipeline between the water tank 2051 and the water container 2054. The water tank 2051 contains an electronic water level gauge and a second temperature sensor. The electronic water level gauge, the second temperature sensor, and the electric regulating valve are electrically connected to a second controller. The electronic water level gauge detects the water level in the water tank 2051, while the second temperature sensor senses the temperature of the water in the water tank 2051 and feeds it back to the second controller. The second controller controls the opening of the electric regulating valve and the rotation speed of the pump 2055 to regulate the water level and circulation speed in the water tank 2051. This solution controls the water temperature and water level in the water tank 2051 simultaneously based on the signal feedback from the electronic water level gauge and the second temperature sensor, through the electric regulating valve control loop, and through the pump 2055 control path, ensuring that the immersion height of the hammerhead bottom is within a preset range, and that the temperature of the hammerhead bottom is within a reasonable range. In practical use, an electric regulating valve can be installed in the pipeline between the pump 2055 and the water tank 2051 to regulate the flow rate.

[0062] The foregoing has provided a detailed description of the titles provided in this invention. Specific examples have been used to illustrate the principles and implementation methods of this invention. The descriptions of the above embodiments are only for the purpose of helping to understand this invention and its core ideas. It should be noted that for those skilled in the art, several improvements and modifications can be made to this invention without departing from the principles of this invention, and these improvements and modifications also fall within the protection scope of the claims of this invention.

Claims

1. An induction heating intelligent control system for a hammer head, characterized in that, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

2. The induction heating intelligent control system for a hammer head of claim 1, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

3. The induction heating smart control system for a hammer head of claim 1, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

4. The induction heating smart control system for a hammer head of claim 1, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

5. The induction heating intelligent control system for a hammer head of claim 1, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

6. The induction heating intelligent control system for a hammer head of claim 1, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

7. The inductive heating smart control system for a hammer head of claim 3, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

8. The inductive heating smart control system for a hammer head of claim 3, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor.

9. The inductive heating smart control system for a hammer head of claim 8, wherein, The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The utility model relates to a hammer head heating device, which comprises a moving trolley, a water tank arranged on the moving trolley, a clamping mechanism arranged in the water tank for clamping a hammer head, a heating system, a heating isolation frame, a telescopic mechanism, a moving plate, a retraction mechanism, a mounting frame, a connecting rod mechanism, a heating mechanism, a pressure sensor, and a temperature sensor. The 10. The inductive heating smart control system for a hammer head of claim 9, wherein, The pipeline between the sink and the water tank is provided with an electric regulating valve, the sink is provided with an electronic water level gauge and a second temperature sensor, the electronic water level gauge, the second temperature sensor and the electric regulating valve are electrically connected with a second controller, the electronic water level gauge detects the water level in the sink, at the same time the second temperature sensor senses the temperature of the water in the sink and feeds back to the second controller, the second controller controls the opening of the electric regulating valve so as to adjust the water level in the sink and the circulating speed together with the rotating speed of the pump.

Citation Information

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