Nano anti-aging spacer blank processing equipment

Through the innovative design of the decomposition mechanism and the mixing mechanism, the agglomeration problem of nanomaterials in the spacer blank processing equipment is solved, uniform dispersion and efficient mixing of nanomaterials are achieved, and the production efficiency and material performance of the equipment are improved.

CN120269702APending Publication Date: 2025-07-08JIANGSU JK ELECTRICAL EQUIP CO LTD
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Patent Information

Application Number
CN202510518455.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-24
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

Traditional spacer bar blank processing equipment has agglomeration during the nanomaterial mixing process, resulting in uneven material performance and lack of dynamic cleaning and anti-blocking design, which affects the service life and production efficiency of the equipment.

Method used

The combination design of decomposition mechanism and mixing mechanism is adopted, including corrugated decomposition tanks, agitating plates, outer plates, extrusion plates and scrapers. Through intermittent friction, extrusion and grading treatment, uniform dispersion of nanomaterials and effective cleaning of agglomerated particles is achieved.

Benefits of technology

It improves the dispersion suspension effect and mixing efficiency of nanomaterials, enhances the overall quality of the spacer rod, extends the service life of the equipment and reduces maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of spacer manufacturing equipment, and particularly discloses nano anti-aging spacer blank machining equipment which comprises a bottom frame and further comprises a decomposition mechanism, a blank feeding mechanism, a blank discharging mechanism and a blank discharging mechanism. And the mixing mechanism is fixedly installed on the bottom frame, and the top of the mixing mechanism is fixedly connected to the bottom of the decomposing mechanism. Raw materials flow through a first staggered hole and a second staggered hole in a stirring plate and an outer plate, and the outer plate and the stirring plate are intermittently close to each other due to the influence of the inner wall of the decomposition tank in the rotating process of the outer plate, so that the inner surface of the outer plate and the outer surface of the stirring plate are in intermittent friction contact; therefore, agglomerated particles which stay in a gap between the stirring plate and the outer plate and are formed due to particle density difference in the raw materials are extruded and scattered, so that the dispersion and suspension effect of the nano material is greatly improved, the mixing effect of the raw materials and the nano material is greatly promoted, and the overall quality of the spacer is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of spacer bar manufacturing equipment, and specifically to a processing equipment for nano anti-aging spacer bar blanks. Background Art

[0002] In the construction of UHV transmission lines, the processing equipment for nano anti-aging spacer bar blanks is used to optimize the material properties of spacer bars. Through nano-material dispersion technology, the anti-aging and mechanical strength of products are improved. This equipment realizes the efficient mixing of nano-particles and matrix materials through mechanical structure innovation, ensures the uniform distribution of nano-materials, and thus enhances the corona resistance, corrosion resistance and fatigue resistance of spacer bars. It is widely used in the field of power equipment manufacturing and is of great significance for ensuring the long-term stable operation of high-voltage transmission lines.

[0003] Traditional spacer bar blank processing equipment has significant deficiencies. In terms of material mixing, traditional processes rely on chemical dispersants or simple stirring, making it difficult to overcome the agglomeration of nano-particles, resulting in uneven material properties and affecting the anti-aging effect of spacer bars. The mechanical stirring equipment has a single structure and lacks a hierarchical and progressive mixing mechanism. Nano-materials are easily deposited due to density differences, reducing the dispersion efficiency. In addition, traditional equipment lacks dynamic cleaning and anti-blocking designs. Agglomerated particles are easily attached to the surface of stirring components, shortening the service life of the equipment and increasing maintenance costs. For special materials such as superparamagnetic nano-particles, traditional processes are difficult to achieve the directional migration and self-repair functions of particles, restricting the full play of material properties. These problems restrict the large-scale production and performance improvement of nano anti-aging spacer bars, and there is an urgent need to improve the mixing efficiency and material uniformity through mechanical structure optimization, grading treatment and self-cleaning technology. Summary of the Invention

[0004] (1) Technical Problems to be Solved

[0005] The present invention provides a processing equipment for nano anti-aging spacer bar blanks, which solves the problems mentioned in the above background art.

[0006] (2) Technical Solutions

[0007] To achieve the above objectives, the present invention is realized through the following technical solutions: A processing equipment for nano anti-aging spacer bar blanks includes a chassis, and further includes: a decomposition mechanism, the decomposition mechanism is arranged above the chassis; a mixing mechanism, the mixing mechanism is fixedly installed on the chassis, and the top of the mixing mechanism is fixedly connected to the bottom of the decomposition mechanism; wherein the decomposition mechanism includes a decomposition tank, the decomposition tank is fixedly connected to the top of the mixing mechanism, and a feed port is penetrated and opened at the top of the decomposition tank.

[0008] According to an embodiment of the present invention, the inner wall of the decomposition tank is arranged in a corrugated shape. A motor is fixedly installed on the outer surface of the top of the decomposition tank. The output end of the motor is rotationally connected to a rotating shaft. The rotating shaft penetrates and is rotationally connected to the outer surface of the top of the decomposition tank. The bottom of the rotating shaft penetrates and is rotationally connected to a partition board.

[0009] According to an embodiment of the present invention, the partition board is fixedly connected to the inner surface of the bottom of the decomposition tank. A top leakage slot is penetrated and opened on the upper surface of the partition board. The top leakage slot is arranged in a signal shape. A rotating plate is rotationally connected to the lower surface of the partition board. The middle part of the rotating plate is fixedly connected to the outer surface of the bottom of the rotating shaft. A through hole is penetrated and opened on the upper surface of the rotating plate.

[0010] According to an embodiment of the present invention, stirring plates are fixedly connected to the outer surface of the rotating shaft. Three stirring plates are fixedly arranged at fixed intervals around the central axis of the rotating shaft. The inside of the stirring plate is hollow. The outer surfaces on both sides of the stirring plate are inclined surfaces. First dislocation holes are penetrated and opened on the outer surfaces on both sides of the stirring plate.

[0011] According to an embodiment of the present invention, inserting rods penetrate and are elastically slidably connected to the outer surface of the side of the stirring plate away from the rotating shaft. The inner end of the inserting rod is fixedly connected to an elastic plate. Both ends of the elastic plate are squeezed and attached to the inner surfaces on both sides of the stirring plate. The end of the inserting rod away from the stirring plate is fixedly connected to an outer plate. The two sides of the outer plate are arranged parallel to the two sides of the stirring plate, and the outer plate does not contact the stirring plate initially.

[0012] According to an embodiment of the present invention, second dislocation holes are penetrated and opened on the outer surfaces on both sides of the outer plate. The second dislocation holes and the first dislocation holes are arranged in a mutually staggered manner. Arc-shaped pressing plates are symmetrically fixedly connected to the outer surface of the side of the outer plate away from the stirring plate. A scraping plate is fixedly connected to the outer surface of the bottom of the rotating shaft. Three scraping plates are fixedly arranged at fixed intervals around the central axis of the rotating shaft. The scraping plate is arranged obliquely. The bottom of the scraping plate is attached to the upper surface of the partition board.

[0013] According to an embodiment of the present invention, the mixing mechanism includes a mixing pipe. The top of the mixing pipe is fixedly connected to the bottom of the decomposition tank. A bottom plate is arranged inside the bottom of the mixing pipe. The diameter of the bottom plate is smaller than the inner diameter of the mixing pipe. Connecting rods are fixedly connected to the surface of the bottom edge of the bottom plate. The end of the connecting rod away from the bottom plate is fixedly connected to the inner surface of the bottom of the mixing pipe.

[0014] According to an embodiment of the present invention, an isolation tube is fixedly connected to the upper surface of the middle part of the bottom plate. The top of the isolation tube is rotatably connected to the bottom of a rotating shaft. A transfer shaft is rotatably connected inside the isolation tube. The top of the transfer shaft is fixedly connected to the bottom of the rotating shaft. The outer surface of the bottom of the transfer shaft is rotatably connected to a turntable. The turntable is rotatably connected to the lower surface of the bottom plate. One side of the turntable away from the transfer shaft is rotatably connected to a sealing ring. The sealing ring is rotatably connected to the inner surface of the bottom of the mixing tube.

[0015] According to an embodiment of the present invention, through holes are formed through the upper surface of the sealing ring. A lower material leakage groove is formed through the upper surface of the bottom plate. A first stirring rod is fixedly connected to the upper surface of the sealing ring. A second stirring rod is fixedly connected to the outer surface of the bottom of the rotating shaft. The first stirring rod and the second stirring rod are arranged inside the mixing tube. The spacer rod molten raw material, nano-aluminum oxide, nano-titanium dioxide and superparamagnetic nanoparticles are put into the decomposition tank through the feed port at the top of the decomposition tank, and the motor is started. After the motor is started, it will drive the rotating shaft to rotate, thereby promoting the rotation of the stirring plate.

[0016] (III) Beneficial effects

[0017] The present invention provides a nano anti-aging spacer rod blank processing device. It has the following beneficial effects:

[0018] (I). In this nano anti-aging spacer rod blank processing device, as the stirring plate rotates, the outer plate will rotate synchronously. The raw materials flow through the first misaligned holes and the second misaligned holes on the stirring plate and the outer plate. Since the inner wall of the decomposition tank is arranged in a corrugated shape, during the rotation of the outer plate, due to the influence of the inner wall of the decomposition tank, the outer plate will be intermittently close to the stirring plate, so that the inner surface of the outer plate and the outer surface of the stirring plate are intermittently in frictional contact, thereby squeezing and dispersing the agglomerated particles formed by the difference in particle density in the gap between the stirring plate and the outer plate in the raw materials, thus greatly improving the dispersion and suspension effect of the nano material, and further greatly promoting the mixing effect of the raw materials and the nano material, thereby improving the overall quality of the spacer rod.

[0019] (2). During the rotation of the outer plate of this nano anti-aging spacer bar blank processing equipment, the extrusion plates on both outer surfaces will be driven to rotate synchronously, and intermittently come into extrusion contact with the inner wall of the decomposition tank. Thus, when dispersing agglomerated particles, larger agglomerated particles are first processed by the extrusion plates, enabling the smaller dispersed agglomerated particles to smoothly pass through the second dislocation holes and enter the cavity between the stirring plate and the outer plate for further processing. Therefore, the mixing effect of the raw materials and the nano materials is significantly improved through the form of classification processing. As the rotating shaft rotates, the scraper and the rotating plate at the bottom of the rotating shaft will be driven to rotate synchronously. The rotation of the rotating plate causes the upper leakage trough to be intermittently aligned with the through holes on the rotating plate, allowing the dispersed raw materials to enter the mixing tube at the bottom. As the scraper rotates, the upper surface of the partition plate is cleaned synchronously when dispersing the agglomerated particles, preventing the upper leakage trough on the partition plate from being blocked, thereby significantly improving the production efficiency and avoiding the problem of the equipment requiring long-term maintenance.

[0020] (3). When the outer plate and the stirring plate approach each other intermittently, the inner wall of the stirring plate will be intermittently cleaned by the elastic plate at the inner end of the insertion rod, thus avoiding the problem of blockage inside the stirring plate. While the elastic plate is cleaning, the inside of the stirring plate will be synchronously extruded, promoting the flow effect of the raw materials inside the stirring plate. Moreover, as the elastic plate reciprocates, the inside of the stirring plate will be intermittently in a negative pressure state, and then the raw materials will be drawn into the inside of the stirring plate through the first dislocation holes, significantly improving the efficiency of the agglomerated particles entering the cavity between the stirring plate and the outer plate, and thus significantly improving the processing effect on the agglomerated particles. When the processed mixed raw materials enter the mixing tube, the rotation of the rotating shaft will drive the second stirring rod to rotate synchronously, and the first stirring rod will be driven to rotate by the turntable at the bottom, and the first stirring rod and the second stirring rod will rotate in opposite directions, thereby mixing the mixed raw materials that have been decomposed by the decomposition tank and releasing them to the outside through the intermittently aligned lower leakage troughs. Thus, through the interconnection and cooperation of the decomposition mechanism and the mixing mechanism, the nano materials in the raw materials are decomposed and dispersed in advance when mixing the raw materials, improving the forming quality of the raw materials.

[0021] (IV) In the nano-aging-resistant spacer rod blank processing equipment, nano-alumina and nano-titanium dioxide are added to the raw materials, which can improve the electrical stress and thermal stress resistance of the insulating material, enhance the insulation performance of the power equipment, and avoid leakage, discharge and other problems caused by the decline of insulation performance, thereby slowing down the aging of the equipment. The decomposition mechanism can evenly disperse the nanoparticles in the matrix of the insulating material, the conductive material, etc., so as to give full play to the excellent performance of the nanomaterials, and use the added superparamagnetic nanoparticles to realize the self-repair of electrical damage of the insulating material of the power equipment. When the raw materials are damaged by the destruction of the electric tree, the nanoparticles can migrate to the damaged part under the action of the electric field or magnetic field, and repair the damaged electric tree channel through physical or chemical action, restore the insulation performance, thereby extending the service life of the power equipment. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] Figure 1 It is a schematic diagram of the overall structure of the present invention;

[0023] Figure 2 It is a structural schematic diagram of the decomposition tank of the present invention;

[0024] Figure 3 It is a schematic diagram of the internal structure of the decomposition tank of the present invention;

[0025] Figure 4 Schematic diagram of the internal structure of the mixing tube of the present invention;

[0026] Figure 5 It is a schematic diagram of the isolation tube and its connection structure of the present invention;

[0027] Figure 6 It is a schematic diagram of the turntable and its connection structure of the present invention;

[0028] Figure 7 It is a schematic diagram of the plug rod and its connection structure of the present invention;

[0029] Figure 8 It is a schematic diagram of the elastic plate and its connection structure of the present invention.

[0030] In the figure: 1. base frame; 2. decomposition mechanism; 21. decomposition tank; 22. feed port; 23. motor; 24. rotating shaft; 25. partition; 26. upper leakage chute; 27. rotating plate; 28. stirring plate; 29. ​​No. 1 offset hole; 210. plug rod; 2101. elastic plate; 211. outer plate; 212. No. 2 offset hole; 213. extrusion plate; 214. scraper; 3. mixing mechanism; 31. mixing tube; 32. bottom plate; 33. connecting rod; 34. isolation tube; 35. transfer shaft; 36. turntable; 37. closing ring; 38. lower leakage chute; 39. No. 1 stirring rod; 310. No. 2 stirring rod. DETAILED DESCRIPTION

[0031] 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts belong to the scope of protection of the present invention.

[0032] The first embodiment: As Figures 1 to 8 shown, the present invention provides a technical solution: a processing device for a nano anti-aging spacer blank, including a chassis 1, and further including:

[0033] A decomposition mechanism 2, which is arranged above the chassis 1;

[0034] A mixing mechanism 3, which is fixedly installed on the chassis 1, and the top of the mixing mechanism 3 is fixedly connected to the bottom of the decomposition mechanism 2;

[0035] Among them, the decomposition mechanism 2 includes a decomposition tank 21, the decomposition tank 21 is fixedly connected to the top of the mixing mechanism 3, and a feed port 22 is penetrated and opened at the top of the decomposition tank 21.

[0036] The inner wall of the decomposition tank 21 is arranged in a corrugated shape, a motor 23 is fixedly installed on the outer surface of the top of the decomposition tank 21, the output end of the motor 23 is rotationally connected to a rotating shaft 24, the rotating shaft 24 is rotationally connected through the outer surface of the top of the decomposition tank 21, and the bottom of the rotating shaft 24 is rotationally connected through a partition plate 25.

[0037] The partition plate 25 is fixedly connected to the inner surface of the bottom of the decomposition tank 21, an upper leakage slot 26 is penetrated and opened on the upper surface of the partition plate 25, the upper leakage slot 26 is arranged in a signal shape, a rotating plate 27 is rotationally connected to the lower surface of the partition plate 25, the middle part of the rotating plate 27 is fixedly connected to the outer surface of the bottom of the rotating shaft 24, and a through hole is penetrated and opened on the upper surface of the rotating plate 27.

[0038] The outer surface of the rotating shaft 24 is fixedly connected with stirring plates 28. Three stirring plates 28 are arranged at fixed intervals around the central axis of the rotating shaft 24. The inside of the stirring plates 28 is arranged in a hollow shape. The outer surfaces on both sides of the stirring plates 28 are inclined surfaces, and first dislocation holes 29 are penetrated and opened on the outer surfaces on both sides of the stirring plates 28.

[0039] An insertion rod 210 is penetrated and elastically slidably connected to the outer surface of the side of the stirring plate 28 away from the rotating shaft 24. The inner end of the insertion rod 210 is fixedly connected with an elastic plate 2101. Both ends of the elastic plate 2101 are squeezed and attached to the inner surfaces on both sides of the stirring plate 28. The end of the insertion rod 210 away from the stirring plate 28 is fixedly connected with an outer plate 211. The two sides of the outer plate 211 are arranged parallel to the two sides of the stirring plate 28, and the outer plate 211 does not contact the stirring plate 28 initially.

[0040] On both outer surfaces of the outer plate 211, second offset holes 212 are penetrated and provided. The second offset holes 212 are arranged in a mutually offset manner with the first offset holes 29. On the outer surface of the outer plate 211 on the side away from the stirring plate 28, extrusion plates 213 are symmetrically and fixedly connected. The extrusion plates 213 are arranged in an arc shape. On the bottom outer surface of the rotating shaft 24, a scraping plate 214 is fixedly connected. Three scraping plates 214 are fixedly arranged at a fixed interval around the central axis of the rotating shaft 24. The scraping plates 214 are arranged obliquely, and the bottom of the scraping plates 214 is attached to the upper surface of the partition plate 25.

[0041] The second embodiment: As Figures 1 to 8 shown, the mixing mechanism 3 includes a mixing pipe 31. The top of the mixing pipe 31 is fixedly connected to the bottom of the decomposition tank 21. Inside the bottom of the mixing pipe 31, a bottom plate 32 is provided. The diameter of the bottom plate 32 is smaller than the inner diameter of the mixing pipe 31. On the bottom edge surface of the bottom plate 32, a connecting rod 33 is fixedly connected. One end of the connecting rod 33 away from the bottom plate 32 is fixedly connected to the inner surface of the bottom of the mixing pipe 31.

[0042] On the upper surface of the middle part of the bottom plate 32, an isolation pipe 34 is fixedly connected. The top of the isolation pipe 34 is rotatably connected to the bottom of the rotating shaft 24. Inside the isolation pipe 34, a transfer shaft 35 is rotatably connected. The top of the transfer shaft 35 is fixedly connected to the bottom of the rotating shaft 24. On the bottom outer surface of the transfer shaft 35, a turntable 36 is rotatably connected. The turntable 36 is rotatably connected to the lower surface of the bottom plate 32. On one side of the turntable 36 away from the transfer shaft 35, a sealing ring 37 is rotatably connected. The sealing ring 37 is rotatably connected to the inner surface of the bottom of the mixing pipe 31.

[0043] On the upper surface of the sealing ring 37, through holes are penetrated and provided. On the upper surface of the bottom plate 32, a lower leakage slot 38 is penetrated and provided. On the upper surface of the sealing ring 37, a first stirring rod 39 is fixedly connected. On the bottom outer surface of the rotating shaft 24, a second stirring rod 310 is fixedly connected. The first stirring rod 39 and the second stirring rod 310 are arranged inside the mixing pipe 31.

[0044] During operation, the spacer bar molten raw materials, nano-aluminum oxide, nano-titanium dioxide, and superparamagnetic nanoparticles are put into the decomposition tank 21 through the feed port 22 at the top of the decomposition tank 21. Then, the motor 23 is started. After the motor 23 starts, it drives the rotating shaft 24 to rotate, which in turn causes the stirring plate 28 to rotate. As the stirring plate 28 rotates, it synchronously drives the outer plate 211 to rotate. The raw materials flow through the first misaligned holes 29 and the second misaligned holes 212 on the stirring plate 28 and the outer plate 211. Since the inner wall of the decomposition tank 21 is corrugated, during the rotation of the outer plate 211, due to the influence of the inner wall of the decomposition tank 21, the outer plate 211 intermittently approaches the stirring plate 28, so that the inner surface of the outer plate 211 and the outer surface of the stirring plate 28 are intermittently in frictional contact, thereby squeezing and dispersing the agglomerated particles formed by the difference in particle density in the gap between the stirring plate 28 and the outer plate 211 in the raw materials, greatly improving the dispersion and suspension effect of the nano-materials, further greatly promoting the mixing effect of the raw materials and the nano-materials, and thus improving the overall quality of the spacer bar. During the rotation of the outer plate 211, it synchronously drives the extrusion plates 213 on the outer surfaces of both sides to rotate, and intermittently squeezes and contacts the inner wall of the decomposition tank 21, so as to first process the larger agglomerated particles through the extrusion plates 213 when dispersing the agglomerated particles, making the smaller dispersed agglomerated particles smoothly pass through the second misaligned holes 212 and enter the cavity between the stirring plate 28 and the outer plate 211 for further processing, thereby greatly improving the mixing effect of the raw materials and the nano-materials in the form of classification. As the rotating shaft 24 rotates, it synchronously drives the scraping plate 214 and the rotating plate 27 at the bottom of the rotating shaft 24 to rotate. Through the rotation of the rotating plate 27, the upper leakage trough 26 is intermittently aligned with the through holes on the rotating plate 27, so that the dispersed raw materials enter the bottom mixing tube 31. As the scraping plate 214 rotates, it cleans the upper surface of the partition plate 25 when dispersing the agglomerated particles, avoiding the blockage of the upper leakage trough 26 on the partition plate 25, further greatly improving the production efficiency and avoiding the problem that the equipment needs to be maintained for a long time. When the outer plate 211 and the stirring plate 28 approach intermittently, the elastic plate 2101 at the inner end of the insertion rod 210 intermittently cleans the inner wall of the stirring plate 28, thus avoiding the problem of blockage inside the stirring plate 28. At the same time as the elastic plate 2101 cleans, it synchronously squeezes the inside of the stirring plate 28, thereby promoting the flow effect of the raw materials inside the stirring plate 28. And as the elastic plate 2101 reciprocates, the inside of the stirring plate 28 is intermittently in a negative pressure state, and then the raw materials are drawn into the inside of the stirring plate 28 through the first misaligned holes 29, greatly improving the efficiency of the agglomerated particles entering the gap between the stirring plate 28 and the outer plate 211, and further greatly improving the treatment effect on the agglomerated particles. When the processed mixed raw materials enter the mixing tube 31, the rotation of the rotating shaft 24 synchronously drives the second stirring rod 310 to rotate.And the turntable 36 at the bottom drives the first stirring rod 39 to rotate, and makes the first stirring rod 39 rotate in the opposite direction to the second stirring rod 310, so as to mix the mixed raw materials that have been decomposed by the decomposition tank 21, and release them to the outside through the intermittently aligned downward discharge chute 38. Furthermore, the decomposition mechanism 2 and the mixing mechanism 3 are interlocked to work. When mixing the raw materials, the nano materials in the raw materials are decomposed and dispersed in advance, improving the forming quality of the raw materials.

[0045] It should be noted that in this article, relational terms such as first and second are only used to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the term "comprising", "including" or any other variant thereof is intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements, but also includes other elements not expressly listed, or also includes elements inherent to such process, method, article or device. Without further limitation, an element defined by the statement "including a..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element.

[0046] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A processing device for a nano anti-aging spacer blank, comprising a chassis (1), characterized in that: It further includes: A decomposition mechanism (2), which is arranged above the chassis (1); A mixing mechanism (3), which is fixedly installed on the chassis (1), and the top of the mixing mechanism (3) is fixedly connected to the bottom of the decomposition mechanism (2); Wherein the decomposition mechanism (2) includes a decomposition tank (21), the decomposition tank (21) is fixedly connected to the top of the mixing mechanism (3), and a feed port (22) is penetrated and opened at the top of the decomposition tank (21).

2. The processing equipment for a nano anti-aging spacer blank according to claim 1, wherein: The inner wall of the decomposition tank (21) is corrugated. A motor (23) is fixedly installed on the outer surface of the top of the decomposition tank (21). The output end of the motor (23) is rotationally connected to a rotating shaft (24). The rotating shaft (24) is rotationally connected through the outer surface of the top of the decomposition tank (21), and the bottom of the rotating shaft (24) is rotationally connected through a partition plate (25).

3. A processing device for a nano anti-aging spacer blank according to claim 2, characterized in that: The partition plate (25) is fixedly connected to the inner surface of the bottom of the decomposition tank (21). An upper leakage slot (26) is penetrated and opened on the upper surface of the partition plate (25). The upper leakage slot (26) is in a signal shape. A rotating plate (27) is rotationally connected to the lower surface of the partition plate (25). The middle part of the rotating plate (27) is fixedly connected to the outer surface of the bottom of the rotating shaft (24). A through hole is penetrated and opened on the upper surface of the rotating plate (27).

4. A processing device for a nano anti-aging spacer blank according to claim 3, characterized in that: The outer surface of the rotating shaft (24) is fixedly connected with stirring plates (28). Three stirring plates (28) are fixedly arranged at equal intervals around the central axis of the rotating shaft (24). The inside of the stirring plates (28) is hollow. The outer surfaces on both sides of the stirring plates (28) are inclined surfaces. First offset holes (29) are penetrated and opened on the outer surfaces on both sides of the stirring plates (28).

5. A processing device for a nano anti-aging spacer blank according to claim 4, characterized in that: The outer surface of one side of the stirring plate (28) far away from the rotating shaft (24) is penetrated and elastically slidably connected with a plug rod (210). The inner end of the plug rod (210) is fixedly connected with an elastic plate (2101). The two ends of the elastic plate (2101) are squeezed and attached to the inner surfaces on both sides of the stirring plate (28). The end of the plug rod (210) far away from the stirring plate (28) is fixedly connected with an outer plate (211). The two sides of the outer plate (211) are arranged parallel to the two sides of the stirring plate (28), and the outer plate (211) does not contact the stirring plate (28) initially.

6. The processing equipment for a nano anti-aging spacer blank according to claim 5, wherein: Second offset holes (212) are penetrated and opened on the outer surfaces on both sides of the outer plate (211). The second offset holes (212) are arranged in a mutually offset manner with the first offset holes (29). The outer surfaces on one side of the outer plate (211) far away from the stirring plate (28) are symmetrically fixedly connected with pressing plates (213). The pressing plates (213) are arc-shaped. The outer surface of the bottom of the rotating shaft (24) is fixedly connected with scraping plates (214). Three scraping plates (214) are fixedly arranged at equal intervals around the central axis of the rotating shaft (24). The scraping plates (214) are inclined. The bottom of the scraping plates (214) is attached to the upper surface of the partition plate (25).

7. The processing equipment for a nano anti-aging spacer blank according to claim 6, characterized in that: The mixing mechanism (3) includes a mixing pipe (31), the top of the mixing pipe (31) is fixedly connected to the bottom of the decomposition tank (21), a bottom plate (32) is arranged inside the bottom of the mixing pipe (31), the diameter of the bottom plate (32) is smaller than the inner diameter of the mixing pipe (31), a connecting rod (33) is fixedly connected to the bottom edge surface of the bottom plate (32), and one end of the connecting rod (33) away from the bottom plate (32) is fixedly connected to the inner surface of the bottom of the mixing pipe (31).

8. A processing device for a nano anti-aging spacer bar blank according to claim 7, characterized in that: A separator pipe (34) is fixedly connected to the middle upper surface of the bottom plate (32), the top of the separator pipe (34) is rotatably connected to the bottom of the rotating shaft (24), a transfer shaft (35) is rotatably connected inside the separator pipe (34), the top of the transfer shaft (35) is fixedly connected to the bottom of the rotating shaft (24), a turntable (36) is rotatably connected to the outer surface of the bottom of the transfer shaft (35), the turntable (36) is rotatably connected to the lower surface of the bottom plate (32), a closed ring (37) is rotatably connected to one side of the turntable (36) away from the transfer shaft (35), and the closed ring (37) is rotatably connected to the inner surface of the bottom of the mixing pipe (31).

9. The processing equipment for a nano anti-aging spacer blank according to claim 8, characterized in that: Through holes are formed through the upper surface of the closed ring (37), a lower leakage groove (38) is formed through the upper surface of the bottom plate (32), a first stirring rod (39) is fixedly connected to the upper surface of the closed ring (37), a second stirring rod (310) is fixedly connected to the outer surface of the bottom of the rotating shaft (24), and the first stirring rod (39) and the second stirring rod (310) are arranged inside the mixing pipe (31).