Static conductive material storage device

By introducing a stirring and scraping structure into the static conductive material storage device, the problem of material sticking is solved, the removal efficiency is improved and the cost is reduced.

CN223341477UActive Publication Date: 2025-09-16ZHEJIANG FUBO TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422924464.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-29
Publication Date
2025-09-16
Estimated Expiration
2034-11-29

AI Technical Summary

Technical Problem

In existing static conductive material storage devices, the material easily sticks to the inner wall of the storage tank, resulting in low retrieval efficiency and increased costs.

Method used

It uses components such as a stirring motor, a stirring shaft, a stirring rod, a scraper ring, a hydraulic rod, etc. The scraper ring is rotated and reciprocated to scrape the inner wall material, and is combined with a discharge barrel, a dispersion column and other structures to achieve material dispersion and anti-sticking.

Benefits of technology

Effectively prevent static conductive materials from sticking, improve removal efficiency and reduce costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a static conductive material storage device which comprises a storage tank shell, a stirring motor is installed at the top end of the storage tank shell, the output end of the stirring motor is connected with a stirring shaft, a plurality of sets of stirring rods are fixed to the outer wall of the stirring shaft, and a material scraping ring is attached to the inner wall of the storage tank shell. A movable rod extending out of the top of the storage tank shell is fixed to the top end of the scraping ring. According to the static conductive material storage device, by arranging a stirring motor, a stirring shaft, a stirring rod, a material scraping ring, a guide inclined plane, a movable rod, a sealing ring, a connecting plate, a sleeve block, a hydraulic rod and a feeding opening, the stirring motor is started to drive the stirring shaft and the stirring rod to rotate, a static conductive material is dispersed, and the hydraulic rod is started to drive the material scraping ring to vertically move in a reciprocating mode; the material scraping ring can scrape the static conductive material located on the inner wall of the storage tank, the efficient anti-sticking effect is achieved, the cost of the static conductive material is reduced, and the taking-out efficiency of the static conductive material is improved.
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Description

Technical Field

[0001] The utility model relates to the technical field of storage devices, in particular to a static conductive material storage device. Background Art

[0002] Static-dissipating materials are materials that reduce the generation and accumulation of static electricity. They typically possess a certain degree of conductivity, safely conducting static electricity away, thereby preventing damage to sensitive electronic devices or the human body caused by electrostatic discharge. Common static-dissipating materials include conductive rubber, conductive plastic, and conductive fiber. Conductive rubber materials require storage in tanks and other equipment to prevent prolonged contact with air, which can cause sticking.

[0003] For example, the Chinese authorized patent, announcement number: CN220282326U, is an anti-caking 3D printing powder material storage device, which relates to the technical field of 3D printing powder material storage devices. The 3D printing powder material storage device is intended to solve the technical problem that different batches of powder materials cannot be stored separately under the existing technology, and the powder materials are easy to agglomerate in the storage device. The 3D printing powder material storage device includes an outer cylinder, a first motor fixedly connected to the lower end of the outer cylinder, and an inner cylinder installed in the outer cylinder and connected to the output shaft of the first motor; wherein, a partition plate is fixedly connected to the inner cylinder, a detachable upper cover is installed at the upper end of the outer cylinder, a second motor is installed at the upper end of the upper cover, and the motor shaft of the second motor passes through the upper cover and is fixedly connected to a connecting plate. The 3D printing powder material storage device uses a partition plate to divide the inner cylinder into multiple storage spaces, so that different batches of powder materials can be stored separately, the powder materials are broken up, and the powder materials are effectively prevented from agglomerating.

[0004] The above-mentioned traditional storage devices generally use stirring equipment to work, which can be used to break up the stored materials to avoid the problem of sticking caused by long-term contact of the materials. However, it is still easy for the materials to stick to the inner wall of the storage tank. During the discharging process, the materials stuck to the inner wall of the storage tank are difficult to remove, which increases the cost of using the storage materials by the storage device and reduces the efficiency of removing static conductive materials. Utility Model Content

[0005] (1) Technical problems solved

[0006] In response to the shortcomings of the existing technology, the utility model provides a storage device for electrostatic conductive materials. By setting a stirring motor, a stirring shaft, a stirring rod, a scraper ring, a guide slope, a movable rod, a sealing ring, a connecting plate, a sleeve block, a hydraulic rod and a feed port, the stirring motor can be turned on to drive the stirring shaft and the stirring rod to rotate and disperse the electrostatic conductive material. The hydraulic rod is turned on to drive the scraper ring to move vertically back and forth. The scraper ring can scrape the electrostatic conductive material located on the inner wall of the storage tank, thereby achieving an efficient anti-sticking effect, reducing the cost of the electrostatic conductive material, improving the efficiency of removing the electrostatic conductive material, and solving the problems raised by the background technology.

[0007] (2) Technical solution

[0008] To achieve the above-mentioned purpose, the present invention provides the following technical solutions: a static conductive material storage device, comprising a storage tank shell, a stirring motor is installed on the top of the storage tank shell, the output end of the stirring motor is connected to a stirring shaft, a plurality of stirring rods are fixed to the outer wall of the stirring shaft, a scraper ring is attached to the inner wall of the storage tank shell, a movable rod extending from the top of the storage tank shell is fixed to the top of the scraper ring, a connecting plate is fixed to the top of the movable rod, a hydraulic rod is installed on the top of the storage tank shell, the output end of the hydraulic rod is connected to a sleeve block, and the sleeve block is sleeved on the outer wall of the connecting plate.

[0009] Preferably, a sealing ring is fixed to the inner wall of the storage tank shell, and the sealing ring is in contact with the outer wall of the movable rod. The sealing ring is in contact with the outer wall of the movable rod. The provision of the sealing ring can provide better sealing and prevent air from directly entering the storage tank shell.

[0010] Preferably, a guiding slope is provided on the top of the scraper ring, and the guiding slope is inclined from top to bottom toward one side of the axis of the storage tank shell. The provision of the guiding slope can achieve a guiding effect. When the scraper ring moves upward, the static conductive material can slide down the guiding slope to the inside of the storage tank shell, thereby achieving the purpose of preventing sticking.

[0011] Preferably, a feed port is provided at the top of the storage tank shell, a discharge cylinder is fixed to the outer wall of the storage tank shell, and a discharge port communicating with the interior of the storage tank shell is provided inside the discharge cylinder.

[0012] Preferably, a groove is provided at the top of the discharge barrel, a mounting plate is inserted into the inner wall of the groove, and the bottom end of the mounting plate is rotatably connected to several groups of dispersion columns located inside the discharge port. The conductive rubber can be discharged through the discharge port inside the discharge barrel, and the conductive rubber passes through the gaps between the several groups of dispersion columns, thereby achieving the purpose of dispersion and further avoiding the problem of sticking of static conductive materials.

[0013] Preferably, a clamping block is fixed on the outer wall of the mounting plate, and a clamping groove corresponding to the clamping block is provided on the top of the discharge barrel.

[0014] Preferably, a handle is fixed to the top of the mounting plate, and the outer wall of the handle is provided with a plurality of groups of anti-slip grooves distributed longitudinally.

[0015] Preferably, a sliding groove is provided at the top of the discharging barrel, a sliding block is slidably connected to the inner wall of the sliding groove, a baffle is fixed on the top of the sliding block for limiting the up and down movement of the card block, and the outer wall of the sliding block is connected to the inner wall of the sliding groove through a spring.

[0016] Preferably, a moving rod is fixed to the outer wall of the baffle, and a pull plate is fixed to the end of the moving rod away from the baffle. By inserting the mounting plate into the groove, the card block can be inserted into the card slot. Then, by loosening the pull plate, the sliding block, the baffle and the moving rod are driven to move under the elasticity of the spring, and the baffle can fit with the top of the card block, thereby limiting the card block from falling off from the card slot, thereby ensuring the stability of the installation of the mounting plate.

[0017] (3) Beneficial effects

[0018] Compared with the prior art, the present invention has the following beneficial effects:

[0019] 1. By setting a stirring motor, a stirring shaft, a stirring rod, a scraper ring, a guide inclined surface, a movable rod, a sealing ring, a connecting plate, a sleeve block, a hydraulic rod and a feed port, turning on the stirring motor can drive the stirring shaft and the stirring rod to rotate and disperse the static conductive material. Turning on the hydraulic rod drives the scraper ring to move back and forth vertically. The scraper ring can scrape the static conductive material on the inner wall of the storage tank, thereby achieving an efficient anti-sticking effect, reducing the cost of the static conductive material, and improving the efficiency of removing the static conductive material.

[0020] 2. By setting up a discharge barrel, a discharge port, a groove, a mounting plate, a dispersion column, a card slot, a card block, a handle, an anti-slip groove, a sliding groove, a sliding block, a baffle, a spring, a moving rod and a pull plate, the dispersion column can be used to disperse and discharge the discharged static conductive material, further improving the anti-sticking effect of the material. By pulling the pull plate, the moving rod and the baffle can be driven to move, and the baffle can be disengaged from the card block. Then, the dispersion column can be taken out by pulling the handle upwards, which is convenient for the staff to maintain the dispersion column. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] Figure 1 This is a schematic diagram of the three-dimensional structure of the utility model;

[0022] Figure 2 This is a schematic diagram of the cross-sectional structure of the utility model;

[0023] Figure 3 This is a schematic diagram of the scraper ring structure of the utility model;

[0024] Figure 4This is a schematic diagram of the structure of the discharge barrel of the utility model;

[0025] Figure 5 For this utility model Figure 4 A in the middle is an enlarged structural diagram;

[0026] Figure 6 This is a schematic diagram of the structure of the utility model when the dispersion column is split.

[0027] In the figure: 1. Storage tank shell; 211. Stirring motor; 212. Stirring shaft; 213. Stirring rod; 214. Scraper ring; 215. Guide slope; 216. Movable rod; 217. Sealing ring; 218. Connecting plate; 219. Bushing; 220. Hydraulic rod; 221. Feed port; 311. Discharge barrel; 312. Discharge port; 313. Groove; 314. Mounting plate; 315. Dispersion column; 316. Slot; 317. Block; 318. Handle; 319. Anti-slip groove; 320. Sliding groove; 321. Sliding block; 322. Baffle; 323. Spring; 324. Moving rod; 325. Pull plate. DETAILED DESCRIPTION

[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0029] Example

[0030] Reference Figure 1-6As shown, a static conductive material storage device includes a storage tank shell 1, a stirring motor 211 is installed on the top of the storage tank shell 1, the output end of the stirring motor 211 is connected to a stirring shaft 212, and a plurality of stirring rods 213 are fixed to the outer wall of the stirring shaft 212. By turning on the stirring motor 211, the stirring shaft 212 and the plurality of stirring rods 213 can be driven to rotate, thereby breaking up the static conductive material, which can prevent the static conductive material inside the storage tank shell 1 from sticking. The inner wall of the storage tank shell 1 is fitted with a scraper ring 214. A movable rod 216 extending from the top of the storage tank shell 1 is fixed to the top of the scraper ring 214. A connecting plate 218 is fixed to the top of the movable rod 216. A hydraulic rod 220 is installed on the top of the storage tank shell 1. The output end of the hydraulic rod 220 is connected to a sleeve 219. The sleeve 219 is sleeved on the outer wall of the connecting plate 218. By turning on the hydraulic rod 220, the sleeve 219, the connecting plate 218, the movable rod 216, and the scraper ring 214 are driven to move vertically back and forth. The scraper ring 214 can scrape off the static conductive material stuck to the inner wall of the storage tank shell 1, which can achieve a comprehensive anti-sticking effect. A sealing ring 217 is fixed to the inner wall of the storage tank shell 1. The sealing ring 217 is fitted to the outer wall of the movable rod 216. The provision of the sealing ring 217 can provide a good seal and prevent air from directly entering the interior of the storage tank shell 1. A guiding slope 215 is provided at the top of the scraper ring 214. The guiding slope 215 is inclined from top to bottom toward one side of the axis of the storage tank shell 1. The setting of the guiding slope 215 can achieve a guiding effect. When the scraper ring 214 moves upward, the static conductive material can slide down through the guiding slope 215 to the inside of the storage tank shell 1, thereby preventing sticking.

[0031] The top of the storage tank shell 1 is provided with a feed port 221 for feeding. The outer wall of the storage tank shell 1 is fixed with a discharge barrel 311, and the discharge barrel 311 is provided with a discharge port 312 connected to the interior of the storage tank shell 1. The discharge port 312 can facilitate material discharge.

[0032] The top of the discharge barrel 311 is provided with a groove 313, and the inner wall of the groove 313 is inserted into the mounting plate 314. The bottom of the mounting plate 314 is rotatably connected to a plurality of dispersion columns 315 located inside the discharge port 312. The conductive rubber can be discharged through the discharge port 312 inside the discharge barrel 311. The conductive rubber passes through the gaps between the plurality of dispersion columns 315, thereby achieving the purpose of dispersion, further avoiding the problem of static conductive material sticking. The outer wall of the mounting plate 314 is fixed with a block 317. The top of the discharge barrel 311 is provided with a slot 316 corresponding to the block 317. The block 317 can be sleeved on the slot 316 to achieve good initial stability. The top of the mounting plate 314 is fixed with a handle 318. The outer wall of the handle 318 is provided with a plurality of anti-skid grooves 319 distributed longitudinally. By pulling the handle 318, the mounting plate 314 can be pulled out and removed. At the same time, the provision of the anti-skid grooves 319 can enhance the anti-skid effect when taking it out.

[0033] A sliding groove 320 is formed at the top of the discharge barrel 311. A sliding block 321 is slidably connected to the inner wall of the sliding groove 320. A baffle 322 is fixed to the top of the sliding block 321 to limit the upward and downward movement of the clamping block 317. The outer wall of the sliding block 321 is connected to the inner wall of the sliding groove 320 by a spring 323. The sliding block 321 can slide within the sliding groove 320 and move the baffle 322 to the top of the clamping block 317, preventing the clamping block 317 from falling out of the clamping groove 316. A moving rod 324 is fixed to the outer wall of the baffle 322. A pull plate 325 is fixed to the end of the moving rod 324 away from the baffle 322. The provision of the pull plate 325 and the moving rod 324 makes it easier for workers to pull the baffle 322 to slide horizontally, improving the comfort of operation.

[0034] Working principle: When it is necessary to hang materials, the stirring motor 211 is turned on to drive the stirring shaft 212 and several groups of stirring rods 213 to rotate. The stirring rods 213 can stir and break up the static conductive rubber inside the storage tank shell 1 to prevent the conductive rubber from sticking. Then the hydraulic rod 220 is turned on to drive the sleeve block 219, the connecting plate 218, the movable rod 216 and the scraper ring 214 to move up and down. The scraper ring 214 can scrape the conductive rubber stuck to the inner wall of the storage tank shell 1 to avoid the problem of conductive rubber sticking and enhance the smoothness of the conductive rubber discharge.

[0035] When the mounting plate 314 needs to be installed, the mounting plate 314 is inserted into the groove 313. At this time, the block 317 can be inserted into the slot 316. Then, by loosening the pull plate 325, the sliding block 321, the baffle 322 and the moving rod 324 are driven to move under the elasticity of the spring 323. The baffle 322 can fit with the top of the block 317, thereby limiting the block 317 from falling off from the slot 316, thereby ensuring the stability of the installation of the mounting plate 314.

[0036] Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the present invention, and the scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A static conductive material storage device, comprising a storage tank housing (1), characterized in that: A stirring motor (211) is installed at the top of the storage tank shell (1), and the output end of the stirring motor (211) is connected to a stirring shaft (212). A plurality of stirring rods (213) are fixed to the outer wall of the stirring shaft (212). A scraper ring (214) is attached to the inner wall of the storage tank shell (1), and a movable rod (216) extending from the top of the storage tank shell (1) is fixed to the top of the scraper ring (214). A connecting plate (218) is fixed to the top of the movable rod (216). A hydraulic rod (220) is installed at the top of the storage tank shell (1), and a sleeve block (219) is connected to the output end of the hydraulic rod (220). The sleeve block (219) is sleeved on the outer wall of the connecting plate (218).

2. The electrostatic conductive material storage device according to claim 1, characterized in that: A sealing ring (217) is fixed to the inner wall of the storage tank shell (1), and the sealing ring (217) is in contact with the outer wall of the movable rod (216).

3. The electrostatic conductive material storage device according to claim 1, characterized in that: A guiding slope (215) is provided at the top of the scraper ring (214), and the guiding slope (215) is inclined from top to bottom toward one side of the axis of the storage tank shell (1).

4. The electrostatic conductive material storage device according to claim 1, characterized in that: The top of the storage tank shell (1) is provided with a feed port (221), the outer wall of the storage tank shell (1) is fixed with a discharge barrel (311), and the discharge barrel (311) is provided with a discharge port (312) in communication with the interior of the storage tank shell (1).

5. The electrostatic conductive material storage device according to claim 4, characterized in that: A groove (313) is provided at the top of the discharge barrel (311), a mounting plate (314) is inserted into the inner wall of the groove (313), and the bottom end of the mounting plate (314) is rotatably connected to a plurality of dispersion columns (315) located inside the discharge port (312).

6. The electrostatic conductive material storage device according to claim 5, characterized in that: A clamping block (317) is fixed on the outer wall of the mounting plate (314), and a clamping groove (316) corresponding to the clamping block (317) is provided at the top end of the discharge barrel (311).

7. The electrostatic conductive material storage device according to claim 6, characterized in that: A handle (318) is fixed to the top of the mounting plate (314), and a plurality of groups of anti-slip grooves (319) distributed longitudinally are formed on the outer wall of the handle (318).

8. The electrostatic conductive material storage device according to claim 7, characterized in that: A sliding groove (320) is provided at the top of the discharging barrel (311), and a sliding block (321) is slidably connected to the inner wall of the sliding groove (320). A baffle (322) for limiting the upward and downward movement of the block (317) is fixed to the top of the sliding block (321), and the outer wall of the sliding block (321) is connected to the inner wall of the sliding groove (320) via a spring (323).

9. The electrostatic conductive material storage device according to claim 8, characterized in that: A moving rod (324) is fixed to the outer wall of the baffle (322), and a pulling plate (325) is fixed to one end of the moving rod (324) away from the baffle (322).

Citation Information

Patent Citations

  • Anti-caking 3D printing powder material storage device

    CN220282326U