An intelligent casting device with eddy current heating function for a detachable casting mold

Through the eddy current heating and automated control of intelligent casting equipment, the waste of resources and safety problems in the metal flow transfer process are solved, and an efficient and safe casting process is achieved.

CN115519107BActive Publication Date: 2025-07-22SHANXI PINGYAO COUNTY SHENGXIN CASTING CO LTD
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Patent Information

Application Number
CN202210223476.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-03-09
Publication Date
2025-07-22
Estimated Expiration
2042-03-09

AI Technical Summary

Technical Problem

During the existing casting process, metal flow is prone to temperature loss and spilling during the transfer process, resulting in waste of resources and accidental injury of personnel. Moreover, the casting process is not easy to align with the feed hole, which is cumbersome and has low safety.

Method used

Intelligent casting equipment with detachable casting molds is adopted, and the metal rods are heated using a vortex heating module. Combined with propulsion, assembly and pipe transfer devices, the metal flow is automated and intelligently operated, avoiding the transfer process, and improving safety and efficiency.

Benefits of technology

Save energy, avoid metal flow and temperature loss, improve operational safety and casting efficiency, and expand the application range of casting products styles.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of casting, and in particular to an intelligent casting device with an eddy current heating function for a detachable casting mold. The technical problem is to provide an intelligent casting device with an eddy current heating function for a detachable casting mold that can perform the casting process intelligently and automatically without transferring the metal flow and improve the safety of manual operation. An intelligent casting device with an eddy current heating function for a detachable casting mold includes: mounting frames, the number of mounting frames is at least two groups and they are L-shaped. There is an external frame between one sides of the mounting frames, and an interconnecting frame is provided between the sides of the mounting frames away from the external frame. By using the eddy current heating module of the hot melting device to heat the metal rod, the present invention can not only save energy compared with traditional oven or blast furnace heating, but also enable the molten metal flow not to be transferred, avoid resource waste and accidental injury to personnel caused by the spilling of the metal flow, and also enable the metal flow to avoid excessive temperature loss too quickly.
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Description

Technical Field

[0001] The present invention relates to the field of casting, and in particular to an intelligent casting device with an eddy current heating function for a detachable casting mold. Background Art

[0002] Many metal products are produced by the casting forming process. However, in the current production process of castings, many adopt the method of melting metal wires into metal streams, and then transferring them to the pouring position area of the casting mold to pour the metal stream. However, this method has many disadvantages. For example, the metal stream is easily exposed to the air for a long time during the transfer process, with a fast heat loss rate and easy to spill, resulting in waste of resources and accidental injury to personnel. Moreover, the pouring method during the casting process is not easy to align with the feeding hole of the casting mold, and it is also easy to cause waste of resources.

[0003] In view of this, it is necessary to design an intelligent casting device with an eddy current heating function for a detachable casting mold that can eliminate the need for transferring the metal stream, perform the casting process intelligently and automatically, and improve the safety of manual operation. Summary of the Invention

[0004] In order to overcome the disadvantages of the need to transfer the metal stream, cumbersome manual operation during the casting process, and low operation safety when casting metal products, the technical problem is: to provide an intelligent casting device with an eddy current heating function for a detachable casting mold that can eliminate the need for transferring the metal stream, perform the casting process intelligently and automatically, and improve the safety of manual operation.

[0005] The technical solution of the present invention is: an intelligent casting device with an eddy current heating function for a detachable casting mold, including: a mounting frame, with at least two groups of mounting frames, and they are L-shaped. There is an external connection frame between one sides of the mounting frames, an interconnection frame between the sides of the mounting frames far from the external connection frame, a U-shaped frame between the other sides of the mounting frames. There are two mounting platforms on the U-shaped frame, and a heat dissipation sleeve is arranged between the mounting platforms; a propulsion device, which is arranged on the external connection frame and is used for parallel propulsion; an assembly device, which is arranged on the propulsion device and is used for assembling the casting mold and unloading the casting product; a hot melting device, which is arranged in the heat dissipation sleeve and is used for hot melting the casting metal rod; a pipe moving device, which is arranged at a position near the U-shaped frame on the mounting platform, and the pipe moving device cooperates with the hot melting device and is used for controlling the feeding and guiding the molten metal stream.

[0006] Further, the propulsion device includes: a horizontal plate, which is arranged at a position on the external connection frame far from the interconnection frame, and a first electric slide rail is arranged on the horizontal plate; a mounting platform, which is arranged on the moving part of the first electric slide rail, and the assembly device is installed on the mounting platform.

[0007] Further, the assembly device includes: a rotating shaft rotatably provided at a position on the side of the mounting platform away from the mounting frame, a driving motor provided at a position on the side of the mounting platform near the rotating shaft, and the output shaft of the driving motor is connected to the rotating shaft through a gear transmission; an assembly plate fixedly provided at a position on the side of the rotating shaft away from the mounting platform.

[0008] Further, the hot melting device includes: a ceramic tube provided at the heat dissipation sleeve, and an eddy current heating module is provided between the ceramic tube and the heat dissipation sleeve; a ceramic blocking frame provided at a position on the side of the ceramic tube near the U-shaped frame and located inside the ceramic tube, and the tube moving device extends into the ceramic tube and is in contact and cooperation with the ceramic blocking frame.

[0009] Further, the tube moving device includes: a second electric slide rail provided at a position on the side of the mounting table near the U-shaped frame, and a clamping frame is provided on the moving part of the second electric slide rail; a ceramic casting tube provided between the clamping frames, the ceramic casting tube extends into the ceramic tube, the ceramic casting tube blocks the ceramic tube, and the ceramic casting tube is in contact and cooperation with the ceramic blocking frame.

[0010] Further, a heat dissipation device is also included, and the heat dissipation device includes: an air pump provided at a position on the side of the mounting platform near the U-shaped frame; an air supply disc provided at the air output end of the air pump, and the air supply disc is located between the assembly plate and the mounting platform.

[0011] Further, a limiting device is also included, and the limiting device includes: a sliding sleeve slidably sleeved on the fixed part of the first electric slide rail, and a fastening member is provided on the sliding sleeve; a contact switch provided at a position on the side of the sliding sleeve near the mounting platform.

[0012] Further, a control box is also included. A control box is provided on one side of the interconnection frame. The control box includes a switching power supply, a DC-DC power module, and a microcontroller MCU. A main power switch is connected to the DC-DC power module through a circuit. The microcontroller MCU and the DC-DC power module are electrically connected. A heating switch, a blanking switch, a forward rotation button, and a reverse rotation button are electrically connected to the microcontroller MCU. The contact switch is electrically connected to the microcontroller MCU. The digital button is electrically connected to the microcontroller MCU. A 24C02 circuit is connected to the microcontroller MCU. The first electric slide rail, the second electric slide rail, the driving motor, the eddy current heating module, and the air pump are all connected to the microcontroller MCU through peripheral circuits.

[0013] The beneficial effects are:

[0014] 1. By adopting the method of heating the metal rod with the eddy current heating module of the hot melting device, the present invention can not only save energy compared with the traditional oven or air furnace heating, but also enable the molten metal flow not to need to be transferred, avoiding the waste of resources and accidental injury to personnel caused by the spilling of the metal flow, and also enabling the metal flow to avoid excessive temperature loss.

[0015] 2. By adopting the method of installing the casting mold on the assembly plate, the present invention can cast more styles of castings, improve the application range, and through the intelligent and automatic control method, can improve the intelligence and automation of casting and improve the casting efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 It is the first three-dimensional structure schematic diagram of the present invention.

[0017] Figure 2 It is the second three-dimensional structure schematic diagram of the present invention.

[0018] Figure 3 It is the third three-dimensional structure schematic diagram of the present invention.

[0019] Figure 4 It is the fourth three-dimensional structure schematic diagram of the present invention.

[0020] Figure 5 It is the fifth three-dimensional structure schematic diagram of the present invention.

[0021] Figure 6 It is the first three-dimensional structure schematic diagram of the mounting frame part of the present invention.

[0022] Figure 7 It is the second three-dimensional structure schematic diagram of the mounting frame part of the present invention.

[0023] Figure 8 It is the first three-dimensional structure schematic diagram of the propulsion device part of the present invention.

[0024] Figure 9 It is the second three-dimensional structure schematic diagram of the propulsion device part of the present invention.

[0025] Figure 10 It is the third three-dimensional structure schematic diagram of the propulsion device part of the present invention.

[0026] Figure 11 It is the fourth three-dimensional structure schematic diagram of the propulsion device part of the present invention.

[0027] Figure 12 It is the first three-dimensional structure schematic diagram of the assembly device part of the present invention.

[0028] Figure 13 It is the second three-dimensional structure schematic diagram of the assembly device part of the present invention.

[0029] Figure 14 It is the first partial three-dimensional structure diagram of the assembly device part of the present invention.

[0030] Figure 15 It is the second partial three-dimensional structure diagram of the assembly device part of the present invention.

[0031] Figure 16 It is the first three-dimensional structure diagram of the heat dissipation device part of the present invention.

[0032] Figure 17 It is the second three-dimensional structure diagram of the heat dissipation device part of the present invention.

[0033] Figure 18 It is the first three-dimensional structure diagram of the heat dissipation sleeve part of the present invention.

[0034] Figure 19 It is the second three-dimensional structure diagram of the heat dissipation sleeve part of the present invention.

[0035] Figure 20 It is the third three-dimensional structure diagram of the heat dissipation sleeve part of the present invention.

[0036] Figure 21 It is the partial three-dimensional structure diagram of the heat dissipation sleeve part of the present invention.

[0037] Figure 22 It is the first three-dimensional structure diagram of the hot melting device part of the present invention.

[0038] Figure 23 It is the second three-dimensional structure diagram of the hot melting device part of the present invention.

[0039] Figure 24 It is the first partial three-dimensional structure diagram of the hot melting device part of the present invention.

[0040] Figure 25 It is the second partial three-dimensional structure diagram of the hot melting device part of the present invention.

[0041] Figure 26 It is the three-dimensional structure diagram of the pipe transfer device of the present invention.

[0042] Figure 27 It is the circuit schematic diagram of the present invention.

[0043] Figure 28 It is the circuit block diagram of the present invention.

[0044] In the attached drawing reference numerals: 1 - mounting bracket, 2 - external bracket, 3 - interconnecting bracket, 4 - U-shaped bracket, 5 - mounting table, 6 - heat dissipation sleeve, 7 - propulsion device, 8 - assembly device, 9 - hot melting device, 10 - pipe transfer device, 71 - horizontal plate, 72 - first electric slide rail, 73 - mounting platform, 81 - rotating shaft, 82 - driving motor, 83 - assembly plate, 91 - ceramic tube, 92 - eddy current heating module, 93 - ceramic blocking bracket, 101 - second electric slide rail, 102 - clamping bracket, 103 - ceramic casting tube, 11 - heat dissipation device, 111 - air pump, 112 - air supply disc, 12 - limiting device, 121 - sliding sleeve, 122 - fastener, 123 - contact switch, 13 - control box. Detailed implementation manners

[0045] The present invention will be specifically introduced below in conjunction with the attached drawings and specific embodiments.

[0046] Embodiment 1

[0047] An intelligent casting device with an eddy current heating function for a detachable casting mold, as Figures 1 - 28 shown, includes a mounting bracket 1, an external bracket 2, an interconnecting bracket 3, a U-shaped bracket 4, a mounting table 5, a heat dissipation sleeve 6, a propulsion device 7, an assembly device 8, a hot melting device 9, a pipe transfer device 10 and a control box 13. The mounting bracket 1 is L-shaped and there are two groups. An external bracket 2 is provided between the left sides of the lower sides of the mounting brackets 1. An interconnecting bracket 3 is provided between the right sides of the mounting brackets 1. A control box 13 is provided on the right side of the interconnecting bracket 3. A U-shaped bracket 4 is provided between the right parts of the upper sides of the mounting brackets 1. Two mounting tables 5 are provided on the upper side of the U-shaped bracket 4. A heat dissipation sleeve 6 is provided between the mounting tables 5. A propulsion device 7 is provided on the upper side of the external bracket 2. The propulsion device 7 is used for parallel propulsion. An assembly device 8 is provided on the propulsion device 7. The assembly device 8 is used for assembling the casting mold and unloading the casting product. A hot melting device 9 is provided in the heat dissipation sleeve 6. The hot melting device 9 is used for hot melting the casting metal rod. A pipe transfer device 10 is provided at the lower part of the mounting table 5. The pipe transfer device 10 cooperates with the hot melting device 9. The pipe transfer device 10 is used for controlling the feeding and guiding the molten metal flow.

[0048] The propulsion device 7 includes a horizontal plate 71, a first electric slide rail 72 and a mounting platform 73. A horizontal plate 71 is provided on the upper side of the external bracket 2. A first electric slide rail 72 is provided on the upper side of the horizontal plate 71. A mounting platform 73 is provided on the moving part of the first electric slide rail 72. The assembly device 8 is installed on the mounting platform 73.

[0049] The assembly device 8 includes a rotating shaft 81, a driving motor 82 and an assembly plate 83. The rotating shaft 81 is rotatably connected to the left side of the upper part of the mounting platform 73. A driving motor 82 is provided on the left side of the mounting platform 73. The output shaft of the driving motor 82 is connected to the rotating shaft 81 through gear transmission. The assembly plate 83 is fixedly connected to the upper side of the rotating shaft 81.

[0050] The hot-melting device 9 includes a ceramic tube 91, an eddy current heating module 92 and a ceramic blocking frame 93. The ceramic tube 91 is arranged inside the heat dissipation sleeve 6, and the eddy current heating module 92 is arranged inside the heat dissipation sleeve 6. The eddy current heating module 92 is sleeved outside the ceramic tube 91. A ceramic blocking frame 93 is arranged below the interior of the ceramic tube 91. The tube moving device 10 extends into the ceramic tube 91 and is in contact and cooperation with the ceramic blocking frame 93.

[0051] The tube moving device 10 includes a second electric slide rail 101, a clamping frame 102 and a ceramic casting tube 103. The second electric slide rail 101 is arranged at the lower side position of the mounting table 5. A clamping frame 102 is arranged on the moving part of the second electric slide rail 101. A ceramic casting tube 103 is arranged between the clamping frames 102. The ceramic casting tube 103 extends into the ceramic tube 91, the ceramic casting tube 103 blocks the ceramic tube 91, and the ceramic casting tube 103 is in contact and cooperation with the ceramic blocking frame 93.

[0052] The control box 13 includes a switching power supply, a DC-DC power module and a microcontroller MCU. A main power switch is connected to the DC-DC power module through a circuit. The microcontroller MCU and the DC-DC power module are electrically connected. A heating switch, a blanking switch, a forward rotation button and a reverse rotation button are electrically connected to the microcontroller MCU. The contact switch 123 and the microcontroller MCU are electrically connected. The numeric keypad and the microcontroller MCU are electrically connected. A 24C02 circuit is connected to the microcontroller MCU. The first electric slide rail 72, the second electric slide rail 101, the drive motor 82, the eddy current heating module 92 and the air pump 111 are all connected to the microcontroller MCU through peripheral circuits.

[0053] The intelligent casting equipment with eddy current heating function of the detachable casting mold can be installed on an external platform through an external frame 2. When casting a workpiece, the workpiece casting mold can be assembled on the assembly device 8, and then the casting metal rod can be placed in the hot melting device 9. Subsequently, the intelligent casting equipment with eddy current heating function of the detachable casting mold can be powered on by turning on the main power switch on the control box 13. At this time, the forward and reverse buttons on the control box 13 can be used to control the propulsion device 7 to drive the assembly device 8 and the casting mold assembled above it to move left and right, so as to finely adjust the position of the casting mold on the assembly device 8, making the casting mold able to align with the pipe transfer device 10. Subsequently, some parameters of the intelligent casting equipment with eddy current heating function of the detachable casting mold can be adjusted through the numerical keys on the control box 13. According to the temperature factors of different metals in this environment, the required solidification time according to the temperature factors in this environment, the heat dissipation conditions of the casting mold, the surface area and volume of the casting, etc., the casting solidification time under the influence of the above factor conditions can be calculated through external calculation. According to the calculated time amount, the running time of the propulsion device 7 moving left can be adjusted through the numerical keys, so that the propulsion device 7 and the assembly device 8 can stably run until solidification after the casting is completed, enabling the assembly device 8 to directly unload the solidified casting, so as to improve the degree of automation. Moreover, the heating temperature of the hot melting device 9 can be set according to factors such as the material, surface area of the casting metal rod, and melting point of the material. This parameter can also be set for the hot melting device 9 through the numerical keys. And, according to the amount of metal flow required by the casting mold and the feeding amount of the pipe transfer device 10 per unit time, the running and staying time of the pipe transfer device 10 can be set through the numerical keys on the control box 13. After the parameters of the intelligent casting equipment with eddy current heating function of the detachable casting mold are set, the hot melting device 9 can be started by pressing the heating switch on the control box 13, and the hot melting device 9 will operate according to the input parameters, melting the casting metal rod placed in the hot melting device 9 into metal flow. At this time, the pipe transfer device 10 will block the metal flow, and the hot melting device 9 will maintain the working temperature state until the intelligent casting equipment with eddy current heating function of the detachable casting mold is powered off. At this time, the propulsion device 7 can be started by pressing the forward button on the control box 13, and the propulsion device 7 will drive the casting mold to move to the right until the feeding port part of the casting mold aligns with the pipe transfer device 10. At this time, the forward button can be released, and the pipe transfer device 10 can be controlled to work through the feeding switch on the control box 13, so that the pipe transfer device 10 feeds the metal flow in the hot melting device 9 into the casting mold. When the pipe transfer device 10 runs for the set time, the pipe transfer device 10 will stop running, and the propulsion device 7 will be automatically controlled to move to the left through the control box 13, making the propulsion device 7 drive the casting mold to move to the left for the running time within the set unit length, so that the metal flow in the casting mold can solidify during the process of moving back to the left, facilitating subsequent operations;When the propulsion device 7 runs to the left for the set time, the propulsion device 7 will also be reset. At this time, the metal flow in the casting mold has also solidified after stable operation, so that the metal flow will not solidify under unstable conditions and cause abnormal conditions in the casting mold. At this time, the control box 13 will control the assembly device 8 to rotate, so that the assembly device 8 will unload the solidified casting product in the casting mold. The unloading time is five seconds, and then the assembly device 8 will be reset. In this way, the work of a casting batch is completed; after that, the intelligent casting equipment with eddy current heating function of the detachable casting mold can be repeatedly operated as described above. ;

[0054] The time for the first electric slide rail 72 to move to the left can be set by using the digital buttons; the forward button and reverse button on the control box 13 can be used to control the first electric slide rail 72 to drive the installation platform 73 to move left and right, and the casting mold position on the assembly device 8 can be fine-tuned after the first electric slide rail 72 moves to the right and reaches the end point; when the running time of the pipe transfer device 10 is reached, the control box 13 will automatically control the first electric slide rail 72 to drive its moving parts and the installation platform 73 to move to the left for reset, and the reset time is the set time.

[0055] The casting mold can be installed on the assembly plate 83. After the first electric slide rail 72 drives the mounting platform 73 to move to the left and reset, the control box 13 will control the drive motor 82 to work, so that the drive motor 82 drives the rotating shaft 81 to rotate, thereby driving the assembly plate 83 to rotate counterclockwise, so that the casting on the assembly plate 83 is unloaded. The operation time is five seconds, and then the drive motor 82 will drive the assembly plate 83 to rotate clockwise and reset, and the control box 13 will control the drive motor 82 to stop working.

[0056] The heating temperature of the eddy current heating module 92 can be controlled by using the digital buttons; the cast metal rod can be placed in the ceramic tube 91, and after the heating switch is turned on, the eddy current heating module 92 will heat and melt the cast metal rod in the ceramic tube 91; when the pipe transferring device 10 is running, the pipe transferring device 10 will move downward to break away from the contact with the ceramic blocking frame 93, so that the metal flow in the ceramic tube 91 can be discharged through the pipe transferring device 10.

[0057] The post-operation dwell time of the second electric slide 101 can be controlled by the digital buttons; when the unloading switch is activated, the second electric slide 101 will drive the clamping frame 102 and the ceramic casting tube 103 to move downward, so that the ceramic casting tube 103 will be out of contact with the ceramic blocking frame 93, and the ceramic casting tube 103 will also maintain contact with the ceramic tube 91, at which time the metal flow in the ceramic tube 91 will flow down through the ceramic casting tube 103; when the operation dwell time of the second electric slide 101 is reached, the second electric slide 101 will move upward and re-contact the ceramic blocking frame 93 to stop unloading the ceramic tube 91.

[0058] Example 2

[0059] Based on Embodiment 1, as Figure 1 , Figure 3 , Figure 4 , Figure 8 , Figure 9 , Figure 10 , Figure 11 , Figure 13 , Figure 16 and Figure 17 shown, it further includes a heat dissipation device 11. The heat dissipation device 11 includes an air pump 111 and a gas supply plate 112. The heat dissipation device 11 is provided on the right side of the installation platform 73. The heat dissipation device 11 can quickly and stably lower the casting mold when it is necessary to replace the casting mold, avoiding manual operation. An air pump 111 is provided below the right side of the installation platform 73. The gas supply end of the air pump 111 is provided with a gas supply plate 112, and the gas supply plate 112 is located on the upper right side of the installation platform 73.

[0060] It further includes a limiting device 12. The limiting device 12 includes a sliding sleeve 121, a fastener 122, and a contact switch 123. The limiting device 12 is provided on the first electric slide rail 72. The limiting device 12 is used to limit the running position of the first electric slide rail 72 moving to the right. A sliding sleeve 121 is provided on the fixing part of the first electric slide rail 72. A fastener 122 is provided on the sliding sleeve 121, and a contact switch 123 is provided at a position on the side of the sliding sleeve 121 close to the installation platform 73.

[0061] When it is necessary to replace the casting mold, the air pump 111 can be started through the heat dissipation switch on the control box 13. The air pump 111 will supply gas to the gas supply plate 112, so that the gas supply plate 112 dissipates heat from the casting mold, enabling the temperature of the casting mold to drop rapidly, thus facilitating manual operation.

[0062] The positions of the sliding sleeve 121 and the contact switch 123 can be adjusted according to the installation position of the casting mold and the alignment of the feeding hole with the transfer pipe device 10, and the sliding sleeve 121 is fixed by the fastener 122. In this way, after the forward rotation button is started, when the installation platform 73 moves to the right and touches the contact switch 123, the first electric slide rail 72 can be directly stopped from running, so that the casting mold can be accurately aligned.

[0063] The above embodiments are only the preferred embodiments of the present invention and are not used to limit the scope of implementation of the present invention. Therefore, all equivalent changes made according to the content described in the claims of the present invention should be included within the scope of the claims of the present invention.

Claims

1. An intelligent casting device with eddy current heating function for a detachable casting mold, characterized in that, It includes: Mounting frames (1), with at least two sets of mounting frames (1), which are L-shaped. There is an external connection frame (2) between one sides of the mounting frames (1), an interconnection frame (3) between the sides of the mounting frames (1) far from the external connection frame (2), a U-shaped frame (4) between the other sides of the mounting frames (1), two mounting platforms (5) on the U-shaped frame (4), and a heat dissipation sleeve (6) between the mounting platforms (5); A propulsion device (7), which is arranged on the external connection frame (2) and is used for parallel propulsion; An assembly device (8), which is arranged on the propulsion device (7) and is used for assembling casting molds and unloading cast products; A hot melting device (9), which is arranged inside the heat dissipation sleeve (6) and is used for hot melting casting metal rods; A pipe moving device (10), which is arranged at a position near the U-shaped frame (4) on the mounting platform (5). The pipe moving device (10) cooperates with the hot melting device (9) and is used for controlling the feeding and guiding the molten metal flow; The propulsion device (7) includes: A horizontal plate (71), which is arranged at a position on the external connection frame (2) far from the interconnection frame (3). There is a first electric slide rail (72) on the horizontal plate (71); An installation platform (73), which is arranged on the moving part of the first electric slide rail (72). The assembly device (8) is installed on the installation platform (73); The assembly device (8) includes: A rotating shaft (81), which is rotatably arranged at a position on the installation platform (73) far from the mounting frame (1). There is a driving motor (82) at a position on the installation platform (73) near the rotating shaft (81). The output shaft of the driving motor (82) is connected to the rotating shaft (81) through gear transmission; An assembly plate (83), which is fixedly arranged at a position on the rotating shaft (81) far from the installation platform (73); The hot melting device (9) includes: A ceramic tube (91), which is arranged at the heat dissipation sleeve (6). There is an eddy current heating module (92) between the ceramic tube (91) and the heat dissipation sleeve (6); A ceramic blocking frame (93), which is arranged at a position on the ceramic tube (91) near the U-shaped frame (4) and is located inside the ceramic tube (91). The pipe moving device (10) extends into the ceramic tube (91) and is in contact and cooperation with the ceramic blocking frame (93); The pipe moving device (10) includes: A second electric slide rail (101), which is arranged at a position on the mounting platform (5) near the U-shaped frame (4). There is a clamping frame (102) on the moving part of the second electric slide rail (101); A ceramic casting tube (103), which is arranged between the clamping frames (102). The ceramic casting tube (103) extends into the ceramic tube (91), blocks the ceramic tube (91), and is in contact and cooperation with the ceramic blocking frame (93).

2. The intelligent casting equipment with eddy current heating function for a detachable casting mold according to claim 1, characterized in that, It also includes a heat dissipation device (11), and the heat dissipation device (11) includes: An air pump (111), the air pump (111) is arranged at a position on one side of the installation platform (73) close to the U-shaped frame (4); An air supply disk (112), the air supply disk (112) is arranged at the air delivery end of the air pump (111), and the air supply disk (112) is located between the assembly plate (83) and the installation platform (73).

3. An intelligent casting device with eddy current heating function for a detachable casting mold according to claim 2, characterized in that, It further includes a limiting device (12), and the limiting device (12) includes: A sliding sleeve (121), the sliding sleeve (121) is slidably sleeved on the fixing part of the first electric slide rail (72), and a fastening part (122) is arranged on the sliding sleeve (121); A contact switch (123), the contact switch (123) is arranged at a position on one side of the sliding sleeve (121) close to the installation platform (73).

4. An intelligent casting device with eddy current heating function for a detachable casting mold according to claim 3, characterized in that, It further includes a control box (13), the control box (13) is arranged on one side of the interconnection frame (3), the control box (13) includes a switching power supply, a DC-DC power module and a microcontroller MCU. A main power switch is connected to the DC-DC power module through a circuit, and the main power switch supplies power to the casting equipment. The microcontroller MCU and the DC-DC power module are electrically connected. A heating switch, a blanking switch, a forward rotation button and a reverse rotation button are electrically connected to the microcontroller MCU. The contact switch (123) is electrically connected to the microcontroller MCU, the digital button is electrically connected to the microcontroller MCU, a 24C02 circuit is connected to the microcontroller MCU, and the first electric slide rail (72), the second electric slide rail (101), the drive motor (82), the eddy current heating module (92) and the air pump (111) are all connected to the microcontroller MCU through peripheral circuits.

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