Silicon particle soaking device

By designing a robust silicon particle immersion device, the problems of device deformation and spillage were solved, improving immersion quality and production efficiency, and achieving safe and efficient silicon particle processing.

CN223902225UActive Publication Date: 2026-02-13CHONGQING RUNJI YUANDONG NEW MATERIAL TECH
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Patent Information

Application Number
CN202520347074.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-28
Publication Date
2026-02-13
Estimated Expiration
2035-02-28

AI Technical Summary

Technical Problem

Existing silicon particle immersion equipment is prone to deformation during use, spills immersion solution during transportation, pollutes the environment, and has low production efficiency.

Method used

A silicon particle immersion device including a hopper and a support is designed. The bottom of the hopper is equipped with an openable baffle, and the outer wall has a support rod that cooperates with the support. The lower end of the support has a groove, and the support rod is detachably connected to the support. The support has a groove for collecting dripping liquid, and the support can move the device to the next process.

Benefits of technology

It improves soaking quality and production efficiency, avoids spillage and pollution of soaking solution, enhances the stability and service life of the equipment, and simplifies the operation process.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of silicon particle processing, in particular to a silicon particle soaking device which comprises a material containing hopper and a support, a through hole is formed in the material containing hopper, a baffle capable of being opened and closed is arranged at the bottom of the material containing hopper, a supporting rod is arranged on the outer wall of the material containing hopper, the supporting rod is matched with the upper end of the support, and the material containing hopper is detachably arranged on the support. The containing hopper is in clearance fit with the support, and a groove with an upward opening is formed in the lower end of the support. The problems that a soaking device is prone to deformation, the surrounding environment is polluted by soaking liquid which is continuously scattered in the transferring process, and the production efficiency is low can be solved.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the technical field of silicon particle processing, specifically is silicon particle soaking device. BACKGROUND

[0002] In the silicon particle processing process, the soaking process plays a vital role, which aims to make the silicon particle surface be fully and uniformly covered by the soaking liquid (such as glue), so as to lay a foundation for subsequent processing steps and ensure that the silicon particle has the required performance characteristics. When the prior art soaks the silicon particles, the net frame is used to hold the silicon particles, the net frame is placed in the soaking pool through the support arranged at the top opening of the net frame, the silicon particles are soaked, after the soaking is completed, the net frame is moved to the next process feeding port, and the silicon particles are poured into the feeding port by turning over the net frame. The net frame of this technical scheme is used for feeding, discharging and supporting through the top opening, which is prone to deformation during use, resulting in that the net frame cannot be stably installed in the soaking pool. After the soaking operation is completed, the soaking liquid continuously spilled during the transfer process of the net frame pollutes the surrounding environment, which has great safety hazards. When the net frame discharges, the net frame needs to be turned over, which is difficult to operate, time-consuming and labor-consuming, and the production efficiency is low. SUMMARY

[0003] The silicon particle soaking device can solve the problems of deformation of the soaking device, pollution of the surrounding environment by the continuously spilled soaking liquid during the transfer process, and low production efficiency.

[0004] The application provides the following technical scheme:

[0005] The silicon particle soaking device comprises a feeding hopper and a support, a through hole is arranged on the feeding hopper, a closable baffle is arranged at the bottom of the feeding hopper, a supporting rod is arranged on the outer wall of the feeding hopper, the supporting rod is matched with the upper end of the support, the feeding hopper is detachably arranged on the support in a clearance fit manner, and a groove with an upward opening is arranged at the lower end of the support.

[0006] Beneficial effects: In the silicon particle soaking process, the soaking liquid can permeate through the through holes of the holding hopper to the inside of the holding hopper, and fully contact with the silicon particles in the holding hopper, ensuring that the silicon particles can be uniformly coated with the soaking liquid, greatly improving the soaking quality and soaking effect of the silicon particles. The bottom of the holding hopper is provided with an openable baffle, which facilitates the discharge of the silicon particles after soaking is completed, and improves production efficiency. The support rod is arranged on the outer wall of the holding hopper, and the holding hopper can be installed in the soaking pool through the support rod, and can be detachably connected with the support through the support rod, facilitating the installation and disassembly of the holding hopper, and ensuring that the holding hopper is stably placed and the deformation of the open top of the holding hopper does not occur, thereby ensuring the service life of the device. After soaking is completed, the soaking liquid dripping from the holding hopper can be recovered through the grooves on the support, avoiding the spilling of glue on the surrounding environment and protecting the surrounding environment. The holding hopper can also be directly moved into the next process through the support, such as being moved to the baking area for baking operation when the silicon particles need to be baked, thereby having strong versatility.

[0007] Further, the upper end of the holding hopper is a cylindrical barrel, and the lower end is a conical barrel.

[0008] Beneficial effects: The upper end of the holding hopper is a cylindrical barrel, which provides a spacious and regular space for the filling of silicon particles, effectively improving the filling efficiency and reducing the risk of material spilling. The lower end adopts a conical barrel, and the gradually narrowing shape can guide the silicon particles and glue to naturally gather downward under the action of gravity. When the soaking is completed and the material needs to be discharged, the silicon particles can smoothly slide down along the conical inner wall, avoiding blockage and achieving rapid and continuous discharge, thereby improving production efficiency. Moreover, the conical barrel structure is beneficial to the diffusion of glue from the bottom center area to the surrounding area during the soaking process, further strengthening the uniformity of contact between the glue and the silicon particles and improving the soaking quality.

[0009] Further, the outer wall of the holding hopper is provided with a lifting ring at the upper end, and the lifting ring is provided with a lifting rope.

[0010] Beneficial effects: The lifting ring and the lifting rope can hoist the holding hopper on the travelling crane, facilitating the transfer of the holding hopper.

[0011] Further, the holding hopper is provided with an outwardly bent extension at the top inlet.

[0012] Beneficial effects: The extension can effectively enhance the strength of the inlet, avoiding deformation.

[0013] Further, one end of the baffle is hingedly connected to the bottom of the holding hopper, and the other end is detachably connected with the holding hopper through a lock buckle.

[0014] Beneficial effects: The baffle can be conveniently opened and closed through hinging and locking. During use, the baffle does not need to be completely removed from the holding hopper, avoiding the problems of part loss, damage and improper installation caused by frequent disassembly.

[0015] Further, the upper end surface of the support is provided with a support block matched with the support rod.

[0016] Beneficial effect: the support block provides a stable support point for the support rod, and reduces the contact area between the support rod and the support, avoiding the adhesive-filled hopper from being bonded with the support, and affecting the use of the hopper.

[0017] Further, the support is provided with a supporting rod, and a fork hole is arranged below the supporting rod.

[0018] Beneficial effect: the hopper is stably installed on the forklift through the supporting rod and the fork hole, convenient for transportation, and improving the production efficiency. BRIEF DESCRIPTION OF DRAWINGS

[0019] Fig. 1 It is a front view of the silicon particle soaking device embodiment one of the utility model.

[0020] Fig. 2 It is a side view of the silicon particle soaking device embodiment one of the utility model.

[0021] Fig. 3 It is a front view of the hopper of the silicon particle soaking device embodiment one of the utility model.

[0022] Fig. 4 It is a side view of the hopper of the silicon particle soaking device embodiment one of the utility model. DETAILED DESCRIPTION

[0023] The following is further described in detail through specific embodiments:

[0024] The marks in the drawings of the specification include: hopper 1, support 2, through hole 3, baffle 4, lock catch 5, handle 51, lock tongue 52, lifting ring 6, lifting rope 7, support rod 8, support block 9, recess 10, partition plate 11, supporting rod 12, fork hole 13, extension 14.

[0025] Embodiment one

[0026] As Figs. 1 to 4As shown, the silicon particle soaking device comprises a hopper 1 and a support 2. The upper end of the hopper 1 is a cylindrical tube, and the lower end is a conical tube. The cross sections of the cylindrical tube and the conical tube are both rectangular. The inside of the hopper 1 is provided with a chamber for containing silicon particles. The hopper 1 is provided with a through hole 3, through which the chamber is connected with the outside. The top of the hopper 1 is open as a feeding port. The bottom of the hopper 1 is provided with a discharge port. The discharge port of the hopper 1 is provided with a flashboard 4 which can be opened and closed. One end of the flashboard 4 is hinged to the bottom of the hopper 1 by a hinge, and the other end is detachably connected with the hopper 1 by a lock catch 5. The flashboard 4 is provided with a through hole. The bottom of the hopper 1 is provided with an outwardly extending edge, and the lock catch 5 is arranged on the edge. The lock catch 5 comprises a handle arranged above the edge, which is used for manually operating the opening and closing of the lock catch 5; and an L-shaped lock tongue arranged below the edge, which is used for fixing the position of the flashboard 4. In use, the lock tongue is rotated by the handle to make the flashboard 4 lose the support of the lock tongue, and the flashboard 4 is flipped down as a fulcrum at the hinge under the action of gravity to open the discharge port. When the discharge port is closed, the flashboard 4 is pushed back to the original position to tightly fit with the discharge port, and the lock tongue is rotated to provide support for the flashboard 4. The diameter of the through hole on the flashboard 4 is larger than that of the through hole arranged on the upper end of the cylindrical tube of the hopper 1, and is less than or equal to that of the through hole arranged on the lower end of the conical tube of the hopper 1. Symmetrical hanging rings 6 are arranged on the upper ends of the opposite outer walls of the hopper 1. The hanging rings 6 are provided with lifting ropes 7, by which the hopper 1 is hoisted on a travelling crane to facilitate the movement of the hopper 1. A support rod 8 is arranged on the cylindrical tube of the outer wall of the hopper 1. The upper end surface of the support 2 is provided with a support block 9. The lower end surface of the support rod 8 is in contact with the upper end surface of the support block 9, so that the hopper 1 is detachably arranged on the support 2 in a clearance fit. The bottom of the lower end of the support 2 is provided with an upwardly opening groove 10. A bottom plate is welded to the lower end of the support 2. A partition plate 11 is welded around the bottom plate. The bottom plate and the partition plate 11 cooperate to form the upwardly opening groove 10. The bottom plate at the bottom of the groove 10 is provided with a discharge port. A detachable plug is arranged on the discharge port to collect the soaking liquid dripping into the groove 10. Symmetrical supporting rods 12 are arranged on the two sides of the support 2. The supporting rods 12 are located above the partition plate 11. The supporting rods 12 and the partition plate 11 cooperate to form fork holes 13 below the supporting rods 12, which are used for cooperating with a forklift to move the silicon particle soaking device.

[0027] The use method is as follows: the hopper 1 is placed on the support 2, the silicon particles are loaded into the hopper 1, the support 2 and the hopper 1 are moved to the soaking area through the forklift, the lifting rope 7 of the hopper 1 is installed on the lifting hook of the travelling crane, the hopper 1 is lifted through the travelling crane, the hopper 1 is placed in the soaking pool for soaking, the soaking liquid enters the hopper 1 through the through hole 3 and adheres to the silicon particles, after soaking is completed, the hopper 1 is lifted through the crane, the hopper 1 is placed on the support 2, the soaking liquid dripping on the hopper 1 falls into the groove 10 on the support 2, the dripping soaking liquid is recycled through the discharge port at the bottom of the groove 10, the hopper 1 can be moved to the next process, such as baking in the oven, after baking is completed, the hopper 1 is lifted through the travelling crane and is moved to the feeding port of the next process, the lock 5 is opened, the baffle 4 is opened, and the silicon particles enter the feeding port of the next process under the action of gravity.

[0028] Example two

[0029] The difference between the embodiment and the embodiment one is that the top inlet of the hopper 1 is provided with the outwardly bent extension 14, so that the strength of the feeding port can be improved.

[0030] The above is only the embodiment of the utility model, the utility model is not limited to this embodiment case related field, the specific structure and the characteristics and other common knowledge in the scheme are not described too much here. It should be pointed out that, for the person skilled in the art, without departing from the structure of the utility model, a number of deformations and improvements can be made, these should also be regarded as the protection scope of the utility model, these will not affect the effect and the practicability of the patent of the utility model. The protection scope of the present application should be subject to the content of its claims, the specific implementation mode and the like in the specification can be used to explain the content of the claims.

Claims

1. A silicon particle soaking apparatus, characterized by, The utility model relates to a material container, which comprises a container and a support, the container is provided with a through hole, the bottom of the container is provided with an openable baffle, the outer wall of the container is provided with a supporting rod, the supporting rod is matched with the upper end of the support, the container is detachably arranged on the support in a clearance fit, and the lower end of the support is provided with an upwardly-opened groove.

2. The silicon particle infusion device of claim 1, wherein: The upper end of the container is a cylindrical barrel, and the lower end is a conical barrel.

3. The silicon particle infusion device of claim 1, wherein: The outer wall of the container is provided with an eye ring at the upper end, and the eye ring is provided with a lifting rope.

4. The silicon particle infusion device of claim 1, wherein: An outwardly-bent extension is arranged at the top feed inlet of the container.

5. The silicon particle infusion device of claim 1, wherein: One end of the baffle is hingedly connected to the bottom of the container, and the other end is detachably connected to the container through a lock catch.

6. The silicon particle infusion device of claim 1, wherein: The upper end face of the support is provided with a supporting block matched with the supporting rod.

7. The silicon particle infusion device of claim 1, wherein: The support is provided with a supporting rod, and the supporting rod is provided with a fork hole below.