Reaction kettle for producing emulsion thickening agent

Through the magnetically driven stirring fan blade design and thermal fluid power source, the problem of uneven material layering and mixing in emulsion thickener production is solved, improving mixing efficiency and reducing production costs.

CN120285930AActive Publication Date: 2025-07-11SHAAN XI ACTIVE SUN RISE PETROCHEMICAL CO LTD
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Patent Information

Application Number
CN202510775905.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-11
Publication Date
2025-07-11
Estimated Expiration
2045-06-11

AI Technical Summary

Technical Problem

传统反应釜在生产乳液稠化剂时,物料易在釜底内部形成分层现象,导致混合不均匀,影响混合效率和产品质量。

Method used

The magnetically driven stirring fan blade design is adopted to enhance shear force and improve fluidity through the up and down swing of the first stirring fan blade and the second stirring fan blade, while using thermal fluid as a power source and heat carrier to provide an ideal thermal environment.

Benefits of technology

The material is fully and uniformly mixed in the kettle, the mixing efficiency is improved, and the production cost and thermal energy loss are reduced.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a reaction kettle for producing an emulsion thickening agent, and relates to the technical field of production and processing equipment.The reaction kettle comprises a reactor and a reaction mechanism, the reaction mechanism is arranged in the reactor, and the reaction mechanism comprises a hot fluid introduction pipe fixedly embedded in the reactor; a hollow shaft is movably embedded in the center of the interior of the reactor, a partition plate is fixedly connected to the side, close to the top of the hot fluid introduction pipe, of the interior of the hollow shaft, a plurality of through holes are formed in the outer surface of the partition plate, and first springs and second springs are fixedly connected to the tops and the bottoms of the through holes correspondingly; the top of the first spring is fixedly connected with a first piston, and the bottom of the second spring is fixedly connected with a second piston, so that the problems that materials are easily layered in the kettle bottom, the materials are difficult to uniformly mix, and the mixing uniformity and the mixing efficiency of the materials are influenced are solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of production and processing equipment, and more specifically, to a reaction kettle for the production of emulsion thickeners. Background Art

[0002] Emulsion thickeners are used to increase the viscosity and stability of emulsions, making their texture thicker and smoother, and improving the user experience. During the production of emulsion thickeners, a reaction kettle is required to achieve the efficient synthesis and mixing of thickener components in the emulsion system, ultimately forming a thickener product with specific rheological properties.

[0003] When traditional reaction kettles produce emulsion thickeners, most of them use a stirring mechanism to stir and mix the materials. However, traditional rotary stirrers can only generate shear force in local areas, resulting in insufficient shear force and fluidity of the materials, causing the materials to form a layered phenomenon inside the bottom of the kettle, making it difficult to mix the materials evenly, and thus affecting the mixing uniformity and efficiency of the materials, and the production quality of the product. Summary of the Invention

[0004] Aiming at the problems existing in the prior art, the purpose of the present invention is to provide a reaction kettle for the production of emulsion thickeners to solve the problems that materials are prone to form a layered phenomenon inside the bottom of the kettle, making it difficult to mix the materials evenly, and thus affecting the mixing uniformity and efficiency of the materials.

[0005] To solve the above problems, the present invention adopts the following technical solutions.

[0006] A reaction kettle for the production of emulsion thickeners includes a reactor and a reaction mechanism. The reaction mechanism is arranged inside the reactor. The reaction mechanism includes a hot fluid inlet pipe fixedly embedded inside the reactor. A hollow shaft is movably embedded at the center inside the reactor. One side of the inside of the hollow shaft close to the top of the hot fluid inlet pipe is fixedly connected with a partition board. A plurality of through holes are formed on the outer surface of the partition board. First springs and second springs are fixedly connected to the top and bottom of the through holes respectively. The top of the first spring is fixedly connected with a first piston. The bottom of the second spring is fixedly connected with a second piston. The top of the first piston is fixedly connected with a first moving block. The bottom of the second piston is fixedly connected with a second moving block. A plurality of first chutes and second chutes are formed on the outer surface of the hollow shaft. First sliders and second sliders are movably embedded on the inner surfaces of the plurality of first chutes and second chutes respectively. First rotating blocks and second rotating blocks are fixedly connected to the outer surfaces of the plurality of first sliders and second sliders respectively.

[0007] Further, a circular plate is fixedly connected to the top of the hollow shaft. A plurality of permanent magnets are movably embedded in the top of the circular plate. A motor is arranged on the top of the reactor. A rotating shaft is arranged at the bottom of the motor through an output shaft. A plurality of electromagnets are fixedly embedded at the bottom of the rotating shaft. A support plate is fixedly connected to the bottom of the motor. A plurality of support rods are fixedly connected to the bottom of the support plate. The plurality of support rods are fixedly connected to the top of the reactor.

[0008] Further, a pressure relief pipe is fixedly connected to one side of the hot fluid inlet pipe close to the bottom of the reactor. A first pulse valve is arranged on one side of the hot fluid inlet pipe close to the pressure relief pipe. A second pulse valve is arranged on the outer surface of the pressure relief pipe. The first pulse valve and the second pulse valve always keep one open and one closed.

[0009] Further, a plurality of first fixing rods are fixedly connected to the outer surface of the first rotating block. A plurality of first stirring fan blades are movably embedded on the outer surfaces of the plurality of first fixing rods. A plurality of first connecting rods are movably embedded on the outer surfaces of the plurality of first stirring fan blades. The plurality of first connecting rods are movably embedded in the inner surface of the hollow shaft close to the top. The plurality of first stirring fan blades only rotate around the plurality of first fixing rods as the center and will not move horizontally on the surfaces of the plurality of first fixing rods.

[0010] Further, a plurality of second fixing rods are fixedly connected to the outer surface of the second rotating block. A plurality of second stirring fan blades are movably embedded on the outer surfaces of the plurality of second fixing rods. A plurality of second connecting rods are movably embedded on the outer surfaces of the plurality of second stirring fan blades. The plurality of second connecting rods are movably embedded in the inner surface of the hollow shaft. The plurality of second stirring fan blades only rotate around the plurality of second fixing rods as the center and will not move horizontally on the surfaces of the plurality of second fixing rods.

[0011] Further, the first moving block, the second moving block, the first slider and the second slider are all made of neodymium iron boron and have magnetism. The first moving block and the first slider attract each other. The second moving block and the second slider attract each other. The first piston and the second piston are made of copper and can shield the magnetic field.

[0012] Further, the partition divides the inner cavity of the hollow shaft into upper and lower parts, and the upper and lower inner cavities are communicated through a plurality of through holes.

[0013] Further, an upper header is fixedly connected to one side of the reactor close to the top. A hot fluid outlet pipe is fixedly connected to the outer surface of the upper header. A lower header is fixedly connected to the bottom of the reactor. A plurality of heat exchange pipes are fixedly connected to the top of the lower header. A connecting pipe is fixedly connected to the bottom of the lower header.

[0014] Furthermore, the multiple electromagnets and the multiple permanent magnets attract each other, and the circular plate is made of copper, which can shield the magnetic field.

[0015] Furthermore, the connecting pipe is fixedly connected to the outer surface of the hot fluid inlet pipe, the multiple heat exchange pipes are fixedly connected to the outer surface of the upper header, and the multiple heat exchange pipes are fixedly embedded in the inner wall of the reactor.

[0016] Compared with the prior art, the beneficial effects of the present invention are as follows: (1) In this solution, by making the first stirring blade and the second stirring blade swing up and down during stirring, the shear force borne by the material can be enhanced, and the fluidity of the material in the reaction kettle can be improved. It can effectively reduce the stratification of the material in the bottom area of the kettle, enabling the material to be more fully and evenly mixed in the kettle. Not only is the mixing uniformity significantly improved, but the mixing efficiency is also increased.

[0017] (2) This solution indirectly drives the rotation of the first stirring blade and the second stirring blade inside the reactor by using magnetic force, avoiding the opening on the outer surface of the reactor, reducing the heat dissipation loss caused by the opening, improving the utilization efficiency of thermal energy, and thus reducing the production cost of the product.

[0018] (3) In this solution, the hot fluid is used as the power source and heat carrier. While improving the mixing uniformity and mixing efficiency of the material, it can create the required temperature conditions for the production material and provide an ideal thermal environment for production processes such as chemical reactions or physical changes. It not only improves the mixing effect of the material but also reduces the production cost of the product, bringing technical advantages and economic benefits to the production. BRIEF DESCRIPTION OF THE DRAWINGS

[0019] Figure 1 is a schematic structural diagram of the present invention; Figure 2 is a schematic structural diagram of the bottom of the present invention; Figure 3 is a schematic structural diagram of the inside of the reactor of the present invention; Figure 4 is a schematic structural diagram of the electromagnet part of the present invention; Figure 5 is a schematic structural diagram of the partition part of the present invention; Figure 6 is a schematic structural diagram of the inside of the hollow shaft of the present invention; Figure 7 is a schematic structural diagram of the first stirring blade part of the present invention; Figure 8 is a schematic structural diagram of the second stirring blade part of the present invention.

[0020] Explanation of the reference numerals in the drawings: 1. Reactor; 2. Hot fluid inlet pipe; 3. First pulse valve; 4. Pressure relief pipe; 5. Second pulse valve; 6. Hollow shaft; 7. Partition; 8. Through hole; 9. First spring; 10. Second spring; 11. First piston; 12. Second piston; 13. First moving block; 14. Second moving block; 15. First chute; 16. First slider; 17. First rotating block; 18. First fixed rod; 19. First stirring blade; 20. First connecting rod; 21. Second chute; 22. Second slider; 23. Second rotating block; 24. Second fixed rod; 25. Second stirring blade; 26. Second connecting rod; 27. Circular plate; 28. Permanent magnet; 29. Support rod; 30. Support plate; 31. Motor; 32. Rotating shaft; 33. Electromagnet; 34. Connecting pipe; 35. Lower header; 36. Heat exchange tube; 37. Upper header; 38. Hot fluid outlet pipe. Detailed implementation manners

[0021] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.

[0022] Please refer to Figure 1-8 , a reactor for the production of emulsion thickener, including a reactor 1. The top of the reactor 1 is provided with a feed inlet, and the bottom is provided with a discharge outlet. The discharge outlet is provided with a valve to control the outflow of the product. This is a common means in the prior art and will not be elaborated here. A reaction mechanism is provided inside the reactor 1. The reaction mechanism includes a hot fluid inlet pipe 2 fixedly embedded in the reactor 1. A hollow shaft 6 is movably embedded at the center of the reactor 1. One side of the inside of the hollow shaft 6 close to the top of the hot fluid inlet pipe 2 is fixedly connected with a partition 7. A plurality of through holes 8 are opened on the outer surface of the partition 7. The top and bottom of the through holes 8 are fixedly connected with a first spring 9 and a second spring 10 respectively. The top of the first spring 9 is fixedly connected with a first piston 11, and the bottom of the second spring 10 is fixedly connected with a second piston 12. The top of the first piston 11 is fixedly connected with a first moving block 13, and the bottom of the second piston 12 is fixedly connected with a second moving block 14. A plurality of first chutes 15 and second chutes 21 are opened on the outer surface of the hollow shaft 6. The inner surfaces of the plurality of first chutes 15 and second chutes 21 are movably embedded with a first slider 16 and a second slider 22 respectively. The outer surfaces of the plurality of first sliders 16 and second sliders 22 are fixedly connected with a first rotating block 17 and a second rotating block 23 respectively, realizing the up and down swing of the first stirring blade 19 and the second stirring blade 25 during stirring, making the material mixture more uniform.

[0023] Among them, a circular plate 27 is fixedly connected to the top of the hollow shaft 6. A plurality of permanent magnets 28 are movably embedded in the top of the circular plate 27. A motor 31 is arranged on the top of the reactor 1. A rotating shaft 32 is arranged at the bottom of the motor 31 through an output shaft. A plurality of electromagnets 33 are fixedly embedded at the bottom of the rotating shaft 32. The first stirring fan blade 19 and the second stirring fan blade 25 inside the reactor 1 are indirectly driven to rotate by magnetic force, avoiding the opening on the outer surface of the reactor 1, reducing the heat dissipation loss, and improving the utilization rate of thermal energy. A support plate 30 is fixedly connected to the bottom of the motor 31. A plurality of support rods 29 are fixedly connected to the bottom of the support plate 30. The plurality of support rods 29 are fixedly connected to the top of the reactor 1. Among them, a pressure relief pipe 4 is fixedly connected to one side of the hot fluid inlet pipe 2 close to the bottom of the reactor 1. A first pulse valve 3 is arranged on one side of the hot fluid inlet pipe 2 close to the pressure relief pipe 4. A second pulse valve 5 is arranged on the outer surface of the pressure relief pipe 4. The first pulse valve 3 and the second pulse valve 5 always keep one open and one closed. The pressure relief pipe 4 can discharge the hot fluid inside the hollow shaft 6, reducing the pressure of the hot fluid on the first piston 11 and the second piston 12, and creating conditions for the first spring 9 and the second spring 10 to release elastic potential energy.

[0024] Among them, a plurality of first fixing rods 18 are fixedly connected to the outer surface of the first rotating block 17. A plurality of first stirring fan blades 19 are movably embedded on the outer surfaces of the plurality of first fixing rods 18. A plurality of first connecting rods 20 are movably embedded on the outer surfaces of the plurality of first stirring fan blades 19. The plurality of first connecting rods 20 are movably embedded in the inner surface of the hollow shaft 6 close to the top. The plurality of first stirring fan blades 19 only rotate around the plurality of first fixing rods 18 and will not move horizontally on the surfaces of the plurality of first fixing rods 18. The first stirring fan blades 19 can stir the material to make the material mix evenly. A plurality of second fixing rods 24 are fixedly connected to the outer surface of the second rotating block 23. A plurality of second stirring fan blades 25 are movably embedded on the outer surfaces of the plurality of second fixing rods 24. A plurality of second connecting rods 26 are movably embedded on the outer surfaces of the plurality of second stirring fan blades 25. The plurality of second connecting rods 26 are movably embedded in the inner surface of the hollow shaft 6. The plurality of second stirring fan blades 25 only rotate around the plurality of second fixing rods 24 and will not move horizontally on the surfaces of the plurality of second fixing rods 24. The second stirring fan blades 25 can stir the material to make the material mix evenly.

[0025] Among them, the first moving block 13, the second moving block 14, the first slider 16 and the second slider 22 are all made of neodymium iron boron and have magnetic force. The first moving block 13 and the first slider 16 attract each other, and the second moving block 14 and the second slider 22 attract each other. The first piston 11 and the second piston 12 are made of copper, which can shield the magnetic field, reduce the mutual interference between different magnetic fields, and improve the stability of the equipment operation. The partition plate 7 divides the inner cavity of the hollow shaft 6 into upper and lower parts, and the upper and lower inner cavities are communicated through a plurality of through holes 8, so that the pressures received by the upper and lower inner cavities of the hollow shaft 6 are uniform.

[0026] Among them, one side of the reactor 1 close to the top is fixedly connected with an upper header 37. The outer surface of the upper header 37 is fixedly connected with a hot fluid outlet pipe 38. The bottom of the reactor 1 is fixedly connected with a lower header 35. The top of the lower header 35 is fixedly connected with a plurality of heat exchange tubes 36. The bottom of the lower header 35 is fixedly connected with a connecting pipe 34. The heat exchange tubes 36 can heat the material to create the required temperature conditions for the production material. A plurality of electromagnets 33 and a plurality of permanent magnets 28 attract each other. The circular plate 27 is made of copper, which can shield the magnetic field, reduce the mutual interference between different magnetic fields, and improve the stability of the equipment operation. The support plate 30 can support the motor 31 to ensure the stable operation of the equipment. The connecting pipe 34 is fixedly connected to the outer surface of the hot fluid inlet pipe 2. A plurality of heat exchange tubes 36 are fixedly connected to the outer surface of the upper header 37. A plurality of heat exchange tubes 36 are fixedly embedded in the inner wall of the reactor 1. The connecting pipe 34 can introduce the hot fluid into the lower header 35 for easy use.

[0027] By adopting the above technical solution, when using the reaction kettle, first introduce the hot fluid through the hot fluid inlet pipe 2, and then the hot fluid sequentially passes through the hot fluid inlet pipe 2, the connecting pipe 34, the lower header 35, the heat exchange pipe 36 and the upper header 37, and finally is led out by the hot fluid outlet pipe 38. The hot fluid exchanges heat in the heat exchange pipe 36 to heat the inside of the reactor 1. Then introduce the raw materials into the inside of the reactor 1, then turn on the power supply of the electromagnet 33 to make the electromagnet 33 generate an electromagnetic field, and then start the motor 31. The motor 31 drives the rotating shaft 32 to rotate through the output shaft. The rotating shaft 32 drives the electromagnet 33 to rotate the magnetic field formed by the electromagnet 33. The magnetic field uses magnetic force to make the permanent magnet 28 drive the circular plate 27 to rotate. The circular plate 27 drives the hollow shaft 6 to rotate. Since the first slider 16 and the second slider 22 are movably embedded in the first chute 15 and the second chute 21 on the surface of the hollow shaft 6, when the hollow shaft 6 rotates, it will drive the first rotating block 17 and the second rotating block 23 to rotate synchronously. Then the first rotating block 17 and the second rotating block 23 respectively drive the first stirring fan blade 19 and the second stirring fan blade 25 to rotate through the first fixing rod 18 and the second fixing rod 24 to stir the raw materials. Indirectly driving the first stirring fan blade 19 and the second stirring fan blade 25 inside the reactor 1 to rotate by magnetic force avoids the opening on the outer surface of the reactor 1, reduces the heat dissipation loss, and improves the utilization rate of thermal energy.

[0028] Close the pressure relief pipe 4, open the first pulse valve 3, the hot fluid enters the internal cavity of the hollow shaft 6 and quickly diffuses to the middle position between the first piston 11 and the second piston 12 through the through hole 8 on the partition plate 7. Then, due to the continuous entry of the hot fluid, the first piston 11 and the second piston 12 are forced to move in opposite directions. Further, the first piston 11 and the second piston 12 respectively pull the first spring 9 and the second spring 10 to make the first spring 9 and the second spring 10 obtain elastic potential energy. And because the first piston 11 and the second piston 12 move in opposite directions, the first moving block 13 and the second moving block 14 respectively drive the first slider 16 and the second slider 22 to move in the opposite direction inside the first chute 15 and the second chute 21. Further, the first rotating block 17 and the second rotating block 23 move in the opposite direction, that is, the first rotating block 17 moves upward and the second rotating block 23 moves downward. When the first rotating block 17 moves upward, due to the limitation of the first connecting rod 20, the first stirring fan blade 19 can only make a downward arc swing with the first fixing rod 18 as the center of the circle. When the second rotating block 23 moves downward, due to the limitation of the second connecting rod 26, the second stirring fan blade 25 can only make an upward arc swing with the second fixing rod 24 as the center of the circle.

[0029] When the pressure relief pipe 4 is opened and the first pulse valve 3 is closed, the hot fluid inside the hollow shaft 6 is discharged from the pressure relief pipe 4, and then the pressure of the hot fluid on the first piston 11 and the second piston 12 is reduced, and then the first spring 9 and the second spring 10 release the elastic potential energy, so that the first piston 11 and the second piston 12 move in opposite directions, and then the first moving block 13 and the second moving block 14 indirectly drive the first rotating block 17 and the second rotating block 23 to move, that is, the first rotating block 17 moves down and the second rotating block 23 moves up. When the first rotating block 17 moves down, due to the limitation of the first connecting rod 20, the first stirring blade 19 can only swing upward in an arc with the first fixed rod 18 as the center of the circle. When the second rotating block 23 moves up, due to the limitation of the second connecting rod 26, the second stirring blade 25 can only swing downward in an arc with the second fixed rod 24 as the center of the circle. The first stirring blade 19 and the second stirring blade 25 swing up and down during stirring, so that the materials are mixed more evenly.

[0030] Directions: First, the raw materials are introduced into the interior of the reactor 1; Then, the hot fluid is introduced from the hot fluid introduction pipe 2 and then led out from the hot fluid outlet pipe 38, so that the hot fluid exchanges heat in the heat exchange pipe 36 and heats the interior of the reactor 1; Next, the motor 31 drives the electromagnet 33 to rotate, and drives the first stirring blade 19 and the second stirring blade 25 to rotate, so that the raw materials can be stirred; At the same time, the circulation operation is carried out, the pressure relief pipe 4 is closed and the first pulse valve 3 is opened, and the pressure relief pipe 4 is opened and the first pulse valve 3 is closed, so that the first stirring blade 19 and the second stirring blade 25 swing up and down during stirring; Finally, complete the full mixing and reaction of the materials.

[0031] The above is only a preferred specific implementation of the present invention; however, the protection scope of the present invention is not limited thereto. Any technician familiar with the technical field can make equivalent replacements or changes according to the technical solution and its improved conception within the technical scope disclosed by the present invention, which should be covered by the protection scope of the present invention.

Claims

1. A reactor for the production of emulsion thickeners, comprising a reactor (1), characterized in that: Reaction mechanism, the reaction mechanism is arranged inside the reactor (1), the reaction mechanism includes a hot fluid inlet pipe (2) fixedly embedded inside the reactor (1), a hollow shaft (6) is movably embedded at the center inside the reactor (1), a partition plate (7) is fixedly connected to one side of the inside of the hollow shaft (6) near the top of the hot fluid inlet pipe (2), a plurality of through holes (8) are formed on the outer surface of the partition plate (7), a first spring (9) and a second spring (10) are fixedly connected to the top and bottom of the through hole (8) respectively, a first piston (11) is fixedly connected to the top of the first spring (9), a second piston (12) is fixedly connected to the bottom of the second spring (10), a first moving block (13) is fixedly connected to the top of the first piston (11), a second moving block (14) is fixedly connected to the bottom of the second piston (12), a plurality of first chutes (15) and second chutes (21) are formed on the outer surface of the hollow shaft (6), a first slider (16) and a second slider (22) are movably embedded on the inner surfaces of the plurality of first chutes (15) and second chutes (21), and a first rotating block (17) and a second rotating block (23) are fixedly connected to the outer surfaces of the plurality of first sliders (16) and second sliders (22).

2. The reactor for producing emulsion thickener according to claim 1, characterized in that: A circular plate (27) is fixedly connected to the top of the hollow shaft (6), a plurality of permanent magnets (28) are movably embedded on the top of the circular plate (27), a motor (31) is arranged on the top of the reactor (1), a rotating shaft (32) is arranged at the bottom of the motor (31) through an output shaft, a plurality of electromagnets (33) are fixedly embedded at the bottom of the rotating shaft (32), a support plate (30) is fixedly connected to the bottom of the motor (31), a plurality of support rods (29) are fixedly connected to the bottom of the support plate (30), and the plurality of support rods (29) are fixedly connected to the top of the reactor (1).

3. A reactor for the production of emulsion thickeners according to claim 1, characterized in that: A pressure relief pipe (4) is fixedly connected to one side of the hot fluid inlet pipe (2) near the bottom of the reactor (1), a first pulse valve (3) is arranged on one side of the hot fluid inlet pipe (2) near the pressure relief pipe (4), a second pulse valve (5) is arranged on the outer surface of the pressure relief pipe (4), and the first pulse valve (3) and the second pulse valve (5) always keep one open and one closed.

4. A reactor for the production of an emulsion thickener according to claim 1, characterized in that: A plurality of first fixing rods (18) are fixedly connected to the outer surface of the first rotating block (17), a first stirring fan blade (19) is movably embedded on the outer surface of each of the plurality of first fixing rods (18), a first connecting rod (20) is movably embedded on the outer surface of each of the plurality of first stirring fan blades (19), the plurality of first connecting rods (20) are movably embedded in the inner surface of the hollow shaft (6) near the top, and the plurality of first stirring fan blades (19) only rotate around the plurality of first fixing rods (18) as the center and will not move horizontally on the surface of the plurality of first fixing rods (18).

5. A reactor for the production of an emulsion thickener according to claim 1, characterized in that: A plurality of second fixing rods (24) are fixedly connected to the outer surface of the second rotating block (23). The outer surfaces of the plurality of second fixing rods (24) are movably embedded with second stirring fan blades (25). The outer surfaces of the plurality of second stirring fan blades (25) are movably embedded with second connecting rods (26). The plurality of second connecting rods (26) are movably embedded in the inner surface of the hollow shaft (6). The plurality of second stirring fan blades (25) only rotate around the plurality of second fixing rods (24) and will not move horizontally on the surfaces of the plurality of second fixing rods (24).

6. The reactor for producing emulsion thickener according to claim 1, characterized in that: The first moving block (13), the second moving block (14), the first slider (16) and the second slider (22) are all made of neodymium iron boron and have magnetism. The first moving block (13) and the first slider (16) attract each other. The second moving block (14) and the second slider (22) attract each other. The first piston (11) and the second piston (12) are made of copper and can shield the magnetic field.

7. A reactor for the production of an emulsion thickener according to claim 1, characterized in that: The partition plate (7) divides the inner cavity of the hollow shaft (6) into upper and lower parts, and the upper and lower inner cavities are communicated through a plurality of through holes (8).

8. A reactor for producing an emulsion thickener according to claim 1, characterized in that: One side of the reactor (1) near the top is fixedly connected with an upper header (37). A hot fluid outlet pipe (38) is fixedly connected to the outer surface of the upper header (37). The bottom of the reactor (1) is fixedly connected with a lower header (35). A plurality of heat exchange tubes (36) are fixedly connected to the top of the lower header (35). A connecting pipe (34) is fixedly connected to the bottom of the lower header (35).

9. A reactor for the production of an emulsion thickener according to claim 2, characterized in that: The plurality of electromagnets (33) attract the plurality of permanent magnets (28). The circular plate (27) is made of copper and can shield the magnetic field.

10. The reactor for producing emulsion thickener according to claim 8, characterized in that: The connecting pipe (34) is fixedly connected to the outer surface of the hot fluid inlet pipe (2). The plurality of heat exchange tubes (36) are fixedly connected to the outer surface of the upper header (37). The plurality of heat exchange tubes (36) are fixedly embedded in the inner wall of the reactor (1).

Citation Information

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