Resin reaction kettle with automatic feeding mechanism
By introducing an automatic feeding mechanism and a water tank cooling system into the resin reactor, the problems of inconvenient material feeding and temperature control in the resin reactor have been solved, realizing automated feeding and convenient cleaning, and improving reaction efficiency and temperature stability.
Patent Information
- Application Number
- CN202423033231.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-10
- Publication Date
- 2025-12-09
- Estimated Expiration
- 2034-12-10
AI Technical Summary
The existing resin reactors lack an automatic feeding mechanism, which makes feeding inconvenient. Furthermore, the reactor interior is connected to the external environment, making it difficult to maintain a stable temperature. The external environment affects the internal temperature, and cleaning the feeding area is also difficult.
A resin reactor with an automatic feeding mechanism was designed. By setting a corrugated pipe and a hollow cylinder in the feeding cylinder, combined with a water tank cooling system and a stirring device, automatic feeding and temperature control are achieved, ensuring that the material is cooled before heating and is easy to disassemble during cleaning.
Automatic feeding of resin reactors has been achieved, ensuring that materials are cooled before heating to avoid sticking and making cleaning easier, thereby improving reaction efficiency and temperature control stability.
Smart Images

Figure CN223641832U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of resin processing technology, specifically to a resin reaction vessel with an automatic feeding mechanism. Background Technology
[0002] Resin is a polymer compound raw material used to process plastics. When heated, it will melt or soften so that other reagents and color powders can be added to make different new resin products. When cooled, it will solidify, which also facilitates the preservation of the material. Therefore, a heated reaction vessel is required when processing resin.
[0003] The resin reactor is a closed device and lacks an automatic feeding mechanism, requiring manual dumping of materials. The interior of the reactor is connected to the external environment, making it difficult to maintain the temperature inside and affecting the environment of the external factory. Resin materials also stick to the feeding point, making it inconvenient to clean. The automation capability is poor.
[0004] Now, a novel resin reactor with an automatic feeding mechanism is proposed to solve the above problems. Utility Model Content
[0005] The purpose of this invention is to provide a resin reactor with an automatic feeding mechanism to solve the problem of inconvenient feeding mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a resin reactor with an automatic feeding mechanism, comprising an outer shell and an upper shell, the upper shell being provided on the top of the outer shell, and a feeding cylinder being mounted on the left side of the top of the upper shell, the top of the feeding cylinder being fitted with a cover plate, a valve being installed at the lower part of the inside of the feeding cylinder, a corrugated pipe being fixed at the bottom of the feeding cylinder, and a horizontal plate being welded below the corrugated pipe, a hollow cylinder being welded to the right side of the bottom of the horizontal plate, a circular groove being provided in the upper left corner of the inside of the upper shell, a sleeve plate being welded between the front and rear sides of the left side of the outside of the upper shell, and bolts being fitted into the screw holes at the front and rear ends of the sleeve plate, and a vertical rod being welded longitudinally to the left side of the horizontal plate.
[0007] Preferably, the vertical rod is embedded in the sleeve plate, and the bolt can lock the vertical rod in the sleeve plate from the front end and the rear end.
[0008] Preferably, the hollow cylinder is embedded in the circular groove, and the hollow cylinder can be vertically raised and lowered with the horizontal plate.
[0009] Preferably, a water tank is welded to the top of the interior of the upper shell, and a slot is provided at the upper right corner of the water tank. An inlet pipe is welded between the slot and the upper shell, and a liquid pump is installed on the inlet pipe. An outlet pipe is installed between the lower left corner of the water tank and the upper shell. A plate is welded to the lower left of the upper shell, and a sliding groove is provided between the two sides of the front end of the plate. A partition is movably connected in the sliding groove, and a lever is welded to the left side of the front end of the partition. The partition is supported below the hollow cylinder, and a ring is fixed to the left side inside the water tank.
[0010] Preferably, the paddle can slide left and right at the front end of the slide groove, and the paddle, slide groove, plate and partition are on the same horizontal plane.
[0011] Preferably, the water tank is positioned with the left side lower than the right side, and the partition slides along the lower left corner of the water tank.
[0012] Preferably, a lower fixing block is welded to the upper right of the outer shell surface, an upper fixing block is welded to the lower right of the upper shell surface, a slot is provided at the center of the lower part of the outer shell, and an insert block is fixedly connected in the slot. A motor is fixed in the insert block, a heating tank is welded to the top of the insert block, and a processing chamber is provided inside the heating tank. A stirring rod is movably connected to the center of the lower part of the processing chamber, and handles are fixed on both sides of the top of the heating tank.
[0013] Preferably, the output shaft of the motor can guide the stirring rod to rotate in place, and the upper fixed block is movably connected to the top of the lower fixed block.
[0014] Compared with the prior art, the beneficial effects of this utility model are: the resin reactor with automatic feeding mechanism not only realizes automatic feeding and cooling feeding pipeline, but also makes it easy to remove the material container;
[0015] (1) By setting up a feeding cylinder on the left side of the top of the upper shell, the vertical rod is raised and lowered vertically along the left sleeve plate, and the vertical rod and the horizontal plate connected to it are guided to move synchronously. The corrugated pipe is squeezed so that the hollow cylinder can be lifted out from the round groove. The corrugated pipe is unfolded so that the hollow cylinder is pressed into the round groove for feeding. The presence of the valve can control the resin particles in the feeding cylinder to pass through the corrugated pipe and the hollow cylinder and enter the heating tank below for stirring, so as to realize the automatic feeding of the device. The presence of the cover plate can also prevent debris and dust from falling into the feeding cylinder.
[0016] (2) A water tank is welded to the top of the upper shell. The liquid pump is started to draw cold water from the inlet pipe. The water enters the water tank through the slot and fills the entire tank. When the hollow cylinder enters the upper shell, it will slide along the inner wall of the ring. After adjusting the height of the hollow cylinder to avoid the resin particles sticking to the outer shell, the hollow cylinder is lifted and the paddle is pushed along the slide groove of the plate to fit against the left side of the water tank and gradually cover the bottom of the ring. The cold water in the water tank lowers the temperature of the hollow cylinder. Because the device composed of the outer shell and the upper shell has heat at one end, if the material is put in easily without cooling, it is easy to stick to the inner wall of the hollow cylinder. Therefore, the temperature of the hollow cylinder needs to be reduced when feeding. A partition is used to block the hollow cylinder from the lower outer shell. If the heated cold water is to be replaced, the warm water in the water tank is discharged through the outlet pipe on the left side.
[0017] (3) By welding a heating tank to the top of the insert block, the upper shell can be rotated horizontally on the top of the lower fixed block of the outer shell through the upper fixed block. After the upper shell is turned open, the heating tank inside the outer shell can be seen. By holding the handles on both sides, the insert block and heating tank can be lifted from the slot for cleaning or discharge. The stirring rod controlled by the internal motor can also mix the materials in the heating tank to speed up the reaction efficiency. When the outer shell and the upper shell are closed, the internal temperature of the reactor can be guaranteed not to drop. Attached Figure Description
[0018] Figure 1 This is a frontal cross-sectional view of the present invention.
[0019] Figure 2 This is a front view cross-sectional structural diagram of the feeding cylinder of this utility model;
[0020] Figure 3 This is a frontal cross-sectional view of the upper shell structure of this utility model;
[0021] Figure 4 This is a frontal cross-sectional view of the outer shell of this utility model.
[0022] In the diagram: 1. Outer shell; 2. Heating tank; 3. Processing chamber; 4. Handle; 5. Plate; 6. Slide groove; 7. Paddle; 8. Sleeve plate; 9. Upper shell; 10. Feeding cylinder; 11. Circular groove; 12. Cover plate; 13. Valve; 14. Bellows; 15. Hollow cylinder; 16. Liquid inlet pipe; 17. Liquid pump; 18. Groove opening; 19. Water tank; 20. Upper fixing block; 21. Lower fixing block; 22. Stirring rod; 23. Insert block; 24. Motor; 25. Bolt; 26. Horizontal plate; 27. Vertical rod; 28. Partition plate; 29. Liquid outlet pipe; 30. Circular ring; 31. Slot. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0024] Please see Figure 1-4 An embodiment of this utility model is provided: a resin reactor with an automatic feeding mechanism, including an outer shell 1 and an upper shell 9. The upper shell 9 is provided on the top of the outer shell 1, and a feeding cylinder 10 is mounted on the left side of the top of the upper shell 9. A cover plate 12 is snapped onto the top of the feeding cylinder 10. A valve 13 is installed at the lower part of the inside of the feeding cylinder 10. A corrugated pipe 14 is fixed at the bottom of the feeding cylinder 10, and a horizontal plate 26 is welded below the corrugated pipe 14. A hollow cylinder 15 is welded to the right side of the bottom of the horizontal plate 26. A circular groove 11 is provided in the upper left corner of the inside of the upper shell 9. A sleeve plate 8 is welded between the front and rear sides of the left side of the upper shell 9. Bolts 25 are respectively installed in the screw holes at the front and rear ends of the sleeve plate 8. A vertical rod 27 is welded longitudinally on the left side of the horizontal plate 26.
[0025] The vertical rod 27 is embedded in the sleeve plate 8, and the bolt 25 can lock the vertical rod 27 in the sleeve plate 8 from the front end and the rear end. The hollow cylinder 15 is embedded in the circular groove 11, and the hollow cylinder 15 can be vertically raised and lowered with the horizontal plate 26.
[0026] Specifically, such as Figure 1 and Figure 2 As shown, the vertical rod 27 is raised and lowered vertically along the left sleeve plate 8, guiding the vertical rod 27 and its connected horizontal plate 26 to move synchronously, squeezing the corrugated pipe 14 so that the hollow cylinder 15 can be lifted out from the circular groove 11. Expanding the corrugated pipe 14 will press the hollow cylinder 15 into the circular groove 11 for feeding. The presence of the valve 13 can control the resin particles in the feeding cylinder 10 to pass through the corrugated pipe 14 and the hollow cylinder 15 and enter the heating tank 2 below for stirring, realizing the automatic feeding of the device.
[0027] A water tank 19 is welded to the top of the interior of the upper shell 9, and a slot 18 is provided at the upper right corner of the water tank 19. An inlet pipe 16 is welded between the slot 18 and the upper shell 9. A liquid pump 17 is installed on the inlet pipe 16. An outlet pipe 29 is installed between the lower left corner of the water tank 19 and the upper shell 9. A plate 5 is welded to the lower left of the upper shell 9, and a sliding groove 6 is provided between the two sides of the front end of the plate 5. A partition 28 is movably connected in the sliding groove 6, and a lever 7 is welded to the left side of the front end of the partition 28. The partition 28 is supported under the hollow cylinder 15. A ring 30 is fixed on the left side inside the water tank 19.
[0028] The paddle 7 can slide left and right at the front end of the slide 6. The paddle 7, slide 6, plate 5 and partition 28 are on the same horizontal plane. The water tank 19 is in a state of left low and right high. The partition 28 slides against the lower left corner of the water tank 19.
[0029] Specifically, such as Figure 1 and Figure 3 As shown, the liquid pump 17 is started to draw cold water from the inlet pipe 16, which enters the water tank 19 through the slot 18 and fills the entire tank. When the hollow cylinder 15 enters the upper shell 9, it slides along the inner wall of the ring 30. After adjusting the height of the hollow cylinder 15 to prevent resin particles from sticking to the outer shell 1, the hollow cylinder 15 is lifted and the lever 7 is pushed along the sliding groove 6 of the plate 5 to fit against the left side of the water tank 19 and gradually cover the bottom of the ring 30. The cold water in the water tank 19 lowers the temperature of the hollow cylinder 15, and the partition 28 is used to block the hollow cylinder 15 from the lower outer shell 1.
[0030] A lower fixing block 21 is welded to the upper right of the surface of the outer shell 1, and an upper fixing block 20 is welded to the lower right of the surface of the upper shell 9. A slot 31 is provided at the center of the lower part of the interior of the outer shell 1, and an insert block 23 is fixedly connected in the slot 31. A motor 24 is fixed in the insert block 23. A heating tank 2 is welded to the top of the insert block 23, and a processing chamber 3 is provided inside the heating tank 2. A stirring rod 22 is movably connected to the center of the lower part of the processing chamber 3. Handles 4 are fixed on both sides of the top of the heating tank 2. The output shaft of the motor 24 can guide the stirring rod 22 to rotate in place. The upper fixing block 20 is movably connected to the top of the lower fixing block 21.
[0031] Specifically, such as Figure 1 and Figure 4 As shown, the upper shell 9 can rotate horizontally on the top of the lower fixed block 21 of the outer shell 1 via the upper fixed block 20. After the upper shell 9 is turned open, the heating tank 2 inside the outer shell 1 can be seen. By holding the handles 4 on both sides, the insert block 23 and the heating tank 2 can be lifted from the slot 31 for cleaning or discharging. The stirring rod 22 controlled by the internal motor 24 can also mix the materials in the heating tank 2 and speed up the reaction efficiency.
[0032] Working principle: In use, the vertical rod 27 is first raised and lowered vertically along the left sleeve plate 8, guiding the vertical rod 27 and its connected horizontal plate 26 to move synchronously, squeezing the corrugated pipe 14 so that the hollow cylinder 15 can be lifted out from the circular groove 11. Unfolding the corrugated pipe 14 presses the hollow cylinder 15 into the circular groove 11 for feeding. The presence of valve 13 can control the resin particles in the feeding cylinder 10 to pass through the corrugated pipe 14 and the hollow cylinder 15 and enter the heating tank 2 below for stirring. Simultaneously, the liquid pump 17 needs to be started to draw cold water from the liquid inlet pipe 16, which enters the water tank 19 through the slot 18 for storage and filling the entire tank. When the hollow cylinder 15 enters the upper shell 9, it will slide along the inner wall of the ring 30. Adjusting the hollow cylinder 1... 5. After adjusting the height to prevent resin particles from sticking to the outer shell 1, lift the hollow cylinder 15 and push the lever 7 along the slide groove 6 of the plate 5 to fit against the left side of the water tank 19 and gradually cover the bottom of the ring 30. Use the cold water in the water tank 19 to lower the temperature of the hollow cylinder 15, and use the partition 28 to separate the hollow cylinder 15 from the lower outer shell 1. The upper shell 9 can rotate horizontally on the top of the lower fixing block 21 of the outer shell 1 through the upper fixing block 20. After turning the upper shell 9 open, the heating tank 2 inside the outer shell 1 can be seen. Hold the handles 4 on both sides to lift the insert block 23 and the heating tank 2 from the slot 31 for cleaning or discharging. The stirring rod 22 controlled by the internal motor 24 can also mix the materials in the heating tank 2 to speed up the reaction efficiency.
[0033] It will be apparent to those skilled in the art that this invention is not limited to the details of the exemplary embodiments described above, and that it can be implemented in other specific forms without departing from the spirit or essential characteristics of this invention. Therefore, the embodiments should be considered illustrative and non-limiting in all respects, and the scope of this invention is defined by the appended claims rather than the foregoing description. Thus, it is intended that all variations falling within the meaning and scope of equivalents of the claims be included within this invention. No reference numerals in the claims should be construed as limiting the scope of the claims.
Claims
1. A resin reactor with an automatic feeding mechanism, comprising an outer shell (1) and an upper shell (9), characterized in that: The top of the outer shell (1) is provided with an upper shell (9), and a feeding cylinder (10) is mounted on the left side of the top of the upper shell (9). A cover plate (12) is snapped onto the top of the feeding cylinder (10). A valve (13) is installed at the bottom inside the feeding cylinder (10). A corrugated pipe (14) is fixed at the bottom of the feeding cylinder (10), and a horizontal plate (26) is welded below the corrugated pipe (14). A hollow cylinder (15) is welded to the right side of the bottom of the horizontal plate (26). A circular groove (11) is provided in the upper left corner inside the upper shell (9). A sleeve plate (8) is welded between the front and rear sides of the left side of the upper shell (9), and bolts (25) are installed in the screw holes at the front and rear ends of the sleeve plate (8). A vertical rod (27) is welded longitudinally to the left side of the horizontal plate (26).
2. A resin reactor with an automatic feeding mechanism according to claim 1, characterized in that: The vertical rod (27) is embedded in the sleeve plate (8), and the bolt (25) can lock the vertical rod (27) in the sleeve plate (8) from the front end and the rear end.
3. A resin reactor with an automatic feeding mechanism according to claim 1, characterized in that: The hollow cylinder (15) is embedded in the circular groove (11), and the hollow cylinder (15) can be vertically raised and lowered with the horizontal plate (26).
4. A resin reactor with an automatic feeding mechanism according to claim 1, characterized in that: A water tank (19) is welded to the top of the interior of the upper shell (9), and a slot (18) is provided at the upper right corner of the water tank (19). An inlet pipe (16) is welded between the slot (18) and the upper shell (9). A liquid pump (17) is installed on the inlet pipe (16). An outlet pipe (29) is installed between the lower left corner of the water tank (19) and the upper shell (9). A plate (5) is welded to the lower left of the upper shell (9), and a sliding groove (6) is provided between the two sides of the front end of the plate (5). A partition (28) is movably connected in the sliding groove (6), and a lever (7) is welded to the left side of the front end of the partition (28). The partition (28) is supported under the hollow cylinder (15). A ring (30) is fixed on the left side inside the water tank (19).
5. A resin reactor with an automatic feeding mechanism according to claim 4, characterized in that: The paddle (7) can slide left and right at the front end of the slide groove (6), and the paddle (7), slide groove (6), plate (5) and partition (28) are on the same horizontal plane.
6. A resin reactor with an automatic feeding mechanism according to claim 4, characterized in that: The water tank (19) is in a state where the left side is lower than the right side, and the partition (28) slides along the lower left corner of the water tank (19).
7. A resin reactor with an automatic feeding mechanism according to claim 1, characterized in that: A lower fixing block (21) is welded to the upper right of the surface of the outer shell (1), and an upper fixing block (20) is welded to the lower right of the surface of the upper shell (9). A slot (31) is provided at the center of the lower part of the inner shell (1), and a plug (23) is fixedly connected in the slot (31). A motor (24) is fixed in the plug (23). A heating tank (2) is welded to the top of the plug (23), and a processing chamber (3) is provided inside the heating tank (2). A stirring rod (22) is movably connected to the center of the lower part of the processing chamber (3). A handle (4) is fixed on each side of the top of the heating tank (2).
8. A resin reactor with an automatic feeding mechanism according to claim 7, characterized in that: The output shaft of the motor (24) can guide the stirring rod (22) to rotate in place, and the upper fixing block (20) is movably connected to the top of the lower fixing block (21).