Conductive slurry storage mechanism for carbon-coated aluminum foil
By designing a storage mechanism for conductive slurry coated with carbon aluminum foil, and utilizing a combination of a drive shaft and a stirring paddle, the stability and uniformity issues of the conductive slurry during storage were resolved, achieving high-quality storage and transportation.
Patent Information
- Application Number
- CN202422445276.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-10
- Publication Date
- 2025-10-31
- Estimated Expiration
- 2034-10-10
AI Technical Summary
Existing conductive pastes for carbon-coated aluminum foil have poor stability during storage, uneven distribution of effective substances, and are prone to solid sedimentation, which affects product quality and may clog delivery pipelines.
A carbon-coated aluminum foil conductive paste storage mechanism was designed, which includes a storage mechanism and an auxiliary mechanism. Through a drive shaft, a stirring paddle and a swing mechanism, the conductive paste is stirred and prevented from settling, ensuring uniform distribution of the material.
This effectively avoids the sedimentation of conductive slurry, ensuring storage quality and normal operation in subsequent use, and preventing pipeline blockage.
Smart Images

Figure CN223495276U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of conductive paste storage technology, and in particular to a carbon-coated aluminum foil conductive paste storage mechanism. Background Technology
[0002] Conductive paste is one of the important raw materials in the preparation of carbon-coated aluminum foil. It is an electronic functional material that integrates materials, metallurgy, chemical industry and electronic technology. It is also a basic material for hybrid integrated circuits, sensitive elements, surface mount technology, resistor networks, displays and various electronic discrete devices. It has a wide range of applications in the production process of carbon-coated aluminum foil.
[0003] Existing conductive pastes for carbonized aluminum foil have the following drawbacks during storage: poor stability of the conductive paste, uneven distribution of effective substances, and poor adhesion between conductive particles during the preparation of carbonized aluminum foil all lead to poor circuit conductivity. At the same time, solid matter is prone to precipitation during the transfer, transportation, and storage of the conductive paste, which not only affects product quality but also blocks various transportation pipelines. To address these issues, we propose a storage mechanism for conductive pastes for carbonized aluminum foil. Utility Model Content
[0004] The main objective of this invention is to provide a storage mechanism for conductive paste made of carbon-coated aluminum foil. By installing a storage mechanism inside the box, the conductive paste can be stored and the precipitation of solid matter inside can be avoided during the storage process, which can effectively solve the problems in the background art.
[0005] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0006] A storage mechanism for conductive paste on carbon-coated aluminum foil includes a housing and a storage mechanism. The storage mechanism is installed inside the housing. The storage mechanism includes a material bin, a cover, a mounting frame, a drive shaft, a stirring paddle, a motor A, a sprocket, and a chain belt. Each material bin has a cover snapped onto its top, and a mounting frame is fixedly connected to the top of each cover. A drive shaft is vertically installed inside each cover, and a stirring paddle located inside the material bin is installed at the bottom of each drive shaft. A motor is installed on the top of the mounting frame, and a sprocket is installed on the outer periphery of the drive shaft inside the mounting frame, with the sprockets connected to each other by a chain belt.
[0007] Furthermore, it also includes an auxiliary mechanism. An auxiliary mechanism is provided at the bottom of the box, comprising a base, a rotating shaft A, a motor B, a rotating rod, another rotating shaft B, a swing rod, and a connecting rod. The base is installed at the bottom of the box, and both sides of the base are connected to the box via rotating shaft A. A motor B is installed on one side of the base surface, and a rotating rod is installed at the power output end of the motor B. Rotating shafts B are installed on both sides of the inner wall of the base, and swing rods are movably connected to them. The swing rods and rotating shafts are connected via a connecting rod. The box is installed inside the base, and the base is connected to the box via rotating shaft A. During storage, the operation of motor B can be controlled. When motor B operates, it drives the rotating shaft to rotate. During rotation, the rotating shaft can drive the swing rod to swing left and right via the connecting rod, thereby causing the box to continuously swing around rotating shaft A. This, in conjunction with the stirring components inside the hopper, further prevents the sedimentation of the conductive slurry.
[0008] Furthermore, the outer wall of each material box is provided with a lifting groove for easy hoisting; the lifting groove structure facilitates the transfer of the material box using lifting equipment.
[0009] Furthermore, a coupling is installed between the power output end of motor A and the top end of the transmission shaft, and the coupling connects them; the coupling serves as a connection, enabling motor A to drive the rotation of the transmission shaft.
[0010] Furthermore, a connecting rod is installed between the end of the swing arm and the side of the box, and the connecting rod is connected to the side of the box. A rotating shaft C is installed at both ends of the connecting rod. The connecting rod enables the swing of the swing arm to drive the swing of the box, and the rotating shaft C serves as a connection, enabling the rotation of the rotating rod to drive the swing of the swing arm.
[0011] Compared with the prior art, this utility model has the following beneficial effects: The material box is used to store conductive slurry for preparing carbonized aluminum foil. After the conductive slurry is stored, the cover is closed and the material box is hoisted into the box body. Three sets of material boxes can be placed in the box body at the same time. After the material boxes are installed in place, the sprockets of adjacent material boxes can be connected together by a chain belt. At the same time, a motor A is installed on the top of the mounting frame of one set of material boxes. When the motor A runs, it drives the drive shaft to rotate and drives the drive shafts of multiple sets of material boxes inside the box body to rotate synchronously through the sprockets and chain belt. The drive shaft stirs the conductive slurry through the stirring paddle, avoiding the problems of solid material precipitation and uneven distribution of effective material, ensuring the storage quality and subsequent normal use. The box body is installed inside the base and the base is connected to the box body through the rotating shaft A. During the storage process, the motor B can be controlled to run. When the motor B runs, it drives the rotating rod to rotate. During the rotation of the rotating rod, it can drive the swing rod to swing left and right through the connecting rod, thereby driving the box body to swing continuously around the rotating shaft A. In conjunction with the stirring components inside the material box, it further avoids the precipitation of conductive slurry. Attached Figure Description
[0012] Figure 1 This is a schematic diagram of the overall structure of a carbon-coated aluminum foil conductive paste storage mechanism according to the present invention.
[0013] Figure 2 This is a schematic diagram of the internal structure of the material box of the carbon-coated aluminum foil conductive paste storage mechanism of this utility model.
[0014] Figure 3 This is a schematic diagram of the transmission assembly of the motor B power output end of a carbonized aluminum foil conductive slurry storage mechanism according to this utility model.
[0015] In the diagram: 1. Box body; 2. Storage mechanism; 201. Material box; 202. Hanging trough; 203. Cover; 204. Mounting frame; 205. Drive shaft; 206. Agitator; 207. Motor A; 208. Coupling; 209. Sprocket; 210. Chain belt; 3. Auxiliary mechanism; 301. Base; 302. Rotating shaft A; 303. Motor B; 304. Rotating rod; 305. Rotating shaft B; 306. Swing rod; 307. Connecting rod; 308. Connecting rod; 309. Rotating shaft C. Detailed Implementation
[0016] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0017] like Figure 1-3 As shown, a carbon-coated aluminum foil conductive paste storage mechanism includes a housing 1 and a storage mechanism 2. The storage mechanism 2 is installed inside the housing 1. The storage mechanism 2 includes a material box 201, a cover 203, a mounting frame 204, a drive shaft 205, a stirring paddle 206, a motor 207, a sprocket 209, and a chain belt 210. The top of each material box 201 is fitted with a cover 203, and the top of each cover 203 is fixedly connected to the mounting frame 204. The drive shaft 205 is vertically installed inside each cover 203, and the bottom of each drive shaft 205 is fitted with a stirring paddle 206 located inside the material box 201. The top of the mounting frame 204 is fitted with a motor. The outer periphery of the drive shaft 205 is fitted with a sprocket 209 located inside the mounting frame 204, and the sprockets 209 are connected to each other by the chain belt 210.
[0018] The system also includes an auxiliary mechanism 3. The auxiliary mechanism 3 is located at the bottom of the housing 1. The auxiliary mechanism 3 includes a base 301, a rotating shaft A302, a motor B303, a rotating rod 304, a rotating shaft B305, a swing rod 306, and a connecting rod 308. The base 301 is installed at the bottom of the housing 1, and both sides of the base 301 are connected to the housing 1 via rotating shafts A302. A motor B303 is installed on one side of the surface of the base 301, and a rotating rod 304 is installed at the power output end of the motor B303. Rotating shafts B305 are installed on both sides of the inner wall of the base 301 and connected to the housing 1 via rotating shafts B304. 5. A swing rod 306 is movably connected, and the swing rod 306 is connected to the rotating rod 304 through a connecting rod 308. The box body 1 is installed inside the base 301, and the base 301 is connected to the box body 1 through the rotating shaft A302. During the storage process, the motor B303 can be controlled to run. When the motor B303 runs, it drives the rotating rod 304 to rotate. During the rotation, the rotating rod 304 can drive the swing rod 306 to swing left and right through the connecting rod 308, thereby driving the box body 1 to swing continuously around the rotating shaft A302. This works in conjunction with the stirring assembly inside the material box 201 to further prevent the sedimentation of the conductive slurry.
[0019] The outer wall of the material box 201 is provided with a lifting slot 202 for easy hoisting. A coupling 208 is installed between the power output end of the motor A207 and the top end of the transmission shaft 205 and is connected to it. The structure of the lifting slot 202 facilitates the use of lifting equipment to transfer the material box 201. The coupling 208 plays a connecting role, so that the motor A207 can drive the rotation of the transmission shaft 205.
[0020] A connecting rod 307 is installed between the end of the swing rod 306 and the side of the housing 1, and the connecting rod 307 connects the two ends of the connecting rod 308. A rotating shaft C309 is installed at both ends of the connecting rod 308. The connecting rod 307 enables the swing of the swing rod 306 to drive the swing of the housing 1. The rotating shaft C309 serves as a connection, enabling the rotation of the rotating rod 304 to drive the swing of the swing rod 306.
[0021] It should be noted that this utility model is a storage mechanism for conductive paste for carbonized aluminum foil. In use, the material box 201 is used to store the conductive paste for preparing carbonized aluminum foil. After the conductive paste is stored, the cover 203 is closed and the material box 201 is hoisted into the box body 1. The box body 1 can hold three sets of material boxes 201 at the same time. After the material boxes 201 are installed in place, the sprockets 209 can be connected together between the tops of adjacent material boxes 201 by a chain belt 210. At the same time, a motor A207 is installed on the top of the mounting bracket 204 of one set of material boxes 201. When the motor A207 runs, it drives the transmission shaft 205 to rotate and drives the transmission inside the multiple sets of material boxes 201 inside the box body 1 through the sprockets 209 and the chain belt 210. The shaft 205 rotates synchronously, and the transmission shaft 205 stirs the conductive slurry through the stirring paddle 206 to avoid the problems of solid material precipitation and uneven distribution of effective materials, ensuring storage quality and subsequent normal use; the box 1 is installed inside the base 301 and the base 301 is connected to the box 1 through the rotating shaft A302. During the storage process, the motor B303 can be controlled to run. When the motor B303 runs, it drives the rotating rod 304 to rotate. During the rotation, the rotating rod 304 can drive the swing rod 306 to swing left and right through the connecting rod 308, thereby driving the box 1 to swing continuously around the rotating shaft A302. In conjunction with the stirring components inside the material box 201, it further avoids the precipitation of conductive slurry.
[0022] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A storage mechanism for conductive paste made of carbon-coated aluminum foil, comprising a housing (1), characterized in that, It also includes a storage mechanism (2), which is installed inside the box (1). The storage mechanism (2) includes a material box (201), a cover (203), a mounting frame (204), a drive shaft (205), a stirring paddle (206), a motor A (207), a sprocket (209), and a chain belt (210). The top of each material box (201) is fitted with a cover (203), and the top of each cover (203) is fixedly connected to a... The mounting bracket (204) has a drive shaft (205) installed vertically inside the cover (203), and a stirring paddle (206) located inside the material box (201) is installed at the bottom of the drive shaft (205). A motor is installed on the top of the mounting bracket (204). A sprocket (209) is installed on the outer periphery of the drive shaft (205) inside the mounting bracket (204), and the sprockets (209) are connected to each other by a chain belt (210).
2. The carbon-coated aluminum foil conductive paste storage mechanism according to claim 1, characterized in that: It also includes an auxiliary mechanism (3). The bottom of the box (1) is provided with an auxiliary mechanism (3). The auxiliary mechanism (3) includes a base (301), a rotating shaft A (302), a motor B (303), a rotating rod (304), a rotating shaft B (305), a swing rod (306), and a connecting rod (308). The bottom of the box (1) is equipped with a base (301), and both sides of the inside of the base (301) are connected to the box (1) through the rotating shaft A (302). A motor B (303) is installed on one side of the surface of the base (301), and a rotating rod (304) is installed at the power output end of the motor B (303). Both sides of the inner wall of the base (301) are equipped with rotating shafts B (305), and a swing rod (306) is movably connected through the rotating shafts B (305). The swing rod (306) and the rotating rod (304) are connected by a connecting rod (308).
3. The carbon-coated aluminum foil conductive paste storage mechanism according to claim 1, characterized in that: The outer wall of each material box (201) is provided with a lifting slot (202) for easy hoisting.
4. The carbon-coated aluminum foil conductive paste storage mechanism according to claim 1, characterized in that: A coupling (208) is installed between the power output end of the motor A (207) and the top end of the transmission shaft (205), and they are connected through the coupling (208).
5. The carbon-coated aluminum foil conductive paste storage mechanism according to claim 2, characterized in that: A connecting rod (307) is installed between the end of the swing rod (306) and the side of the box (1) and is connected through the connecting rod (307). A rotating shaft C (309) is installed at both ends of the connecting rod (308).