A crushing and conveying system for the production of zinc-based material for high-fineness anticorrosive coatings and a method for processing the same

By introducing components such as drying boxes, drive blades, and agitators into the zinc-based material conveying system, the problems of agglomeration and blockage caused by moisture were solved, achieving efficient zinc-based material conveying and crushing, and improving production efficiency and equipment stability.

CN120482633BActive Publication Date: 2026-05-15JIANGDU YANGZHOU XINDA ZINC IND CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
JIANGDU YANGZHOU XINDA ZINC IND CO LTD
Filing Date
2025-06-20
Publication Date
2026-05-15

AI Technical Summary

Technical Problem

In the current process of conveying zinc-based materials for anti-corrosion coatings, moisture from the air enters the conveying device, causing the raw material particles to agglomerate and clump together. This clumping can easily lead to frequent blockages in the screw conveyor, reducing conveying efficiency.

Method used

A crushing and conveying system for the production of zinc-based materials for high-fineness anti-corrosion coatings was designed, including components such as a drying box, drive blades, agitator blades, and grinding discs. The drive blades generate wind-driven drying gas, and the desiccant material is used to improve the dryness of the gas. The rotating agitator blades break up agglomerates, and the grinding discs crush the agglomerates. Combined with a cooling system and cleaning brushes, clogging and corrosion are reduced.

Benefits of technology

It improves the dryness and flowability of gas during the conveying process, reduces raw material blockage, enhances conveying efficiency, reduces the risk of equipment corrosion, and improves production continuity.

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Abstract

The application relates to the technical field of zinc base production, and discloses a crushing conveying system for zinc base production for high-fineness anti-corrosion coating and a processing method thereof, which comprises a conveying seat, a groove body is fixedly connected to one side of the conveying seat, and a driving source is arranged on one side of the groove body; the dryness of gas blown into the groove body by the transmission leaves is improved by using solid desiccant materials in the drying box, the dryness of raw materials in the groove body is improved, the raw materials are preliminarily scattered by the stirring leaves rotating along the surface of the inner screening net, the flow of the raw materials conveyed into the groove body is improved, the raw materials are continuously ground by the bottom grinding plates, the raw materials are crushed and screened by the multiple grinding plates driven by the main conveying rod when the main conveying rod rotates, and the effect of the zinc base raw material conveying process is improved; when the raw materials are conveyed by the rotation of the spiral blade driven by the main conveying rod, the side cleaning brush is synchronously driven to rotate, and regular cleaning by an operator is not needed.
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Description

Technical Field

[0001] This invention belongs to the field of zinc-based material production technology, specifically a crushing and conveying system and its processing method for producing zinc-based materials for high-fineness anti-corrosion coatings. Background Technology

[0002] High-fineness zinc-based anti-corrosion coatings refer to a type of core functional raw material with metallic zinc as the main component, which is processed into micron or submicron particle size through ultrafine processing. It is specifically used to formulate high-performance anti-corrosion coatings. At the same time, zinc slag or coarse zinc powder needs to be transported after processing, and various conveying equipment is used to transport it to subsequent processes such as mixing, coating and packaging.

[0003] In the prior art, patent application document "CN218114354U" discloses "a coating conveying device for processing zinc-based anti-corrosion base material"; it includes a bottom support, with hydraulic cylinders at both ends of the top of the bottom support, piston rods at the top of the two hydraulic cylinders, and a conveying cylinder connected to the top of the two piston rods. A discharge port is provided at the bottom of the conveying cylinder near the discharge end, and a material conveying channel is provided at the top of the conveying cylinder near the inlet end. A receiving bin is provided at the top of the material conveying channel, and a crushing component for crushing zinc-based anti-corrosion base material is provided inside the receiving bin. A rotary motor is provided at the inlet end of the conveying cylinder. Compared with the existing coating conveying device for processing zinc-based anti-corrosion base material, this utility model improves the practicality and functionality of the coating conveying device for processing zinc-based anti-corrosion base material through design.

[0004] The aforementioned "coating conveying equipment for processing zinc-based anti-corrosion base material" still has some drawbacks. For example, during the conveying process of the existing zinc-based anti-corrosion coating, moisture from the air will be carried into the conveying device during the feeding process of the zinc-based anti-corrosion coating. The moisture will cause the raw material particles to form agglomeration and caking. Agglomeration will easily cause frequent blockage of the screw conveyor, requiring shutdown for cleaning, which reduces the conveying efficiency of the crushing and conveying system for the production of zinc-based anti-corrosion coating.

[0005] To address these issues, a crushing and conveying system and its processing method for producing zinc-based materials for fine-grained anti-corrosion coatings are proposed here. Summary of the Invention

[0006] In view of the above situation and to overcome the defects of the prior art, the present invention provides a crushing and conveying system and processing method for the production of zinc base material for high fine particle size anti-corrosion coating. It effectively solves the problem that the feeding process of zinc base material for anti-corrosion coating on the market will bring water vapor from the air into the conveying device. Water vapor will cause the raw material particles to agglomerate and clump together. Agglomeration will easily cause frequent blockage of the screw conveyor, requiring shutdown for cleaning.

[0007] To achieve the above objectives, the present invention provides the following technical solution: a crushing and conveying system for producing zinc-based materials for high-fineness anti-corrosion coatings, comprising a conveying base, a trough fixedly connected to one side of the conveying base, a drive source disposed on one side of the trough, a main conveying rod fixedly connected to the output shaft of the drive source, spiral blades fixedly connected to the surface of the main conveying rod, a top sealing plate fixedly connected to the top of the trough, a feed pipe fixedly connected to the top of the top sealing plate, a discharge pipe fixedly connected to the bottom of the trough, a top connecting cylinder fixedly connected to the top of the top sealing plate, a drying chamber fixedly connected to the top of the top connecting cylinder, a connecting cover fixedly connected to the top of the drying chamber, a top fixing seat fixedly connected to the top of the connecting cover, a motor body fixedly connected to the top of the top fixing seat, a top transmission rod fixedly connected to the output shaft of the motor body, a transmission blade fixedly connected to one end of the top transmission rod, a bottom bearing plate movably connected to the bottom of the transmission blade, and an inner fixing plate movably connected to the bottom of the bottom bearing plate. The bottom of the top connecting cylinder is fixedly connected to a bottom barrier net, the bottom of the drying chamber is fixedly connected to a bottom isolation net, side air inlets are provided on both sides of the drying chamber, the inside of the drying chamber is filled with solid desiccant material, a first helical toothed disc is fixedly connected to the surface of the top drive rod, a second helical toothed disc is meshed with one side of the first helical toothed disc, a side drive rod is fixedly connected to one side of the second helical toothed disc, a third helical toothed disc is fixedly connected to one end of the side drive rod, a fourth helical toothed disc is meshed with one side of the third helical toothed disc, a bottom drive rod is fixedly connected to one side of the fourth helical toothed disc, a drive gear disc is fixedly connected to the bottom of the bottom drive rod, a driven gear disc is meshed with one side of the drive gear disc, an inner drive disc is fixedly connected to the inner side of the driven gear disc, an inner connecting rod is fixedly connected to the inner side of the inner drive disc, an inner drive rod is fixedly connected to the bottom of the inner connecting rod, an agitator is fixedly connected to the bottom of the inner drive rod, and an inner screening net is fixedly connected to the bottom of the feed pipe.

[0008] Preferably, an arc-shaped water tank is fixedly connected to the surface of the tank, a heat dissipation plate is fixedly connected to the top of the arc-shaped water tank, and a heat dissipation fin is fixedly connected to one side of the heat dissipation plate, wherein there are multiple heat dissipation fins.

[0009] Preferably, a liquid storage tank is fixedly connected to one side of the tank, a top connecting pipe is fixedly connected to the top of the liquid storage tank, a water pump is fixedly connected to the bottom of the liquid storage tank, a water pump is provided on one side of the water pump, and a water outlet pipe is fixedly connected to the other side of the liquid storage tank. One end of the water outlet pipe and one end of the water pump are both fixedly connected to the two sides of the arc-shaped water tank.

[0010] Preferably: a No. 5 helical toothed disc is fixedly connected to the surface of the main conveying rod; a No. 6 helical toothed disc is meshed with one side of the No. 5 helical toothed disc; an inner fixing rod is fixedly connected to one side of the No. 6 helical toothed disc; a bottom fixing rod is fixedly connected to one end of the inner fixing rod; a grinding plate is fixedly connected to the surface of the bottom fixing rod; two grinding plates are fixedly connected; a discharge cylinder is fixedly connected to the bottom of the discharge pipe; an inner connecting ring is fixedly connected to the top of the discharge cylinder; a top screening screen is fixedly connected to the inner side of the inner connecting ring; a grinding disc is fixedly connected to the inner side of the discharge cylinder; and a crushing hole is formed on the surface of the grinding disc.

[0011] Preferably, a bottom connecting plate is fixedly connected to the bottom of the discharge cylinder, a side bearing plate is movably connected to the top of the bottom connecting plate, the top of the side bearing plate is movably connected to the bottom end of the bottom fixing rod, transmission side frames are fixedly connected to both sides of the bottom fixing rod, and there are multiple transmission side frames. A side transmission plate is fixedly connected to one side of each of the multiple transmission side frames, and a side cleaning brush is fixedly connected to one side of the side transmission plate.

[0012] Preferably, a top transmission plate is fixedly connected to the surface of the top transmission rod, an inner stirring rod is fixedly connected to the bottom of the top transmission plate, and a side stirring rod is fixedly connected to the surface of the inner stirring rod.

[0013] Preferably, a bottom fixing frame is fixedly connected to the inner side of the drying oven, a protective sleeve is fixedly connected to the inner side of the bottom fixing frame, a side barrier net is fixedly connected to the inner side of the side air inlet frame, and a bottom isolation net is fixedly connected to the bottom of the drying oven.

[0014] Preferably, a sliding ring is provided on the surface of the side transmission rod, a bearing sleeve is slidably connected to the surface of the sliding ring, a top support plate is fixedly connected to the bottom of the bearing sleeve, a bottom extension rod is fixedly connected to the bottom of the drive gear disk, and a top bearing disk is movably connected to the bottom of the bottom extension rod.

[0015] Preferably, the bottom of the inner transmission disc is fixedly connected to a bottom bearing ring, and the top of the feed pipe is provided with a sliding rail, the inner side of which is slidably connected to the bottom of the bottom bearing ring.

[0016] A processing method for a crushing and conveying system for producing zinc-based materials for fine-grained anti-corrosion coatings includes the following steps:

[0017] S1. By pouring the raw material to be conveyed along the feed pipe, after the raw material enters the tank through the feed pipe, the main conveying rod is driven to rotate by the drive source. The rotating main conveying rod will drive the spiral blade to rotate. The rotating spiral blade will drive the raw material to move along the inside of the tank, conveying the raw material to the other side of the tank and discharging the raw material along the discharge pipe.

[0018] S2. Start the motor body, which drives the top transmission rod to rotate. The rotating top transmission rod drives the transmission blade to rotate, and the rotating transmission blade generates wind. The continuously rotating transmission blade draws external gas into the drying chamber and blows it out along one side of the top connecting cylinder. The inside of the drying chamber is filled with solid desiccant material. The bottom of the drying chamber is blocked by the bottom isolation net. The solid desiccant material is placed inside the drying chamber. With the opening of the side air inlet frame, external gas is drawn into the inside of the drying chamber along the side air inlet frame when the transmission blade rotates. The solid desiccant material in the drying chamber improves the dryness of the gas blown into the tank by the transmission blade.

[0019] S3. During the continuous rotation of the top drive rod, it will synchronously drive the top drive plate to rotate along the inner side of the drying box. The rotating top drive plate will drive the inner stirring rod to rotate. The rotating inner stirring rod will stir the solid desiccant material in the drying box. At the same time, the rotating inner stirring rod will drive multiple side stirring rods to rotate. The rotating side stirring rods will stir the solid desiccant material in the drying box.

[0020] S4. When the top drive rod rotates, it drives the first helical gear disc to rotate. The rotating first helical gear disc drives the meshing second helical gear disc to rotate synchronously. The rotating second helical gear disc drives the side drive rod to rotate. The rotating side drive rod drives the third helical gear disc to rotate. The rotating third helical gear disc drives the meshing fourth helical gear disc to rotate. The rotating fourth helical gear disc drives the bottom drive rod to rotate. The rotating bottom drive rod drives the driving gear disc to rotate. Through the meshing transmission between the driving gear disc and the driven gear disc, the rotation of the driving gear disc drives the inner drive disc to rotate. The rotating inner drive disc drives the inner drive disc to rotate. The connecting rod rotates, and the rotating inner connecting rod drives the inner transmission rod to rotate. The rotating inner transmission rod drives the agitator to move along the surface of the inner screen. When the raw material is added along the inside of the feed pipe, the raw material will accumulate on the surface of the inner screen. When the transmission rod rotates, it will drive the agitator to rotate synchronously. The rotating agitator will move continuously along the surface of the inner screen, agitating the raw material accumulated on the surface of the inner screen, breaking up the lumps or agglomerates of the raw material. The broken-up raw material will enter the tank through the inner screen for conveying. The agitator rotates along the surface of the inner screen to perform preliminary breaking-up treatment on the raw material.

[0021] S5. During the transportation of raw materials along the tank, the operator adds coolant into the storage tank through the top connecting pipe. The coolant in the storage tank flows into the arc-shaped water tank for storage through the outlet pipe. The inner side of the arc-shaped water tank is in contact with the surface of the tank and is made of metal. The arc-shaped water tank and heat sink continuously cool the surface of the tank. The water pump is started, and the pump drives the liquid in the arc-shaped water tank to flow back into the storage tank through the pumping pipe.

[0022] S6. During the process of transporting raw materials by driving the spiral blades to rotate, the rotating main conveyor rod will drive the No. 5 helical toothed disc to rotate. The rotating No. 5 helical toothed disc will drive the No. 6 helical toothed disc to rotate. The rotating No. 6 helical toothed disc will drive the inner fixed rod to rotate. The rotating inner fixed rod will drive the two grinding plates to rotate. The top grinding plate will rotate along the surface of the top screening screen, and the bottom grinding plate will rotate along the surface of the grinding disc. After being transported along the tank, the raw material will be discharged along the discharge pipe. When discharged, the raw material will first fall onto the surface of the top screening screen inside the inner connecting ring. The screened raw material will fall onto the surface of the grinding disc. At this time, the bottom grinding plate will continue to move to grind the raw material along the surface of the grinding disc. The surface of the grinding disc has multiple crushing holes. During the grinding process, larger lumpy raw material particles will be ground into high-fineness particles that can pass through the crushing holes. The ground high-fineness raw material will be discharged along the discharge pipe.

[0023] S7. When the bottom fixing rod rotates, it will drive multiple transmission side frames to rotate. The multiple transmission side frames will rotate along the inner side of the discharge pipe and discharge cylinder respectively. When the multiple transmission side frames rotate, they will drive the side transmission plate to rotate. The rotating side transmission plate will drive the side cleaning brush to clean along the inner wall of the discharge pipe and discharge cylinder.

[0024] Compared with the prior art, the beneficial effects of the present invention are:

[0025] 1) The rotating drive blades generate wind power, and the continuously rotating drive blades draw external air into the drying chamber. With the opening of the side air inlet frame, the external air is drawn into the inside of the drying chamber along the side air inlet frame when the drive blades rotate. At the same time, the side barrier net reduces the entry of particulate matter in the external air into the drying chamber. The bottom isolation net performs secondary filtration, which improves the cleanliness of the air drawn into the tank. The solid desiccant material in the drying chamber improves the dryness of the air blown into the tank by the drive blades, thereby improving the drying efficiency of the raw materials in the tank. The continuously rotating drive blades improve the air circulation in the tank, while reducing moisture in the tank, thereby improving the effect of conveying raw materials in the tank.

[0026] 2) The rotating top drive plate will drive the inner stirring rod to rotate, and the rotating inner stirring rod will drive multiple side stirring rods to rotate. The rotating side stirring rods will stir the solid desiccant material in the drying chamber, increase the contact area between the solid desiccant material and the gas in the drying chamber, and at the same time reduce the problem of low dehumidification efficiency caused by the adhesion of pollutants on the surface of the solid desiccant, thus improving the drying effect of the gas in the drying chamber.

[0027] 3) In the operation of the crushing and conveying system and processing method for the production of zinc-based material for high fine particle anti-corrosion coating, the drive blade rotates and drives the agitator blade to rotate synchronously. The rotating agitator blade moves continuously along the surface of the inner screen, agitating the raw material accumulated on the surface of the inner screen, breaking up the lumps or agglomerates of the raw material. The broken-up raw material enters the tank through the inner screen for conveying. The agitator blade rotates along the surface of the inner screen to perform preliminary breaking up of the raw material, which improves the smoothness of the material entering the tank and reduces the blockage of the material during the conveying process in the tank.

[0028] 4) The inner side of the arc-shaped water tank is made of metal. The arc-shaped water tank and heat dissipation plate continuously cool the surface of the tank, maintaining the temperature stability of the inner and outer walls of the tank. At the same time, multiple heat dissipation fins are set on one side of the heat dissipation plate, which increases the heat dissipation area of ​​the heat dissipation plate and improves the heat dissipation efficiency. Simultaneously, the water pump is started, and the water pump drives the liquid in the arc-shaped water tank to flow back to the storage tank along the water pump pipe. Through the circulation of the water pump pipe and the water outlet pipe, the fluidity of the liquid in the storage tank and the arc-shaped water tank is improved, which improves the heat dissipation effect of the coolant on the tank.

[0029] 5) During the process of transporting raw materials by driving the spiral blades, the main conveyor rod simultaneously drives the two grinding plates to move. The grinding plate at the top moves along the surface of the top screen, rubbing the raw materials along the surface of the top screen, reducing the formation of agglomerates in the tank. The screened raw materials fall onto the surface of the grinding disc. At this time, the grinding plate at the bottom continues to move, grinding the raw materials along the surface of the grinding disc. The surface of the grinding disc has multiple crushing holes. During the grinding process, larger agglomerated raw material particles are ground into fine particles that can pass through the crushing holes. The finely ground raw materials are discharged along the discharge cylinder. When the main conveyor rod rotates, it simultaneously drives multiple grinding plates to crush and screen the raw materials, improving the efficiency of conveying zinc-based raw materials.

[0030] 6) The rotating side transmission plate will drive the side cleaning brush to clean along the inner wall of the discharge pipe and discharge cylinder, sweeping away the adhesion between the raw material and the inner wall when the raw material is discharged along the discharge pipe and discharge cylinder. The main conveyor rod drives the spiral blade to rotate, which simultaneously drives the side cleaning brush to rotate when the raw material is conveyed. There is no need for operators to clean regularly, which reduces the corrosion caused by the long-term covering of the inner wall of the discharge pipe by the raw material and improves the efficiency of raw material discharge. Attached Figure Description

[0031] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:

[0032] Figure 1 This is a schematic diagram of the overall appearance and structure of the present invention;

[0033] Figure 2 This is a schematic diagram of the spiral blade structure of the present invention;

[0034] Figure 3 This is a schematic diagram of the transmission blade structure of the present invention;

[0035] Figure 4 This is a schematic diagram of the internal stirring rod structure of the present invention;

[0036] Figure 5 This is a schematic diagram of the protective sleeve structure of the present invention;

[0037] Figure 6 This is a schematic diagram of the internal transmission rod structure of the present invention;

[0038] Figure 7 This is a schematic diagram of the feed pipe structure of the present invention;

[0039] Figure 8 This is a schematic diagram of the arc-shaped water tank structure of the present invention;

[0040] Figure 9 This is a schematic diagram of the grinding disc structure of the present invention;

[0041] Figure 10 This is a schematic diagram of the bottom fixing rod structure of the present invention.

[0042] In the diagram: 1. Conveyor seat; 2. Tank; 3. Drive source; 4. Main conveyor rod; 5. Spiral blade; 6. Top sealing plate; 7. Feed pipe; 8. Discharge pipe; 901. Top connecting cylinder; 902. Drying oven; 903. Connecting cover; 904. Top fixed seat; 905. Motor body; 906. Top transmission rod; 907. Transmission blade; 908. Bottom bearing plate; 909. Bottom barrier net; 9010. Inner fixed plate; 1001. Protective sleeve; 1002. Bottom fixed frame; 1 003. Side air intake frame; 1004. Side barrier mesh; 1005. Bottom barrier mesh; 1006. Top drive plate; 1007. Internal agitator rod; 1008. Side agitator rod; 1101. Helical gear disc No. 1; 1102. Helical gear disc No. 2; 1103. Side drive rod; 1104. Sliding ring; 1105. Bearing sleeve; 1106. Top support plate; 1107. Helical gear disc No. 3; 1108. Helical gear disc No. 4; 1109. Bottom drive rod; 1110. Drive gear 1111. Disc; 1112. Bottom extension rod; 1113. Top bearing disc; 1114. Driven gear disc; 1115. Inner transmission disc; 1116. Inner connecting rod; 1117. Inner transmission rod; 1118. Agitator blade; 1119. Sliding rail; 1120. Bottom bearing ring; 1120. Inner screening screen; 1201. Arc-shaped water tank; 1202. Heat dissipation plate; 1203. Heat dissipation fins; 1204. Water suction pipe; 1205. Water pump; 1206. Liquid storage tank; 1207. Top... Connecting pipe; 1208, Water outlet pipe; 1301, No. 5 helical gear disc; 1302, No. 6 helical gear disc; 1303, Inner fixing rod; 1304, Bottom fixing rod; 1305, Grinding plate; 1306, Inner connecting ring; 1307, Top screening screen; 1308, Grinding disc; 1309, Discharge cylinder; 1310, Crushing hole; 1311, Bottom connecting plate; 1312, Side bearing disc; 1313, Transmission side frame; 1314, Side transmission plate; 1315, Side cleaning brush. Detailed Implementation

[0043] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0044] Example 1

[0045] In this embodiment, by Figures 1-10 The present invention provides the following technical solution:

[0046] A crushing and conveying system for producing zinc-based materials for high-fineness anti-corrosion coatings includes a conveying base 1, a trough 2 fixedly connected to one side of the conveying base 1, a drive source 3 disposed on one side of the trough 2, a main conveying rod 4 fixedly connected to the output shaft of the drive source 3, spiral blades 5 fixedly connected to the surface of the main conveying rod 4, a top sealing plate 6 fixedly connected to the top of the trough 2, a feed pipe 7 fixedly connected to the top of the top sealing plate 6, a discharge pipe 8 fixedly connected to the bottom of the trough 2, a top connecting cylinder 901 fixedly connected to the top of the top sealing plate 6, and a drying chamber 902 fixedly connected to the top of the top connecting cylinder 901. A connecting cover 903 is fixedly connected to the top of the drying oven 902. A top fixing seat 904 is fixedly connected to the top of the connecting cover 903. A motor body 905 is fixedly connected to the top of the top fixing seat 904. A top transmission rod 906 is fixedly connected to the output shaft of the motor body 905. A transmission blade 907 is fixedly connected to one end of the top transmission rod 906. A bottom bearing plate 908 is movably connected to the bottom of the transmission blade 907. An inner fixing plate 9010 is movably connected to the bottom of the bottom bearing plate 908. A bottom barrier net 909 is fixedly connected to the bottom of the top connecting cylinder 901. The bottom of the drying oven 902 is fixedly connected to... The drying chamber 902 has a bottom isolation net 1005 and side air inlet frames 1003 on both sides. The inside of the drying chamber 902 is filled with solid desiccant material. A first helical gear disc 1101 is fixedly connected to the surface of the top drive rod 906. A second helical gear disc 1102 is meshed with one side of the first helical gear disc 1101. A side drive rod 1103 is fixedly connected to one side of the second helical gear disc 1102. A third helical gear disc 1107 is fixedly connected to one end of the side drive rod 1103. A fourth helical gear disc 1108 is meshed with one side of the third helical gear disc 1107. A bottom drive rod 1109 is fixedly connected to one side of the feed pipe 7. A drive gear disk 1110 is fixedly connected to the bottom of the bottom drive rod 1109. A driven gear disk 1113 is meshed with one side of the drive gear disk 1110. An inner drive disk 1114 is fixedly connected to the inner side of the driven gear disk 1113. An inner connecting rod 1115 is fixedly connected to the inner side of the inner drive disk 1114. An inner drive rod 1116 is fixedly connected to the bottom of the inner connecting rod 1115. An agitator 1117 is fixedly connected to the bottom of the inner drive rod 1116. An inner screening screen 1120 is fixedly connected to the bottom of the feed pipe 7.

[0047] It should be noted that the rotating drive blade 907 is movably supported on one side of the inner fixed plate 9010 via the bottom bearing plate 908. The movable connection of the bottom bearing plate 908 improves the rotational stability of the drive blade 907. The motor body 905 drives the top drive rod 906 to rotate, which in turn drives the drive blade 907 to rotate. The rotating drive blade 907 generates airflow, and the continuously rotating drive blade 907 draws external air into the drying chamber 902 and blows it out along one side of the top connecting cylinder 901. The raw material is then fed along the feed line. When the material is added to the inside of the pipe 7, it will accumulate on the surface of the inner screen 1120. When the drive blade 907 rotates, it will drive the stirring blade 1117 to rotate synchronously. The rotating stirring blade 1117 will move continuously along the surface of the inner screen 1120, stirring the material accumulated on the surface of the inner screen 1120 and breaking up the lumps or agglomerates. The broken material will enter the tank 2 through the inner screen 1120 for conveying. The stirring blade 1117 rotates along the surface of the inner screen 1120 to perform preliminary breaking up of the material.

[0048] In an optional embodiment: an arc-shaped water tank 1201 is fixedly connected to the surface of the tank 2, a heat sink 1202 is fixedly connected to the top of the arc-shaped water tank 1201, and a heat sink 1203 is fixedly connected to one side of the heat sink 1202. The number of heat sinks 1203 is multiple.

[0049] It should be noted that the coolant in the reservoir 1206 flows into the arc-shaped water tank 1201 along the outlet pipe 1208 for storage. The inner side of the arc-shaped water tank 1201 is in contact with the surface of the tank 2, and the inner side of the arc-shaped water tank 1201 is made of metal. The arc-shaped water tank 1201 and the heat sink 1202 continuously cool the surface of the tank 2, maintaining the temperature stability of the inner and outer walls of the tank 2. At the same time, multiple heat sinks 1203 are provided on one side of the heat sink 1202. The multiple heat sinks 1203 increase the heat dissipation area of ​​the heat sink 1202 and improve the heat dissipation efficiency of the heat sink 1202.

[0050] In an optional embodiment: a liquid storage tank 1206 is fixedly connected to one side of the tank 2, a top connecting pipe 1207 is fixedly connected to the top of the liquid storage tank 1206, a water pump 1204 is fixedly connected to the bottom of the liquid storage tank 1206, a water pump 1205 is provided on one side of the water pump 1204, and a water outlet pipe 1208 is fixedly connected to the other side of the liquid storage tank 1206. One end of the water outlet pipe 1208 and one end of the water pump 1204 are both fixedly connected to the two sides of the arc-shaped water tank 1201.

[0051] It should be noted that when the water pump 1205 is started, the water pump 1205 will drive the liquid in the arc-shaped water tank 1201 to flow back to the storage tank 1206 along the water pumping pipe 1204. Through the circulation of the water pumping pipe 1204 and the water outlet pipe 1208, the fluidity of the liquid in the storage tank 1206 and the arc-shaped water tank 1201 is improved, thereby improving the cooling effect of the coolant on the heat dissipation of the tank 2.

[0052] In an optional embodiment: a fifth inclined gear disc 1301 is fixedly connected to the surface of the main conveying rod 4; a sixth inclined gear disc 1302 is meshed with one side of the fifth inclined gear disc 1301; an inner fixing rod 1303 is fixedly connected to one side of the sixth inclined gear disc 1302; a bottom fixing rod 1304 is fixedly connected to one end of the inner fixing rod 1303; a grinding plate 1305 is fixedly connected to the surface of the bottom fixing rod 1304; there are two grinding plates 1305; a discharge cylinder 1309 is fixedly connected to the bottom of the discharge pipe 8; an inner connecting ring 1306 is fixedly connected to the top of the discharge cylinder 1309; a top screening screen 1307 is fixedly connected to the inner side of the inner connecting ring 1306; a grinding disc 1308 is fixedly connected to the inner side of the discharge cylinder 1309; and a crushing hole 1310 is opened on the surface of the grinding disc 1308.

[0053] It should be noted that the grinding plate 1305 at the top moves along the surface of the top screen 1307, causing the raw material to rub against the surface of the top screen 1307, reducing the formation of agglomerates and lumps in the tank 2. The screened raw material falls onto the surface of the grinding disc 1308. At this time, the grinding plate 1305 at the bottom continues to move, grinding the raw material along the surface of the grinding disc 1308. The surface of the grinding disc 1308 is provided with multiple crushing holes 1310. During the grinding process, larger agglomerated raw material particles are ground into fine particles that can pass through the crushing holes 1310. The finely ground raw material is discharged along the discharge cylinder 1309.

[0054] In an optional embodiment: a bottom connecting plate 1311 is fixedly connected to the bottom of the discharge cylinder 1309, a side bearing disk 1312 is movably connected to the top of the bottom connecting plate 1311, the top of the side bearing disk 1312 is movably connected to the bottom end of the bottom fixing rod 1304, and transmission side frames 1313 are fixedly connected to both sides of the bottom fixing rod 1304. There are multiple transmission side frames 1313, and a side transmission plate 1314 is fixedly connected to one side of each of the multiple transmission side frames 1313. A side cleaning brush 1315 is fixedly connected to one side of the side transmission plate 1314.

[0055] It should be noted that the movable support of the side bearing plate 1312 improves the stability of the bottom fixing rod 1304 during rotation. The rotating side transmission plate 1314 will drive the side cleaning brush 1315 to clean along the inner wall of the discharge pipe 8 and the discharge cylinder 1309, cleaning the material that adheres to the inner wall when it is discharged along the discharge pipe 8 and the discharge cylinder 1309, eliminating the need for operators to clean regularly.

[0056] In an optional embodiment: a top transmission plate 1006 is fixedly connected to the surface of the top transmission rod 906, an inner stirring rod 1007 is fixedly connected to the bottom of the top transmission plate 1006, and a side stirring rod 1008 is fixedly connected to the surface of the inner stirring rod 1007.

[0057] It should be noted that the rotating inner stirring rod 1007 will drive multiple side stirring rods 1008 to rotate. The rotating side stirring rods 1008 will stir the solid desiccant material in the drying chamber 902, increase the contact area between the solid desiccant material and the gas in the drying chamber 902, and improve the adsorption efficiency.

[0058] In an optional embodiment: a bottom fixing frame 1002 is fixedly connected to the inner side of the drying oven 902, a protective sleeve 1001 is fixedly connected to the inner side of the bottom fixing frame 1002, a side barrier net 1004 is fixedly connected to the inner side of the side air inlet frame 1003, and a bottom isolation net 1005 is fixedly connected to the bottom of the drying oven 902.

[0059] It should be noted that the bottom of the drying chamber 902 is blocked by the bottom isolation net 1005, and the solid desiccant material is placed inside the drying chamber 902. At the same time, the protective sleeve 1001 protects the rotating top drive rod 906, reducing the impact of the solid desiccant material inside the drying chamber 902 on the top drive rod 906. The side isolation net 1004 blocks the entry of particulate matter in the external gas into the drying chamber 902.

[0060] In an optional embodiment: a sliding ring 1104 is provided on the surface of the side transmission rod 1103, a bearing sleeve 1105 is slidably connected to the surface of the sliding ring 1104, a top support plate 1106 is fixedly connected to the bottom of the bearing sleeve 1105, a bottom extension rod 1111 is fixedly connected to the bottom of the drive gear disk 1110, and a top bearing disk 1112 is movably connected to the bottom of the bottom extension rod 1111.

[0061] It should be noted that by utilizing the sliding connection between the bearing sleeve 1105 and the sliding ring 1104, the side transmission rod 1103 is supported by the bearing sleeve 1105 and the top support plate 1106 when it rotates, which improves the rotational stability of the side transmission rod 1103. The rotating drive gear disk 1110 will drive the bottom extension rod 1111 to rotate. The rotating bottom extension rod 1111 will be movably supported on the top of the top sealing plate 6 by the top bearing disk 1112. The movable support of the top bearing disk 1112 improves the rotational stability of the bottom extension rod 1111 and the drive gear disk 1110.

[0062] In an optional embodiment: the bottom of the inner transmission disk 1114 is fixedly connected to a bottom bearing ring 1119, and the top of the feed pipe 7 is provided with a sliding rail 1118, the inner side of the sliding rail 1118 being slidably connected to the bottom of the bottom bearing ring 1119.

[0063] It should be noted that when the inner transmission disk 1114 rotates, it slides along the inner side of the sliding rail 1118 through the bottom bearing ring 1119. The sliding between the bottom bearing ring 1119 and the sliding rail 1118 improves the stability of the rotation of the inner transmission disk 1114.

[0064] Example 2

[0065] This embodiment 2 provides a processing method for a crushing and conveying system for producing zinc-based materials for high-fineness anti-corrosion coatings, used to further explain the working process or principle of the crushing and conveying system for producing zinc-based materials for high-fineness anti-corrosion coatings provided in embodiment 1 above. The specific method is as follows:

[0066] A processing method for a crushing and conveying system for producing zinc-based materials for fine-grained anti-corrosion coatings includes the following steps:

[0067] S1. First, the raw material to be conveyed is poured in along the feed pipe 7. After the raw material enters the tank 2 along the feed pipe 7, the main conveying rod 4 is driven to rotate by the drive source 3. The rotating main conveying rod 4 will drive the spiral blade 5 to rotate. The rotating spiral blade 5 will drive the raw material to move along the inner side of the tank 2, conveying the raw material to the other side of the tank 2, and discharging the raw material along the discharge pipe 8.

[0068] S2. First, start the motor body 905. The motor body 905 drives the top transmission rod 906 to rotate. The rotating top transmission rod 906 drives the transmission blade 907 to rotate. The rotating transmission blade 907 generates wind power. The continuously rotating transmission blade 907 draws external air into the drying chamber 902 and blows it out along one side of the top connecting cylinder 901. The bottom barrier net 909 blocks particulate matter in the external air, reducing the entry of external pollutants into the tank 2 and causing contamination to the raw materials. The inside of the drying chamber 902 is filled with solid desiccant material, and the side air inlet frame 1003 is used to draw air into the transmission blade 907. During rotation, external gas is drawn into the inner side of the drying chamber 902 along the side air inlet frame 1003. At the same time, the side barrier net 1004 reduces the entry of particulate matter in the external gas into the inner side of the drying chamber 902. Meanwhile, the bottom isolation net 1005 performs secondary filtration, improving the cleanliness of the gas drawn into the tank 2. The solid desiccant material in the drying chamber 902 improves the dryness of the gas blown into the tank 2 by the drive blade 907, improving the drying efficiency of the raw materials in the tank 2. The continuously rotating drive blade 907 improves the air circulation in the tank 2, while reducing the moisture in the tank 2, thus improving the effect of conveying raw materials in the tank 2.

[0069] S3. During the continuous rotation of the top drive rod 906, it will synchronously drive the top drive plate 1006 to rotate along the inner side of the drying chamber 902. The rotating top drive plate 1006 will drive the inner stirring rod 1007 to rotate. The rotating inner stirring rod 1007 will stir the solid desiccant material in the drying chamber 902. At the same time, the rotating inner stirring rod 1007 will drive multiple side stirring rods 1008 to rotate. The rotating side stirring rods 1008 will stir the solid desiccant material in the drying chamber 902, increase the contact area between the solid desiccant material and the gas in the drying chamber 902, improve the adsorption efficiency, and reduce the problem of low dehumidification efficiency caused by the adhesion of pollutants to the surface of the solid desiccant, thereby improving the drying effect of the gas in the drying chamber 902.

[0070] S4. When the top drive rod 906 rotates, it drives the first helical gear disk 1101 to rotate. The rotating first helical gear disk 1101 drives the meshing second helical gear disk 1102 to rotate synchronously. The rotating second helical gear disk 1102 drives the side drive rod 1103 to rotate. The rotating side drive rod 1103 drives the third helical gear disk 1107 to rotate. The rotating third helical gear disk 1107 drives the meshing fourth helical gear disk 1108 to rotate. The rotating fourth helical gear disk 1108 drives the bottom drive rod 1109 to rotate. The rotating bottom drive rod 1109 drives the driving gear disk 1110 to rotate. Through the meshing transmission between the driving gear disk 1110 and the driven gear disk 1113, the rotation of the driving gear disk 1110 drives the inner drive disk 1114 to rotate. The rotation of the inner drive disk 1114 drives the inner connecting rod 1115 to rotate. The rotating inner connecting rod 1115 drives the inner transmission rod 1116 to rotate. The rotating inner transmission rod 1116 drives the stirring blade 1117 to move along the surface of the inner screening screen 1120. When the raw material is added along the inside of the feed pipe 7, the raw material will accumulate on the surface of the inner screening screen 1120. When the transmission blade 907 rotates, it will synchronously drive the stirring blade 1117 to rotate. The rotating stirring blade 1117 will move continuously along the surface of the inner screening screen 1120, stirring the raw material accumulated on the surface of the inner screening screen 1120, breaking up the lumps or agglomerates of raw material. The broken raw material will enter the tank 2 through the inner screening screen 1120 for conveying. The initial breaking up of the raw material by the rotation of the stirring blade 1117 along the surface of the inner screening screen 1120 improves the smoothness of the raw material entering the tank 2 and reduces the blockage of the raw material during conveying in the tank 2.

[0071] S5. During the transport of raw materials along the tank 2, the operator adds coolant into the storage tank 1206 through the top connecting pipe 1207. The coolant in the storage tank 1206 flows into the arc-shaped water tank 1201 through the outlet pipe 1208 for storage. The inner side of the arc-shaped water tank 1201 is in contact with the surface of the tank 2, and the inner side of the arc-shaped water tank 1201 is made of metal. The arc-shaped water tank 1201 and the heat sink 1202 continuously cool the surface of the tank 2, maintaining the temperature stability of the inner and outer walls of the tank 2. At the same time, the heat sink 1202... Multiple heat sinks 1203 are provided on one side, which increases the heat dissipation area of ​​the heat sink 1202 and improves the heat dissipation efficiency of the heat sink 1202. At the same time, the water pump 1205 is started. After the water pump 1205 is started, it will drive the liquid in the arc-shaped water tank 1201 to flow back to the liquid storage tank 1206 along the water pumping pipe 1204. Through the circulation of the water pumping pipe 1204 and the water outlet pipe 1208, the fluidity of the liquid in the liquid storage tank 1206 and the arc-shaped water tank 1201 is improved, and the cooling effect of the coolant on the heat dissipation of the tank 2 is improved.

[0072] S6. During the process of transporting raw materials by driving the spiral blades 5 to rotate, the rotating main conveyor rod 4 will drive the fifth helical gear disk 1301 to rotate. The rotating fifth helical gear disk 1301 will drive the meshing transmission sixth helical gear disk 1302 to rotate. The rotating sixth helical gear disk 1302 will drive the inner fixed rod 1303 to rotate. The rotating inner fixed rod 1303 will drive the two grinding plates 1305 to rotate. The top grinding plate 1305 will rotate along the surface of the top screen 1307, and the bottom grinding plate 1305 will rotate along the surface of the grinding disc 1308. After being transported along the tank 2, the raw materials will be discharged along the discharge pipe 8. When discharged, the raw materials will first fall onto the surface of the top screen 1307 inside the inner connecting ring 1306, and then pass through the top grinding plate 1305 along the top screen 1307. The surface movement of the screening screen 1307 causes the raw material to rub against the surface of the top screening screen 1307, reducing the formation of agglomerates and lumps in the tank 2. The screened raw material falls onto the surface of the grinding disc 1308. At this time, the grinding plate 1305 at the bottom moves continuously, grinding the raw material along the surface of the grinding disc 1308. The surface of the grinding disc 1308 is provided with multiple crushing holes 1310. During the grinding process, larger agglomerated raw material particles are ground into fine particles that can pass through the crushing holes 1310. The finely ground raw material is discharged along the discharge cylinder 1309. When the main conveyor rod 4 rotates, it simultaneously drives multiple grinding plates 1305 to crush and screen the raw material, improving the efficiency of the zinc-based raw material transportation process and the efficiency of subsequent operations after transportation.

[0073] S7. Simultaneously, when the bottom fixing rod 1304 rotates, it drives multiple transmission side frames 1313 to rotate. The multiple transmission side frames 1313 rotate along the inner side of the discharge pipe 8 and the discharge cylinder 1309 respectively. When the multiple transmission side frames 1313 rotate, they drive the side transmission plate 1314 to rotate. The rotating side transmission plate 1314 drives the side cleaning brush 1315 to clean along the inner wall of the discharge pipe 8 and the discharge cylinder 1309. This cleans up the adhesion between the raw material and the inner wall when it is discharged along the discharge pipe 8 and the discharge cylinder 1309. This eliminates the need for operators to clean regularly, reduces the corrosion caused by the long-term covering of the inner wall of the discharge pipe 8 by the raw material, and improves the efficiency of raw material discharge.

[0074] It should be noted that the drive source 3 and the motor body 905 in this invention are both existing technologies, and the corresponding models can be selected according to actual needs. The internal structure and operating principle of the above-mentioned parts are also common knowledge to those skilled in the art, and will not be elaborated on further.

[0075] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.

Claims

1. A crushing and conveying system and its processing method for producing zinc-based materials for high-fineness anti-corrosion coatings, comprising a conveying base (1), characterized in that: A trough (2) is fixedly connected to one side of the conveyor seat (1). A drive source (3) is provided on one side of the trough (2). A main conveying rod (4) is fixedly connected to the output shaft of the drive source (3). A spiral blade (5) is fixedly connected to the surface of the main conveying rod (4). A top sealing plate (6) is fixedly connected to the top of the trough (2). A feed pipe (7) is fixedly connected to the top of the top sealing plate (6). A discharge pipe (8) is fixedly connected to the bottom of the trough (2). A top connecting cylinder (901) is fixedly connected to the top of the top sealing plate (6). A drying chamber (902) is fixedly connected to the top of the top connecting cylinder (901). A connecting tube is fixedly connected to the top of the drying chamber (902). A top fixing seat (904) is fixedly connected to the top of the connecting cover (903), and a motor body (905) is fixedly connected to the top of the top fixing seat (904). A top transmission rod (906) is fixedly connected to the output shaft of the motor body (905). A transmission blade (907) is fixedly connected to one end of the top transmission rod (906). A bottom bearing plate (908) is movably connected to the bottom of the transmission blade (907). An inner fixing plate (9010) is movably connected to the bottom of the bottom bearing plate (908). A bottom barrier net (909) is fixedly connected to the bottom of the top connecting cylinder (901). A bottom isolation net (1) is fixedly connected to the bottom of the drying oven (902). 005), the drying chamber (902) has side air inlet frames (1003) on both sides, the drying chamber (902) is filled with solid desiccant material, a first helical gear disc (1101) is fixedly connected to the surface of the top drive rod (906), a second helical gear disc (1102) is meshed with one side of the first helical gear disc (1101), a side drive rod (1103) is fixedly connected to one side of the second helical gear disc (1102), a third helical gear disc (1107) is fixedly connected to one end of the side drive rod (1103), a fourth helical gear disc (1108) is meshed with one side of the third helical gear disc (1107), and a fourth helical gear disc (1108) is meshed with one side of the fourth helical gear disc (1108). A bottom transmission rod (1109) is fixedly connected to the side. A drive gear disk (1110) is fixedly connected to the bottom of the bottom transmission rod (1109). A driven gear disk (1113) is meshed with one side of the drive gear disk (1110). An inner transmission disk (1114) is fixedly connected to the inner side of the driven gear disk (1113). An inner connecting rod (1115) is fixedly connected to the inner side of the inner transmission disk (1114). An inner transmission rod (1116) is fixedly connected to the bottom of the inner connecting rod (1115). An agitator (1117) is fixedly connected to the bottom of the inner transmission rod (1116). An inner screening screen (1120) is fixedly connected to the bottom of the feed pipe (7).

2. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 1, characterized in that: An arc-shaped water tank (1201) is fixedly connected to the surface of the tank (2). A heat dissipation plate (1202) is fixedly connected to the top of the arc-shaped water tank (1201). A heat dissipation fin (1203) is fixedly connected to one side of the heat dissipation plate (1202). There are multiple heat dissipation fins (1203).

3. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 2, characterized in that: A liquid storage tank (1206) is fixedly connected to one side of the tank (2). A top connecting pipe (1207) is fixedly connected to the top of the liquid storage tank (1206). A water pump (1204) is fixedly connected to the bottom of the liquid storage tank (1206). A water pump (1205) is installed on one side of the water pump (1204). A water outlet pipe (1208) is fixedly connected to the other side of the liquid storage tank (1206). One end of the water outlet pipe (1208) and one end of the water pump (1204) are both fixedly connected to the two sides of the arc-shaped water tank (1201).

4. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 3, characterized in that: A fifth helical gear disc (1301) is fixedly connected to the surface of the main conveying rod (4). A sixth helical gear disc (1302) is meshed with one side of the fifth helical gear disc (1301). An inner fixing rod (1303) is fixedly connected to one side of the sixth helical gear disc (1302). A bottom fixing rod (1304) is fixedly connected to one end of the inner fixing rod (1303). A grinding plate (1305) is fixedly connected to the surface of the bottom fixing rod (1304). There are two grinding plates (1305). The bottom of the discharge pipe (8) is fixedly connected to a discharge cylinder (1309). The top of the discharge cylinder (1309) is fixedly connected to an inner connecting ring (1306). The inner side of the inner connecting ring (1306) is fixedly connected to a top screening screen (1307). The inner side of the discharge cylinder (1309) is fixedly connected to a grinding disc (1308). The surface of the grinding disc (1308) is provided with crushing holes (1310).

5. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 4, characterized in that: The bottom of the discharge cylinder (1309) is fixedly connected to a bottom connecting plate (1311), and the top of the bottom connecting plate (1311) is movably connected to a side bearing plate (1312). The top of the side bearing plate (1312) is movably connected to the bottom end of the bottom fixing rod (1304). The two sides of the bottom fixing rod (1304) are fixedly connected to transmission side frames (1313), and there are multiple transmission side frames (1313). A side transmission plate (1314) is fixedly connected to one side of each of the multiple transmission side frames (1313), and a side cleaning brush (1315) is fixedly connected to one side of the side transmission plate (1314).

6. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 5, characterized in that: A top transmission plate (1006) is fixedly connected to the surface of the top transmission rod (906), an inner stirring rod (1007) is fixedly connected to the bottom of the top transmission plate (1006), and a side stirring rod (1008) is fixedly connected to the surface of the inner stirring rod (1007).

7. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 6, characterized in that: The drying oven (902) is fixedly connected to a bottom fixing frame (1002) on the inside, and a protective sleeve (1001) is fixedly connected to the inside of the bottom fixing frame (1002). The side air inlet frame (1003) is fixedly connected to a side barrier net (1004) on the inside, and a bottom isolation net (1005) is fixedly connected to the bottom of the drying oven (902).

8. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 7, characterized in that: A sliding ring (1104) is provided on the surface of the side transmission rod (1103). A bearing sleeve (1105) is slidably connected to the surface of the sliding ring (1104). A top support plate (1106) is fixedly connected to the bottom of the bearing sleeve (1105). A bottom extension rod (1111) is fixedly connected to the bottom of the drive gear disk (1110). A top bearing disk (1112) is movably connected to the bottom of the bottom extension rod (1111).

9. The crushing and conveying system and processing method for producing zinc-based materials for high-fineness anti-corrosion coatings according to claim 8, characterized in that: The bottom of the inner transmission disc (1114) is fixedly connected to a bottom bearing ring (1119), and the top of the feed pipe (7) is provided with a sliding rail (1118), the inner side of the sliding rail (1118) is slidably connected to the bottom of the bottom bearing ring (1119).

10. A processing method for a crushing and conveying system for producing zinc-based materials for high-fineness anti-corrosion coatings, applied to the crushing and conveying system for producing zinc-based materials for high-fineness anti-corrosion coatings as described in any one of claims 1-9, characterized in that, Includes the following steps: S1. By pouring the raw material to be conveyed along the feed pipe (7), the raw material enters the tank (2) along the feed pipe (7). The main conveying rod (4) is driven to rotate by the drive source (3). The rotating main conveying rod (4) will drive the spiral blade (5) to rotate. The rotating spiral blade (5) will drive the raw material to move along the inside of the tank (2), conveying the raw material to the other side of the tank (2) and discharging the raw material along the discharge pipe (8). S2. Start the motor body (905). The motor body (905) drives the top transmission rod (906) to rotate. The rotating top transmission rod (906) drives the transmission blade (907) to rotate. The rotating transmission blade (907) generates wind. The continuously rotating transmission blade (907) draws external air into the drying chamber (902) and blows it out along one side of the top connecting cylinder (901). The inside of the drying chamber (902) is filled with solid desiccant material. The bottom of the drying chamber (902) is blocked by the bottom isolation net (1005). The solid desiccant material is placed inside the drying chamber (902). With the opening of the side air inlet frame (1003), when the drive blade (907) rotates, the external gas is drawn into the inside of the drying chamber (902) along the side air inlet frame (1003). The solid desiccant material in the drying chamber (902) improves the drying properties of the gas blown into the tank (2) by the drive blade (907). S3. During the continuous rotation of the top drive rod (906), the top drive plate (1006) will be driven to rotate along the inner side of the drying box (902). The rotating top drive plate (1006) will drive the inner stirring rod (1007) to rotate. The rotating inner stirring rod (1007) will stir the solid desiccant material in the drying box (902). At the same time, the rotating inner stirring rod (1007) will drive multiple side stirring rods (1008) to rotate. The rotating side stirring rods (1008) will stir the solid desiccant material in the drying box (902). S4. When the top drive rod (906) rotates, it drives the first helical gear disc (1101) to rotate. The rotating first helical gear disc (1101) drives the meshing second helical gear disc (1102) to rotate synchronously. The rotating second helical gear disc (1102) drives the side drive rod (1103) to rotate. The rotating side drive rod (1103) drives the third helical gear disc (1107) to rotate. The rotating third helical gear disc (1107) drives the meshing... The fourth helical gear disc (1108) rotates, which drives the bottom transmission rod (1109) to rotate. The rotating bottom transmission rod (1109) drives the driving gear disc (1110) to rotate. Through the meshing transmission between the driving gear disc (1110) and the driven gear disc (1113), the rotation of the driving gear disc (1110) drives the inner transmission disc (1114) to rotate. 1114) will drive the inner connecting rod (1115) to rotate. The rotating inner connecting rod (1115) will drive the inner transmission rod (1116) to rotate. The rotating inner transmission rod (1116) will drive the stirring blade (1117) to move along the surface of the inner screen (1120). When the raw material is added along the inside of the feed pipe (7), the raw material will accumulate on the surface of the inner screen (1120). When the transmission blade (907) rotates, it will synchronously drive the stirring blade. (1117) rotates, and the rotating agitator (1117) will continue to move along the surface of the inner screen (1120), stirring the raw materials accumulated on the surface of the inner screen (1120), breaking up the lumps or agglomerated raw materials, and the broken raw materials will enter the tank (2) through the inner screen (1120) for transportation. The agitator (1117) rotates along the surface of the inner screen (1120) to perform preliminary breaking up of the raw materials. S5. During the transportation of raw materials along the tank (2), the operator adds coolant into the storage tank (1206) through the top connecting pipe (1207). The coolant in the storage tank (1206) flows into the arc-shaped water tank (1201) through the outlet pipe (1208) for storage. The inner side of the arc-shaped water tank (1201) is in contact with the surface of the tank (2), and the inner side of the arc-shaped water tank (1201) is made of metal. The arc-shaped water tank (1201) and the heat sink (1202) are used to continuously cool the surface of the tank (2). The water pump (1205) is started. After starting, the water pump (1205) will drive the liquid in the arc-shaped water tank (1201) to flow back into the storage tank (1206) through the pumping pipe (1204). S6. During the process of transporting raw materials by driving the spiral blades (5) to rotate, the main conveyor rod (4) will drive the fifth helical gear disc (1301) to rotate. The rotating fifth helical gear disc (1301) will drive the meshing transmission sixth helical gear disc (1302) to rotate. The rotating sixth helical gear disc (1302) will drive the inner fixed rod (1303) to rotate. The rotating inner fixed rod (1303) will drive the two grinding plates (1305) to rotate. The top grinding plate (1305) will rotate along the surface of the top screen (1307), and the bottom grinding plate (1305) will rotate along the grinding disc (1308). The surface rotates, and the raw material is transported along the tank (2) and then discharged along the discharge pipe (8). When discharged, the raw material first falls into the surface of the top screening screen (1307) inside the inner connecting ring (1306). The screened raw material falls into the surface of the grinding disc (1308). At this time, the grinding plate (1305) at the bottom moves continuously to grind the raw material along the surface of the grinding disc (1308). The surface of the grinding disc (1308) is provided with multiple crushing holes (1310). During the grinding process, the larger lumpy raw material particles will be ground into fine particles that can pass through the holes (1310). The fine raw material after grinding will be discharged along the discharge cylinder (1309). S7. When the bottom fixing rod (1304) rotates, it will drive multiple transmission side frames (1313) to rotate. The multiple transmission side frames (1313) will rotate along the inner side of the discharge pipe (8) and the discharge cylinder (1309) respectively. When the multiple transmission side frames (1313) rotate, they will drive the side transmission plate (1314) to rotate. The rotating side transmission plate (1314) will drive the side cleaning brush (1315) to clean along the inner wall of the discharge pipe (8) and the discharge cylinder (1309).