Drying box placing structure for artificial diamond powder processing
By using the vibration combination of pulsed electromagnet and oblique spring sheet in the drying equipment, the drying and screening of artificial diamond powder is accelerated, and the grading processing is achieved using the powder collecting bucket and the small screen plate with replaceable handle, which solves the problems of slow drying speed and lack of grading processing in traditional equipment, and significantly improves the processing efficiency.
Patent Information
- Application Number
- CN202422154334.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-03
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-09-03
AI Technical Summary
Traditional drying equipment is slow in the drying process of artificial diamond powder and unevenly dissipates heat, resulting in uneven powder clumping or drying, and lacks grading treatment for different particle sizes, affecting processing efficiency.
A drying box placement structure for artificial diamond powder processing is designed, using a combination of pulsed electromagnet and oblique spring sheets to accelerate the drying and screening of powders through vibration, and the grading process is achieved through a powder collecting bucket and a small screen plate with a replaceable handle.
It significantly accelerates the drying speed of artificial diamond powder, improves screening and collection efficiency, and realizes multi-level grading processing of powders of different particle sizes, greatly improving processing efficiency.
Smart Images

Figure CN222978487U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of drying box placement racks, in particular to a drying box placement structure for processing artificial diamond powder. Background Technique
[0002] With the expansion of the application scope and the increase in the demand for artificial diamond powder, the market's requirements for its production process are also constantly improving. In the production process of artificial diamond powder, drying is a crucial link, directly affecting the quality and performance of the final product. Traditional drying equipment often fails to meet the current requirements for rapid drying and efficient screening in the processing of artificial diamond powder. Especially in large-scale production, there are still many deficiencies in the drying efficiency and classification treatment of existing drying equipment.
[0003] Existing drying equipment has a slow drying speed and uneven heat dissipation during operation, which easily causes the artificial diamond powder to agglomerate or dry unevenly during the drying process, thereby affecting subsequent processing. In addition, traditional drying equipment lacks a classification treatment process for different particle sizes of artificial diamond powder during the processing process, significantly affecting the subsequent processing efficiency of artificial diamond powder.
[0004] In view of this, a drying box placement structure for processing artificial diamond powder is proposed, aiming to solve the above problems and provide more efficient drying performance and more hierarchical classification treatment, thereby greatly improving the processing efficiency of artificial diamond powder. Content of the Utility Model
[0005] The purpose of the utility model is to propose a drying box placement structure for processing artificial diamond powder, which can accelerate the drying, screening and collection of the powder, and can also classify and process the dried powder.
[0006] To achieve the above purpose, the utility model provides the following technical solutions:
[0007] A drying box placement structure for processing artificial diamond powder includes a drying box and a drying box placement member, and the drying box placement member is placed below the drying box.
[0008] Furthermore, the drying box includes a box cover and a box body. The center of the top surface of the box cover is provided with a handle. The right side of the box body is communicated with a powder inlet pipe. Both sides of the box body are connected with folding ears. At the same time, the bottom of the box body is provided with a bottom opening.
[0009] Furthermore, the drying box placement component includes a powder collecting hopper, a side column, a straight plate, a protrusion, a powder barrel, a pillar, an oblique spring sheet, a pulse electromagnet, a locking sheet and a chassis, wherein the inlet of the powder collecting hopper is connected to the bottom opening of the lower side of the drying box, the top end of the side column is connected to the folding ear of the drying box, and the lowest part of the side column is fixed to the side of the chassis by bolts, the top end of the straight plate is also connected to the folding ear of the drying box, and the straight plate is also threadedly connected to the protrusion welded on the chassis, two pillars are welded on the chassis and are respectively arranged on both sides below the powder collecting hopper, the powder barrel is placed directly below the powder collecting hopper, the top end of the oblique spring sheet is threadedly connected to the folding ear of the drying box, and the bottom end is threadedly connected to another protrusion and this protrusion is fixed on the chassis, the locking sheet is fixed to the side convexity of the chassis by bolts, and the top end of the locking sheet is connected to the pulse electromagnet, and the front end of the pulse electromagnet is close to the outer side of the oblique spring sheet with a small interval.
[0010] Furthermore, the powder collecting hopper includes a plug plate with a handle, a powder hopper body and a replaceable small sieve plate with a handle. The powder hopper body has sockets on the front and back sides of the top and bottom. The plug plate with a handle is inserted into the socket on the top of the powder hopper body, and the replaceable small sieve plate with a handle is inserted into the socket at the bottom of the powder hopper body. The replaceable small sieve plate with a handle has sieve holes evenly arranged on it.
[0011] In summary, the beneficial technical effects of the utility model are:
[0012] 1. Pulse electromagnets and oblique spring sheets are used. The pulse electromagnets continuously suck and pull the oblique spring sheets, which continuously vibrates the drying box connected to the oblique spring sheets, and continuously turns the artificial diamond powder on the lower layer of the box to the upper layer, thereby accelerating the drying speed of the powder and the subsequent screening and collection;
[0013] 2. The powder collecting hopper is used to collect and process the artificial diamond powder and prevent leakage;
[0014] 3. A replaceable small sieve plate with a handle is selected. By replacing the sieve plates with different mesh sizes, the purpose of grading powders of different particle sizes can be achieved, which is helpful for subsequent further processing. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0016] Figure 2 This is a schematic diagram of the structure of the drying box of the utility model;
[0017] Figure 3 This is a schematic diagram of the components of the drying box of the utility model;
[0018] Figure 4 This is a schematic diagram of the powder collecting hopper structure of the utility model;
[0019] 1. Drying box; 2. Drying box placement component; 11. Box body; 12. Box cover; 21. Powder collecting hopper; 22. Side column; 23. Straight plate; 24. Tab; 25. Powder bucket; 26. Support column; 27. Oblique spring plate; 28. Pulse electromagnet; 29. Locking piece; 30. Chassis; 111. Folded ear; 112. Bottom opening; 113. Powder inlet pipe; 121. Handle; 211. Handle plate; 212. Hopper body; 213. Replaceable handle small sieve plate; 301. Side convex; 2121. Socket; 2131. Sieve holes. Detailed implementation mode
[0020] The following further elaborates on the present utility model in conjunction with the attached drawings.
[0021] A drying box placement structure for processing synthetic diamond powder disclosed by the present utility model includes a drying box 1 and a drying box placement component 2, wherein the drying box 1 is arranged above the drying box placement component 2, as Figure 1 shown.
[0022] Then, the above-mentioned drying box 1 includes a box cover 12 and a box body 11. In the two, the center of the top surface of the box cover 12 is provided with a handle 121, and the right side of the box body 11 is communicated with a powder inlet pipe 113. The powder inlet pipe 113 facilitates the direct transportation of synthetic diamond powder. Folded ears 111 are connected to both sides of the box body 11. The function of the folded ears 111 is to fix the drying box 1 on the drying box placement component 2. Moreover, a bottom opening 112 is opened at the bottom of the box body 11, which is convenient for the subsequent classification treatment of the synthetic diamond powder in the drying box 1. For details, see Figure 2 .
[0023] The drying box placement component 2 combined with the drying box 1 includes a powder collecting hopper 21, a side column 22, a straight plate 23, a protrusion, a powder barrel 25, a support 26, an inclined spring sheet 27, a pulse electromagnet 28, a locking sheet 29 and a chassis 30, wherein the inlet of the powder collecting hopper 21 is connected to the bottom opening 112 of the drying box 1, and the top of the side column 22 is connected to the folding ear 111 of the drying box 1, and the lower part of the side column 22 is fixed to the side of the chassis 30 by bolts, and the top of the straight plate 23 is also connected to the folding ear 111 of the drying box 1, and the straight plate 23 is also threadedly connected to the protrusion 24 welded on the chassis 30. In addition, the support 26 is provided with two sides below the powder collecting hopper 21 and welded on the chassis 30, the side column 22, the straight plate 2 3 and the pillar 26 jointly support the drying box 1, and a powder barrel 25 is placed in the center of them and is located directly below the powder collecting hopper 21. The top end of the inclined spring sheet 27 is threadedly connected to the folding ear 111 of the drying box 1, and the bottom end is threadedly connected to another protrusion 24 and this protrusion 24 is fixed on the chassis 30. There is also a locking sheet 29 fixed to the side protrusion 301 of the chassis 30 by bolts, and the top end of the locking sheet 29 is connected to the pulse electromagnet 28. At the same time, the front end of the pulse electromagnet 28 is close to the outer side of the inclined spring sheet 27 with a small interval. Through the structure that the front end of the pulse electromagnet 28 is close to the inclined spring sheet 27, the artificial diamond powder in the lower layer of the drying box 1 can be continuously tumbled to the outside, thereby accelerating the drying speed of the powder. Figure 3 shown.
[0024] Among the components of the drying box placement component 2 described above, the powder collecting hopper 21 includes a handle plug plate 211, a powder hopper body 212 and a replaceable small sieve plate 213 with a handle. The top and bottom of the powder hopper body 212 are provided with sockets 2121 on both the front and rear sides. At the same time, the socket 2121 on the top of the powder hopper body 212 is inserted into the handle plug plate 211, and the replaceable small sieve plate 213 with a handle is inserted into the socket 2121 at the bottom. The replaceable small sieve plate 213 with a handle is evenly arranged with sieve holes 2131. The sieve plates with different mesh sizes can be replaced to grade and process artificial diamond powders of different particle sizes. In addition, the continuous vibration of the drying box 1 as a whole brought about by the combination of the pulse electromagnet 28 and the inclined spring sheet 27 can also speed up the screening and collection of artificial diamond powder. For details, please refer to the attached Figure 4 .
[0025] Example
[0026] Working principle:
[0027] 1. Improve the drying speed: After the drying box 1 stores a sufficient amount of synthetic diamond powder from the powder inlet pipe 113, when the pulse electromagnet 28 is turned on, it will continuously pull the adjacent inclined spring plate 27, thereby driving the drying box 1 connected to the inclined spring plate 27 to generate continuous vibrations, causing the synthetic diamond powder inside to keep surging, making the powder at the lower layer of the box continuously turn to the outer layer, so that all parts of the synthetic diamond powder can be fully dried, significantly accelerating the drying speed of the synthetic diamond powder.
[0028] 2. Accelerate screening and collection: Since the bottom opening 112 of the drying box 1 is connected to the inlet of the powder collecting hopper 21 in the drying box placement member 2, after the handle - inserted plate 211 at the top of the powder collecting hopper 21 is pulled out, the synthetic diamond powder in the box will immediately fall into the powder collecting hopper 21. The powder collecting hopper 21 is in contact with the drying box 1, and the vibrations brought by the pulse electromagnet 28 and the inclined spring plate 27 will be transmitted to the powder collecting hopper 21, causing the synthetic diamond powder in the powder collecting hopper 21 to continuously float up and down, further accelerating the screening of the powder by the replaceable handle - equipped small sieve plate 213 at the bottom of the powder collecting hopper 21 and improving the processing efficiency.
[0029] 3. Classification treatment of powders with different particle sizes: By replacing the replaceable handle - equipped small sieve plates 213 with different mesh numbers, powder buckets 25 can be used to hold synthetic diamond powders with different particle sizes, realizing more - level classification treatment.
[0030] The embodiments of this specific implementation manner are all preferred embodiments of the present invention, and do not limit the protection scope of the present invention accordingly. Therefore, all equivalent changes made according to the structure, shape, and principle of the present invention should be covered within the protection scope of the present invention.
Claims
1. A drying box placement structure for artificial diamond powder processing, comprising a drying box (1) and a drying box placement component (2), characterized in that: A drying box placement component (2) is arranged below the drying box (1), wherein the drying box (1) includes a box body (11), the right side of the box body (11) is connected to a powder inlet pipe (113), both sides of the box body (11) are connected to folding ears (111), and a bottom opening (112) is opened at the bottom of the box body (11), and the bottom opening (112) is connected to the inlet of the powder collecting hopper (21) included in the drying box placement component (2). In addition, the drying box placement component (2) also includes a side column (22), a straight plate (23), a protrusion, a powder bucket (25), a pillar (26), an inclined spring sheet (27), a pulse electromagnet (28), a locking sheet (29) and a chassis (30), wherein the top end of the side column (22) is connected to the folding ear (111) of the drying box (1), and the lowermost part of the side column (22) is fixed to the chassis (30) by bolts. 0), the top end of the straight plate (23) is also connected to the folding ear (111) of the drying box (1), and the straight plate (23) is also threadedly connected to the protrusion (24) welded on the bottom plate (30), two pillars (26) are welded on the bottom plate (30) and are respectively arranged on both sides below the powder collecting hopper (21), the powder bucket (25) is placed directly below the powder collecting hopper (21), and the top end of the inclined spring sheet (27) is threadedly connected to the protrusion (24) welded on the bottom plate (30). The bottom end of the folding ear (111) of the drying box (1) is threadedly connected to another protruding piece (24) and the protruding piece (24) is fixed on the chassis (30). The locking piece (29) is fixed to the side protrusion (301) of the chassis (30) by bolts, and the top end of the locking piece (29) is connected to the pulse electromagnet (28). At the same time, the front end of the pulse electromagnet (28) is close to the outer side of the inclined spring piece (27) with a small interval.
2. The drying box placement structure for artificial diamond powder processing according to claim 1 is characterized in that: The drying box (1) further comprises a box cover (12), and a handle (121) is provided in the center of the top surface of the box cover (12).
3. The drying box placement structure for artificial diamond powder processing according to claim 1 is characterized in that: The powder collecting hopper (21) comprises a plug plate with a handle (211), a powder hopper body (212) and a replaceable small sieve plate with a handle (213). The powder hopper body (212) is provided with plug holes (2121) at both the front and rear sides of the top and bottom of the powder hopper body (212). The plug plate with a handle (211) is inserted into the plug hole (2121) at the top of the powder hopper body (212), and the replaceable small sieve plate with a handle (213) is inserted into the plug hole (2121) at the bottom of the powder hopper body (212). The replaceable small sieve plate with a handle (213) is evenly arranged with sieve holes (2131).