A bottled water lamp detection device
Patent Information
- Application Number
- CN202521972940.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-15
- Publication Date
- 2026-08-21
- Estimated Expiration
- 2035-09-15
AI Technical Summary
[0003]现有的瓶装水质量灯检中,大多是将桶装水静置在桌面上,然后通过强光照射瓶内直接观察瓶内水的情况,由于传统的灯检方式大多是在静止的水中进行,水如果不动,悬浮在水中的细小颗粒和沉淀物等可能会沉淀到底部,导致观察者在灯光照射下无法发现这些杂质,会造成视觉上的误判,使得一些细小的杂质难以被识别,影响了检测的准确性
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Figure CN224667649U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of bottled water testing technology, and in particular to a bottled water lamp inspection device. Background Technology
[0002] Bottled water refers to drinking water packaged in plastic containers, typically used in homes, offices, and other places. With people's increasing demands for drinking water safety and quality, bottled water, as a common drinking water supply method, has received more and more attention for its quality and safety. Ensuring that bottled water is not contaminated during production, storage, and transportation is a key link in guaranteeing its safe drinking, thus requiring a bottled water light inspection device.
[0003] In existing bottled water quality inspections, the bottled water is mostly placed on a table and then the inside of the bottle is directly observed by shining a strong light on it. Since traditional light inspections are mostly conducted in still water, if the water does not move, fine particles and sediments suspended in the water may settle to the bottom, making these impurities undetectable under the light. This can lead to visual misjudgment and make it difficult to identify some small impurities, thus affecting the accuracy of the inspection. Utility Model Content
[0004] The purpose of this invention is to address the shortcomings of existing technologies by proposing a bottled water lamp inspection device.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A bottled water inspection device includes an operating table. A toothed ring is fixed at the center of the top of the operating table. A first circular plate is rotatably connected to the top of the toothed ring. A second circular plate is disposed on the top of the first circular plate. A first rotating mechanism for rotating the first and second circular plates is disposed at the bottom of the operating table. Multiple circular holes are equidistantly arranged in a circle on the top of the second circular plate. Multiple circular seats are rotatably connected to the top of the first circular plate in a circle. Multiple toothed rings are located below the second circular plate, and the multiple circular seats correspond one-to-one with the multiple circular holes. A second rotating mechanism for rotating the circular seats is disposed at the bottom of each of the multiple circular seats. Circular grooves are formed on the top of each of the multiple circular seats, and fixing mechanisms for fixing the bottle are disposed inside each of the multiple circular grooves. A semi-circular block is fixed to one end of the top of the operating table. The inner wall has an installation groove, and multiple LED tubes are installed inside the installation groove. The inner wall of the semi-circular block is provided with a sealing mechanism for sealing the installation groove. During use, the device clamps and fixes the water bucket through the fixing mechanism. Through the cooperation of the first and second rotating mechanisms, the bottled water is rotating on its own axis while revolving around the sun, causing the water to slosh around, thereby preventing impurities and sediments from settling to the bottom and ensuring that impurities are distributed in the water. Combined with the illumination of the LED tubes, the water quality can be observed from all directions without blind spots, increasing the identification effect of impurities and pollutants and improving the accuracy of water impurity detection. The sealing mechanism on the semi-circular block can prevent dust from falling on the surface of the LED tubes when they are not in use, which helps maintain the light intensity and reduces the risk of dust affecting the detection results.
[0007] As a further embodiment of this utility model, the fixing mechanism includes two arc-shaped clamping blocks, which are symmetrically arranged inside one of the circular grooves. A sliding groove is formed through the middle of the bottom of one of the circular seats. Two lead screw nuts are symmetrically arranged on the inner sidewall of the sliding groove. One end of each lead screw nut is fixed to one of the two arc-shaped clamping blocks. Two support plates are symmetrically fixed to the bottom of one of the circular seats. The same bidirectional lead screw is rotatably connected to the inner sidewall of the two support plates. One end of each lead screw nut is sleeved on the sidewall of the bidirectional lead screw, and both lead screw nuts are adapted to the bidirectional lead screw. A transmission block is rotatably connected to the outer sidewall of one of the support plates, and the transmission block is fixed to one end of the bidirectional lead screw. By using a handheld power component in conjunction with multiple transmission blocks, multiple bidirectional lead screws are driven to rotate. Under the constraint of multiple sliding grooves, multiple arc-shaped clamping blocks are driven to move closer to each other until they are tightly fitted to the outer wall of the water bucket, thus completing the clamping and fixing of the water bucket.
[0008] As a further embodiment of this utility model, the first rotating mechanism includes a rotating shaft, which is disposed through the middle of the top of the operating table. The first circular plate is fixedly sleeved on the side wall of the rotating shaft, and the second circular plate is fixed to the top of the rotating shaft. A motor is fixed at the bottom of the operating table, and the output shaft of the motor is fixed to the bottom of the rotating shaft. The driving motor, in conjunction with the rotating shaft, drives the first circular plate and the second circular plate to rotate simultaneously, so that the bottled water moves in a circular motion along the direction of multiple LED tubes.
[0009] As a further embodiment of this utility model, the second rotating mechanism includes a connecting shaft, which is fixed at the center of the bottom of one of the circular seats, and one end of the connecting shaft passes through the bottom of the first circular plate. A gear is fixedly sleeved on the side wall of the connecting shaft, and the gear meshes with a gear ring. Under the action of the gear ring and multiple gears, multiple connecting shafts are driven to rotate, which in turn drives multiple circular seats to rotate, causing the water in the bucket to be in a swaying state. This allows impurities in the water to be distributed in the bucket, avoiding sedimentation and improving the accuracy of the test results.
[0010] As a further embodiment of this utility model, the sealing mechanism includes an arc-shaped plate, which is slidably connected to the inner wall of a semi-circular block. Two protrusions are fixed to the symmetrical inner walls of the semi-circular block. Limiting grooves are provided at both symmetrical ends of the arc-shaped plate, with each limiting groove corresponding to one of the two protrusions. An electric telescopic rod is fixed to one end of the top of the operating platform. A connecting plate is fixed to the output end of the electric telescopic rod, and one end of the connecting plate is fixed to the arc-shaped plate. Driving the electric telescopic rod, in conjunction with the connecting plate, allows the arc-shaped plate to gradually move downwards along the inner wall of the semi-circular block under the constraint of the two protrusions and the two limiting grooves. This ensures that multiple LED tubes are covered when not in use, preventing dust from falling onto the surface of the LED tubes and preventing dust from blocking or absorbing some light, thus reducing the light intensity emitted by the LED tubes. This also prevents certain impurities or contaminants from being effectively identified.
[0011] The beneficial effects of this utility model are as follows:
[0012] 1. During use, this device clamps and fixes the water bucket using a fixing mechanism. Through the cooperation of the first and second rotating mechanisms, the bottled water rotates on its own axis while revolving around the central axis, causing the water to slosh around. This prevents impurities and sediments from settling to the bottom, ensuring that impurities are distributed in the water. Combined with the illumination of LED tubes, the water quality can be observed from all angles without blind spots, increasing the identification effect of impurities and pollutants and improving the accuracy of water impurity detection.
[0013] 2. By using a sealing mechanism on the semi-circular block, dust can be prevented from falling on the surface of the LED tubes when they are not in use. This helps maintain the intensity of the light and reduces the risk of dust affecting the test results. Attached Figure Description
[0014] Figure 1 This is a schematic diagram of the structure of a bottled water lamp detection device proposed in this utility model;
[0015] Figure 2 This is a schematic diagram showing the semi-circular block and arc plate of a water tank light inspection device proposed in this utility model.
[0016] Figure 3 This is a schematic diagram showing the unfolded cross-section of a semi-circular block of a water lamp inspection device proposed in this utility model;
[0017] Figure 4 This is a schematic cross-sectional view of the first and second circular plates of a bottled water lamp inspection device proposed in this utility model.
[0018] Figure 5 This is a schematic diagram of the bottom of the first circular plate of a bottled water lamp inspection device proposed in this utility model;
[0019] Figure 6 This is a schematic cross-sectional view of the circular base of a water lamp detection device for bottled water proposed in this utility model;
[0020] Figure 7 This is a schematic diagram of the fixing mechanism of a bottled water lamp inspection device proposed in this utility model.
[0021] In the diagram: 1. Operating platform; 2. Semi-circular block; 3. Arc-shaped plate; 4. Electric telescopic rod; 5. Connecting plate; 6. Gear ring; 7. First circular plate; 8. Second circular plate; 9. Circular hole; 10. LED tube; 11. Protrusion; 12. Limiting groove; 13. Rotating shaft; 14. Motor; 15. Gear; 16. Circular seat; 17. Connecting shaft; 18. Arc-shaped clamping block; 19. Slide groove; 20. Support plate; 21. Lead screw nut; 22. Bidirectional lead screw; 23. Transmission block. Detailed Implementation
[0022] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.
[0023] Reference Figure 1 - Figure 7A bottled water inspection device includes an operating table 1. A toothed ring 6 is fixed at the center of the top of the operating table 1. A first circular plate 7 is rotatably connected to the top of the toothed ring 6. A second circular plate 8 is provided on the top of the first circular plate 7. A first rotating mechanism for rotating the first circular plate 7 and the second circular plate 8 is provided at the bottom of the operating table 1. Multiple circular holes 9 are equally spaced and circularly formed on the top of the second circular plate 8. Multiple circular seats 16 are equally spaced and rotatably connected to the top of the first circular plate 7. The toothed ring 6 is located below the second circular plate 8, and the multiple circular seats 16 correspond one-to-one with the multiple circular holes 9. A second rotating mechanism for rotating the circular seats 16 is provided at the bottom of each of the multiple circular seats 16. Circular grooves are provided on the top of each of the multiple circular seats 16, and fixing mechanisms for fixing the bottle are provided inside the multiple circular grooves. A semi-circular block 2 is fixed to one end of the top of the operating table 1. An installation groove is provided on the inner wall, and multiple LED tubes 10 are installed inside the installation groove. A sealing mechanism for sealing the installation groove is provided on the inner wall of the semi-circular block 2. During use, the water bucket is clamped and fixed by the fixing mechanism. Through the cooperation of the first rotation mechanism and the second rotation mechanism, the water in the bucket is rotating on its own axis while revolving around the sun, so that the water is in a sloshing state, thereby preventing impurities and sediments from settling to the bottom and ensuring that impurities are distributed in the water. Combined with the illumination of the LED tubes 10, the water quality can be observed from all directions without blind spots, which increases the identification effect of impurities and pollutants and improves the detection accuracy of water impurities. The sealing mechanism set on the semi-circular block 2 can prevent dust from falling on the surface of the LED tubes 10 when they are not in use. This helps to maintain the light intensity and reduces the risk of dust affecting the detection results.
[0024] In this embodiment, the fixing mechanism includes two arc-shaped clamping blocks 18, which are symmetrically arranged inside one of the circular grooves. A sliding groove 19 is provided through the middle of the bottom of one of the circular seats 16. Two screw nuts 21 are symmetrically arranged on the inner sidewall of the sliding groove 19. One end of the two screw nuts 21 is fixed to the two arc-shaped clamping blocks 18 respectively. Two support plates 20 are symmetrically fixed to the bottom of one of the circular seats 16. The same bidirectional screw 22 is rotatably connected to the inner sidewall of the two support plates 20. One end of each screw nut 21 is sleeved on the sidewall of the bidirectional screw 22, and both screw nuts 21 are adapted to the bidirectional screw 22. A transmission block 23 is rotatably connected to the outer sidewall of one of the support plates 20, and the transmission block 23 is fixed to one end of the bidirectional screw 22. By using a hand-held power component in conjunction with multiple transmission blocks 23, multiple bidirectional screws 22 are driven to rotate. Under the restriction of multiple sliding grooves 19, multiple arc-shaped clamping blocks 18 are driven to move closer to each other until they are tightly fitted to the outer wall of the water bucket, thus completing the clamping and fixing of the water bucket.
[0025] In this embodiment, the first rotating mechanism includes a rotating shaft 13, which is disposed through the middle of the top of the operating table 1. A first circular plate 7 is fixedly sleeved on the side wall of the rotating shaft 13, and a second circular plate 8 is fixed to the top of the rotating shaft 13. A motor 14 is fixed at the bottom of the operating table 1, and the output shaft of the motor 14 is fixed to the bottom of the rotating shaft 13. The drive motor 14, in conjunction with the rotating shaft 13, drives the first circular plate 7 and the second circular plate 8 to rotate simultaneously, so that the bottled water moves in a circular motion along the direction of multiple LED tubes 10.
[0026] In this embodiment, the second rotating mechanism includes a connecting shaft 17, which is fixed to the middle of the bottom of one of the circular seats 16. One end of the connecting shaft 17 passes through the bottom of the first circular plate 7. A gear 15 is fixedly sleeved on the side wall of the connecting shaft 17, and the gear 15 meshes with the gear ring 6. Under the action of the gear ring 6 and multiple gears 15, multiple connecting shafts 17 are driven to rotate, which in turn drives multiple circular seats 16 to rotate, causing the water in the bucket to be in a swaying state. This allows impurities in the water to be distributed in the bucket, avoiding sedimentation and improving the accuracy of the test results.
[0027] In this embodiment, the sealing mechanism includes an arc-shaped plate 3, which is slidably connected to the inner wall of the semi-circular block 2. Two symmetrical inner walls of the semi-circular block 2 are fixed with protrusions 11. Limiting grooves 12 are provided at both symmetrical ends of the arc-shaped plate 3, and the two limiting grooves 12 correspond one-to-one with the two protrusions 11. An electric telescopic rod 4 is fixed to one end of the top of the operating table 1. A connecting plate 5 is fixed to the output end of the electric telescopic rod 4, and one end of the connecting plate 5 is fixed to the arc-shaped plate 3. Driving the electric telescopic rod 4 in conjunction with the connecting plate 5, under the constraint of the two protrusions 11 and the two limiting grooves 12, causes the arc-shaped plate 3 to gradually move downwards along the inner wall of the semi-circular block 2. This allows multiple LED tubes 10 to be covered when not in use, preventing dust in the air from falling onto the surface of the LED tubes 10, preventing dust from blocking or absorbing some light, thus reducing the light intensity emitted by the LED tubes 10, and preventing certain impurities or contaminants from being effectively identified.
[0028] Working Principle: During use, randomly selected bottled water is placed one by one into multiple circular seats 16. After completion, the worker uses a handheld power unit in conjunction with multiple transmission blocks 23 to drive multiple bidirectional lead screws 22 to rotate. Under the constraint of multiple sliding grooves 19, multiple arc-shaped clamping blocks 18 are driven to move closer together until they are tightly fitted to the outer wall of the water bottle, thus clamping and fixing the water bottle. After fixing, the power switch of the electric telescopic rod 4 is turned on, driving the electric telescopic rod 4 in conjunction with the connecting plate 5. Under the constraint of two protrusions 11 and two limiting grooves 12, the arc-shaped plate 3 gradually moves upward along the inner wall of the semi-circular block 2, exposing multiple LED tubes 10. This allows the multiple LED tubes 10 to be covered when not in use, preventing dust from falling on the surface of the LED tubes 10 and preventing dust from blocking or absorbing some of the light, thus reducing the light intensity emitted by the LED tubes 10 and preventing... In cases where certain impurities or contaminants cannot be effectively identified, the power switches of multiple LED tubes 10 are turned on. When the multiple LED tubes 10 are powered on, they emit light that illuminates the surface of the water bucket. When the power switch of the motor 14 is turned on, the drive motor 14, in conjunction with the rotating shaft 13, drives the first circular plate 7 and the second circular plate 8 to rotate simultaneously. This causes the bottled water to move in a circular motion along the direction of the multiple LED tubes 10. At the same time, under the action of the gear ring 6 and multiple gears 15, multiple connecting shafts 17 are driven to rotate, which in turn drives multiple circular seats 16 to rotate. This ensures that each water bucket is in both revolution and rotation state when passing the semi-circular block 2, thus providing irradiation of the bottled water without blind spots. Since the water bucket is rotating, the water inside is in a sloshing state, which allows impurities in the water to be distributed in the water bucket, avoiding sedimentation and improving the accuracy of the test results. In this way, workers can complete the testing of the bottled water by observing the condition of the water inside the bucket.
[0029] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.
Claims
1. A bottled water light inspection device, comprising an operating table (1), characterized in that, A toothed ring (6) is fixed at the top center of the operating table (1). A first circular plate (7) is rotatably connected to the top of the toothed ring (6). A second circular plate (8) is provided on the top of the first circular plate (7). A first rotating mechanism for rotating the first circular plate (7) and the second circular plate (8) is provided at the bottom of the operating table (1). Multiple circular holes (9) are equally spaced and circularly formed on the top of the second circular plate (8). Multiple circular seats (16) are equally spaced and rotatably connected to the top of the first circular plate (7). Multiple toothed rings (6) are located below the second circular plate (8). Multiple circular seats (16) and multiple circular holes (9) correspond one-to-one. The bottom of each of the multiple circular seats (16) is provided with a second rotating mechanism for rotating the circular seat (16). The top of each of the multiple circular seats (16) is provided with a circular groove. The inside of each of the multiple circular grooves is provided with a fixing mechanism for fixing the bucket. A semi-circular block (2) is fixed at one end of the top of the operating table (1). The inner side wall of the semi-circular block (2) is provided with an installation groove. Multiple LED tubes (10) are installed inside the installation groove. The inner side wall of the semi-circular block (2) is provided with a sealing mechanism for sealing the installation groove.
2. The bottled water lamp inspection device according to claim 1, characterized in that, The fixing mechanism includes two arc-shaped clamps (18), which are symmetrically arranged inside one of the circular grooves. A sliding groove (19) is provided through the middle of the bottom of one of the circular seats (16). Two lead screw nuts (21) are symmetrically arranged on the inner side wall of the sliding groove (19). One end of the two lead screw nuts (21) is fixed to the two arc-shaped clamps (18) respectively.
3. The bottled water light inspection device according to claim 2, characterized in that, Two support plates (20) are symmetrically fixed at the bottom of one of the circular seats (16). The inner sidewalls of the two support plates (20) are rotatably connected to the same bidirectional lead screw (22). One end of each of the two lead screw nuts (21) is sleeved on the sidewall of the bidirectional lead screw (22), and both lead screw nuts (21) are adapted to the bidirectional lead screw (22). A transmission block (23) is rotatably connected to the outer sidewall of one of the support plates (20), and the transmission block (23) is fixed to one end of the bidirectional lead screw (22).
4. The bottled water lamp inspection device according to claim 1, characterized in that, The first rotating mechanism includes a rotating shaft (13), which is disposed through the middle of the top of the operating table (1). The first circular plate (7) is fixedly sleeved on the side wall of the rotating shaft (13), and the second circular plate (8) is fixed to the top of the rotating shaft (13). A motor (14) is fixed to the bottom of the operating table (1), and the output shaft of the motor (14) is fixed to the bottom of the rotating shaft (13).
5. The bottled water lamp inspection device according to claim 1, characterized in that, The second rotating mechanism includes a connecting shaft (17), which is fixed at the bottom center of one of the circular seats (16), and one end of the connecting shaft (17) passes through the bottom of the first circular plate (7). A gear (15) is fixedly sleeved on the side wall of the connecting shaft (17), and the gear (15) meshes with the gear ring (6).
6. The bottled water lamp inspection device according to claim 1, characterized in that, The sealing mechanism includes an arc plate (3), which is slidably connected to the inner wall of the semi-circular block (2). The two inner walls of the semi-circular block (2) are fixed with protrusions (11). The arc plate (3) has symmetrical grooves (12) at both ends, and the two grooves (12) and the two protrusions (11) correspond one-to-one.
7. A bottled water light inspection device according to claim 6, characterized in that, An electric telescopic rod (4) is fixed to one end of the top of the operating table (1). A connecting plate (5) is fixed to the output end of the electric telescopic rod (4), and one end of the connecting plate (5) is fixed to the arc plate (3).