Device for mixing and detecting solutions in batches

By designing a device including a mixing flask, funnel, test tube and dropper, and using motor drive to achieve synchronous pouring of test tubes and dropper flushing, the problems of low detection efficiency and high labor cost in the prior art are solved, and convenient batch mixing detection is achieved.

CN223082646UActive Publication Date: 2025-07-11ZHEJIANG ZHONGDING INSPECTION & TESTING TECH CO LTD
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Patent Information

Application Number
CN202421700161.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-18
Publication Date
2025-07-11
Estimated Expiration
2034-07-18

AI Technical Summary

Technical Problem

The inspection process of existing materials requires repeated manual operations, resulting in low detection efficiency, time-consuming and labor-intensive.

Method used

Design a device including a mixing flask, funnel, test tube and dropper, and realize batch mixing of detection solutions through mechanized operations, and use a motor to drive test tubes to synchronously pour and dropper flushing to reduce manual intervention.

Benefits of technology

Improve inspection efficiency, reduce time and labor costs, and achieve convenient batch mixing operations.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of material detection. The device for mixing and detecting the solutions in batches comprises a plurality of mixing flasks arranged at intervals, a funnel extending into the mixing flasks is erected above the mixing flasks, a test tube capable of synchronously rotating and dumping is arranged on one side above the funnel, and a corresponding dropper is arranged above the test tube. The utility model provides a device for batch mixing of detection solutions, which is convenient to use, operate and control, can pour and mix a large batch of test tubes, greatly improves the working efficiency, and reduces the time and labor cost. The technical problems that in the prior art, in the current material detection process, manpower is consumed, the time cost is high, the same action needs to be manually repeated, and the detection efficiency is low are solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of material detection, and particularly to a device for batch mixing detection solutions. Background Art

[0002] With the development of the economy, material detection has become an important means to ensure safety in life. Material detection includes component analysis, measurement, non-destructive testing, and environmental simulation testing of raw materials. Some detections also involve analyzing the content of environmental pollution and metabolites in materials such as body fluids, tissues, and excreta of the body to determine the degree of environmental pollution and the risk of harm to the body.

[0003] Currently, during material detection, it is usually necessary to filter and pour the detection solutions of a large number of samples into a container. It is necessary to manually repeat the same action and pour the test tubes into the container in sequence, which consumes a large amount of time and manpower, has low detection efficiency, and high costs. Therefore, there is a need for improvement. Summary of the Invention

[0004] The present invention provides a device for batch mixing detection solutions that is convenient to use and operate, easy to control, can pour and mix a large number of test tubes, greatly increases work efficiency, reduces time and labor costs, and solves the technical problems in the prior art that the current material detection process consumes a lot of manpower and time, has high costs, requires manual repetition of the same action, and has low detection efficiency.

[0005] The above technical problems of the present invention are solved by the following technical solution: A device for batch mixing detection solutions includes a plurality of mixing flasks arranged at intervals. A funnel extending into the mixing flasks is erected above the mixing flasks. On one side above the funnel, there are test tubes that can be rotated and poured synchronously. Above the test tubes, there are corresponding droppers. The test tubes are filled with detection samples and detection solutions. During mixing, the detection samples in the test tubes can be taken out in advance. The funnel is placed above the mixing flask, and a filter paper is placed on the funnel. The test tubes are erected on one side above the funnel and can be poured synchronously. The detection solutions are simultaneously poured into the funnel and filtered into the mixing flask, and the droppers can inject 5% nitric acid solution into the test tubes to wash the inside of the test tubes, and the washed solutions are poured into the funnel again.

[0006] Preferably, a first support plate is provided above the mixing flask. A plurality of first positioning holes corresponding to the mixing flasks are opened on the first support plate. The funnels are placed in the first positioning holes. A plurality of funnels are placed on the first support plate, and the filter paper is placed on the funnels, which is convenient for assembly and positioning.

[0007] Preferably, a positioning base is provided at the bottom of the mixing flask, and positioning grooves are spaced apart on the positioning base. The mixing flask is placed in the positioning grooves. During mixing, the mixing flasks are successively placed on the positioning grooves of the positioning base, facilitating quick positioning and placement.

[0008] Preferably, a second support plate is provided above the funnel, and a number of second positioning holes are spaced apart on the second support plate. The test tubes are placed in the second positioning holes. The number of test tubes placed in the second positioning holes on the second support plate facilitates quick placement.

[0009] Preferably, a friction sleeve is fixedly provided in each of the second positioning holes, and the diameter of the friction sleeve is less than or equal to the diameter of the test tube. The function of the friction sleeve is to increase the friction between the test tube and the second support plate, facilitating fixing of the test tube and preventing the test tube from sliding.

[0010] Preferably, the friction sleeve is made of silica gel. The silica gel friction sleeve has a soft material and a large friction force with the test tube, which can ensure that the test tube does not slide up and down.

[0011] Preferably, a positioning post is provided on one side of the second support plate, and a rotating shaft is provided between the positioning post and the second support plate. One end of the rotating shaft is sleeved on the positioning post, and the other end of the rotating shaft is rotatably connected to the second support plate. During mixing, the motor drives the second support plate to rotate. As it rotates, the solution in the test tube is poured into the funnel and filtered into the mixing flask. After the test tube returns to its original position, the dropper can inject 5% nitric acid solution into the test tube to rinse the inside of the test tube, and the rinsed solution is poured into the funnel again.

[0012] Preferably, a third support plate is provided above the test tube, the dropper is fixed on the third support plate, and a conduit extends from the top of each dropper. The dropper can inject 5% nitric acid solution into the test tube to rinse the inside of the test tube, and the 5% nitric acid solution is injected through the conduit.

[0013] Preferably, the first support plate, the second support plate and the third support plate are all rotatably mounted on the left positioning post. During use, the first support plate, the second support plate and the third support plate can all rotate around the positioning post, facilitating the placement of various utensils.

[0014] Preferably, a receiving seat is provided on the right side of the mixing flask, and a number of card slots are provided in the receiving seat. The first support plate, the second support plate and the third support plate are all stuck in the card slots. The function of the receiving seat is to facilitate receiving the first support plate, the second support plate and the third support plate and ensure the stability of the first support plate, the second support plate and the third support plate.

[0015] Therefore, a device for batch mixing and detecting solutions of the present invention has the following advantages: it is convenient to use and operate, easy to control, has good overall structural stability, can pour and mix a large number of test tubes, greatly increases work efficiency, and reduces time and labor costs. Brief Description of the Drawings

[0016] Figure 1 is a three-dimensional structural schematic diagram of a device for batch mixing detection solutions of the present utility model.

[0017] Figure 2 is Figure 1 the enlarged view at position A in

[0018] Figure 3 is Figure 1 the front view structural schematic diagram of

[0019] Figure 4 is Figure 1 the top view structural schematic diagram of

[0020] Figure 5 is Figure 1 the advantageous structural schematic diagram of

[0021] In the figure, there are positioning base 1, positioning groove 2, mixing flask 3, positioning column 4, first shelf plate 5, second shelf plate 6, third shelf plate 7, receiving seat 8, card slot 9, first positioning hole 10, funnel 11, rotating shaft 12, motor 13, second positioning hole 14, test tube 15, friction sleeve 16, dropper 17, and conduit 18. Detailed Description of the Preferred Embodiment

[0022] The technical solution of the invention will be further specifically described below through embodiments in conjunction with the drawings.

[0023] Embodiment:

[0024] As Figure 1 and 2 and Figures 3, 4, and 5 show, a device for batch mixing detection solutions includes a positioning base 1 at the bottom. A plurality of positioning grooves 2 are spaced apart on the positioning base 1, and a mixing flask 3 is placed in each positioning groove 2.

[0025] A positioning column 4 is fixedly installed inside the left side of the positioning base 1, and a first shelf plate 5, a second shelf plate 6, and a third shelf plate 7 are rotatably installed on the positioning column 4 in sequence from bottom to top.

[0026] A receiving seat 8 is fixedly installed on the right side of the positioning base 1. Three card slots 9 are provided in the receiving seat 8, and the first shelf plate 5, the second shelf plate 6, and the third shelf plate 7 can all be stuck in the card slots 9.

[0027] A plurality of first positioning holes 10 corresponding to the mixing flasks 3 are provided on the first shelf plate 5, and a funnel 11 is placed in each positioning hole. The bottom of the funnel 11 extends into the mixing flask 3.

[0028] The second plate 6 and the positioning column 4 are connected by a rotating shaft 12, and a motor 13 is provided on the rotating shaft 12. The motor 13 can drive the second plate 6 to rotate.

[0029] A number of second positioning holes 14 are formed in the second plate 6. A test tube 15 is placed in each second positioning hole 14, and a friction sleeve 16 is fixedly installed in each second positioning hole 14. The friction sleeve 16 is made of silica gel, and the diameter of the friction sleeve 16 is smaller than the diameter of the test tube 15.

[0030] A number of droppers 17 corresponding to the test tubes 15 are installed on the third plate 7, and a conduit 18 extends from the top of the dropper 17.

[0031] During use, the first plate 5, the second plate 6 and the third plate 7 can all rotate around the positioning column 4 to facilitate the placement of various instruments. The conduit 18 can be connected to a pump. When mixing, the mixing flask 3 is placed on the positioning base 1 in sequence, the funnel 11 is placed on the first plate 5, and the filter paper is placed on the funnel 11. Then, the test tube 15 containing the test solution is placed on the second plate 6, and the sample in the test tube 15 can be taken out in advance.

[0032] When mixing, the motor 13 drives the second plate 6 to rotate. As it rotates, the solution in the test tube 15 is poured into the funnel 11 and filtered into the mixing flask 3. After the test tube 15 returns to its original position, the dropper 17 can inject 5% nitric acid solution into the test tube 15 to rinse the inside of the test tube 15, and the rinsed solution is poured into the funnel 11 again.

Claims

1. An apparatus for batch mixing detection solutions, characterized in that: It includes several mixed flasks arranged at intervals. Above the mixed flasks, there is a funnel extending into the mixed flasks. On one side above the funnel, there are test tubes that can be rotated and poured synchronously. Above the test tubes, there are corresponding droppers.

2. The device for batch mixing detection solution according to claim 1, characterized in that: Above the mixed flasks, there is a first support plate. On the first support plate, there are several first positioning holes corresponding to the mixed flasks, and the funnel is placed in the first positioning holes.

3. The device for batch mixing detection solution according to claim 2, characterized in that: At the bottom of the mixed flask, there is a positioning base. On the positioning base, there are positioning grooves arranged at intervals, and the mixed flask is placed in the positioning grooves.

4. A device for batch mixing detection solutions according to claim 1, characterized in that: Above the funnel, there is a second support plate. On the second support plate, there are several second positioning holes arranged at intervals, and the test tubes are placed in the second positioning holes.

5. A device for batch mixing detection solutions according to claim 4, characterized in that: In each of the second positioning holes, there is a friction sleeve fixedly installed. The diameter of the friction sleeve is less than or equal to the diameter of the test tube.

6. The device for batch mixing detection solution according to claim 5, wherein: The friction sleeve is made of silica gel.

7. A device for batch mixing detection solutions according to claim 4, characterized in that: On one side of the second support plate, there is a positioning post. Between the positioning post and the second support plate, there is a rotating shaft. One section of the rotating shaft is sleeved on the positioning post, and the other end of the rotating shaft is rotatably connected to the second support plate.

8. A device for batch mixing detection solutions according to claim 1, characterized in that: Above the test tubes, there is a third support plate. The droppers are fixed on the third support plate, and a conduit extends from the top of each dropper.

9. The device for batch mixing detection solution according to claim 2, wherein: The first support plate, the second support plate, and the third support plate are all rotatably installed on the left positioning post.

10. A device for batch mixing detection solutions according to claim 1, characterized in that: On the right side of the mixed flask, there is a receiving seat. In the receiving seat, there are several card slots, and the first support plate, the second support plate, and the third support plate are all stuck in the card slots.