Inorganic chemical experiment device

By introducing grinding, lifting and mortar components into the chemical experimental device, the problems of low experimental efficiency and large errors caused by the lack of grinding structure in traditional devices are solved, and automatic grinding and particle size uniformization are achieved, which improves experimental results and accuracy.

CN223027364UActive Publication Date: 2025-06-27GUANGXI NORMAL UNIV FOR NATITIES
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Patent Information

Application Number
CN202422241894.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-12
Publication Date
2025-06-27
Estimated Expiration
2034-09-12

AI Technical Summary

Technical Problem

Traditional chemical experimental devices usually do not have a grinding structure, which leads to manual grinding of users when experiments where pulverizing substances are required, limiting the experimental range, increasing the experimental time, and uneven particle sizes may cause the solution to fail to react sufficiently with the solid, reducing the experimental effect and increasing errors.

Method used

An inorganic chemical experimental device is designed, including a grinding assembly, a lifting assembly and a mortar assembly. Through the coordinated work of these components, automatic grinding and particle size uniformization of the experimental material is achieved.

Benefits of technology

By setting up the grinding structure, the experimental materials can be automatically crushed when needed, reducing the experiment time, ensuring uniform particle size, improving the reaction efficiency between solution and solids, and reducing the error of experimental results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of experimental devices, in particular to an inorganic chemical experimental device. The technical problems that in the prior art, compared with a traditional chemical experiment device which is generally not provided with a grinding structure, when experiments of some substances needing to be smashed need to be carried out, a user needs to manually grind the substances, the experiment range is limited, the experiment time is prolonged, the particle size is uneven, a solution possibly cannot fully react with a solid, and therefore the experiment effect is reduced, and the experiment time is shortened are solved. The error of an experimental result is increased; according to the technical scheme, the inorganic chemical experiment device comprises a main body bottom plate, a supporting assembly, an adding assembly, a control assembly, a grinding assembly, a lifting assembly and a mortar assembly; through the arrangement of the grinding structure, materials can be ground when experiments of some substances needing to be smashed need to be carried out, the experiment time is shortened, the ideal reaction degree can be achieved, a solution can fully react with a solid, and therefore the experiment effect is improved, and errors of experiment results are reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of experimental devices, in particular to an inorganic chemistry experimental device. Background Technique

[0002] Chemical experimental devices are a collection of equipment and tools used for chemical experiments. They are designed to control and regulate experimental conditions to ensure the accuracy and reliability of experimental results. There are various types of chemical experimental devices, and each device has specific uses and functions. However, in the prior art, traditional chemical experimental devices usually do not have a grinding structure. When experiments that require pulverizing substances are to be carried out, users need to manually grind, which limits the experimental scope, increases the experimental time, may take a longer time to achieve the required reaction degree, and the particle size is uneven, which may cause the solution to not fully react with the solid, thereby reducing the experimental effect and increasing the error of experimental results. Summary of the Utility Model

[0003] In order to overcome the problem that in the prior art, traditional chemical experimental devices usually do not have a grinding structure. When experiments that require pulverizing substances are to be carried out, users need to manually grind, which limits the experimental scope, increases the experimental time, may take a longer time to achieve the required reaction degree, and the particle size is uneven, which may cause the solution to not fully react with the solid, thereby reducing the experimental effect and increasing the error of experimental results.

[0004] The technical solution of the utility model is: an inorganic chemistry experimental device, including a main body bottom plate, a support assembly, an adding assembly, a control assembly, a grinding assembly, a lifting assembly and a mortar assembly. A number of groups of support assemblies are equidistantly arranged on the bottom surface of the main body bottom plate. An adding assembly is arranged on one side of the main body bottom plate. A control assembly is arranged on one side of the main body bottom plate. A grinding assembly is arranged on the top surface of the control assembly. A lifting assembly is arranged on one side of the main body bottom plate. A mortar assembly is arranged on one side of the lifting assembly.

[0005] Preferably, the main body bottom plate bears the weight, the whole device is supported by the support assembly, consumables are added to the device through the adding assembly, the operation of the device is controlled through the control assembly, materials are ground through the grinding assembly, the movement of the mortar assembly is controlled through the lifting assembly, and the ground experimental materials are stored through the mortar assembly.

[0006] As a preference, the support assembly includes support columns, fixing blocks and fixing bolts. Support columns are equidistantly arranged on the bottom surface of the main body bottom plate. Fixing blocks are arranged on the bottom surfaces of the support columns. Fixing bolts are arranged on the surfaces of the fixing blocks. During use, the whole processing device is supported by the support columns, the processing device is fixed by the fixing blocks, and the fixing bolts are installed through the fixing blocks.

[0007] Preferably, the adding component includes an installation block, a connecting column, a connecting electric pipe, a telescopic placement ring and a material placement pipe. An installation block is provided on one side of the main body bottom plate. A connecting column is provided on the top surface of the installation block. A connecting electric pipe is provided on the top surface of the connecting column. A telescopic placement ring is provided on one side of the connecting electric pipe. A material placement pipe is provided inside the top end of the telescopic placement ring. During use, the connecting column is installed on one side of the main body bottom plate through the installation block, the connecting electric pipe is installed and docked through the connecting column, the control power supply is connected through the connecting electric pipe, the feeding length is adjusted by the telescopic placement ring, and the consumables are placed through the material placement pipe.

[0008] Preferably, the control component includes a control block, a lifting rod and a control electric pipe. A control block is provided on one side of the main body bottom plate. Two groups of lifting rods are equidistantly arranged on the top surface of the control block. A control electric pipe is provided on one side of the top end of the lifting rod. During use, the overall device is installed and controlled through the control block, the grinding height is adjusted by the telescopic lifting of the lifting rod, and the control power supply is connected through the control electric pipe.

[0009] Preferably, the grinding component includes a connecting block, a control pipe, a rotating groove and a grinding column. A connecting block is provided at one end of the lifting rod. A control pipe is provided on the top surface of the connecting block. A rotating groove is provided inside one end of the connecting block. A grinding column is provided inside the rotating groove. During use, it is installed through the connecting block, the rotating groove is controlled to rotate by connecting the control pipe to the rotating groove, and the grinding column is driven to rotate by the rotating groove to grind the material.

[0010] Preferably, the lifting component includes a lifting block, an installation groove, a threaded rod and a lifting table. A lifting block is provided on one side of the main body bottom plate. An installation groove is opened inside the lifting block. A threaded rod is provided inside the installation groove. A lifting table is sleeved on the surface of the threaded rod. During use, the installation groove is installed on one side of the main body bottom plate through the lifting block, the threaded rod is installed through the installation groove, the lifting table slides up and down by the rotation of the threaded rod, and the mortar structure is driven to lift by the lifting table.

[0011] Preferably, the mortar component includes a rotating column, a material mortar, a limiting groove and a limiting block. A rotating column is provided at one end of the lifting table. A material mortar is provided at one end of the rotating column. A limiting groove is opened in the middle of the surface of the main body bottom plate. A limiting block is provided inside the limiting groove. During use, the material mortar after grinding is poured by driving the rotation of the rotating column, the material mortar is placed through the limiting groove, and the limiting block is inserted into the material mortar during grinding to limit the material mortar to prevent the mortar from moving during grinding.

[0012] The beneficial effects of the present utility model:

[0013] 1. Compared with traditional chemical experimental devices which usually do not have a grinding structure, when performing certain experiments that require crushing substances, users need to manually grind, which limits the experimental scope, increases the experimental time, and may take a longer time to achieve the required reaction degree. Moreover, the particle size is uneven, which may cause the solution to not fully react with the solid, thereby reducing the experimental effect and increasing the error of the experimental results. This chemical experimental device can grind materials when performing certain experiments that require crushing substances by setting a grinding structure, reducing the experimental time, facilitating the achievement of an ideal reaction degree, enabling the solution to fully react with the solid, thereby improving the experimental effect and reducing the error of the experimental results;

[0014] 2. Install the pile through the connecting block, control the rotation of the rotating groove through the control pipe to drive the rotating groove to rotate, drive the grinding column to rotate by the rotating groove to grind the material, install the installation groove on one side of the main body bottom plate through the lifting block, install the placing threaded rod through the installation groove, drive the lifting table to slide up and down by rotating the threaded rod, drive the mortar structure to lift by the lifting table, drive the experimental material in the mortar to be poured after grinding by rotating the rotating column, place the material mortar through the limiting groove, and wedge into the material mortar by the limiting block to limit the material mortar during grinding to prevent the mortar from moving during grinding;

[0015] 3. Install the connecting column on one side of the main body bottom plate through the installation block, install the docking connecting electric pipe through the connecting column, connect the control power supply through the connecting electric pipe, adjust the feeding length by telescoping the telescopic placing ring, place the consumables through the material placing pipe, install and control the overall device through the control block, adjust the grinding height by telescoping the lifting rod, and connect the control power supply through the control electric pipe. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 Shown is a first three-dimensional structural schematic diagram of an inorganic chemical experimental device of the present utility model;

[0017] Figure 2 Shown is a second three-dimensional structural schematic diagram of an inorganic chemical experimental device of the present utility model;

[0018] Figure 3 Shown is a side three-dimensional structural schematic diagram of an inorganic chemical experimental device of the present utility model;

[0019] Figure 4The figure shows a partial three-dimensional structural schematic diagram of an inorganic chemical experiment device of the present utility model; Explanation of reference numerals: 1, main body bottom plate; 2, support assembly; 3, addition assembly; 4, control assembly; 5, grinding assembly; 6, lifting assembly; 7, mortar assembly; 201, support column; 202, fixing block; 203, fixing bolt; 301, mounting block; 302, connecting column; 303, connecting electric pipe; 304, telescopic placement ring; 305, material placement pipe; 401, control block; 402, lifting rod; 403, control electric pipe; 501, connecting block; 502, control pipe; 503, rotating groove; 504, grinding column; 601, lifting block; 602, mounting groove; 603, threaded rod; 604, lifting table; 701, rotating column; 702, material mortar; 703, limiting groove; 704, limiting block. Detailed implementation manners

[0020] The present utility model will be further described below in conjunction with the accompanying drawings and embodiments.

[0021] Please refer to Figure 1 , an embodiment provided by the present utility model is: An inorganic chemical experiment device, including: The technical solution of the present utility model is: An inorganic chemical experiment device, including a main body bottom plate 1, a support assembly 2, an addition assembly 3, a control assembly 4, a grinding assembly 5, a lifting assembly 6 and a mortar assembly 7. A plurality of groups of support assemblies 2 are equidistantly arranged on the bottom surface of the main body bottom plate 1. An addition assembly 3 is arranged on one side of the main body bottom plate 1. A control assembly 4 is arranged on one side of the main body bottom plate 1. A grinding assembly 5 is arranged on the top surface of the control assembly 4. A lifting assembly 6 is arranged on one side of the main body bottom plate 1. A mortar assembly 7 is arranged on one side of the lifting assembly 6.

[0022] Please refer to Figures 2 - 4, in this embodiment, the support assembly 2 includes support columns 201, fixing blocks 202 and fixing bolts 203. Support columns 201 are equidistantly arranged on the bottom surface of the main body bottom plate 1. Fixing blocks 202 are arranged on the bottom surfaces of the support columns 201. Fixing bolts 203 are arranged on the surfaces of the fixing blocks 202. During use, the overall processing device is supported by the support columns 201, the processing device is fixed by the fixing blocks 202, and the fixing bolts 203 are installed through the fixing blocks 202. The adding assembly 3 includes a mounting block 301, a connecting column 302, a connecting electric pipe 303, a telescopic placement ring 304 and a material placement pipe 305. A mounting block 301 is arranged on one side of the main body bottom plate 1. A connecting column 302 is arranged on the top surface of the mounting block 301. A connecting electric pipe 303 is arranged on the top surface of the connecting column 302. A telescopic placement ring 304 is arranged on one side of the connecting electric pipe 303. A material placement pipe 305 is arranged inside the top end of the telescopic placement ring 304. During use, the connecting column 302 is installed on one side of the main body bottom plate 1 through the mounting block 301, the connecting electric pipe 303 is installed and docked through the connecting column 302, the control power supply is connected through the connecting electric pipe 303, the feeding length is adjusted by telescoping the telescopic placement ring 304, and consumables are placed through the material placement pipe 305. The control assembly 4 includes a control block 401, a lifting rod 402 and a control electric pipe 403. A control block 401 is arranged on one side of the main body bottom plate 1. Two groups of lifting rods 402 are equidistantly arranged on the top surface of the control block 401. A control electric pipe 403 is arranged on one side of the top end of the lifting rod 402. During use, the overall device is installed and controlled through the control block 401, the grinding height is adjusted by telescoping the lifting rod 402, and the control power supply is connected through the control electric pipe 403;

[0023] The grinding assembly 5 includes a connecting block 501, a control pipe 502, a rotating groove 503, and a grinding column 504. One end of the lifting rod 402 is provided with a connecting block 501. The top surface of the connecting block 501 is provided with a control pipe 502. One end of the connecting block 501 is internally provided with a rotating groove 503. The inside of the rotating groove 503 is provided with a grinding column 504. During use, it is installed through the connecting block 501. The rotating groove 503 is controlled to rotate through the control pipe 502 connected to the rotating groove 503. The grinding column 504 is driven to rotate by the rotating groove 503 to grind the material. The lifting assembly 6 includes a lifting block 601, a mounting groove 602, a threaded rod 603, and a lifting table 604. One side of the main body bottom plate 1 is provided with a lifting block 601. The inside of the lifting block 601 is provided with a mounting groove 602. The inside of the mounting groove 602 is provided with a threaded rod 603. The surface of the threaded rod 603 is sleeved with a lifting table 604. During use, the mounting groove 602 is installed on one side of the main body bottom plate 1 through the lifting block 601. The threaded rod 603 is installed and placed through the mounting groove 602. The lifting table 604 is driven to slide up and down by the rotation of the threaded rod 603. The mortar structure is driven to lift by the lifting table 604. The mortar assembly 7 includes a rotating column 701, a material mortar 702, a limiting groove 703, and a limiting block 704. One end of the lifting table 604 is provided with a rotating column 701. One end of the rotating column 701 is provided with a material mortar 702. A limiting groove 703 is opened in the middle of the surface of the main body bottom plate 1. The inside of the limiting groove 703 is provided with a limiting block 704. During use, the material mortar 702 after grinding is poured by driving the rotation of the rotating column 701. The material mortar 702 is placed through the limiting groove 703. The limiting block 704 is wedged into the material mortar 702 during grinding to limit the material mortar 702 to prevent the mortar from moving during grinding.

[0024] When working, first, the overall processing device is supported by the support column 201, the processing device is fixed by the fixing block 202, the fixing bolt 203 is installed through the fixing block 202, the connecting column 302 is installed on one side of the main body bottom plate 1 through the mounting block 301, the connecting electric pipe 303 is installed and docked through the connecting column 302, the control power supply is connected through the connecting electric pipe 303, the feeding length is adjusted by stretching the telescopic placement ring 304, the consumables are placed through the material placement pipe 305, the overall device is controlled through the control block 401, the grinding height is adjusted by stretching the lifting rod 402, and the control power supply is connected through the control electric pipe 403;

[0025] Then, pile the stakes through the connecting block 501, control the rotation of the rotating groove 503 through the control pipe 502 to connect the rotating groove 503, drive the grinding column 504 to rotate through the rotating groove 503 to grind the material, install the installation groove 602 on one side of the main body bottom plate 1 through the lifting block 601, install the placing threaded rod 603 through the installation groove 602, drive the lifting table 604 to slide up and down through the rotation of the threaded rod 603, drive the mortar structure to lift through the lifting table 604, drive the material mortar 702 to pour the ground experimental material through the rotation of the rotating column 701, place the material mortar 702 through the limiting groove 703, and wedge into the material mortar 702 with the limiting block 704 during grinding to limit the material mortar 702 to prevent the mortar from moving during grinding.

[0026] Through the above steps, the main body bottom plate 1 bears the weight, the overall device is supported by the support assembly 2, consumables are added to the device through the adding assembly 3, the operation of the device is controlled through the control assembly 4, the material is ground through the grinding assembly 5, the movement of the mortar assembly 7 is controlled through the lifting assembly 6, and the ground experimental material is stored through the mortar assembly 7.

[0027] The embodiments of the present invention have been described in detail above in conjunction with the accompanying drawings. However, the present invention is not limited to the above embodiments, and various changes can be made without departing from the gist of the present invention within the scope of knowledge possessed by those skilled in the art.

Claims

1. An inorganic chemistry experimental device, comprising a main body bottom plate (1); characterized in that: The invention also comprises a support component (2), an adding component (3), a control component (4), a grinding component (5), a lifting component (6) and a mortar component (7); a plurality of groups of support components (2) are equidistantly arranged on the bottom surface of the main body bottom plate (1); an adding component (3) is arranged on one side of the main body bottom plate (1); a control component (4) is arranged on one side of the main body bottom plate (1); a grinding component (5) is arranged on the top surface of the control component (4); a lifting component (6) is arranged on one side of the main body bottom plate (1); and a mortar component (7) is arranged on one side of the lifting component (6).

2. An inorganic chemistry experimental device according to claim 1, characterized in that: The support assembly (2) comprises a support column (201), a fixing block (202) and a fixing bolt (203); the support columns (201) are equidistantly arranged on the bottom surface of the main body bottom plate (1); the fixing block (202) is arranged on the bottom surface of the support column (201); and the fixing bolt (203) is arranged on the surface of the fixing block (202).

3. An inorganic chemistry experimental device according to claim 2, characterized in that: The additional component (3) comprises a mounting block (301), a connecting column (302), a connecting electrical pipe (303), a telescopic placement ring (304) and a material placement pipe (305); the mounting block (301) is arranged on one side of the main body bottom plate (1); the connecting column (302) is arranged on the top surface of the mounting block (301); the connecting electrical pipe (303) is arranged on the top surface of the connecting column (302); the telescopic placement ring (304) is arranged on one side of the connecting electrical pipe (303); and the material placement pipe (305) is arranged inside the top end of the telescopic placement ring (304).

4. An inorganic chemistry experimental device according to claim 3, characterized in that: The control assembly (4) comprises a control block (401), a lifting rod (402) and a control electric tube (403). The control block (401) is arranged on one side of the main body bottom plate (1), two groups of lifting rods (402) are arranged equidistantly on the top surface of the control block (401), and the control electric tube (403) is arranged on one side of the top end of the lifting rod (402).

5. An inorganic chemistry experimental device according to claim 4, characterized in that: The grinding assembly (5) comprises a connecting block (501), a control tube (502), a rotating groove (503) and a grinding column (504); the connecting block (501) is arranged at one end of the lifting rod (402); the control tube (502) is arranged on the top surface of the connecting block (501); the rotating groove (503) is arranged inside one end of the connecting block (501); and the grinding column (504) is arranged inside the rotating groove (503).

6. An inorganic chemistry experimental device according to claim 4, characterized in that: The lifting assembly (6) comprises a lifting block (601), a mounting groove (602), a threaded rod (603) and a lifting platform (604). The lifting block (601) is arranged on one side of the main body bottom plate (1), the lifting block (601) is provided with a mounting groove (602) inside, the mounting groove (602) is provided with a threaded rod (603) inside, and the lifting platform (604) is sleeved on the surface of the threaded rod (603).

7. An inorganic chemistry experimental device according to claim 6, characterized in that: The mortar assembly (7) comprises a rotating column (701), a material mortar (702), a limiting groove (703) and a limiting block (704); the rotating column (701) is arranged at one end of the lifting platform (604); the material mortar (702) is arranged at one end of the rotating column (701); a limiting groove (703) is arranged in the middle of the surface of the main body bottom plate (1); and a limiting block (704) is arranged inside the limiting groove (703).