Cooling device of high-speed dispersion machine and high-speed dispersion machine
By designing a cooling device for the high-speed disperser, and utilizing a coolant circulation and automatic discharge mechanism, the problem of insufficient cooling function in the high-speed disperser is solved, the intelligence and buffering capacity of the equipment are improved, the material dispersion effect is ensured, and the service life of the equipment is extended.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- 万博新材料科技(南通)有限公司
- Filing Date
- 2022-11-24
- Publication Date
- 2026-04-21
AI Technical Summary
Existing high-speed dispersers lack cooling functions and cannot cool the dispersed materials. They also have low levels of intelligence, cannot automatically drain the coolant when the internal coolant temperature rises, and cannot easily add low-temperature coolant. Furthermore, they have poor buffering capacity and cannot prevent large particles from settling to the bottom, thus reducing the degree of material dispersion.
A cooling device was designed, comprising components such as a mounting plate, outer barrel, inner frame, extrusion block, annular frame, air column, and air pump. Through the circulation and automatic discharge mechanism of coolant, the disperser is cooled and buffered, avoiding damage from excessive temperature, improving the level of intelligence, and preventing large particles from settling to the bottom.
It achieves effective cooling of the disperser, extends the service life of the equipment, improves the level of intelligence and buffering capacity, ensures the material dispersion effect, avoids the accumulation of coolant affecting the cooling effect, and enhances the reliability of the equipment and the material dispersion effect.
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Figure CN115814642B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of high-speed disperser technology, and specifically to a cooling device for a high-speed disperser and a high-speed disperser. Background Technology
[0002] Dispersers, also known as mixers, can be divided into hydraulic lifting dispersers and mechanical lifting dispersers according to their lifting methods. The speed of the disperser can be adjusted arbitrarily. It mainly consists of five parts: hydraulic system, main drive, mixing system, guiding mechanism and electrical control box. It is widely used in coatings and solid mixing and dispersion.
[0003] However, existing high-speed dispersers do not have a cooling function and cannot cool the dispersed materials. They have a low level of intelligence and cannot automatically discharge and add low-temperature coolant when the internal coolant temperature rises. They also have poor buffering capacity and cannot prevent large particles from settling to the bottom, thus reducing the degree of material dispersion. Summary of the Invention
[0004] To solve the above-mentioned technical problems, the present invention provides a cooling device for a high-speed disperser and a high-speed disperser, which solves the problem that existing high-speed dispersers do not have a cooling function. It can cool the dispersed materials, improve the level of intelligence, automatically discharge the coolant when the temperature inside the equipment rises, facilitate the addition of low-temperature coolant, enhance the buffering capacity, and prevent large particles from settling to the bottom and reducing the degree of material dispersion.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a cooling device for a high-speed disperser, comprising a mounting plate, an outer barrel fixedly connected to the top of the mounting plate, an inner frame evenly installed inside the outer barrel, a liquid inlet groove on one side of the inner frame penetrating the inner frame, a pressing block slidably connected between the two sides of the inner wall of the inner frame, a return spring fixing one side of the inner wall of the inner frame to the pressing block, and one end of the pressing block extending to the outside of the inner frame. This provides the high-speed disperser with cooling capabilities, preventing damage from excessive temperature during operation, extending the equipment's service life, and ensuring that the coolant, after cooling the equipment, moves to a distant location, preventing the heated coolant from accumulating in the inner frame. The cooling effect of the inner frame is reduced around the frame and the liquid inlet tank, improving the reliability of the cooling device. An annular frame is slidably connected to the inner wall of the outer barrel. Air columns are evenly installed on the bottom inner side of the outer barrel, and the top of the air columns is fixedly connected to the annular frame. Heat dissipation holes are symmetrically opened on the outer side of the outer barrel near the annular frame. An air pump is fixedly connected to the top of the mounting plate near the heat dissipation holes, and the air outlet of the air pump extends to the position near the heat dissipation holes. A drain tank is symmetrically opened on the top of the outer barrel, and a receiving box is fixedly connected to the top of the mounting plate near the drain tank. This improves the intelligence of the equipment, enabling automatic discharge of coolant after the coolant temperature rises, facilitating the addition of coolant at a lower temperature, and preventing the coolant temperature inside the equipment from becoming too high and affecting the cooling function.
[0006] Preferably, an upward push spring is fixedly connected to the bottom inner side of the receiving box, and a buffer plate is fixedly connected to the top of the upward push spring. The buffer plate is slidably connected to the inner wall of the receiving box, which improves the buffering capacity of the equipment and can prevent the buffer solution from directly impacting the inner wall of the equipment and causing splashing.
[0007] A high-speed disperser, equipped with the aforementioned cooling device, includes a mounting frame. The mounting frame is mounted on top of and fixedly connected to a mounting plate. A disperser motor is fixedly connected to the top of the mounting frame. A disperser tank is mounted below the mounting frame. An inner rod is rotatably connected to the bottom of the mounting frame. A lifting rod is mounted at the bottom of the inner rod. A hydraulic cylinder is fixedly connected to the bottom inner side of the disperser tank. A waterproof plate is fixedly connected to the top of the hydraulic cylinder. The waterproof plate is slidably connected to the inner wall of the disperser tank. Dispersing plates are evenly installed on the outer side of the lifting rod.
[0008] Preferably, the top of the lifting rod is provided with a lifting groove, and one bottom end of the inner rod extends into the interior of the lifting groove and is slidably connected to the inner wall of the lifting groove.
[0009] Preferably, elastic plates are evenly installed on the outer side of the lifting rod, and a locking block is fixedly connected to the side of the elastic plate near the lifting rod. A locking groove is opened on the inner rod near the locking block. The locking groove passes through the lifting rod, which can control the intermittent dispersion of materials by the equipment, so that the coolant continuously enters and exits the inner frame to cool the equipment and materials, ensuring the working time of the internal cooling device of the disperser, and ensuring that the cooling device can work normally for a long time.
[0010] Preferably, the lifting rod has a material lifting groove inside, and a material inlet is evenly provided at one end of the bottom of the inner wall of the material lifting groove. A material outlet is provided on the inner wall of the material lifting groove above the material inlet.
[0011] Preferably, a longitudinal rod is fixedly connected to the inner bottom of the lifting trough, and inclined plates are evenly installed on the outer side of the longitudinal rod. This can control the material to rise continuously during material dispersion, prevent larger particles from sinking to the bottom and failing to be dispersed, and improve the degree of material dispersion.
[0012] Preferably, an annular plate is fixedly connected to the inner wall of the material lifting trough near the inclined plate, and the inner wall of the annular plate is uniformly equipped with material breakage protrusions.
[0013] This invention provides a cooling device for a high-speed disperser and the high-speed disperser itself. It offers the following advantages:
[0014] (i) The cooling device and the high-speed disperser of this high-speed disperser allow coolant to enter the inner frame from the inlet tank. The inner frame is cooled by the coolant. The material to be dispersed at high speed is poured into the dispersion tank for dispersion. When the material comes into contact with the inner frame, it is cooled down. When the material is pushed and dispersed, it pushes the extrusion block. The extrusion block compresses the return spring and squeezes the coolant inside the inner frame out of the inlet tank to the outside of the dispersion tank. When the material around the inner frame stops rotating and crushing, the return spring pushes the extrusion block to move away from the inner frame. The coolant then enters the inner frame again from the inlet tank to cool it down. This gives the high-speed disperser a cooling capacity, which can prevent the high-speed disperser from being damaged by excessive temperature during operation and improve the service life of the equipment.
[0015] (ii) The cooling device and high-speed disperser of the high-speed disperser are designed so that when the coolant inside the inner frame is squeezed out by the extrusion block, it is quickly sprayed out from the liquid inlet. The coolant squeezed out of the inner frame moves to a greater distance and mixes with the low-temperature coolant inside the outer barrel. This ensures that the coolant that has been cooled after the equipment is cooled moves to a greater distance, avoiding the accumulation of the heated coolant around the inner frame and the liquid inlet, which would reduce the cooling effect of the inner frame and improve the reliability of the cooling device.
[0016] (III) The cooling device and high-speed disperser of this high-speed disperser, through the cooling liquid inside the inner frame being squeezed out and mixed with the cooling liquid inside the outer barrel, the temperature of the cooling liquid inside the outer barrel gradually increases. After the temperature of the annular frame is increased by contact with the cooling liquid, the heat is transferred to the air column. After the temperature of the air column increases, the volume of the air inside expands. The air column pushes the annular frame upward. After the cooling liquid is pushed up by the annular frame, it flows from the drain trough into the receiving box. After the annular frame rises above the heat dissipation hole, it no longer blocks the heat dissipation hole. The air pump sends air through the heat dissipation hole into the air column inside the outer barrel. After the air flow speed around the air column increases, the temperature decreases. After the volume of the air column decreases, the annular frame descends and continues to pour the cooled cooling liquid into the outer barrel. This improves the intelligence of the equipment and can automatically discharge the cooling liquid after the temperature rises, making it convenient to add the cooling liquid with a lower temperature, and avoiding the cooling function being affected by the excessively high temperature of the cooling liquid inside the equipment.
[0017] (iv) The cooling device and the high-speed disperser of the high-speed disperser improve the buffering capacity of the equipment by the impact of the buffer plate when the coolant flows from the drain tank into the receiving box. This is because the buffer plate compresses the push spring and then descends, thus preventing the buffer solution from directly impacting the inner wall of the equipment and causing splashing.
[0018] (V) The cooling device and high-speed disperser of this high-speed disperser disperse the material inside the dispersion barrel by driving the dispersion plate to rotate at high speed through the dispersion motor. The rotation speed of the inner rod and the lifting rod gradually increases. The material is pushed by the dispersion plate to squeeze the extrusion block into the inner frame. The coolant inside the inner frame is squeezed out from the liquid inlet to the outside of the inner frame. Due to centrifugal force, the locking block pushes the elastic plate to bend and move to the outside of the locking slot. The lifting rod stops rotating. The lifting rod and the dispersion plate descend along the inner rod due to their own gravity. The material inside the dispersion barrel is no longer pushed by the dispersion plate and the rotation speed slows down. The coolant enters the inner frame again from the liquid inlet to cool the material inside the dispersion barrel. The hydraulic cylinder pushes the lifting rod to rise. The lifting rod and the dispersion plate rotate with the inner rod to disperse the material again. This can control the intermittent dispersion of the material by the equipment, so that the coolant continuously enters and exits the inner frame to cool the equipment and the material. This ensures the working time of the internal cooling device of the disperser and can ensure that the cooling device can work normally for a long time.
[0019] (vi) The cooling device and high-speed disperser of the high-speed disperser allow the material to enter the lifting trough from the inlet and outlet. After the lifting rod rotates, the inclined plate rotates simultaneously with the lifting rod. The inclined plate pushes the material inside the lifting trough upward and then flows out from the outlet. The material inside the dispersion tank continues to enter the lifting trough from the inlet. This can control the material to rise continuously during material dispersion, prevent larger particles from sinking to the bottom and not being dispersed, and improve the degree of material dispersion. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of the present invention;
[0021] Figure 2 This is an internal sectional view of the receiving box of the present invention;
[0022] Figure 3 This is a schematic diagram of the internal components of the outer barrel of the present invention;
[0023] Figure 4 For the present invention Figure 3 Enlarged structural diagram at point A;
[0024] Figure 5 This is an internal cross-sectional view of the dispersion barrel of the present invention;
[0025] Figure 6 This is an internal cross-sectional view of the inner frame and extrusion block of the present invention;
[0026] Figure 7 This is an internal sectional view of the lifting rod of the present invention.
[0027] In the diagram: 1-Mounting plate, 2-Outer barrel, 3-Inner frame, 4-Liquid inlet tank, 5-Extrusion block, 6-Annular frame, 7-Inflating column, 8-Heat dissipation hole, 9-Air pump, 10-Drainage tank, 11-Receiving box, 12-Reset spring, 13-Push-up spring, 14-Buffer plate, 15-Mounting frame, 16-Dispersion motor, 17-Dispersion barrel, 18-Inner rod, 19-Lifting rod, 20-Lifting groove, 21-Elastic plate, 22-Positioning block, 23-Positioning groove, 24-Hydraulic cylinder, 25-Waterproof plate, 26-Dispersion plate, 27-Lifting trough, 28-Inlet, 29-Outlet, 30-Longitudinal rod, 31-Inclined plate, 32-Annular plate. Detailed Implementation
[0028] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the invention to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described to better illustrate the principles and practical application of the invention, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for a particular purpose.
[0029] Example 1
[0030] Please see Figures 1-6This invention provides a technical solution: a cooling device for a high-speed disperser, comprising a mounting plate 1, an outer barrel 2 fixedly connected to the top of the mounting plate 1, an inner frame 3 uniformly installed inside the outer barrel 2, a liquid inlet groove 4 opened on one side of the inner frame 3, the liquid inlet groove 4 penetrating the inner frame 3, an extrusion block 5 slidably connected between the two sides of the inner wall of the inner frame 3, one side of the inner wall of the inner frame 3 being fixedly connected to the extrusion block 5 by a return spring 12, one end of the extrusion block 5 extending to the outside of the inner frame 3, an annular frame 6 slidably connected to the inner wall of the outer barrel 2, an air column 7 uniformly installed on the bottom inner side of the outer barrel 2, the top of the air column 7 being fixedly connected to the annular frame 6, heat dissipation holes 8 symmetrically opened on the outer side of the outer barrel 2 near the annular frame 6, a vacuum pump 9 fixedly connected to the top of the mounting plate 1 near the heat dissipation holes 8, the air outlet of the vacuum pump 9 extending to the position near the heat dissipation holes 8, a drain groove 10 symmetrically opened on the top of the outer barrel 2, and a receiving box 11 fixedly connected to the top of the mounting plate 1 near the drain groove 10.
[0031] A push spring 13 is fixedly connected to the bottom inner side of the receiving box 11, and a buffer plate 14 is fixedly connected to the top of the push spring 13. The buffer plate 14 is slidably connected to the inner wall of the receiving box 11.
[0032] In use, the dispersion barrel of the high-speed disperser is installed inside the outer barrel 2, and the inner frame 3 is fitted onto the outside of the dispersion barrel. The inner frame 3 is installed on the inner wall of the dispersion barrel. Coolant is poured into the space between the outer barrel 2 and the dispersion barrel. The coolant enters the inner frame 3 from the inlet tank 4. The inner frame 3 is cooled by the coolant. The material to be dispersed at high speed is poured into the dispersion barrel for dispersion. When the material comes into contact with the inner frame 3, it is cooled down. When the material is pushed and dispersed, it pushes the extrusion block 5. The extrusion block 5 compresses the return spring 12 and squeezes the coolant inside the inner frame 3 out of the inlet tank 4 to the outside of the dispersion barrel. When the material around the inner frame 3 stops rotating and crushing, the return spring 12 pushes the extrusion block 5 to move away from the inner frame 3. The coolant enters the inner frame 3 again from the inlet tank 4 to cool down the inner frame 3. This gives the high-speed disperser a cooling capacity, which can prevent the high-speed disperser from being damaged by excessive temperature during operation and improve the service life of the equipment.
[0033] When the heated coolant inside the inner frame 3 is squeezed out by the extrusion block 5, it is quickly sprayed out from the inlet tank 4. The coolant squeezed out of the inner frame 3 moves to a greater distance and mixes with the low-temperature coolant inside the outer tank 2. This ensures that the coolant, after cooling the equipment, moves to a greater distance, preventing the heated coolant from accumulating around the inner frame 3 and the inlet tank 4, thus reducing the cooling effect of the inner frame 3 and improving the reliability of the cooling device.
[0034] After the coolant inside the inner frame 3 is heated, it is squeezed out and mixed with the coolant inside the outer tank 2. The temperature of the coolant inside the outer tank 2 gradually increases. After the temperature of the annular frame 6 is increased due to contact with the coolant, it transfers heat to the air column 7. As the temperature of the air column 7 increases, the volume of air inside it expands, and the air column 7 pushes the annular frame 6 upward. After the coolant is pushed up by the annular frame 6, it flows from the drain trough 10 into the receiving box 11. After the annular frame 6 rises above the heat dissipation hole 8, it no longer blocks the heat dissipation hole 8. The air pump 9 sends air through the heat dissipation hole 8 into the area around the air column 7 inside the outer tank 2. As the air flow speed around the air column 7 increases, the temperature decreases. As the volume of the air column 7 decreases, the annular frame 6 descends, continuing to pour the cooled coolant into the outer tank 2. This improves the intelligence of the equipment, enabling it to automatically discharge coolant after the temperature rises, facilitating the addition of coolant at a lower temperature, and preventing the coolant temperature inside the equipment from becoming too high and affecting the cooling function.
[0035] When the coolant flows from the drain trough 10 into the receiving box 11, it impacts the buffer plate 14. The buffer plate 14 compresses the push spring 13 and then descends, which improves the buffering capacity of the equipment and can prevent the buffer solution from directly impacting the inner wall of the equipment and causing splashing.
[0036] Example 2
[0037] Please see Figures 1-7 The present invention provides a technical solution: Based on embodiment 1, a high-speed disperser is provided, equipped with the above-mentioned cooling device, including a mounting frame 15, which is mounted on the top of the mounting plate 1 and fixedly connected to the mounting plate 1. A disperser motor 16 is fixedly connected to the top of the mounting frame 15, and a disperser barrel 17 is installed below the mounting frame 15. A liquid inlet trough 4 passes through the disperser barrel 17. An inner rod 18 is rotatably connected to the bottom of the mounting frame 15, and a lifting rod 19 is installed at the bottom of the inner rod 18. A hydraulic cylinder 24 is fixedly connected to the bottom of the inner side of the disperser barrel 17, and a waterproof plate 25 is fixedly connected to the top of the hydraulic cylinder 24. The waterproof plate 25 is slidably connected to the inner wall of the disperser barrel 17, and disperser plates 26 are evenly installed on the outer side of the lifting rod 19.
[0038] The top of the lifting rod 19 is provided with a lifting groove 20, and one end of the bottom of the inner rod 18 extends into the interior of the lifting groove 20 and is slidably connected to the inner wall of the lifting groove 20.
[0039] Elastic plates 21 are evenly installed on the outer side of the lifting rod 19. A locking block 22 is fixedly connected to the side of the elastic plate 21 near the lifting rod 19. A locking groove 23 is opened on the inner rod 18 near the locking block 22, and the locking groove 23 passes through the lifting rod 19.
[0040] The lifting rod 19 has a material lifting groove 27 inside. The bottom of the inner wall of the material lifting groove 27 has a uniformly distributed inlet 28. The inner wall of the material lifting groove 27 has an outlet 29 located above the inlet 28.
[0041] A longitudinal rod 30 is fixedly connected to the bottom inner side of the lifting trough 27, and inclined plates 31 are evenly installed on the outer side of the longitudinal rod 30.
[0042] An annular plate 32 is fixedly connected to the inner wall of the material lifting trough 27 near the inclined plate 31, and the inner wall of the annular plate 32 is evenly equipped with material breakage protrusions.
[0043] In use, the dispersing motor 16 drives the dispersing plate 26 to rotate at high speed, dispersing the material inside the dispersing barrel 17. The rotation speed of the inner rod 18 and the lifting rod 19 gradually increases. The material is pushed by the dispersing plate 26, squeezing the extrusion block 5 into the inner frame 3. The coolant inside the inner frame 3, after being heated, is squeezed out of the inner frame 3 from the liquid inlet 4. Due to centrifugal force, the locking block 22 pushes the elastic plate 21 to bend and move to the outside of the locking slot 23. The lifting rod 19 stops rotating. The lifting rod 19 and the dispersing plate 26 descend along the inner rod 18 due to their own gravity. After the material inside the dispersing barrel 17 is no longer pushed by the dispersing plate 26, the rotation speed slows down, and the return spring... 12 pushes the extrusion block 5 to move away from the inner subframe 3, and the coolant enters the inner subframe 3 again from the inlet tank 4 to cool the material inside the dispersion tank 17. The hydraulic cylinder 24 pushes the lifting rod 19 to rise until the locking block 22 rises to the locking groove 23. The elastic plate 21 pushes the locking block 22 into the locking groove 23. The lifting rod 19 and the dispersion plate 26 rotate again with the inner rod 18 to disperse the material. This can control the intermittent dispersion of the material by the equipment, so that the coolant continuously enters and exits the inner subframe 3 to cool the equipment and the material, ensuring the working time of the internal cooling device of the disperser and ensuring that the cooling device can work normally for a long time.
[0044] Material enters the lifting trough 27 through the feed inlet 28 and the discharge outlet 29. After the lifting rod 19 rotates, the inclined plate 31 rotates simultaneously with the lifting rod 19. The inclined plate 31 pushes the material inside the lifting trough 27 upward and flows out from the discharge outlet 29. The material inside the dispersion tank 17 continues to enter the lifting trough 27 through the feed inlet 28. This can control the material to rise continuously during material dispersion, prevent larger particles from sinking to the bottom and not being dispersed, and improve the degree of material dispersion.
[0045] The inclined plate 31 pushes the material to move inside the lifting trough 27. During the process of being pushed by the inclined plate 31, the material collides with the crushing protrusions on the outside of the annular plate 32 and is broken, which improves the equipment's ability to disperse materials.
[0046] Obviously, the described embodiments are only some, not all, of the embodiments of the present invention. All other embodiments obtained by those skilled in the art or related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. A cooling device for a high-speed disperser, comprising a mounting plate (1), characterized in that, An outer barrel (2) is fixedly connected to the top of the mounting plate (1). An inner frame (3) is evenly installed inside the outer barrel (2). A liquid inlet groove (4) is opened on one side of the inner frame (3). The liquid inlet groove (4) penetrates the inner frame (3). A squeezing block (5) is slidably connected between the two sides of the inner wall of the inner frame (3). One side of the inner wall of the inner frame (3) is fixedly connected to the squeezing block (5) by a return spring (12). One end of the squeezing block (5) extends to the outside of the inner frame (3). An annular frame (6) is slidably connected to the inner wall of the outer barrel (2). 2) Inflation columns (7) are evenly installed on the inner bottom. The top of the inflation column (7) is fixedly connected to the annular frame (6). Heat dissipation holes (8) are symmetrically opened on the outer side of the outer barrel (2) near the annular frame (6). A vacuum pump (9) is fixedly connected on the top of the mounting plate (1) near the heat dissipation hole (8). The air outlet of the vacuum pump (9) extends to the position near the heat dissipation hole (8). A drain trough (10) is symmetrically opened on the top of the outer barrel (2). A receiving box (11) is fixedly connected on the top of the mounting plate (1) near the drain trough (10).
2. The cooling device for a high-speed disperser according to claim 1, characterized in that, The bottom inner side of the receiving box (11) is fixedly connected to an upward push spring (13), and the top of the upward push spring (13) is fixedly connected to a buffer plate (14). The buffer plate (14) is slidably connected to the inner wall of the receiving box (11).
3. A high-speed disperser, equipped with the cooling device of claim 1, including a mounting frame (15), characterized in that, A dispersing motor (16) is fixedly connected to the top of the mounting frame (15), a dispersing barrel (17) is installed below the mounting frame (15), an inner rod (18) is rotatably connected to the bottom of the mounting frame (15), a lifting rod (19) is installed at the bottom of the inner rod (18), a hydraulic cylinder (24) is fixedly connected to the bottom of the inner side of the dispersing barrel (17), a waterproof plate (25) is fixedly connected to the top of the hydraulic cylinder (24), the waterproof plate (25) is slidably connected to the inner wall of the dispersing barrel (17), and dispersing plates (26) are evenly installed on the outer side of the lifting rod (19).
4. A high-speed disperser according to claim 3, characterized in that, The top of the lifting rod (19) is provided with a lifting groove (20), and one end of the bottom of the inner rod (18) extends into the interior of the lifting groove (20) and is slidably connected to the inner wall of the lifting groove (20).
5. A high-speed disperser according to claim 4, characterized in that, Elastic plates (21) are evenly installed on the outer side of the lifting rod (19). A locking block (22) is fixedly connected to the side of the elastic plate (21) near the lifting rod (19). A locking groove (23) is opened on the inner rod (18) near the locking block (22). The locking groove (23) passes through the lifting rod (19).
6. A high-speed disperser according to claim 3, characterized in that, The lifting rod (19) has a lifting groove (27) inside. The bottom of the inner wall of the lifting groove (27) has a feeding port (28) evenly distributed. The inner wall of the lifting groove (27) has a discharging port (29) located above the feeding port (28).
7. A high-speed disperser according to claim 6, characterized in that, The inner bottom of the lifting trough (27) is fixedly connected to a longitudinal rod (30), and inclined plates (31) are evenly installed on the outer side of the longitudinal rod (30).
8. A high-speed disperser according to claim 7, characterized in that, The inner wall of the material lifting trough (27) is fixedly connected to an annular plate (32) near the inclined plate (31), and the inner wall of the annular plate (32) is uniformly equipped with material breakage protrusions.
Citation Information
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