Chemical reagent production table

The sliding frame and limiting frame structure of the chemical reagent production station solves the problem of inaccurate alignment of injection tubes, enabling efficient and precise liquid injection operations and improving experimental efficiency and accuracy.

CN224271245UActive Publication Date: 2026-05-26HEFEI KAZHIDUN NEW MATERIALS CO LTD

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HEFEI KAZHIDUN NEW MATERIALS CO LTD
Filing Date
2025-06-25
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

In the traditional chemical reagent production process, the operation is cumbersome, and it is difficult to accurately align the injection tube with the melting cylinder, resulting in reagent splashing or injection deviation, which affects the accuracy and efficiency of the experiment.

Method used

A chemical reagent production platform was designed, which adopts a sliding frame and a limiting frame structure. The injection tube is connected by a sliding block and a ball sleeve, which enables rapid translation and angle adjustment of the injection tube. Combined with a unidirectional flow structure, it ensures the accuracy of liquid injection.

Benefits of technology

It improves the flexibility and precision of experimental operations, avoids reagent spillage, and enhances work efficiency and reagent injection accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a chemical reagent production table, and belongs to the technical field of production. The chemical reagent production table comprises a workbench, a fixing frame is fixedly connected to the rear portion of the upper end face of the workbench, and a liquid injection mechanism is arranged in front of the fixing frame. The liquid injection mechanism comprises a sliding frame located above the front end of the fixed frame, the rear end face of the sliding frame is fixedly connected with a plurality of communicated limiting frames, the sliding frame is internally provided with a plurality of movable pipes, the lower end faces of the movable pipes are fixedly connected with communicated spherical sleeves, and the spherical sleeves are fixedly connected with the movable pipes. The sliding block is switched between the second sliding groove of the limiting frame and the first sliding groove of the sliding frame to slide. According to experimental requirements, a worker can quickly translate injection tubes corresponding to reagents from initial positions to the position above the reagent fusion cylinder, multiple specified injection tubes are gathered together for synchronous liquid injection, the worker does not need to receive the reagents from the injection tubes one by one, the degree of freedom is high, different injection tubes can be matched for liquid injection according to requirements, and the working efficiency is improved. And the working efficiency is greatly improved.
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Description

Technical Field

[0001] This application relates to the field of manufacturing technology, and more specifically, to a chemical reagent manufacturing station. Background Technology

[0002] A chemical reagent production platform is a dedicated work platform used in the chemical reagent production process to provide a stable operating surface and integrate related functions to ensure the orderly conduct of production operations such as reagent preparation, mixing, and reaction, thereby ensuring the quality and efficiency of reagent production.

[0003] When fusing chemical reagents, the traditional method requires staff to align the melting cylinder with the injection tubes one by one, and inject the liquid into multiple injection tubes in sequence. This is not only cumbersome and time-consuming, but also makes it difficult for injection tubes far from the melting cylinder to be accurately aligned when multiple tubes need to be injected. Staff cannot quickly adjust the angle to align with the melting cylinder, which can easily lead to reagent splashing or injection deviation, affecting the accuracy of the experiment and work efficiency.

[0004] In view of this, this application proposes a chemical reagent production station. Utility Model Content

[0005] The purpose of this application is to provide a chemical reagent production station that solves the technical problems mentioned in the background art.

[0006] This application provides a chemical reagent production platform, including a workbench, a fixed frame fixedly connected to the rear of the upper surface of the workbench, and a liquid injection mechanism provided in front of the fixed frame.

[0007] The injection mechanism includes a sliding frame located above the front end of the fixed frame. The rear end face of the sliding frame is fixedly connected to multiple interconnected limiting frames. The interior of the sliding frame is provided with multiple movable tubes. The lower end face of each movable tube is fixedly connected to an interconnected spherical sleeve. An injection tube is provided below the spherical sleeve. The upper end of the injection tube is fixedly connected to a spherical head, which is movably engaged inside the spherical sleeve. A through-hole is provided inside the spherical sleeve, and the through-hole is connected to the injection tube.

[0008] Optionally, the front and rear faces of the sliding frame are provided with corresponding first sliding grooves, and the two sides of the limiting frame are provided with second sliding grooves that communicate with the first sliding grooves.

[0009] Optionally, a sliding block is fixedly connected to the outer wall of the spherical sleeve, and the sliding block is located in the first groove.

[0010] Optionally, the lower end of the injection tube is provided with a blocking ball, a grid plate is fixedly connected to the lower part of the inside of the injection tube, and a spring is fixedly connected between the grid plate and the blocking ball.

[0011] Optionally, both ends of the sliding frame are fixedly connected to connecting rods, and the other end of the connecting rods is fixedly connected to the worktable.

[0012] Optionally, the upper surface of the workbench is provided with a placement groove, and the upper surface of the fixing frame is provided with multiple slots, the inside of which is provided with a connecting hose.

[0013] Optionally, a sealing head is fixedly sleeved on the upper end face of the movable tube, and one end of the connecting hose is fixedly inserted into the inside of the sealing head.

[0014] One or more technical solutions provided in this application have at least the following technical effects or advantages:

[0015] 1. This application utilizes a sliding block that slides between the second groove of the limiting frame and the first groove of the sliding frame. Operators can quickly move the corresponding reagent injection tube from its initial position to above the reagent fusion cylinder according to experimental needs, allowing multiple designated injection tubes to be gathered together for simultaneous injection. This eliminates the need for operators to individually connect reagents to each injection tube, offering high flexibility and allowing for the combination of different injection tubes as needed, significantly improving work efficiency. The injection tube is connected to a ball-shaped head and a ball-shaped sleeve, enabling free rotation. When multiple injection tubes are gathered, even if there is a deviation in position from the reagent fusion cylinder, the angle can be quickly adjusted by manipulating the injection tube to ensure precise alignment of the tube opening with the reagent fusion cylinder, avoiding reagent splashing or failure to inject into the reagent fusion cylinder, significantly improving the flexibility and accuracy of experimental operations.

[0016] 2. This application utilizes a grid plate, a blocking ball, and a spring inside the injection tube to create a unidirectional flow structure. High-pressure reagent pushes the blocking ball to compress the spring, achieving smooth liquid injection; after injection, the spring rebounds, causing the blocking ball to reset, preventing reagent leakage and thus improving the accuracy of reagent injection. Attached Figure Description

[0017] Figure 1 This is a schematic diagram of the overall structure of the chemical reagent production station disclosed in the embodiments of this application;

[0018] Figure 2 This is a schematic diagram of the rear structure of the chemical reagent production station disclosed in the embodiments of this application;

[0019] Figure 3 This is a partial cross-sectional view of the chemical reagent production bench disclosed in the embodiments of this application;

[0020] The following are the labels in the diagram: 1. Workbench; 2. Placement slot; 3. Fixing frame; 4. Slot; 5. Injection mechanism; 501. Sliding frame; 502. First slide groove; 503. Limiting frame; 504. Second slide groove; 505. Moving tube; 506. Spherical sleeve; 507. Sliding block; 508. Sealing head; 509. Injection tube; 510. Spherical head; 511. Blocking ball; 512. Grid plate; 513. Spring; 514. Connecting rod; 515. Connecting port; 6. Connecting hose. Detailed Implementation

[0021] The present application will be further described in detail below with reference to the accompanying drawings.

[0022] Reference Figures 1-3 This application provides a chemical reagent production platform, including a workbench 1. A fixed frame 3 is fixedly connected to the rear of the upper surface of the workbench 1. A liquid injection mechanism 5 is provided in front of the fixed frame 3. The liquid injection mechanism 5 includes a sliding frame 501 located above the front end of the fixed frame 3. A plurality of interconnected limiting frames 503 are fixedly connected to the rear end face of the sliding frame 501. A plurality of moving tubes 505 are provided inside the sliding frame 501. A connected spherical sleeve 506 is fixedly connected to the lower end face of the moving tube 505. The front and rear faces of the moving frame 501 are each provided with a corresponding first sliding groove 502. The sides of the limiting frame 503 are each provided with a second sliding groove 504 that communicates with the first sliding groove 502. A sliding block 507 is fixedly connected to the outer wall of the spherical sleeve 506, and the sliding block 507 is located within the first sliding groove 502. An injection tube 509 is located below the spherical sleeve 506. The sliding block 507 slides between the second sliding groove 504 of the limiting frame 503 and the first sliding groove 502 of the sliding frame 501. According to experimental needs, the operator can quickly move the corresponding reagent injection tube 509 from its initial position to above the reagent fusion cylinder, gathering multiple designated injection tubes 509 together for synchronous injection. This eliminates the need for the operator to individually connect reagents to each injection tube 509, offering high flexibility and allowing for the combination of different injection tubes 509 for injection as needed, greatly improving work efficiency.

[0023] A ball head 510 is fixedly connected to the upper end of the injection tube 509, and the ball head 510 is movably engaged inside the ball sleeve 506. A through-hole 515 is provided inside the ball sleeve 506, and the through-hole 515 communicates with the injection tube 509. The injection tube 509 is connected to the ball sleeve 506 via the ball head 510, allowing for free rotation. When multiple injection tubes 509 are clustered together, even if there is a deviation in position from the reagent fusion cylinder, the angle can be quickly adjusted by manipulating the injection tube 509 to ensure precise alignment of the tube opening with the reagent fusion cylinder. This avoids reagent splashing or failure to inject into the reagent fusion cylinder, significantly improving the flexibility and accuracy of experimental operations.

[0024] The lower end of the injection tube 509 is equipped with a blocking ball 511. A grid plate 512 is fixedly connected to the lower part of the injection tube 509. A spring 513 is fixedly connected between the grid plate 512 and the blocking ball 511. The grid plate 512, the blocking ball 511, and the spring 513 inside the injection tube 509 form a one-way flow structure. High-pressure reagent pushes the blocking ball 511 to compress the spring 513, achieving smooth liquid injection. After the injection is completed, the spring 513 rebounds, causing the blocking ball 511 to reset, preventing reagent leakage and thus improving the accuracy of reagent injection.

[0025] Both ends of the sliding frame 501 are fixedly connected to connecting rods 514, and the other end of the connecting rods 514 is fixedly connected to the workbench 1. The upper end face of the workbench 1 is provided with a placement groove 2, and the upper end face of the fixed frame 3 is provided with multiple slots 4. The slots 4 are provided with connecting hoses 6. The upper end face of the moving tube 505 is fixedly fitted with a sealing head 508. One end of the connecting hose 6 is fixedly inserted into the inside of the sealing head 508. The slots 4 serve to limit the position of the connecting hose 6.

[0026] Working principle: Install a feed pump on each of the different chemical reagent bottles, and then connect one end of multiple connecting hoses 6 to different feed pumps. Select the chemical reagents to be fused according to the requirements. The reagent fusion cylinder is placed in the placement slot 2 on the workbench 1. The movable tubes 505 on the sealing heads 508 at one end of the multiple connecting hoses 6 are located in the limiting frame 503 behind the sliding frame 501. According to the selected chemical reagent, the corresponding injection tube 509 is moved and pulled. The movement of the injection tube 509 causes the ball head 510, ball sleeve 506, movable tube 505 and sealing head 508 to move synchronously inside. The movement of the ball sleeve 506 and the movable tube 505 causes the outer sliding block 507 to move in the second sliding groove 504 on the limiting frame 503. When the sliding block 507 moves out of the second sliding groove 504 and into the first sliding groove 502 on the sliding frame 501, the ball sleeve 506 and the movable tube 505 can be moved horizontally in the sliding frame 501, so that the required injection tubes 509 are moved horizontally and gathered together, so that the bottom of the injection tube 509 is aligned with the reagent fusion cylinder.

[0027] If there are many injection tubes 509, and the bottom of the injection tube 509 is far away from the reagent fusion cylinder, the operator can adjust the angle of the injection tube 509 and turn the injection tube 509. The ball head 510 on the injection tube 509 rotates inside the ball sleeve 506. The ball sleeve 506 can be freely rotated inside the ball sleeve 506, so that the injection tube 509 can be adjusted at multiple angles. After adjusting the angle of the injection tube 509, which is away from the reagent fusion cylinder, chemical reagents can be injected into the reagent fusion cylinder. The chemical reagents enter the sealing head 508 through the connecting hose 6, and then pass through the moving tube 505, the ball sleeve 506, and the ball head 510 into the injection tube 509. The high-pressure reagents then pass through the grid plate 512 inside the injection tube 509, pushing the blocking ball 511 away from the injection tube 509. The spring 513 between the blocking ball 511 and the grid plate 512 unfolds, and the reagents enter the reagent fusion cylinder. After the reagent injection is completed, the spring 513 rebounds, causing the blocking ball 511 to reset. The operator can then fuse all the reagents. After the reagent fusion is properly adjusted, the corresponding production can begin.

[0028] When reagents need to be replaced later, first push the sliding block 507 on the moving tube 505 into the corresponding limiting frame 503, and then push the other moving tubes 505 from the limiting frame 503 into the limiting frame 503. This eliminates the need for staff to connect reagents to the injection tubes 509 one by one, greatly improving work efficiency.

[0029] The above are merely preferred embodiments of this utility model, but the scope of protection of this utility model is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in this utility model, based on the technical solution and inventive concept of this utility model, should be included within the scope of protection of this utility model.

Claims

1. A chemical reagent production platform comprising a workbench (1), characterized in that: A fixed frame (3) is fixedly connected to the rear of the upper surface of the workbench (1), and a liquid injection mechanism (5) is provided in front of the fixed frame (3). The injection mechanism (5) includes a sliding frame (501) located above the front end of the fixed frame (3). The rear end face of the sliding frame (501) is fixedly connected to a plurality of interconnected limiting frames (503). The sliding frame (501) is provided with a plurality of moving tubes (505). The lower end face of the moving tube (505) is fixedly connected to a connected spherical sleeve (506). The lower part of the spherical sleeve (506) is provided with an injection tube (509). The upper end of the injection tube (509) is fixedly connected to a spherical head (510), and the spherical head (510) is movably engaged inside the spherical sleeve (506). The spherical sleeve (506) is provided with a through-hole (515), and the through-hole (515) is connected to the injection tube (509).

2. The chemical reagent production stage according to claim 1, characterized in that: The front and rear faces of the sliding frame (501) are provided with corresponding first sliding grooves (502), and the two sides of the limiting frame (503) are provided with second sliding grooves (504) that are connected to the first sliding grooves (502).

3. The chemical reagent production stage according to claim 2, characterized in that: The outer wall of the spherical sleeve (506) is fixedly connected to a sliding block (507), and the sliding block (507) is located in the first groove (502).

4. The chemical reagent production stage according to claim 1, characterized in that: The lower end of the injection tube (509) is provided with a blocking ball (511), and a grid plate (512) is fixedly connected to the lower part of the inside of the injection tube (509). A spring (513) is fixedly connected between the grid plate (512) and the blocking ball (511).

5. The chemical reagent production station of claim 1, wherein: Both ends of the sliding frame (501) are fixedly connected to connecting rods (514), and the other end of the connecting rods (514) is fixedly connected to the workbench (1).

6. The chemical reagent production stage according to claim 1, characterized in that: The workbench (1) has a placement slot (2) on its upper surface, and the fixed frame (3) has multiple slots (4) on its upper surface. The slots (4) are equipped with connecting hoses (6).

7. The chemical reagent production station of claim 6, wherein: A sealing head (508) is fixedly sleeved on the upper end face of the movable tube (505), and one end of the connecting hose (6) is fixedly inserted into the inside of the sealing head (508).