Chlorine gas detection device in mineral water production
By designing a chlorine detection device for mineral water production, the problem of existing equipment being limited to single-tube detection was solved, enabling simultaneous detection of multiple tubes, improving detection efficiency and accuracy, and meeting the demand for rapid and efficient detection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-12
- Publication Date
- 2026-04-03
AI Technical Summary
Existing chlorine residue detection equipment in mineral water production can only test one test tube at a time, resulting in long testing times and low efficiency when multiple tests are conducted, making it difficult to meet the demand for rapid and efficient testing.
A chlorine detection device for mineral water production was designed, including a base plate, frame, stage, and limiting seat. It can simultaneously hold multiple sets of test tubes and achieve uniform mixing of reagents and samples through a motor and turntable, thereby improving detection efficiency and accuracy.
It enables simultaneous testing of multiple test tubes, reducing testing time, improving testing efficiency and accuracy, and ensuring the stability and accuracy of the testing process.
Smart Images

Figure CN224081620U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of chlorine detection technology, specifically a chlorine detection device for mineral water production. Background Technology
[0002] With increasing public concern about drinking water safety, chlorine is used in the production of mineral water to denature the proteins of bacteria, viruses, and other microorganisms in the water, thereby achieving disinfection and ensuring the hygiene and safety of drinking mineral water.
[0003] However, excessive chlorine may have negative effects on human health, such as irritating the respiratory tract and skin. Therefore, in the mineral water production process, detecting chlorine residue in mineral water is a key step to ensure product quality and safety. Through long-term observation, it has been found that existing methods for detecting chlorine residue typically involve placing a mineral water sample into a test tube, adding DPD or other reagents to the test tube for reaction, and then comparing the resulting compounds to determine the residual chlorine. However, the testing equipment usually only allows one test tube to be placed at a time. When multiple tests are required, each test tube must be measured sequentially, resulting in a long testing time.
[0004] Therefore, this utility model provides a chlorine detection device for mineral water production. Utility Model Content
[0005] To overcome the shortcomings of existing technologies and solve at least one of the problems mentioned in the background art, a chlorine detection device for mineral water production is proposed.
[0006] The technical solution adopted by this utility model to solve its technical problem is as follows: The chlorine detection device in mineral water production of this utility model includes a base plate, a frame fixed to the top, a platform installed inside the frame, multiple placement holes in the middle of the platform, a support plate fixed to the bottom of the platform, and multiple limiting seats fixed to the top of the support plate. The limiting seats are arranged correspondingly to the placement holes and have an arc-shaped structure. Through the above structure, with the base plate, frame, platform, and placement holes, and in conjunction with the support plate and limiting seats, it is convenient to place multiple sets of test tubes at the same time during detection, so as to reduce the detection time and improve the detection efficiency.
[0007] Preferably, a pair of sliding grooves are symmetrically provided in the middle of the frame, multiple sliders are fixed to the side wall of the frame, a motor is fixed to the side wall of the frame, a turntable is fixed to the output end of the motor, a connecting rod is hinged to the top of the turntable, the connecting rod and the turntable are eccentrically connected, and the end of the connecting rod is hinged to the side wall of the frame. With the above structure, the motor, turntable and connecting rod are set to facilitate more uniform mixing of reagents and samples during detection, thereby reducing reaction time and improving detection accuracy.
[0008] Preferably, the top of the frame is fixed with multiple fixing frames, which are arranged corresponding to the placement holes. A bidirectional screw is rotatably connected to the middle of the fixing frame, and a pair of clamps are symmetrically threaded to the middle of the bidirectional screw. Through the above structure, the bidirectional screw and clamps can improve the stability of the test tube position during testing.
[0009] Preferably, a fixing frame is fixedly connected to the top of the frame, and a sliding plate is slidably connected inside the fixing frame. A limiting hole is opened in the middle of the sliding plate, and a fixing pin is placed in both the fixing frame and the limiting hole. With the above structure, the fixing frame and the sliding plate can reduce the situation where the solution inside the test tube is thrown out from the top when the test tube is moved, thereby improving the stability during detection.
[0010] Preferably, a pair of legs are symmetrically fixed to the bottom of the base plate, and the pair of legs have an eight-shaped structure. A counterweight is fixed to the bottom of the base plate. Through the above structure, the legs and counterweight can improve the stability of the overall position during testing, so as to reduce the possibility of the entire platform tipping over due to inertia when it moves.
[0011] Preferably, multiple rollers are fixedly connected to both the top and bottom of the slider, and the multiple rollers are in contact with the surface of the slide groove. Through the above structure, the rollers are connected to the slider, which can reduce the friction between the slider and the slide groove, thereby reducing the wear between the slide groove and the slider.
[0012] The beneficial effects of this utility model are as follows:
[0013] 1. The chlorine detection device for mineral water production described in this utility model, by setting a base plate, frame, platform, and placement hole, and cooperating with a support plate and limiting seat, can facilitate the simultaneous placement of multiple sets of test tubes during detection, thereby reducing the detection time and improving detection efficiency.
[0014] 2. The chlorine detection device for mineral water production described in this utility model, by setting up a motor, turntable and connecting rod, can facilitate more uniform mixing of reagents and samples during detection, thereby reducing reaction time and improving detection accuracy. Attached Figure Description
[0015] The present invention will be further described below with reference to the accompanying drawings.
[0016] Figure 1 This is a perspective view of the present invention;
[0017] Figure 2 This is a schematic diagram of the frame structure in this utility model;
[0018] Figure 3 This is a schematic diagram of the structure of the skateboard in this utility model;
[0019] Figure 4 This is a schematic diagram of the structure of the fixed frame in this utility model;
[0020] Figure 5 This is a schematic diagram of the support leg in this utility model.
[0021] Legend:
[0022] 1. Base plate; 11. Frame; 12. Storage platform; 13. Storage hole; 14. Support plate; 15. Limiting seat; 2. Slide rail; 21. Slider; 22. Motor; 23. Turntable; 24. Connecting rod; 3. Fixing frame; 31. Double-acting screw; 32. Clamp; 4. Fixing bracket; 41. Slide plate; 42. Limiting hole; 43. Fixing pin; 5. Support leg; 51. Counterweight; 6. Roller; 7. Rubber pad. Detailed Implementation
[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0024] Specific implementation examples are given below.
[0025] like Figures 1 to 5 As shown in the figure, a chlorine detection device for mineral water production according to an embodiment of the present invention includes a base plate 1, a frame 11 fixedly connected to the top, a platform 12 installed inside the frame 11, a plurality of placement holes 13 opened in the middle of the platform 12, a support plate 14 fixedly connected to the bottom of the platform 12, and a plurality of limiting seats 15 fixedly connected to the top of the support plate 14. The limiting seats 15 are correspondingly arranged with respect to the placement holes 13, and the limiting seats 15 have an arc-shaped structure. During operation, the base plate 1 is placed on the operating table, and then the device containing the chlorine gas is placed on the platform. Test tubes containing the same sample are inserted into the placement hole 13. At this time, the limiting seat 15 will contact the bottom of the test tube to support it. Then, the test reagent is added into the test tube to react. After the reaction is completed, the resulting compounds are compared to obtain the test results. With the above structure, the base plate 1, frame 11, stage 12, and placement hole 13 are set up. Together with the support plate 14 and limiting seat 15, it is convenient to place multiple sets of test tubes at the same time during the test, so as to reduce the time required for the test and improve the efficiency of the test.
[0026] like Figure 2 and Figure 3As shown, a pair of sliding grooves 2 are symmetrically opened in the middle of the frame 11. Multiple sliders 21 are fixed to the side wall of the frame 11. A motor 22 is fixed to the side wall of the frame 11. A turntable 23 is fixed to the output end of the motor 22. A connecting rod 24 is hinged to the top of the turntable 23. The connecting rod 24 and the turntable 23 are eccentrically connected. The end of the connecting rod 24 is hinged to the side wall of the frame 11. During operation, after the test reagent is added to the test tube, the motor 22 is started to drive the turntable 23 to rotate. At this time, the turntable 23 will drive the stage 12 to slide back and forth in the frame 11. This will cause the reagent and liquid in the test tube to shake, thereby making the reagent and sample mix more evenly. Through the above structure, the motor 22, the turntable 23 and the connecting rod 24 are set to make the reagent and sample mix more evenly during the test, thereby reducing the reaction time and improving the accuracy of the test.
[0027] like Figure 1 and Figure 4 As shown, multiple fixing frames 3 are fixed to the top of the frame 11. The fixing frames 3 are correspondingly set with the placement holes 13. A bidirectional screw 31 is rotatably connected to the middle of the fixing frame 3. A pair of clamps 32 are symmetrically threaded to the middle of the bidirectional screw 31. During operation, after the test tube is inserted into the placement hole 13, the pair of clamps 32 can be moved in opposite directions by rotating the bidirectional screw 31. When the bidirectional screw 31 is rotated in the forward direction, the clamps 32 can be moved closer to each other, thereby clamping and fixing the test tube from the middle. After the reaction is completed, the bidirectional screw 31 is reversed to move the clamps 32 away from the test tube, thereby releasing the fixation of the test tube. Through the above structure, the bidirectional screw 31 and clamps 32 can improve the stability of the test tube position during testing.
[0028] like Figure 3 As shown, a fixing frame 4 is fixedly connected to the top of the frame 11. A sliding plate 41 is slidably connected inside the fixing frame 4. A limiting hole 42 is opened in the middle of the sliding plate 41. A fixing pin 43 is placed in both the fixing frame 4 and the limiting hole 42. During operation, after the test tube is fixed, the fixing pin 43 is removed and the sliding plate 41 is pushed to cover the top of the test tube. Then, the fixing pin 43 is inserted into the fixing frame 4 and the limiting hole 42. At this time, the sliding plate 41 can be fixed. After the test is completed, the sliding plate 41 is pulled away from the top of the test tube. Through the above structure, the fixing frame 4 and the sliding plate 41 can reduce the situation where the solution inside the test tube is thrown out from the top when the test tube is moved, thereby improving the stability during the test.
[0029] like Figure 5As shown, a pair of legs 5 are symmetrically fixed to the bottom of the base plate 1. The pair of legs 5 have an eight-shaped structure. A counterweight 51 is fixed to the bottom of the base plate 1. During operation, when the base plate 1 is placed on the testing table, the legs 5 provide overall support from below the base plate 1, and the counterweight 51 can lower the overall center of gravity. Through the above structure, the legs 5 and the counterweight 51 can improve the stability of the overall position during testing, so as to reduce the possibility of the entire platform 12 tipping over due to inertia when it moves.
[0030] like Figure 3 As shown, multiple rollers 6 are fixed to the top and bottom of the slider 21. The multiple rollers 6 are in contact with the surface of the slide groove 2. During operation, when the platform 12 drives the slider 21 to slide in the slide groove 2, the rollers 6 are in contact with the surface of the slide groove 2 and can rotate when the slider 21 moves, thereby converting the sliding friction between the slider 21 and the slide groove 2 into rolling friction. Through the above structure, the rollers 6 are set to connect the slider 21, which can reduce the friction between the slider 21 and the slide groove 2, thereby reducing the wear between the slide groove 2 and the slider 21.
[0031] like Figure 4 As shown, a rubber pad 7 is fixed to the side wall of the clamp 32. During operation, when the clamp 32 clamps and fixes the test tube, the rubber pad 7 will contact the surface of the test tube. Through the above structure, the rubber pad 7 can increase the friction between the clamp 32 and the test tube, and reduce the wear between the test tube and the clamp 32 when the test tube rotates with the platform 12.
[0032] Working principle: During testing, the base plate 1 is placed on the operating table, and test tubes containing different samples are inserted into the placement holes 13. At this time, the limiting seat 15 will contact the bottom of the test tube to support it. Then, the test reagent is added to the test tube to react. After the reaction, the resulting compounds are compared to obtain the test results. After the test reagent is added to the test tube, the motor 22 is started to drive the turntable 23 to rotate. At this time, the turntable 23 will drive the placement stage 12 to slide back and forth within the frame 11, which can make the reagent and liquid in the test tube shake, thereby making the reagent and sample mix more evenly. After the test tube is inserted into the placement hole 13, the double-acting screw 31 can be rotated to drive a pair of clamps 32 to move in opposite directions. When the double-acting screw 31 is rotated in the forward direction, the clamps 32 can be moved closer to each other, thereby clamping the test tube from the middle. After the reaction is complete, reverse the double-ended screw 31 to move the clamp 32 away from the test tube, thus releasing the fixation of the test tube. After the test tube is fixed, remove the fixing pin 43 and push the slide plate 41 to cover the top of the test tube. Then insert the fixing pin 43 into the fixing frame 4 and the limiting hole 42. At this time, the slide plate 41 can be fixed. After the test is completed, pull the slide plate 41 away from the top of the test tube. When the base plate 1 is placed on the test table, the support leg 5 provides overall support from below the base plate 1, and the counterweight 51 can lower the overall center of gravity. When the platform 12 drives the slider 21 to slide in the slide groove 2, the roller 6 contacts the surface of the slide groove 2 and can rotate when the slider 21 moves, thereby converting the sliding friction between the slider 21 and the slide groove 2 into rolling friction. When the clamp 32 clamps and fixes the test tube, the rubber pad 7 will contact the surface of the test tube.
[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. A device for detecting chlorine in the production of mineral water, comprising a base plate (1), characterised in that: The top is fixedly connected with a frame (11), a storage table (12) is installed in the frame (11), a plurality of storage holes (13) are formed in the middle of the storage table (12), a support plate (14) is fixedly connected to the bottom of the storage table (12), a plurality of limiting seats (15) are fixedly connected to the top of the support plate (14), the limiting seats (15) are correspondingly arranged with the storage holes (13), and the limiting seats (15) are in an arc-shaped structure.
2. The device for detecting chlorine in the production of mineral water according to claim 1, characterized in that: A pair of sliding grooves (2) are symmetrically formed in the middle of the frame (11), a plurality of sliding blocks (21) are fixedly connected to the side walls of the frame (11), a motor (22) is fixedly connected to the side wall of the frame (11), a rotating disc (23) is fixedly connected to the output end of the motor (22), a connecting rod (24) is hingedly connected to the top of the rotating disc (23), the connecting rod (24) and the rotating disc (23) are in an eccentric structure, and the connecting rod (24) is hingedly connected to the side wall of the frame (11).
3. The device for detecting chlorine in the production of mineral water according to claim 2, characterized in that: A plurality of fixed frames (3) are fixedly connected to the top of the frame (11) and correspondingly arranged with the storage holes (13), a bidirectional screw rod (31) is rotatably connected to the middle of each fixed frame (3), and a pair of clamps (32) are symmetrically and threadedly connected to the middle of the bidirectional screw rod (31).
4. The device for detecting chlorine in the production of mineral water according to claim 3, characterized in that: A fixing frame (4) is fixedly connected to the top of the frame (11), a sliding plate (41) is slidably connected in the fixing frame (4), a limiting hole (42) is formed in the middle of the sliding plate (41), and a fixing pin (43) is placed in the fixing frame (4) and the limiting hole (42).
5. The device for detecting chlorine in the production of mineral water according to claim 4, characterized in that: A pair of supporting legs (5) are symmetrically fixed to the bottom of the bottom plate (1), and the pair of supporting legs (5) are in a spread-finger structure.
6. The device for detecting chlorine in the production of mineral water according to claim 5, characterized in that: A plurality of rollers (6) are fixedly connected to the top and the bottom of the sliding block (21) and in surface contact with the sliding grooves (2).
7. The device for detecting chlorine in the production of mineral water according to claim 6, characterized in that: The side wall of the clamp (32) is fixedly connected with a rubber pad (7).