Zinc oxide delivery collection device

By incorporating the relative rotation of the inner liner and the auger, along with the agitation support of the discharge assembly, in the zinc oxide conveying system, the problem of material agglomeration was solved, achieving stable and continuous conveying and efficient discharge, thus extending the equipment's lifespan.

CN224530057UActive Publication Date: 2026-07-21JIAOZUO XINGGUANG NEW MATERIALS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIAOZUO XINGGUANG NEW MATERIALS CO LTD
Filing Date
2025-08-29
Publication Date
2026-07-21

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Abstract

The utility model discloses a kind of zinc oxide conveying collection devices, it is related to zinc oxide production technical field.The utility model includes conveying pipe, the conveying pipe is used for the conveying container of zinc oxide, further include conveying mechanism, the conveying mechanism is connected with conveying pipe arrangement, the conveying mechanism is by agitating and the mode of changing shear force to the conveying of zinc oxide, the including auxiliary assembly, the auxiliary assembly includes the inner bag of being set in the inside of conveying pipe.The utility model is by setting auxiliary assembly, specifically motor no.2 drive shaft no.2 rotation, through belt pulley group drive rotating lever rotation, rotating lever is moved by gear transmission gear ring, and then drive inner bag rotation, at this time, inner bag and auger are in relative rotation state, the design is by the relative motion of two efficient stirring material, prevent accumulation stagnation, shear force can break up zinc oxide agglomerate, improve conveying uniformity, wear-resistant material inner bag dispersion friction, slow down auger wear and prolong equipment life.
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Description

Technical Field

[0001] This utility model belongs to the field of zinc oxide production technology, and in particular relates to a zinc oxide conveying and collecting device. Background Technology

[0002] In previous zinc oxide conveying systems, a single drive mode was often used, such as relying solely on the shaft to directly drive the spiral blades to push the material. This method has obvious limitations. When the motor drives the shaft to rotate, due to the lack of effective auxiliary structures and relative motion mechanisms, the material is prone to local accumulation in the conveying pipe. This is especially true for zinc oxide, which has a certain viscosity and is susceptible to environmental factors (such as moisture and temperature changes). Once the material clumps, it will seriously hinder its normal flow, resulting in a significant decrease in conveying efficiency or even conveying stagnation. This not only affects the continuity of the entire production process but also increases the cost and difficulty of manual intervention. Therefore, a zinc oxide conveying and collecting device is proposed. Utility Model Content

[0003] The purpose of this invention is to provide a zinc oxide conveying and collecting device. By setting auxiliary components, specifically, a motor drives a rotating shaft to rotate, which in turn drives a rotating rod to rotate via a pulley set. The rotating rod moves through a gear-linked gear ring, thereby driving the inner liner to rotate. At this time, the inner liner and the auger are in a state of relative rotation. This solves the problem that materials are prone to local accumulation in the conveying pipe due to the lack of an effective auxiliary structure and relative motion mechanism. This is especially true for materials like zinc oxide, which have a certain viscosity and are easily affected by environmental factors (such as moisture and temperature changes). Once the material clumps, it will seriously hinder its normal flow, leading to a significant decrease in conveying efficiency or even conveying stagnation. This not only affects the continuity of the entire production process but also increases the cost and difficulty of manual intervention.

[0004] To solve the above-mentioned technical problems, this utility model is achieved through the following technical solution: This utility model relates to a zinc oxide conveying and collecting device, including a conveying pipe, which serves as a container for conveying zinc oxide, and further comprising: A conveying mechanism is connected to a conveying pipe, and the conveying mechanism conveys zinc oxide by agitation and changing shear force; The auxiliary component includes an inner liner disposed inside the delivery pipe, and a toothed ring is welded to the right side of the outer surface of the inner liner.

[0005] Furthermore, the conveying mechanism also includes: A feeding assembly, positioned above the conveying pipe, achieves stable feeding of zinc oxide through agitation; and A conveying assembly is disposed inside a conveying pipe. The conveying assembly is used to stably convey zinc oxide and provides power output to the auxiliary assembly.

[0006] Furthermore, a feed pipe is installed on the left side of the top of the conveying pipe, a discharge pipe is installed on the right side of the bottom of the conveying pipe, a collection chamber is connected to the end of the discharge pipe away from the conveying pipe, a vibrator is installed on the left side of the collection chamber, a viewing window is opened on the front of the conveying pipe, and a discharge valve is installed at the discharge port at the bottom of the collection chamber.

[0007] Furthermore, a protective cover is installed on the right side of the conveying pipe, a pulley assembly is provided inside the inner liner, a rotating rod is connected inside the pulley assembly, a gear is welded to the outer surface of the rotating rod, and the outer surface of the gear meshes with the outer surface of the gear ring.

[0008] Furthermore, limiting grooves are provided on the left and right sides of the inner wall of the conveying pipe, and limiting rings are rotatably connected to the temporal parts of the two limiting grooves. The inner walls of the two limiting rings are welded to the left and right sides of the outer surface of the inner liner, and a hollow opening is provided on the right side of the outer surface of the inner liner. The hollow opening is correspondingly set with the discharge pipe, and the thickness of the left side of the inner wall of the conveying pipe is the same as that of the inner liner.

[0009] Furthermore, the feeding assembly includes a feeding hopper, the bottom of which is connected to the top of the feeding pipe. A feeding port is installed on the left side of the top of the feeding hopper. A motor is installed on the top of the feeding hopper. The bottom output end of the motor is connected to a rotating shaft via a coupling. The rotating shaft passes through the feeding hopper and extends into the interior. An agitator is provided inside the feeding hopper. The interior of the agitator is welded to the bottom of the outer surface of the rotating shaft. The outer surface of the rotating shaft is rotatably connected to the inside of the hopper, and the outer ring of the agitator bracket is in contact with the inner wall of the hopper.

[0010] Furthermore, the conveying assembly includes a second motor, which is installed on the left side of the conveying pipe. The right output end of the second motor is connected to a second rotating shaft via a coupling. The second rotating shaft passes through the conveying pipe and extends into the interior of the protective cover. An auger is installed inside the conveying pipe. The outer ring of the auger contacts the inner wall of the inner liner. The interior of the auger is welded to the outer surface of the second rotating shaft. The right side of the outer surface of the second rotating shaft is connected to the side of the pulley assembly away from the rotating rod.

[0011] This utility model has the following beneficial effects: 1. This utility model, by setting auxiliary components, specifically, a motor drives a rotating shaft to rotate, which in turn drives a rotating rod to rotate via a pulley set. The rotating rod moves through a gear linkage ring, thereby driving the inner liner to rotate. At this time, the inner liner and the auger are in a state of relative rotation. This design efficiently stirs the material through their relative movement, preventing accumulation and stagnation. The shearing force can break up zinc oxide lumps, improving the uniformity of conveying. The wear-resistant material of the inner liner disperses friction, reduces auger wear, and extends the equipment life.

[0012] 2. This utility model sets up a feeding component, specifically a motor that drives a rotating shaft to rotate, which in turn drives a stirring bracket to rotate synchronously. During the movement, the bracket performs a dual function on the zinc oxide in the feeding hopper: on the one hand, it prevents the material from clumping by stirring, ensuring stable and continuous feeding to improve conveying efficiency; on the other hand, its outer edge continuously scrapes the inner wall of the feeding hopper, effectively reducing zinc oxide residue adhesion and ensuring smooth discharge.

[0013] Of course, any product implementing this utility model does not necessarily need to achieve all of the advantages described above at the same time. Attached Figure Description

[0014] To more clearly illustrate the technical solutions of the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model; Figure 2 This is a schematic diagram of the cross-sectional structure of the feeding hopper of this utility model; Figure 3 This is a schematic diagram of the overall structure of the inner liner of this utility model; Figure 4 This is a schematic diagram of the overall structure of the auxiliary component of this utility model after an explosion. Figure 5 This utility model Figure 4 A magnified structural diagram of A in the diagram.

[0016] The attached diagram lists the components represented by each number as follows: 111. Conveying pipe; 112. Feeding pipe; 113. Discharging pipe; 114. Collection chamber; 115. Viewing window; 116. Discharge valve; 117. Vibrator; 2. Conveying mechanism; 21. Feeding assembly; 211. Feeding hopper; 212. Motor 1; 213. Feed inlet; 214. Rotating shaft 1; 215. Agitator support; 22. Conveying assembly; 221. Motor 2; 222. Rotating shaft 2; 223. Screwdriver; 23. Auxiliary assembly; 231. Protective cover; 232. Inner liner; 233. Limiting ring; 234. Limiting groove; 235. Gear ring; 236. Hollowed-out opening; 237. Pulley assembly; 238. Rotating rod; 239. Gear. Detailed Implementation

[0017] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0018] Please see Figures 1-5 As shown, this utility model is a zinc oxide conveying and collecting device, including a conveying pipe 111, which serves as a container for conveying zinc oxide, and also includes: The conveying mechanism 2 is connected to the conveying pipe 111. The conveying mechanism 2 conveys zinc oxide by agitation and changing the shear force. The auxiliary component 23 includes an inner liner 232 disposed inside the delivery pipe 111, and a toothed ring 235 is welded to the right side of the outer surface of the inner liner 232.

[0019] Conveying mechanism 2 also includes: Feeding assembly 21 is positioned above conveying pipe 111. Feeding assembly 21 achieves stable feeding of zinc oxide through agitation. The conveying component 22 is disposed inside the conveying pipe 111. The conveying component 22 is used to stably convey zinc oxide and provides power output to the auxiliary component 23.

[0020] A feed pipe 112 is installed on the top left side of the conveying pipe 111, and a discharge pipe 113 is installed on the bottom right side of the conveying pipe 111. A collection chamber 114 is installed and connected to the end of the discharge pipe 113 away from the conveying pipe 111. A vibrator 117 is installed on the left side of the collection chamber 114. A viewing window 115 is opened on the front of the conveying pipe 111, and a discharge valve 116 is installed at the discharge port at the bottom of the collection chamber 114.

[0021] A protective cover 231 is installed on the right side of the conveying pipe 111. A pulley assembly 237 is installed inside the inner liner 232. A rotating rod 238 is connected inside the pulley assembly 237. A gear 239 is welded to the outer surface of the rotating rod 238. The outer surface of the gear 239 meshes with the outer surface of the gear ring 235. Limiting grooves 234 are formed on both the left and right sides of the inner wall of the conveying pipe 111. Limiting rings 233 are rotatably connected to the temporal portion of each limiting groove 234. The inner walls of the two limiting rings 233 are welded to the left and right sides of the outer surface of the inner liner 232. A perforated opening 236 is formed on the right side of the outer surface of the inner liner 232. The perforated opening 236 connects to the drain... The material pipe 113 is set accordingly, and the thickness of the left side of the inner wall of the conveying pipe 111 is the same as that of the inner liner 232. The motor 221 drives the rotating shaft 222 to rotate, which drives the rotating rod 238 to rotate through the pulley group 237. The rotating rod 238 moves through the gear 239 and the gear ring 235, thereby driving the inner liner 232 to rotate. At this time, the inner liner 232 and the auger 223 are in a state of relative rotation. This design efficiently stirs the material through the relative movement of the two, prevents accumulation and stagnation, and the shearing force can break up zinc oxide lumps, improve the uniformity of conveying. The wear-resistant material of the inner liner 232 disperses the friction force, reduces the wear of the auger 223 and extends the service life of the equipment.

[0022] The feeding assembly 21 includes a feeding hopper 211, the bottom of which is connected to the top of the feeding pipe 112. A feeding port 213 is installed on the left side of the top of the feeding hopper 211. A motor 212 is installed on the top of the feeding hopper 211. The bottom output end of the motor 212 is connected to a rotating shaft 214 via a coupling. The rotating shaft 214 passes through the feeding hopper 211 and extends into it. An agitator 215 is installed inside the feeding hopper 211. The agitator 215 is welded to the bottom of the outer surface of the rotating shaft 214. The outer surface of shaft 214 is rotatably connected to the inside of hopper 211. The outer ring of agitator 215 contacts the inner wall of hopper 211. When motor 212 is started, it drives shaft 214 to rotate, which in turn drives agitator 215 to rotate synchronously. During its movement, the agitator performs a dual function on the zinc oxide in hopper 211: on the one hand, it prevents material from clumping by stirring, ensuring stable and continuous feeding to improve conveying efficiency; on the other hand, its outer edge continuously scrapes the inner wall of the hopper, effectively reducing zinc oxide residue adhesion and ensuring smooth discharge.

[0023] The conveying assembly 22 includes a second motor 221, which is installed on the left side of the conveying pipe 111. The output end of the second motor 221 on the right side is connected to a second rotating shaft 222 via a coupling. The second rotating shaft 222 passes through the conveying pipe 111 and extends into the protective cover 231. An auger 223 is provided inside the conveying pipe 111. The outer ring of the auger 223 contacts the inner wall of the inner liner 232. The inside of the auger 223 is welded to the outer surface of the second rotating shaft 222. Among them, the right side of the outer surface of the second rotating shaft 222 is connected to the side of the pulley assembly 237 away from the rotating rod 238.

[0024] One specific application of this embodiment is as follows: In use, the operator first adds zinc oxide into the hopper 211 through the feed inlet 213, and then starts the motor 212 to drive the rotating shaft 214 to rotate. When the rotating shaft 214 rotates, it will drive the stirring bracket 215 to rotate. During the rotation of the stirring bracket 215, the zinc oxide inside the hopper 211 will be stirred, reducing the difficulty of discharging zinc oxide due to agglomeration, thereby improving the stability of zinc oxide discharge, improving the continuity of zinc oxide conveying, and improving the conveying efficiency. At the same time, when the stirring bracket 215 rotates, its outer ring will scrape the inner wall of the hopper 211, reducing the adhesion of zinc oxide to the inner wall of the hopper 211. After being agitated by the stirring bracket 215, the zinc oxide enters the conveying pipe 111 through the feed pipe 112. At this time, the motor 221 is started to drive the rotating shaft 222 to rotate. When the rotating shaft 222 rotates, the zinc oxide is conveyed by the auger 223. Finally, the zinc oxide enters the collection chamber 114 through the discharge pipe 113. A vibrator 117 is installed on the left side of the collection chamber 114. The vibrator 117 is an electromagnetic vibrator. The vibration frequency can be adjusted by the control mechanism for discharging the zinc oxide inside the collection chamber 114. A discharge valve 116 is installed at the bottom of the collection chamber 114 to control the discharge of zinc oxide. At the same time, a viewing window 115 is also opened on the front of the collection chamber 114 so that the operator can observe the content of zinc oxide inside the collection chamber 114. Simultaneously, when motor 221 drives shaft 222 to rotate, shaft 222 drives rod 238 to rotate via pulley 237. As rod 238 rotates, it drives gear ring 235 to move via gear 239. Gear ring 235 then drives inner liner 232 to rotate. Inner liner 232 and auger 223 rotate relative to each other. The rotation of inner liner 232 causes two limiting rings 233 to rotate within limiting grooves 234. These limiting rings 233 provide a certain degree of limitation and stability to the movement trajectory of inner liner 232 through the limiting grooves 234. A perforated opening 236 is provided on the right side of inner liner 232 to facilitate the discharge of zinc oxide. The perforated opening 236 is correspondingly positioned with discharge pipe 113. During equipment operation, the protective cover 231 provides protection for the structural components. The relative rotation of inner liner 232 and auger 223 allows for more efficient agitation. Zinc oxide material is used to prevent local accumulation of material inside the pipe, improve the efficiency of continuous forward material movement, and reduce conveying stagnation. At the same time, zinc oxide may clump when it is damp or when the temperature changes. The shear force generated by relative rotation can disperse the clumps, so that the material is conveyed more evenly and reduce the problem of reduced conveying efficiency caused by material viscosity. In addition, the inner liner 232 is made of wear-resistant material, which can reduce excessive local wear of the auger 223 by dispersing friction and extend the service life of the equipment.

[0025] In the description of this specification, references to terms such as "an embodiment," "example," "specific example," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0026] The preferred embodiments of this utility model disclosed above are merely illustrative of the present utility model. These preferred embodiments do not exhaustively describe all details, nor do they limit the present utility model to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of the present utility model, thereby enabling those skilled in the art to better understand and utilize it. This utility model is limited only by the claims and their full scope and equivalents.

Claims

1. A zinc oxide conveying and collecting device, comprising a conveying pipe (111), said conveying pipe (111) serving as a conveying container for zinc oxide, characterized in that, Also includes: A conveying mechanism (2) is connected to a conveying pipe (111). The conveying mechanism (2) conveys zinc oxide by agitation and changing shear force. The auxiliary component (23) includes an inner liner (232) disposed inside the delivery pipe (111), and a toothed ring (235) is welded to the right side of the outer surface of the inner liner (232).

2. The zinc oxide conveying and collecting device according to claim 1, characterized in that, The conveying mechanism (2) further includes: A feeding assembly (21) is disposed above the conveying pipe (111), and the feeding assembly (21) achieves stable feeding of zinc oxide by agitation; and The conveying assembly (22) is disposed inside the conveying pipe (111). The conveying assembly (22) is used to stably convey zinc oxide and provides power output to the auxiliary assembly (23).

3. The zinc oxide conveying and collecting device according to claim 1, characterized in that, A feed pipe (112) is installed on the left side of the top of the conveying pipe (111), and a discharge pipe (113) is installed on the right side of the bottom of the conveying pipe (111). A collection chamber (114) is installed and connected to the end of the discharge pipe (113) away from the conveying pipe (111). A vibrator (117) is installed on the left side of the collection chamber (114). A viewing window (115) is opened on the front of the conveying pipe (111), and a discharge valve (116) is installed at the discharge port at the bottom of the collection chamber (114).

4. The zinc oxide conveying and collecting device according to claim 1, characterized in that, A protective cover (231) is installed on the right side of the conveying pipe (111). A pulley assembly (237) is provided inside the inner liner (232). A rotating rod (238) is connected inside the pulley assembly (237). A gear (239) is welded to the outer surface of the rotating rod (238). The outer surface of the gear (239) meshes with the outer surface of the gear ring (235).

5. A zinc oxide conveying and collecting device according to claim 4, characterized in that, Limiting grooves (234) are provided on the left and right sides of the inner wall of the conveying pipe (111). The two limiting grooves (234) are rotatably connected to limiting rings (233). The inner walls of the two limiting rings (233) are welded to the left and right sides of the outer surface of the inner liner (232). A hollow opening (236) is provided on the right side of the outer surface of the inner liner (232). The hollow opening (236) is correspondingly set with the discharge pipe (113), and the thickness of the left side of the inner wall of the conveying pipe (111) is the same as that of the inner liner (232).

6. A zinc oxide conveying and collecting device according to claim 2, characterized in that, The feeding assembly (21) includes a feeding hopper (211), the bottom of which is connected to the top of the feeding pipe (112). A feeding port (213) is installed on the left side of the top of the feeding hopper (211). A motor (212) is installed on the top of the feeding hopper (211). The bottom output end of the motor (212) is connected to a rotating shaft (214) via a coupling. The rotating shaft (214) passes through the feeding hopper (211) and extends into the interior. An agitator (215) is provided inside the feeding hopper (211). The interior of the agitator (215) is welded to the bottom of the outer surface of the rotating shaft (214). The outer surface of the rotating shaft (214) is rotatably connected to the inside of the hopper (211), and the outer ring of the stirring bracket (215) is in contact with the inner wall of the hopper (211).

7. A zinc oxide conveying and collecting device according to claim 2, characterized in that, The conveying assembly (22) includes a second motor (221), which is installed on the left side of the conveying pipe (111). The output end of the second motor (221) on the right side is connected to a second rotating shaft (222) via a coupling. The second rotating shaft (222) passes through the conveying pipe (111) and extends into the protective cover (231). An auger (223) is provided inside the conveying pipe (111). The outer ring of the auger (223) contacts the inner wall of the inner liner (232). The inside of the auger (223) is welded to the outer surface of the second rotating shaft (222). The right side of the outer surface of the second rotating shaft (222) is connected to the side of the pulley assembly (237) away from the rotating rod (238).