Infrared radiation baking device for magnetic powder drying treatment
By combining the spiral conveyor rod, carbon fiber heating and vibration components of the infrared radiation baking device, the problem of magnetic powder accumulation is solved, and uniform heating and efficient drying of magnetic powder are achieved, improving the drying effect and ease of operation.
Patent Information
- Application Number
- CN202511822736.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-12-05
- Publication Date
- 2026-02-13
AI Technical Summary
In existing magnetic powder drying devices, magnetic powder tends to accumulate inside the drying drum, preventing sufficient contact between hot air and the powder, resulting in poor drying performance.
An infrared radiation baking device is used, which conveys magnetic powder through a rotating spiral conveyor and provides infrared radiation heating through a carbon fiber heating tube. Combined with a vibration component to drive the drying cylinder to vibrate and a waterproof exhaust fan to remove moisture, the magnetic powder is dispersed to enhance hot air contact, and automated material receiving is achieved through a material receiving component.
It achieves uniform heating and efficient drying of magnetic powder, avoids accumulation, improves drying effect and ease of operation, reduces manual intervention, and improves production efficiency.
Smart Images

Figure CN121520833A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of magnetic powder drying technology, and more particularly to an infrared radiation baking device for magnetic powder drying. Background Technology
[0002] Magnetic powder is a hard magnetic single-domain particle. It is combined with binders, solvents, etc. to form magnetic paste, which is then coated on the surface of plastic or metal substrates (supports) to make magnetic recording materials such as magnetic tapes, disks, and magnetic cards. Magnetic powder is the core component of magnetic coatings and is the main factor that determines the magnetic properties of magnetic recording media. Magnetic powder has a great influence on the properties of magnetic recording materials. In the production process of magnetic powder, a drying device is required to dry the magnetic powder.
[0003] In existing technologies, magnetic powder drying devices involve feeding magnetic powder into a drying drum, dispersing the powder by rotating a stirring rod inside the drum, and then drawing in natural air through a fan to create hot air for drying the powder. The exhaust gas is then discharged from the drying drum. However, this method has a drawback: a large amount of magnetic powder can accumulate inside the drum, preventing the hot air from fully contacting the powder and resulting in poor drying. Therefore, we propose an infrared radiation baking device for magnetic powder drying to address these issues. Summary of the Invention
[0004] The purpose of this application is to provide an infrared radiation baking device for magnetic powder drying, so as to solve the problem mentioned in the background art that when a large amount of magnetic powder is put into the magnetic powder drying cylinder, the magnetic powder will easily accumulate in the magnetic powder drying cylinder, resulting in the hot air not being able to fully contact the magnetic powder and the drying effect being poor.
[0005] To achieve the above objectives, this application provides the following technical solution: an infrared radiation baking device for magnetic powder drying, comprising a magnetic powder drying cylinder, wherein a magnetic powder feeding port is provided at the top of the magnetic powder drying cylinder, and a magnetic powder discharging port is provided at the bottom of the magnetic powder drying cylinder; the baking device further comprises: The first drive motor is fixedly installed on the left side of the magnetic powder drying cylinder, and a spiral conveying rod is rotatably connected to the inner wall of the right side of the magnetic powder drying cylinder. The output shaft of the first drive motor is fixedly installed on the left end of the spiral conveying rod. Two carbon fiber heating tubes are provided, and the two carbon fiber heating tubes are respectively fixedly installed on the front inner wall and the rear inner wall of the magnetic powder drying cylinder. A steam exhaust pipe is provided, the bottom end of which is fixedly connected to the top of the magnetic powder drying cylinder, and a waterproof exhaust fan is fixedly installed inside the steam exhaust pipe. The vibration assembly includes: four stabilizing connecting rods, a vibration support plate, a bottom mounting plate of the machine body, four rectangular stabilizing support rods, a second drive motor, and a transmission cam. The top ends of the four stabilizing connecting rods are all fixedly installed at the bottom of the magnetic powder drying cylinder. The top ends of the vibration support plate are respectively fixedly installed at the bottom ends of the four stabilizing connecting rods. Four rectangular stabilizing support rods are slidably sleeved on the vibration support plate. The bottom ends of the four rectangular stabilizing support rods are all fixedly installed at the top of the bottom mounting plate of the machine body. The second drive motor is fixedly installed at the top of the bottom mounting plate of the machine body. The transmission cam is fixedly installed on the output shaft of the second drive motor and cooperates with the bottom of the vibration support plate. The receiving component is located on the top of the mounting plate at the bottom of the machine body and is matched with the magnetic powder outlet.
[0006] Using the above structure, magnetic powder is added into the magnetic powder drying cylinder through the magnetic powder feeding port. Then, the first drive motor is started to drive the spiral conveyor rod to rotate and transport the magnetic powder inside the drying cylinder, realizing the tumbling of the magnetic powder and preventing accumulation. Here, the carbon fiber heating tube is activated to provide infrared radiation heating, so that the magnetic powder is heated evenly. The waterproof exhaust fan in the steam exhaust pipe is activated to remove moisture and improve drying efficiency. Here, the second drive motor in the vibration assembly drives the transmission cam to push the vibration support plate, which drives the magnetic powder drying cylinder to vibrate through the stabilizing connecting rod, dispersing the magnetic powder, enhancing the contact of hot air, solving the problem of magnetic powder accumulation, improving drying effect and operation convenience.
[0007] Preferably, two dust filters are installed on the inner wall of the steam exhaust pipe, with the two dust filters located at the top and bottom of the waterproof exhaust fan, respectively.
[0008] Furthermore, by installing dust filters inside the steam exhaust pipe and at the top and bottom of the waterproof exhaust fan, magnetic powder particles in the air are filtered out, preventing magnetic powder from entering the fan and damaging the equipment, ensuring clean exhaust and reducing maintenance needs.
[0009] Preferably, a plurality of vibration auxiliary springs are fixedly installed at the bottom of the vibration support plate, and the bottom ends of the plurality of vibration auxiliary springs are all fixedly installed at the top of the bottom mounting plate of the machine body.
[0010] Furthermore, the vibration support plate and the bottom mounting plate of the machine body are connected by a vibration auxiliary spring to provide elastic cushioning, absorb impact energy during vibration, enhance vibration stability, prevent excessive wear of components, and assist the vibration support plate in resetting to maintain vibration consistency, thereby improving the life and effectiveness of the vibration components.
[0011] Preferably, a stabilizing bearing seat is fixedly installed on the top of the bottom mounting plate of the machine body, and the stabilizing bearing seat is rotatably connected to the front side of the transmission cam.
[0012] Furthermore, a stabilizing bearing seat is fixedly installed on the top of the mounting plate at the bottom of the machine body. The stabilizing bearing seat is rotatably connected to the transmission cam, providing stable support for the transmission cam, reducing rotational friction, ensuring smooth movement of the transmission cam, and improving the reliability and efficiency of the vibration assembly.
[0013] Preferably, the bottom of the vibration support plate is rotatably connected to a transmission guide wheel, and the transmission guide wheel is rollingly connected to a transmission cam.
[0014] Furthermore, the transmission guide wheel is rotatably connected to the bottom of the vibration support plate. The transmission guide wheel and the transmission cam are rolled together to reduce direct contact friction, reduce noise and wear, make vibration transmission smoother, and enhance the coordination of the components and extend service life.
[0015] Preferably, the receiving assembly includes an electric slide rail, a stabilizing moving plate, multiple electric push rods, a collection box placement plate, and two magnetic powder collection boxes. The electric slide rail is fixedly installed on the bottom of the mounting plate at the bottom of the machine body, the stabilizing moving plate is slidably installed on the top of the electric slide rail, multiple electric push rods are all fixedly installed on the top of the stabilizing moving plate, the output shafts of multiple electric push rods are all fixedly installed on the bottom of the collection box placement plate, and the two magnetic powder collection boxes are placed on the collection box placement plate and are in close contact with each other.
[0016] Furthermore, the electric slide rail in the receiving assembly drives the stable moving plate to move, and the electric push rod adjusts the height of the collection box placement plate to adapt to the position of the magnetic powder outlet. The magnetic powder collection box is placed on the collection box placement plate to facilitate the receipt of dried magnetic powder, thereby realizing automated material receiving, reducing manual intervention, and improving production efficiency.
[0017] Preferably, four stabilizing slide rods are fixedly installed at the bottom of the stabilizing moving plate, and two matching slide grooves are opened at the top of the bottom mounting plate of the machine body, with the bottom ends of the stabilizing slide rods slidably connected in the matching slide grooves.
[0018] Furthermore, a stabilizing slide bar is fixedly installed at the bottom of the stabilizing moving plate, and the bottom end of the stabilizing slide bar is slidably connected in the adapter groove, providing precise guidance for the movement of the stabilizing moving plate, preventing deviation, ensuring the accurate position of the receiving component, and the stabilizing slide bar and adapter groove have a simple structure and enhance motion stability.
[0019] Preferably, the top of the collection box placement plate is provided with a box placement groove, and the bottom ends of the two magnetic powder collection boxes are placed in the box placement groove.
[0020] Furthermore, a slot is provided on the top of the collection box placement plate, and the bottom of the magnetic powder collection box is placed in the slot to fix the position of the magnetic powder collection box and prevent it from sliding or tipping over during the receiving process, thus ensuring safe and stable collection. The slot design facilitates quick placement and replacement of the magnetic powder collection box.
[0021] The beneficial effects of this invention are: 1. Magnetic powder is added into the magnetic powder drying cylinder through the magnetic powder feeding port. Then, the first drive motor is started to drive the spiral conveyor rod to rotate and transport the magnetic powder in the magnetic powder drying cylinder, so as to realize the tumbling of the magnetic powder and prevent accumulation. Here, the carbon fiber heating tube is started to provide infrared radiation heating, so that the magnetic powder is heated evenly. The waterproof exhaust fan in the steam exhaust pipe is started to exhaust moisture and improve drying efficiency. 2. The second drive motor in the vibration assembly drives the transmission cam to push the vibration support plate, which in turn drives the magnetic powder drying cylinder to vibrate through the stable connecting rod. This disperses the magnetic powder, enhances the contact with hot air, solves the problem of magnetic powder accumulation, and improves the drying effect and ease of operation. 3. The electric slide rail in the receiving assembly drives the stable moving plate to move, and the electric push rod adjusts the height of the collection box placement plate to adapt to the position of the magnetic powder outlet. The magnetic powder collection box is placed on the collection box placement plate to facilitate the receipt of dry magnetic powder, realizing automated material receiving, reducing manual intervention and improving production efficiency. This invention achieves rapid drying of magnetic powder through a simple structure. The carbon fiber heating tube releases infrared radiation for heating, eliminating the need for heat conduction through air or other media. This results in high drying efficiency, rapid increase in the surface temperature of the magnetic powder, accelerated moisture evaporation, and efficient vibration of the magnetic powder to prevent powder accumulation. This improves drying efficiency and effectiveness, making it highly practical. Attached Figure Description
[0022] Figure 1 This is a structural front view of an embodiment of this application; Figure 2 Appendix to the embodiments of this application Figure 1 A schematic diagram of the structure of part A; Figure 3 Appendix to the embodiments of this application Figure 1 A structural diagram of section B; Figure 4 This is a side view of the structure of the electric slide rail, stabilizing moving plate, stabilizing slide rod, electric push rod, collection box placement plate, box placement groove and magnetic powder collection box according to an embodiment of this application; Figure 5 This is a three-dimensional structural diagram of the second drive motor, transmission cam, stabilizing bearing housing, and transmission guide wheel according to an embodiment of this application.
[0023] In the diagram: 1. Magnetic powder drying cylinder; 2. Magnetic powder feeding port; 3. Magnetic powder discharging port; 4. First drive motor; 5. Spiral conveyor rod; 6. Carbon fiber heating tube; 7. Steam exhaust pipe; 8. Waterproof exhaust fan; 9. Dustproof filter; 10. Stabilizing connecting rod; 11. Vibration support plate; 12. Bottom mounting plate of the machine body; 13. Rectangular stabilizing support rod; 14. Vibration auxiliary spring; 15. Second drive motor; 16. Transmission cam; 17. Stabilizing bearing seat; 18. Transmission guide wheel; 19. Electric slide rail; 20. Stabilizing moving plate; 21. Stabilizing slide bar; 22. Adaptive slide groove; 23. Electric push rod; 24. Collection box placement plate; 25. Box placement slot; 26. Magnetic powder collection box. Detailed Implementation
[0024] The present invention will be further explained below with reference to specific embodiments.
[0025] refer to Figures 1-5 This embodiment proposes an infrared radiation baking device for magnetic powder drying, including a magnetic powder drying cylinder 1, a magnetic powder feeding port 2 at the top of the magnetic powder drying cylinder 1, and a magnetic powder discharging port 3 at the bottom of the magnetic powder drying cylinder 1. The baking device also includes: The first drive motor 4 is fixedly installed on the left side of the magnetic powder drying cylinder 1. The spiral conveying rod 5 is rotatably connected to the inner wall of the right side of the magnetic powder drying cylinder 1. The output shaft of the first drive motor 4 is fixedly installed on the left end of the spiral conveying rod 5. Two carbon fiber heating tubes 6 are provided, and the two carbon fiber heating tubes 6 are respectively fixedly installed on the front inner wall and the rear inner wall of the magnetic powder drying cylinder 1. Steam exhaust pipe 7, the bottom end of which is fixedly connected to the top of magnetic powder drying cylinder 1, and a waterproof exhaust fan 8 is fixedly installed inside the steam exhaust pipe 7; The vibration assembly includes: four stabilizing connecting rods 10, a vibration support plate 11, a bottom mounting plate 12 of the machine body, four rectangular stabilizing support rods 13, a second drive motor 15, and a transmission cam 16. The top ends of the four stabilizing connecting rods 10 are all fixedly installed at the bottom of the magnetic powder drying cylinder 1. The top ends of the vibration support plate 11 are respectively fixedly installed at the bottom ends of the four stabilizing connecting rods 10. The four rectangular stabilizing support rods 13 are slidably sleeved on the vibration support plate 11. The bottom ends of the four rectangular stabilizing support rods 13 are all fixedly installed at the top of the bottom mounting plate 12 of the machine body. The second drive motor 15 is fixedly installed at the top of the bottom mounting plate 12 of the machine body. The transmission cam 16 is fixedly installed on the output shaft of the second drive motor 15 and cooperates with the bottom of the vibration support plate 11. The receiving component is located on the top of the mounting plate 12 at the bottom of the machine body and is matched with the magnetic powder outlet 3.
[0026] Using the above structure, magnetic powder is added into the magnetic powder drying cylinder 1 through the magnetic powder feeding port 2. Then, the first drive motor 4 is started to drive the spiral conveyor rod 5 to rotate and transport the magnetic powder inside the magnetic powder drying cylinder 1, so as to realize the tumbling of the magnetic powder and prevent accumulation. Here, the carbon fiber heating tube 6 is started to provide infrared radiation heating, so that the magnetic powder is heated evenly. The waterproof exhaust fan 8 in the steam exhaust pipe 7 is started to exhaust moisture and improve drying efficiency. Here, the second drive motor 15 in the vibration assembly drives the transmission cam 16 to push the vibration support plate 11, which drives the magnetic powder drying cylinder 1 to vibrate through the stabilizing connecting rod 10, disperses the magnetic powder, enhances the contact of hot air, solves the problem of magnetic powder accumulation, and improves the drying effect and operation convenience.
[0027] In this embodiment, two dust filters 9 are installed on the inner wall of the steam exhaust pipe 7. The two dust filters 9 are located at the top and bottom of the waterproof exhaust fan 8, respectively. By installing the dust filters 9 inside the steam exhaust pipe 7 and at the top and bottom of the waterproof exhaust fan 8, the magnetic powder particles in the air are filtered to prevent magnetic powder from entering the fan and damaging the equipment, ensuring clean exhaust and reducing maintenance needs.
[0028] In this embodiment, a plurality of vibration auxiliary springs 14 are fixedly installed at the bottom of the vibration support plate 11. The bottom ends of the plurality of vibration auxiliary springs 14 are fixedly installed at the top of the bottom mounting plate 12 of the machine body. The vibration auxiliary springs 14 connect the vibration support plate 11 and the bottom mounting plate 12 of the machine body to provide elastic buffering, absorb impact energy during vibration, enhance vibration stability, prevent excessive wear of components, assist the vibration support plate 11 to reset, maintain vibration consistency, and improve the life and effect of vibration components.
[0029] In this embodiment, a stabilizing bearing seat 17 is fixedly installed on the top of the bottom mounting plate 12 of the machine body. The stabilizing bearing seat 17 is rotatably connected to the front side of the transmission cam 16. The stabilizing bearing seat 17 is fixedly installed on the top of the bottom mounting plate 12 of the machine body. The stabilizing bearing seat 17 is rotatably connected to the transmission cam 16, providing stable support for the transmission cam 16, reducing rotational friction, ensuring smooth movement of the transmission cam 16, and improving the reliability and efficiency of the vibration component.
[0030] In this embodiment, a transmission guide wheel 18 is rotatably connected to the bottom of the vibration support plate 11. The transmission guide wheel 18 is rolledly connected to the transmission cam 16. The transmission guide wheel 18 is rotatably connected to the bottom of the vibration support plate 11. The rolling connection between the transmission guide wheel 18 and the transmission cam 16 reduces direct contact friction, reduces noise and wear, and makes the vibration transmission softer. The transmission guide wheel 18 enhances the coordination of the components and extends the service life.
[0031] In this embodiment, the receiving assembly includes an electric slide rail 19, a stabilizing moving plate 20, multiple electric push rods 23, a collection box placement plate 24, and two magnetic powder collection boxes 26. The electric slide rail 19 is fixedly installed on the bottom of the mounting plate 12 at the bottom of the machine body. The stabilizing moving plate 20 is slidably installed on the top of the electric slide rail 19. Multiple electric push rods 23 are all fixedly installed on the top of the stabilizing moving plate 20. The output shafts of multiple electric push rods 23 are all fixedly installed on the bottom of the collection box placement plate 24. The two magnetic powder collection boxes 26 are placed on the collection box placement plate 24 and are in close contact with each other. The electric slide rail 19 in the receiving assembly drives the stabilizing moving plate 20 to move. The electric push rods 23 adjust the height of the collection box placement plate 24 to adapt to the position of the magnetic powder outlet 3. The magnetic powder collection boxes 26 are placed on the collection box placement plate 24 to facilitate the receipt of dry magnetic powder, realizing automated receiving, reducing manual intervention, and improving production efficiency.
[0032] In this embodiment, four stabilizing slide rods 21 are fixedly installed at the bottom of the stabilizing moving plate 20. Two matching slide grooves 22 are opened at the top of the bottom mounting plate 12 of the machine body. The bottom end of the stabilizing slide rod 21 is slidably connected in the matching slide groove 22. The stabilizing slide rod 21 is fixedly installed at the bottom of the stabilizing moving plate 20. The bottom end of the stabilizing slide rod 21 is slidably connected in the matching slide groove 22, which provides precise guidance for the movement of the stabilizing moving plate 20, prevents deviation, and ensures the accurate position of the receiving component. The stabilizing slide rod 21 and the matching slide groove 22 have a simple structure and enhance the stability of movement.
[0033] In this embodiment, a box placement groove 25 is provided on the top of the collection box placement plate 24. The bottom ends of the two magnetic powder collection boxes 26 are placed in the box placement groove 25. The box placement groove 25 is provided on the top of the collection box placement plate 24, and the bottom ends of the magnetic powder collection boxes 26 are placed in the box placement groove 25 to fix the position of the magnetic powder collection boxes 26, prevent them from sliding or tipping over during the receiving process, and ensure safe and stable collection. The box placement groove 25 is designed to facilitate quick placement and replacement of the magnetic powder collection boxes 26.
[0034] It should be noted that the specific models of the first drive motor 4, carbon fiber heating tube 6, waterproof exhaust fan 8, second drive motor 15, electric slide rail 19, and electric push rod 23 used can be selected by those skilled in the art. Furthermore, the first drive motor 4, carbon fiber heating tube 6, waterproof exhaust fan 8, second drive motor 15, electric slide rail 19, and electric push rod 23 mentioned above are all existing technologies, and this solution will not elaborate on them.
[0035] Working Principle: This application uses a PLC controller. During operation, the first drive motor 4, carbon fiber heating tube 6, waterproof exhaust fan 8, second drive motor 15, electric slide rail 19, and electric push rod 23 are first connected to an external power source. Then, magnetic powder is added into the magnetic powder drying cylinder 1 through the magnetic powder feeding port 2. The first drive motor 4 is then activated to drive the screw conveyor 5 to rotate and transport the magnetic powder within the drying cylinder 1, achieving powder tumbling and preventing accumulation. The carbon fiber heating tube 6 is activated to provide infrared radiation heating, ensuring uniform heating of the magnetic powder. The waterproof exhaust fan 8 inside the steam exhaust pipe 7 is activated to expel moisture and improve drying efficiency. A dust filter 9 is installed inside the steam exhaust pipe 7 and located at the top and bottom of the waterproof exhaust fan 8. Filtering magnetic powder particles from the air prevents them from entering the fan and damaging the equipment, ensuring clean exhaust and reducing maintenance needs. Here, the second drive motor 15 in the vibration assembly drives the transmission cam 16 to push the vibration support plate 11, which in turn drives the magnetic powder drying cylinder 1 to vibrate via the stabilizing connecting rod 10. This disperses the magnetic powder, enhances hot air contact, solves the problem of magnetic powder accumulation, and improves drying effect and ease of operation. A vibration auxiliary spring 14 connects the vibration support plate 11 and the mounting plate 12 at the bottom of the machine body, providing elastic cushioning. During vibration, it absorbs impact energy, enhances vibration stability, and prevents excessive wear of the components. The vibration auxiliary spring 14 assists the vibration support plate 11 in resetting, maintaining vibration consistency and improving the lifespan and effectiveness of the vibration assembly. It is fixed in place by a stabilizing bearing seat 17. At the top of the mounting plate 12 at the bottom of the machine body, a stabilizing bearing seat 17 is rotatably connected to the transmission cam 16, providing stable support for the transmission cam 16, reducing rotational friction, ensuring smooth movement of the transmission cam 16, and improving the reliability and efficiency of the vibration assembly. A transmission guide wheel 18 is rotatably connected to the bottom of the vibration support plate 11. The transmission guide wheel 18 and the transmission cam 16 are rolled together to reduce direct contact friction, lower noise and wear, and make vibration transmission smoother. The transmission guide wheel 18 enhances the coordination of the assembly and extends its service life. Finally, the stabilizing moving plate 20 is moved by the electric slide rail 19 in the receiving assembly. Here, a stabilizing slide rod 21 is fixedly installed at the bottom of the stabilizing moving plate 20, and the bottom end of the stabilizing slide rod 21 is slidably connected in the matching slide groove 22 for stable movement. The moving plate 20 provides precise guidance to prevent deviation and ensure accurate positioning of the receiving component. The stabilizing slide bar 21 and the adapting slide groove 22 have a simple structure and enhance motion stability. The electric push rod 23 adjusts the height of the collection box placement plate 24 to adapt to the position of the magnetic powder outlet 3. The magnetic powder collection box 26 is placed on the collection box placement plate 24 for convenient reception of dried magnetic powder, realizing automated material receiving, reducing manual intervention, and improving production efficiency. In this way, the magnetic powder is dried quickly. The carbon fiber heating tube 6 releases infrared radiation heating, which does not require heat conduction through air or other media, resulting in high drying efficiency. The surface temperature of the magnetic powder rises rapidly, accelerating moisture evaporation. At the same time, it can efficiently vibrate the magnetic powder to avoid magnetic powder accumulation, improve drying efficiency and effect, and has strong practicality.
[0036] Finally, it should be noted that the above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. An infrared radiation baking device for magnetic powder drying treatment, comprising a magnetic powder baking cylinder (1), a magnetic powder feeding opening (2) is formed on the top of the magnetic powder baking cylinder (1), and a magnetic powder discharging opening (3) is formed on the bottom of the magnetic powder baking cylinder (1), characterized in that, The baking device further comprises: A first driving motor (4) is fixedly installed on the left side of the magnetic powder drying cylinder (1), a spiral conveying rod (5) is rotatably connected to the inner wall on the right side of the magnetic powder drying cylinder (1), and the output shaft of the first driving motor (4) is fixedly installed on the left end of the spiral conveying rod (5); Two carbon fiber heating pipes (6) are fixedly installed on the front and rear inner walls of the magnetic powder drying cylinder (1); A steam exhaust pipe (7) is fixedly communicated at the top of the magnetic powder drying cylinder (1), and a waterproof exhaust fan (8) is fixedly installed in the steam exhaust pipe (7); The vibration assembly comprises four stable connecting rods (10), a vibration support plate (11), a machine body bottom mounting plate (12), four rectangular stable support rods (13), a second driving motor (15) and a transmission cam (16), the top ends of the four stable connecting rods (10) are fixedly installed on the bottom of the magnetic powder drying cylinder (1), the top of the vibration support plate (11) is fixedly installed on the bottom of the four stable connecting rods (10), the four rectangular stable support rods (13) are slidably sleeved on the vibration support plate (11), the bottom ends of the four rectangular stable support rods (13) are fixedly installed on the top of the machine body bottom mounting plate (12), the second driving motor (15) is fixedly installed on the top of the machine body bottom mounting plate (12), the transmission cam (16) is fixedly installed on the output shaft of the second driving motor (15), and the transmission cam (16) is matched with the bottom of the vibration support plate (11); The receiving assembly is arranged on the top of the machine body bottom mounting plate (12) and matched with the magnetic powder discharge port (3).
2. The infrared radiation curing apparatus for magnetic powder drying treatment according to claim 1, characterized by Two dust filters (9) are installed on the inner wall of the steam exhaust pipe (7), and the two dust filters (9) are respectively located at the top and bottom of the waterproof exhaust fan (8).
3. The infrared radiation curing device for magnetic powder drying treatment according to claim 1, characterized by A plurality of vibration auxiliary springs (14) are fixedly installed on the bottom of the vibration support plate (11), and the bottom ends of the plurality of vibration auxiliary springs (14) are fixedly installed on the top of the machine body bottom mounting plate (12).
4. The infrared radiation curing apparatus for magnetic powder drying treatment according to claim 1, characterized by A stable bearing seat (17) is fixedly installed on the top of the machine body bottom mounting plate (12), and the stable bearing seat (17) is rotatably connected to the front side of the transmission cam (16).
5. The infrared radiation curing device for magnetic powder drying treatment according to claim 1, characterized by A transmission guide wheel (18) is rotatably connected to the bottom of the vibration support plate (11), and the transmission guide wheel (18) is rollingly connected with the transmission cam (16).
6. The infrared radiation curing apparatus for magnetic powder drying according to claim 1, wherein The material receiving assembly comprises an electric sliding rail (19), a stable moving plate (20), a plurality of electric push rods (23), a collecting box placing plate (24) and two magnetic powder collecting boxes (26), the electric sliding rail (19) is fixedly installed at the bottom of the machine body bottom mounting plate (12), the stable moving plate (20) is slidingly installed at the top of the electric sliding rail (19), the plurality of electric push rods (23) are all fixedly installed at the top of the stable moving plate (20), the output shafts of the plurality of electric push rods (23) are all fixedly installed at the bottom of the collecting box placing plate (24), the two magnetic powder collecting boxes (26) are both placed on the collecting box placing plate (24), and the two magnetic powder collecting boxes (26) are in abutment.
7. The infrared radiation baking apparatus for magnetic powder drying treatment according to claim 6, characterized by Four stable sliding rods (21) are fixedly installed at the bottom of the stable moving plate (20), two adaptive sliding grooves (22) are formed in the top of the machine body bottom mounting plate (12), and the bottom ends of the stable sliding rods (21) are slidingly connected in the adaptive sliding grooves (22).
8. The infrared radiation curing device for magnetic powder drying treatment according to claim 6, characterized by The top of the collecting box placing plate (24) is provided with a box placing groove (25), and the bottom ends of the two magnetic powder collecting boxes (26) are placed in the box placing groove (25).