Alpha-alumina powder conveying device
By designing an α-alumina powder conveying device, the effective transmission and storage of aluminum powder is achieved using the conveyor belt and spring structure, the problem of leakage of aluminum powder due to wind blowing during the transmission process is solved, and the conveying efficiency and safety are improved.
Patent Information
- Application Number
- CN202421548017.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-02
- Publication Date
- 2025-05-30
- Estimated Expiration
- 2034-07-02
AI Technical Summary
When aluminum powder is transported or filled, dusty dust is easily blown by the wind, causing some aluminum powder to leak and cause economic losses.
An α-alumina powder conveying device is designed, including a support structure, a discharge structure and a transmission structure. The conveyor belt drives the storage groove to move, and the spring structure blocks the discharge port to achieve effective transmission and storage of aluminum powder, and discharges aluminum powder through solenoid valve.
It effectively prevents aluminum powder from leaking due to wind blowing during transmission, reduces economic losses, and improves the efficiency and safety of aluminum powder transportation.
Smart Images

Figure CN222922247U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of aluminum powder transportation, and particularly relates to a device for transporting α-aluminum oxide powder. Background Technique
[0002] Aluminum powder, commonly known as "silver powder", is a silver-colored metallic pigment. A small amount of lubricant is added to pure aluminum foil, which is then pounded and crushed into scaly powder and polished. Aluminum powder is light in weight, has high floating power, strong covering power, and good reflection performance for light and heat. After treatment, it can also become non-floating aluminum powder. Aluminum powder can be used to identify fingerprints and can also be used for making fireworks. Due to its wide range of uses, large demand, and variety of types, aluminum powder is a major category of metallic pigments.
[0003] However, since aluminum powder is in powder form, it is very easy for some aluminum powder to be blown by the wind during transportation or filling, resulting in leakage of some aluminum powder during transportation or filling, causing certain economic losses.
[0004] Therefore, in order to solve the above problems, a device for transporting α-aluminum oxide powder is proposed. Content of the Utility Model
[0005] The purpose of the utility model is to provide a device for transporting α-aluminum oxide powder to solve the problem in the prior art mentioned in the above background technique that since aluminum powder is in powder form, it is very easy for some aluminum powder to be blown by the wind during transportation or filling, resulting in leakage of some aluminum powder during transportation or filling, causing certain economic losses.
[0006] To achieve the above purpose, the utility model provides the following technical solution: A device for transporting α-aluminum oxide powder, comprising: a support structure, a discharging structure, and a transmission structure;
[0007] The upper end of the first pillar in the support structure is bolted to the first connecting block. The inner side of the first connecting block is bolted to the sliding rod in the transmission structure. The outer side of the sliding rod is movably connected to the inner side of the receiving groove. The inner side of the receiving groove is bolted to the seventh pillar. The lower end of the seventh pillar is bolted to the slot. The inside of the slot is hollow to form a second chute. The two sides inside the slot in the transmission structure are hollow to form a feed port. One side of the sliding rod in the transmission structure is bolted to the first connecting pipe in the discharging structure. The two sides inside the first connecting pipe in the discharging structure are hollow to form a spring groove. The spring structure is bolted inside the spring groove. One side of the spring structure is bolted to the telescopic rod. One side of the telescopic rod is bolted to the sliding plate. The two sides inside the first connecting pipe in the discharging structure are hollow to form a discharging port.
[0008] Preferably, the upper end of the base in the support structure is bolted to the lower end of the first support plate, the upper end of the first support plate is bolted to the first support column, the upper end of the first support column is bolted to the first connection block, and the inner side of the first connection block is bolted to the second support column.
[0009] Preferably, the upper end of the first connection block is bolted to the third support column, the upper end of the third support column is bolted to the second connection block, the upper end of the second connection block is bolted to the fourth support column, and the upper end of the fourth support column is bolted to the lower end of the connection plate.
[0010] Preferably, both sides inside the first connection pipe in the discharging structure are hollow to form a discharging port, both sides of the first connection pipe are hollow to form a first sliding groove, and a sliding plate is slidably connected inside the first sliding groove.
[0011] Preferably, one side of the sliding plate is bolted to a telescopic rod, one side of the telescopic rod is movably connected inside a spring structure, and one side of the spring structure is bolted to a spring groove.
[0012] Preferably, one side of the connecting column in the transmission structure is bolted to a motor, the inner side of the motor is movably connected to a transmission belt, one side of the connecting column is bolted to a motor groove, a material pumping machine is bolted inside the motor groove, the lower end of the motor groove is bolted to the upper end of the fifth support column, the upper end of the fifth support column is bolted to the lower end of the first support plate in the support structure, the upper end of the motor groove is bolted to the lower end of the sixth support column, and the upper end of the sixth support column is bolted to the lower end of the connecting plate in the support structure.
[0013] Preferably, one side of the material pumping machine is bolted to one side of a sliding rod, the lower end of the transmission belt in the transmission structure is bolted to the lower end of the third connection block, the lower end of the third connection block is bolted to a storage tank, the upper end inside the storage tank is bolted to the seventh support column, the lower end of the seventh support column is bolted to the upper end of a slot, both sides inside the slot are hollow to form a second sliding groove, both sides inside the slot are hollow to form a feeding port, and the lower end of the storage tank is bolted to a solenoid valve.
[0014] Compared with the prior art, the beneficial effects of the present utility model are as follows: the present utility model can drive the storage tank through the transmission belt to make the storage tank move outside the sliding rod, the spring structure bolted to one side of the sliding plate can make the sliding plate be bounced so that the sliding plate can block the discharging port, the aluminum powder can be transported to the storage tank through the docking of the discharging port and the feeding port, and the aluminum powder can be discharged by the solenoid valve bolted to the lower end of the storage tank.
[0015] 1. The utility model is provided with a base, a first support plate, a first pillar, a first connection block, a second pillar, a third pillar, a second connection block, a fourth pillar, a connection plate, a first connection pipe, a discharge port, a first chute, a slide plate, a telescopic rod, a spring structure and a spring groove. The first pillar bolted to the upper end of the first support plate can support the first connection block. The second pillar bolted to the inner side of the first connection block can support the lower end of the support structure. The third pillar can support the second connection block. The second connection block can support the connection column. The second connection block can be connected to both sides of the connection column. The fourth pillar can support the connection plate. The discharge port enables the material to be transferred into the storage tank. The first chute enables the slide plate to be slidably connected in the first chute. The spring structure connected to the lower end of the telescopic rod can press against the slide plate so that the slide plate can block the discharge port. The spring groove can be connected to the spring structure.
[0016] 2. The utility model is provided with a connection column, a motor, a conveyor belt, a motor groove, a pumping machine, a fifth pillar, a sixth pillar, a slide rod, a third connection block, a storage tank, a seventh pillar, a slot, a second chute, a feed port and a solenoid valve. The conveyor belt enables the storage tank to move back and forth. The motor groove can be connected to the pumping machine so that the pumping machine can transfer aluminum powder. The fifth pillar can support the motor groove. The sixth pillar connected to the upper end of the motor groove can support the motor groove. The storage tank can store aluminum powder. The slide rod enables the storage tank to move outside the slide rod. The third connection block enables the conveyor belt to be connected to the storage tank. The seventh pillar can be connected to the slot. The hollow feed ports on both sides of the slot can be connected to the discharge port. The second chute can be slidably connected to both sides of the first connection pipe. The feed port can be docked with the discharge port so that the aluminum material inside the feed port can be discharged into the storage tank. The solenoid valve can discharge the aluminum material inside the storage tank. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 is a front sectional view of the structure of the present utility model;
[0018] Figure 2 is a front view of the structure of the present utility model;
[0019] Figure 3 is a sectional view of the discharging structure of the present utility model;
[0020] Figure 4 is a side sectional view of the structure of the present utility model;
[0021] Figure 5 is a side sectional view of the structure of the present utility model.
[0022] In the figure: 1. Support structure; 101. Base; 102. First support plate; 103. First support pillar; 104. First connection block; 105. Second support pillar; 106. Third support pillar; 107. Second connection block; 108. Fourth support pillar; 109. Connection plate; 2. Discharge structure; 201. First connection pipe; 202. Discharge port; 203. First chute; 204. Slide plate; 205. Telescopic rod; 206. Spring structure; 207. Spring groove; 3. Transmission structure; 301. Connection column; 302. Motor; 303. Transmission belt; 304. Motor groove; 305. Material pumping machine; 306. Fifth support pillar; 307. Sixth support pillar; 308. Slide bar; 309. Third connection block; 310. Storage groove; 311. Seventh support pillar; 312. Slot; 313. Second chute; 314. Feed inlet; 315. Solenoid valve. Detailed implementation manners
[0023] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention.
[0024] Please refer to Figures 1-5 , an embodiment provided by the present invention:
[0025] An α-aluminum oxide powder conveying device includes: a support structure 1, a discharge structure 2, and a transmission structure 3;
[0026] The upper end of the first support pillar 103 in the support structure 1 is bolted to the first connection block 104. The inner side of the first connection block 104 is bolted to the slide bar 308 in the transmission structure 3. The outer side of the slide bar 308 is movably connected to the inner side of the storage groove 310. The inner side of the storage groove 310 is bolted to the seventh support pillar 311. The lower end of the seventh support pillar 311 is bolted to the slot 312. The inside of the slot 312 is hollow to form the second chute 313. The two sides inside the slot 312 in the transmission structure 3 are hollow to form the feed inlet 314. One side of the slide bar 308 in the transmission structure 3 is bolted to the first connection pipe 201 in the discharge structure 2. The two sides inside the first connection pipe 201 are hollow to form the spring groove 207. The spring structure 206 is bolted inside the spring groove 207. One side of the spring structure 206 is bolted to the telescopic rod 205. One side of the telescopic rod 205 is bolted to the slide plate 204. The two sides inside the first connection pipe 201 in the discharge structure 2 are hollow to form the discharge port 202.
[0027] Further, the upper end of the base 101 in the support structure 1 is bolted to the lower end of the first support plate 102. The upper end of the first support plate 102 is bolted to the first support column 103. The upper end of the first support column 103 is bolted to the first connection block 104. The second support column 105 is bolted to the inner side of the first connection block 104. The first support column 103 bolted to the upper end of the first support plate 102 is used to support the first connection block 104. The second support column 105 bolted to the inner side of the first connection block 104 is used to support the lower end of the support structure 1.
[0028] Further, the upper end of the first connection block 104 is bolted to the third support column 106. The upper end of the third support column 106 is bolted to the second connection block 107. The upper end of the second connection block 107 is bolted to the fourth support column 108. The upper end of the fourth support column 108 is bolted to the lower end of the connection plate 109. The third support column 106 is used to support the second connection block 107. The second connection block 107 is used to support the connection column 301. The second connection block 107 is used to connect to both sides of the connection column 301. The fourth support column 108 is used to support the connection plate 109.
[0029] Further, both sides inside the first connection pipe 201 in the discharging structure 2 are hollow to form discharging ports 202. Both sides of the first connection pipe 201 are hollow to form first sliding grooves 203. A sliding plate 204 is slidably connected inside the first sliding grooves 203. The discharging ports 202 are used to enable the material to be transported into the storage tank 310. The first sliding grooves 203 are used to enable the sliding plate 204 to be slidably connected inside the first sliding grooves 203.
[0030] Further, one side of the sliding plate 204 is bolted to a telescopic rod 205. One side of the telescopic rod 205 is movably connected inside a spring structure 206. One side of the spring structure 206 is bolted to a spring groove 207. The spring structure 206 connected to the lower end of the telescopic rod 205 is used to push against the sliding plate 204 so that the sliding plate 204 can block the discharging ports 202. The spring groove 207 is used to connect to the spring structure 206.
[0031] Further, one side of the connecting post 301 in the transmission structure 3 is bolted to the motor 302. The inner side of the motor 302 is movably connected to the conveyor belt 303. One side of the connecting post 301 is bolted to the motor slot 304. The inside of the motor slot 304 is bolted to the material extraction machine 305. The lower end of the motor slot 304 is bolted to the upper end of the fifth support post 306. The lower end of the fifth support post 306 is bolted to the upper end of the first support plate 102 in the support structure 1. The upper end of the motor slot 304 is bolted to the lower end of the sixth support post 307. The upper end of the sixth support post 307 is bolted to the lower end of the connecting plate 109 in the support structure 1. The conveyor belt 303 is used to enable the storage slot 310 to move back and forth. The motor slot 304 is used to connect to the material extraction machine 305 so that the material extraction machine 305 can transport aluminum powder. The fifth support post 306 is used to support the motor slot 304. The sixth support post 307 connected to the upper end of the motor slot 304 is used to support the motor slot 304. The storage slot 310 is used to store aluminum powder.
[0032] Further, one side of the material extraction machine 305 is bolted to one side of the sliding rod 308. The lower end of the conveyor belt 303 in the transmission structure 3 is bolted to the lower end of the third connecting block 309. The lower end of the third connecting block 309 is bolted to the storage slot 310. The upper end inside the storage slot 310 is bolted to the upper end of the seventh support post 311. The lower end of the seventh support post 311 is bolted to the upper end of the slot 312. The two sides inside the slot 312 are hollowed out to form the second chute 313. The two sides inside the slot 312 are hollowed out to form the feed inlet 314. The lower end of the storage slot 310 is bolted to the solenoid valve 315. The sliding rod 308 is used to enable the storage slot 310 to move outside the sliding rod 308. The third connecting block 309 is used to connect the conveyor belt 303 to the storage slot 310. The seventh support post 311 is used to connect to the slot 312. The feed inlet 314 with hollowed-out sides on both sides of the slot 312 is used to connect to the discharge port 202. The second chute 313 is used to slidably connect to both sides of the first connecting pipe 201. The feed inlet 314 is used to dock with the discharge port 202 so that the aluminum material inside the feed inlet 314 can be discharged into the storage slot 310. The solenoid valve 315 is used to discharge the aluminum material inside the storage slot 310.
[0033] Working principle: When in use, first start the motor 302 so that the conveyor belt 303 drives the storage slot 310 connected at the lower end to move forward and backward. The storage slot 310 moves forward and backward so that the discharging structure 2 is inserted into the slot 312 inside the storage slot 310. When the first connecting pipe 201 is inserted into the slot 312, the slide plates 204 movably connected on both sides of the first connecting pipe 201 will be pressed against the slide plates 204 by the two sides inside the slot 312. When the slide plates 204 are pressed against the two sides inside the slot 312, they will move backward so that The discharge port 202 can leak out and connect with the feed port 314. When the pumping machine 305 is started, the pumping machine 305 draws the aluminum material. After the aluminum material is drawn into the first connecting pipe 201 by the pumping machine 305, it is discharged into the receiving groove 310 through the feed port 314 connected on both sides of the first connecting pipe 201. After starting the motor 302 so that the motor 302 drives the conveyor belt 303 to move back and forth to the specified position, the solenoid valve 315 is opened, so that the solenoid valve 315 is opened to discharge the aluminum powder.
[0034] The above description is only a preferred embodiment of the utility model and does not limit the utility model in any form. Any ordinary technician in the industry can smoothly implement the utility model as shown in the drawings of the specification and described above. However, any equivalent changes, modifications and evolutions made by technicians familiar with the profession without departing from the scope of the technical solution of the utility model using the technical content disclosed above are all equivalent embodiments of the utility model. At the same time, any equivalent changes, modifications and evolutions made to the above embodiments based on the essential technology of the utility model are still within the protection scope of the technical solution of the utility model.
Claims
1. An α-alumina powder conveying device, comprising: Support structure (1), discharging structure (2) and transmission structure (3); The invention is characterized in that: the upper end of the first pillar (103) in the supporting structure (1) is connected to the first connecting block (104) by bolts, the inner side of the first connecting block (104) is connected to the sliding rod (308) in the transmission structure (3) by bolts, the outer side of the sliding rod (308) is movably connected to the inner side of the receiving groove (310), the inner side of the receiving groove (310) is connected to the seventh pillar (311) by bolts, the lower end of the seventh pillar (311) is connected to the slot (312) by bolts, the slot (312) is hollow inside to form a second slide groove (313), and the slot (312) in the transmission structure (3) has two sides inside. The first connecting pipe (201) in the discharging structure (2) is hollowed out to form a feeding port (314); one side of the sliding rod (308) in the transmission structure (3) is connected to the first connecting pipe (201) in the discharging structure (2) by bolts; the first connecting pipe (201) is hollowed out on both sides to form a spring groove (207); the spring groove (207) is connected to the spring structure (206) by bolts; one side of the spring structure (206) is connected to the telescopic rod (205) by bolts; one side of the telescopic rod (205) is connected to the slide plate (204) by bolts; and the first connecting pipe (201) in the discharging structure (2) is hollowed out on both sides to form a discharging port (202).
2. The α-alumina powder conveying device according to claim 1, characterized in that: The upper end of the base (101) in the support structure (1) is connected to the lower end of the first support plate (102) by bolts, the upper end of the first support plate (102) is connected to the first pillar (103) by bolts, the upper end of the first pillar (103) is connected to the first connecting block (104) by bolts, and the inner side of the first connecting block (104) is connected to the second pillar (105) by bolts.
3. The α-alumina powder conveying device according to claim 2, characterized in that: The upper end of the first connection block (104) is connected to the third pillar (106) by bolts, the upper end of the third pillar (106) is connected to the second connection block (107) by bolts, the upper end of the second connection block (107) is connected to the fourth pillar (108) by bolts, and the upper end of the fourth pillar (108) is connected to the lower end of the connection plate (109) by bolts.
4. The α-alumina powder conveying device according to claim 1, characterized in that: The first connecting pipe (201) in the discharge structure (2) is hollowed out on both sides to form a discharge port (202), and the first connecting pipe (201) is hollowed out on both sides to form a first slide groove (203), and the first slide groove (203) is slidably connected to a slide plate (204).
5. The α-alumina powder conveying device according to claim 4, characterized in that: One side of the slide plate (204) is connected to the telescopic rod (205) by bolts, one side of the telescopic rod (205) is movably connected inside the spring structure (206), and one side of the spring structure (206) is connected to the spring groove (207) by bolts.
6. The α-alumina powder conveying device according to claim 1, characterized in that: One side of the connecting column (301) in the transmission structure (3) is connected to the motor (302) by bolts, the inner side of the motor (302) is movably connected to the transmission belt (303), one side of the connecting column (301) is connected to the motor slot (304) by bolts, the inside of the motor slot (304) is connected to the pumping machine (305) by bolts, the lower end of the motor slot (304) is connected to the fifth pillar (306) by bolts, the lower end of the fifth pillar (306) is connected to the upper end of the first support plate (102) in the support structure (1) by bolts, the upper end of the motor slot (304) is connected to the lower end of the sixth pillar (307) by bolts, and the upper end of the sixth pillar (307) is connected to the lower end of the connecting plate (109) in the support structure (1) by bolts.
7. The α-alumina powder conveying device according to claim 6, characterized in that: One side of the pumping machine (305) is connected to one side of the sliding rod (308) by bolts, the lower end of the conveyor belt (303) in the conveying structure (3) is connected to the lower end of the third connecting block (309) by bolts, the lower end of the third connecting block (309) is connected to the receiving groove (310) by bolts, the upper end of the interior of the receiving groove (310) is connected to the seventh pillar (311) by bolts, the lower end of the seventh pillar (311) is connected to the upper end of the slot (312) by bolts, the two sides of the interior of the slot (312) are hollow to form a second slide groove (313), the two sides of the interior of the slot (312) are hollow to form a feed port (314), and the lower end of the receiving groove (310) is connected to the solenoid valve (315) by bolts.