Silicon carbide micro-powder sedimentation tank

By designing a silicon carbide micropowder deposition tank, the automatic adjustment and material removal of materials are achieved by using screws and threaded connections, the problem of difficult material removal after deposition is solved, and the production efficiency and collection convenience are improved.

CN223042216UActive Publication Date: 2025-07-01HUAIAN LITAI SILICON CARBIDE MICRO POWDER
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Patent Information

Application Number
CN202422189030.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-06
Publication Date
2025-07-01
Estimated Expiration
2034-09-06

AI Technical Summary

Technical Problem

During the deposition of existing silicon carbide micropowder, the deposited materials are difficult to remove from the bottom of the pool, and the water is inconvenient to discharge, which affects the collection efficiency.

Method used

A silicon carbide micropowder deposition tank is designed, including a bearing panel, a guide plate, a T-shaped guide frame and a driving mechanism. The automatic adjustment and material withdrawal of materials in the deposition tank are achieved through screws and threaded connections, and water discharge is carried out in combination with the pump body to avoid the influence of inconsistent liquid level.

Benefits of technology

Automatic deposition and material collection of silicon carbide micropowder is realized, production efficiency is improved, inconvenience of manual operation and influence of water volume accumulation, and the convenience of deposition and collection is improved.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of silicon carbide micro-powder deposition, in particular to a silicon carbide micro-powder deposition tank. According to the technical scheme, the sedimentation tank comprises a bearing panel, a guide plate, a first T-shaped guide frame and a second T-shaped guide frame, a sedimentation tank body is installed on the top end face of the bearing panel, and a first driving mechanism is installed on the front end face of the sedimentation tank body; a first frame and a second frame are welded to the rear end face of the bearing panel. A second driving mechanism is arranged at the top end of the first frame, and a third driving mechanism is installed on the second frame. A scraping plate is mounted on the bottom end surface of the guide plate in an attached manner; a first fixing frame is welded to the first T-shaped guide frame, and a second fixing frame is welded to the second T-shaped guide frame. A base is welded to the second fixing frame. A pump body is installed on the first fixing frame. The silicon carbide micro-powder sedimentation device meets the requirement for silicon carbide micro-powder sedimentation, water can be drained according to water liquid after sedimentation, and materials after sedimentation can be lifted and taken.
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Description

Technical Field

[0001] The utility model relates to the technical field of silicon carbide micropowder deposition, in particular to a silicon carbide micropowder deposition tank. Background Technique

[0002] After the silicon carbide micropowder is processed, the obtained initial product is a suspension mixed with processing water, and the silicon carbide micropowder needs to be further deposited for recovery. The existing method is to inject the suspension into the deposition tank for natural deposition, and then discharge the upper clear liquid and collect the bottom sediment.

[0003] When the silicon carbide micropowder is deposited, most of the deposited materials are at the bottom of the deposition tank, resulting in the need for personnel to enter the bottom of the tank to manually scrape for material collection after deposition. It is inconvenient to operate at the bottom of the tank during material collection, and it is difficult for personnel to move freely. Moreover, the deposited water body is directly discharged through a drain pipe at a fixed position. If the water level is low during discharge, water accumulation will affect the later collection, so it is necessary to complete... Content of the Utility Model

[0004] The purpose of the utility model is to provide a silicon carbide micropowder deposition tank to solve the problems raised in the above background technique.

[0005] To achieve the above purpose, the utility model provides the following technical solution: A silicon carbide micropowder deposition tank, including a bearing panel, a guide plate, a T-shaped guide frame I and a T-shaped guide frame II,

[0006] A deposition tank body is installed on the top surface of the bearing panel, a driving mechanism I is installed on the front end surface of the deposition tank body, and a lead screw I is arranged on the output shaft of the driving mechanism I;

[0007] A frame I and a frame II are welded on the rear end surface of the bearing panel;

[0008] A driving mechanism II is arranged at the top of the frame I, and a driving mechanism III is installed on the frame II;

[0009] A lead screw II is arranged on the output shaft of the driving mechanism II, and a lead screw III is arranged on the output shaft of the driving mechanism III;

[0010] A scraper is fitted and installed on the bottom end surface of the guide plate;

[0011] A fixing frame I is welded on the T-shaped guide frame I, and a fixing frame II is welded on the T-shaped guide frame II;

[0012] A base is welded on the fixing frame II;

[0013] A pump body is installed on the fixing frame I.

[0014] Preferably, a support block is welded to the bottom end surface of the load-bearing panel, and a mounting base is welded to the bottom end surface of the support block. The load-bearing panel can be mounted and supported by the support block and the mounting base.

[0015] Preferably, a feed pipe is embedded and fixed on the side end surface of the sedimentation tank body, and the feed pipe is connected to the sedimentation tank body. Silicon carbide micro powder can be injected into the sedimentation tank body through the feed pipe.

[0016] Preferably, the guide plate is sleeved in the sedimentation tank body, and the guide plate is installed on the screw rod 1 through a thread. The guide plate is sleeved in the sedimentation tank body to limit the position, and the guide plate is installed on the screw rod 1 through a thread when limiting the position, so that when a person opens the driving mechanism 1 to drive the screw rod 1 to rotate, the guide plate is driven to move left and right according to the rotation direction of the screw rod 1.

[0017] Preferably, a discharge pipe 2 is installed on the pump body, and one end of the discharge pipe 2 which is away from the pump body is installed in the fixing frame 1. When the pump body is opened, the pump body can be filled with liquid through the discharge pipe 2.

[0018] Preferably, the pump body is provided with a discharge pipe 1, and the discharge pipe 1 is in liquid communication with the pump body. By providing the discharge pipe 1 on the pump body, the liquid drawn by the pump body is discharged through the discharge pipe 1.

[0019] Preferably, the T-shaped guide frame 1 and the T-shaped guide frame 2 are respectively sleeved in the frame 1 and the frame 2, and the T-shaped guide frame 1 and the T-shaped guide frame 2 are respectively installed on the screw rod 2 and the screw rod 3 through threads. When the T-shaped guide frame 1 and the T-shaped guide frame 2 are respectively sleeved in the frame 1 and the frame 2 for limiting, the T-shaped guide frame 1 and the T-shaped guide frame 2 are respectively installed on the screw rod 2 and the screw rod 3 through threads, so that a person can open the driving mechanism 2 and the driving mechanism 3 to rotate and drive the screw rod 2 and the screw rod 3 to rotate, and according to the rotation direction of the screw rod 2 and the screw rod 3, the T-shaped guide frame 1 and the T-shaped guide frame 2 can be driven to move up and down.

[0020] Compared with the prior art, the beneficial effects of the utility model are as follows:

[0021] 1. In this utility model, by setting the sedimentation tank body, after the processing of silicon carbide micropowder by personnel is completed, the mixed liquid of water and silicon carbide micropowder obtained from the initial product is injected into the sedimentation tank body through the feed pipe. At this time, the silicon carbide micropowder will precipitate onto the base, and the water body will be above the silicon carbide micropowder. In order to perform corresponding operations according to the actual liquid level of the precipitated water body, personnel can turn on the second driving mechanism to drive the second lead screw to start rotating. During the rotation of the second lead screw, the first T-shaped guide frame will be sleeved inside the first frame, thus playing a limiting role. At the same time, since the first T-shaped guide frame is installed on the second lead screw through threads, according to the rotation direction of the second lead screw, it can drive the first fixing frame to move up and down. In this way, personnel can adjust the depth of the second discharge pipe inside the sedimentation tank body. Subsequently, personnel can turn on the pump body to discharge the water body generated by precipitation. The purpose of doing this is to avoid affecting the liquid discharge process due to inconsistent liquid levels.

[0022] 2. In this utility model, by setting the base, after personnel complete the sedimentation and drainage operations of the silicon carbide micropowder, they can turn on the third driving mechanism to drive the third lead screw to rotate. During the rotation of the third lead screw, the second T-shaped guide frame will be sleeved inside the second frame, thus realizing the limiting function. And the second T-shaped guide frame is installed on the third lead screw through threads. Therefore, according to the rotation direction of the third lead screw, the base can move up and down. In this way, after the base moves up, it avoids the inconvenience that personnel may encounter when entering the sedimentation tank body to take materials. In addition, after the base moves up, the guide plate will be sleeved inside the sedimentation tank body, playing a further limiting role. At the same time, the guide plate is installed on the first lead screw through threads. In this way, when personnel turn on the first driving mechanism to drive the first lead screw to rotate, according to the rotation direction of the first lead screw, the guide plate can move left and right. Furthermore, the guide plate can drive the scraper to scrape the silicon carbide micropowder deposited on the base for material taking. In this way, it can meet the requirements of sedimentation production and processing. Description of the Drawings

[0023] Figure 1 is the front view structural schematic diagram of this utility model;

[0024] Figure 2 is the right view structural schematic diagram of this utility model;

[0025] Figure 3 is the rear view structural schematic diagram of this utility model;

[0026] Figure 4 is the top view structural schematic diagram of this utility model;

[0027] Figure 5 is the left view structural schematic diagram of this utility model.

[0028] In the figure: 1. Sedimentation tank body; 2. Installation base; 3. First lead screw; 4. Bearing panel; 5. Support block; 6. Feed pipe; 7. First frame; 8. First discharge pipe; 9. Second driving mechanism; 10. Pump body; 11. Second discharge pipe; 12. First fixing frame; 13. Third driving mechanism; 14. Second frame; 15. Second fixing frame; 16. Base; 17. First driving mechanism; 18. Guide plate; 19. Scraper; 20. Second lead screw; 21. Third lead screw; 22. First T-shaped guide frame; 23. Second T-shaped guide frame. Detailed implementation manners

[0029] 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 of the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention.

[0030] Embodiment 1

[0031] As Figures 1 - 5 shown, a silicon carbide micropowder sedimentation tank proposed by the present invention includes a bearing panel 4, a guide plate 18, a first T-shaped guide frame 22 and a second T-shaped guide frame 23.

[0032] The sedimentation tank body 1 is installed on the top end surface of the bearing panel 4, and the first driving mechanism 17 is installed on the front end surface of the sedimentation tank body 1, and a first lead screw 3 is provided on the output shaft of the first driving mechanism 17.

[0033] The first frame 7 and the second frame 14 are welded to the rear end surface of the bearing panel 4.

[0034] The second driving mechanism 9 is provided at the top of the first frame 7, and the third driving mechanism 13 is installed on the second frame 14.

[0035] A second lead screw 20 is provided on the output shaft of the second driving mechanism 9, and a third lead screw 21 is provided on the output shaft of the third driving mechanism 13.

[0036] The scraper 19 is fitted and installed on the bottom end surface of the guide plate 18.

[0037] The first fixing frame 12 is welded to the first T-shaped guide frame 22, and the second fixing frame 15 is welded to the second T-shaped guide frame 23.

[0038] The base 16 is welded to the second fixing frame 15.

[0039] The pump body 10 is installed on the first fixing frame 12.

[0040] A support block 5 is welded to the bottom end surface of the bearing panel 4 , and a mounting base 2 is welded to the bottom end surface of the support block 5 . The bearing panel 4 can be mounted and supported by the support block 5 and the mounting base 2 .

[0041] A feed pipe 6 is embedded and fixed in the side end surface of the sedimentation tank body 1 , and the feed pipe 6 is connected to the sedimentation tank body 1 , and silicon carbide micropowder material can be injected into the sedimentation tank body 1 through the feed pipe 6 .

[0042] A discharge pipe 11 is installed on the pump body 10, and one end of the discharge pipe 11 facing away from the pump body 10 is installed in a fixing frame 12. When the pump body 10 is opened, the pump body 10 can be filled with liquid through the discharge pipe 11, and one end of the discharge pipe 11 is limited by being installed in the fixing frame 12 when the liquid is filled.

[0043] A discharge pipe 8 is provided on the pump body 10 , and the discharge pipe 8 is in liquid communication with the pump body 10 . By providing the discharge pipe 8 on the pump body 10 , the liquid drawn by the pump body 10 is discharged through the discharge pipe 8 .

[0044] Based on Example 1: After the processing of silicon carbide micropowder is completed, the personnel inject the mixed liquid of the initial product water and silicon carbide micropowder into the sedimentation tank body 1 through the feed pipe 6, and the silicon carbide micropowder can be deposited on the base 16. When the water body is on the silicon carbide micropowder, the personnel can open the driving mechanism 29 to drive the screw 20 to rotate according to the actual liquid level of the deposited water body. When the screw 20 rotates, the T-shaped guide frame 12 is sleeved in the frame 17 for limiting, and when it is installed on the screw 20 through a thread, the fixed frame 12 can be driven to move up and down according to the rotation direction of the screw 20, thereby adjusting the depth of the discharge pipe 21 in the sedimentation tank body 1, so that the pump body 10 can be opened to discharge the water body generated by the deposition, thereby avoiding the influence of different liquid levels on the discharge.

[0045] Embodiment 2

[0046] like Figures 1 - 5 As shown, the silicon carbide powder deposition pool proposed by the utility model, compared with the first embodiment, this embodiment also includes: a bearing panel 4, a guide plate 18, a T-shaped guide frame 1 22 and a T-shaped guide frame 23,

[0047] The top surface of the bearing panel 4 is installed with a sedimentation tank body 1, the front surface of the sedimentation tank body 1 is installed with a driving mechanism 17, and a screw rod 3 is arranged on the output shaft of the driving mechanism 17;

[0048] The rear end surface of the bearing panel 4 is welded with frame 1 7 and frame 2 14;

[0049] The top of the frame 1 7 is provided with a driving mechanism 2 9, and the frame 2 14 is provided with a driving mechanism 3 13;

[0050] A second lead screw 20 is provided on the output shaft of the second driving mechanism 9, and a third lead screw 21 is provided on the output shaft of the third driving mechanism 13;

[0051] A scraping plate 19 is fitted and mounted on the bottom end surface of the guide plate 18;

[0052] A first fixing bracket 12 is welded on the first T-shaped guide frame 22, and a second fixing bracket 15 is welded on the second T-shaped guide frame 23;

[0053] A base 16 is welded on the second fixing bracket 15;

[0054] A pump body 10 is installed on the first fixing bracket 12.

[0055] And as is well known to those skilled in the art, the provision of the first driving mechanism 17, the second driving mechanism 9 and the third driving mechanism 13 is common, and they all belong to conventional means or common general knowledge, so they will not be elaborated here. Those skilled in the art can make any selection according to their needs or convenience. The first driving mechanism 17, the second driving mechanism 9 and the third driving mechanism 13 respectively drive the first lead screw 3, the second lead screw 20 and the third lead screw 21 to rotate.

[0056] The guide plate 18 is sleeved in the sedimentation tank body 1, and the guide plate 18 is installed on the first lead screw 3 by means of threads. The guide plate 18 is limited by being sleeved in the sedimentation tank body 1. When limiting, the guide plate 18 is installed on the first lead screw 3 by means of threads, so that when the operator opens the first driving mechanism 17 to drive the first lead screw 3 to rotate, the guide plate 18 can be driven to move left and right according to the rotation direction of the first lead screw 3.

[0057] The first T-shaped guide frame 22 and the second T-shaped guide frame 23 are respectively sleeved in the first frame 7 and the second frame 14, and the first T-shaped guide frame 22 and the second T-shaped guide frame 23 are respectively installed on the second lead screw 20 and the third lead screw 21 by means of threads. When the first T-shaped guide frame 22 and the second T-shaped guide frame 23 are limited by being respectively sleeved in the first frame 7 and the second frame 14, the first T-shaped guide frame 22 and the second T-shaped guide frame 23 are respectively installed on the second lead screw 20 and the third lead screw 21 by means of threads, so that when the operator opens the second driving mechanism 9 and the third driving mechanism 13 to rotate, the second lead screw 20 and the third lead screw 21 can be driven to rotate, and the first T-shaped guide frame 22 and the second T-shaped guide frame 23 can be driven to move up and down according to the rotation directions of the second lead screw 20 and the third lead screw 21.

[0058] Based on Embodiment 2: After the personnel deposit and drain the silicon carbide micropowder, the personnel can open the driving mechanism three 13 to drive the lead screw three 21 to rotate. When the lead screw three 21 rotates, the T-shaped guide frame two 23 is sleeved in the frame two 14 for limit. When limiting, the T-shaped guide frame two 23 is installed on the lead screw three 21 through threads. According to the rotation direction on the lead screw three 21, the base 16 can be driven to move up and down, so that the base 16 can be driven to move up. After the base 16 moves up, it avoids the inconvenience caused by the personnel entering the deposition tank body 1 to take materials. And after moving up, it is limited by sleeving the guide plate 18 in the deposition tank body 1. When limiting, the guide plate 18 is installed on the lead screw one 3 through threads. When the personnel can open the driving mechanism one 17 to drive the lead screw one 3 to rotate, according to the rotation direction of the lead screw one 3, the guide plate 18 is driven to move left and right, so that the guide plate 18 drives the scraper 19 to scrape the deposited silicon carbide micropowder on the base 16 to take materials, so as to meet the deposition production and processing.

[0059] For those skilled in the art, it is obvious that the present invention is not limited to the details of the above exemplary embodiments, and the present invention can be implemented in other specific forms without departing from the spirit or basic characteristics of the present invention. Therefore, from any point of view, the embodiments should be regarded as exemplary and non-limiting. The scope of the present invention is defined by the appended claims rather than the above description. Therefore, it is intended to embrace all changes falling within the meaning and scope of the equivalent elements of the claims in the present invention. Any reference signs in the claims should not be regarded as limiting the claimed claims.

Claims

1. A silicon carbide powder deposition pool, comprising a bearing panel (4), a guide plate (18), a T-shaped guide frame 1 (22) and a T-shaped guide frame 2 (23), characterized in that: The top end surface of the bearing panel (4) is mounted with a sedimentation tank body (1), the front end surface of the sedimentation tank body (1) is mounted with a driving mechanism (17), and a screw rod (3) is arranged on the output shaft of the driving mechanism (17); The rear end surface of the bearing panel (4) is welded with frame 1 (7) and frame 2 (14); The top of the frame one (7) is provided with a driving mechanism two (9), and the frame two (14) is provided with a driving mechanism three (13); The output shaft of the second driving mechanism (9) is provided with a second screw rod (20), and the output shaft of the third driving mechanism (13) is provided with a third screw rod (21); A scraper (19) is mounted on the bottom end surface of the guide plate (18); The T-shaped guide frame 1 (22) is welded with a fixing frame 1 (12), and the T-shaped guide frame 2 (23) is welded with a fixing frame 2 (15); A base (16) is welded on the second fixing frame (15); The pump body (10) is mounted on the fixing frame (12).

2. A silicon carbide powder deposition pool according to claim 1, characterized in that: A support block (5) is welded to the bottom end surface of the bearing panel (4), and a mounting base (2) is welded to the bottom end surface of the support block (5).

3. The silicon carbide powder deposition pool according to claim 1, characterized in that: A feed pipe (6) is embedded and fixed in the side end surface of the sedimentation tank body (1), and the feed pipe (6) is connected to the sedimentation tank body (1).

4. The silicon carbide powder deposition pool according to claim 1, characterized in that: The guide plate (18) is sleeved in the sedimentation tank body (1), and the guide plate (18) is installed on the screw rod 1 (3) through threads.

5. The silicon carbide powder deposition pool according to claim 1, characterized in that: A second discharge pipe (11) is installed on the pump body (10), and an end of the second discharge pipe (11) facing away from the pump body (10) is installed in a first fixing frame (12).

6. A silicon carbide powder deposition pool according to claim 5, characterized in that: The pump body (10) is provided with a discharge pipe (8), and the discharge pipe (8) is in liquid communication with the pump body (10).

7. The silicon carbide powder deposition pool according to claim 1, characterized in that: The T-shaped guide frame 1 (22) and the T-shaped guide frame 2 (23) are respectively sleeved in the frame 1 (7) and the frame 2 (14), and the T-shaped guide frame 1 (22) and the T-shaped guide frame 2 (23) are respectively installed on the screw rod 2 (20) and the screw rod 3 (21) through threads.