Liquid bubble visual monitoring device

By using a liquid bubble visual monitoring device, which combines a microscope and camera with a light source and filters, the problems of unsuitability and insufficient accuracy in observing mixtures are solved, enabling real-time and accurate monitoring and recording of mixture bubbles.

CN224535815UActive Publication Date: 2026-07-21JIANGSU PROVINCE YIXING CITY DINGSHU SECONDARY VOCATIONAL SCHOOL
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
JIANGSU PROVINCE YIXING CITY DINGSHU SECONDARY VOCATIONAL SCHOOL
Filing Date
2025-06-23
Publication Date
2026-07-21

AI Technical Summary

Technical Problem

Existing technologies are not suitable for real-time and accurate observation of all mixtures, and the observation accuracy is insufficient.

Method used

Design a visual monitoring device for liquid bubbles, including a solution tank, a monitoring mechanism, and a bubble collection mechanism. Using a microscope and a camera, and through illumination from a light source and filtering with a filter, the device enables real-time monitoring and image recording of bubbles.

Benefits of technology

It enables real-time and accurate monitoring and recording of bubbles in mixtures, and is applicable to all types of mixtures, demonstrating high applicability and practicality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to detection device technical field, concretely is a kind of liquid bubble visual monitoring device, including the monitoring mechanism of being worn in the lateral wall of solution bucket and the bubble collection mechanism being installed at the end of monitoring mechanism;Bubble collection mechanism is arranged in the inside of solution bucket, and monitoring mechanism includes the telescopic lens barrel being worn in the lateral wall of solution bucket, microscope and camera are installed in telescopic lens barrel first end portion in proper order and the observation assembly being installed in telescopic lens barrel second end portion;Observation assembly is located in bubble collection mechanism.This patent is collected by bubble collection mechanism, and bubble is circulated to observation assembly position, and real-time image of bubble can be photographed by microscope and telescopic lens barrel cooperation, camera. This structure not only can be monitored and recorded to mixture bubble in real time by the high-speed shooting of camera, and the real-time state of bubble can be more accurately observed, applicable to all types of mixtures, with strong applicability and practicality.
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Description

Technical Field

[0001] This utility model relates to the field of detection device technology, specifically a visual monitoring device for liquid bubbles. Background Technology

[0002] The technology for observing the mixed flow of gas-liquid, solid-liquid, gas-solid, or two immiscible liquids can be applied to many industries, such as energy production, chemical manufacturing, petroleum industry, and pharmaceutical manufacturing, all of which require the observation of the state of mixtures.

[0003] Existing methods for observing mixtures typically acquire information about the mixture through a medium to observe its state. For example, gamma rays can be used to detect mixtures, but due to the strong radioactivity of gamma rays, constant radiation protection is required, and the site conditions are demanding, limiting their practicality. Ultrasonic waves can also be used, but their accuracy is significantly affected when the mixture produces a large number of bubbles, resulting in poor applicability. Detection can also be performed using electrical conductors, but this is only suitable when the mixture is a conductive solution. Optical methods can also be used, but this requires a transparent medium and is unsuitable for turbid mixtures. Therefore, existing methods for observing mixtures are not only unsuitable for all mixtures but also cannot provide real-time observation, and their accuracy is insufficient. Utility Model Content

[0004] Given that existing technologies have problems such as being unable to apply to all mixtures, being unable to conduct real-time observations, and having insufficient accuracy, this invention provides a liquid bubble visual monitoring device that can accurately monitor bubbles in mixtures in real time.

[0005] This utility model provides a liquid bubble visual monitoring device, including a solution tank, a monitoring mechanism passing through the side wall of the solution tank, and a bubble collecting mechanism installed at the end of the monitoring mechanism; the bubble collecting mechanism is disposed inside the solution tank.

[0006] The monitoring mechanism includes: a telescopic lens tube inserted through the side wall of the solution tank, a microscope and a camera sequentially installed at the first end of the telescopic lens tube, and an observation component installed at the second end of the telescopic lens tube; the observation component is located inside the bubble collection mechanism and is used to monitor the bubble information in the solution tank in real time.

[0007] Furthermore, the observation assembly includes a light source bracket installed at the second end of the telescopic lens tube, and a light source installed on the light source bracket facing the telescopic lens tube; the light source bracket has an observation cavity in the middle for the passage of bubbles, and the bubbles in the observation cavity are collected by the telescopic lens tube.

[0008] Furthermore, the bubble collection mechanism includes: a bubble detection barrel installed with the telescopic mirror tube, and a conical bubble collection barrel installed with the bottom of the bubble detection barrel; the large-diameter end of the bubble collection barrel is close to the liquid in the solution barrel, and the small-diameter end of the bubble collection barrel is integrally formed with the bubble detection barrel.

[0009] Furthermore, the bubble detection barrel is provided with a flow chamber for the flow of bubbles, and the observation component is disposed within the flow chamber.

[0010] Furthermore, the telescopic lens tube includes: a telescopic sleeve installed on the solution tank, a telescopic ring that extends and retracts within the telescopic sleeve, and a filter installed within the telescopic ring, the filter being used to filter diffuse reflection in the observed bubble.

[0011] Furthermore, the telescopic lens tube is provided with a through hole for installing the light source wires.

[0012] Furthermore, the telescopic lens tube and the solution tank are detachably installed.

[0013] Furthermore, the telescopic lens tube and the bubble detection barrel are detachably installed.

[0014] Compared with the prior art, the beneficial effects of this utility model are:

[0015] This utility model patent utilizes a bubble-collecting mechanism to collect bubbles generated in the mixture within a solution tank, allowing the bubbles to flow to the observation component. Through the cooperation of a microscope and a telescopic lens, a camera can capture real-time images of the bubbles. By extracting these images, the state of the bubbles can be observed and recorded accurately in real time. This structure not only enables real-time monitoring and recording of bubbles in the mixture through high-speed camera shooting, but also allows for more precise observation of the bubble's real-time state through image capture. Furthermore, it is applicable to all types of mixtures, demonstrating strong applicability and practicality.

[0016] It should be understood that the description in this utility model description section is not intended to limit the key or essential features of the embodiments of this utility model, nor is it intended to restrict the scope of this utility model. Other features of this utility model will become readily apparent from the following description. Attached Figure Description

[0017] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0018] Figure 1 This is a first-person view structural diagram of the monitoring device.

[0019] Figure 2 This is a second-view structural diagram of the monitoring device.

[0020] Figure 3 This is a structural diagram of some parts of the monitoring device.

[0021] Figure 4 This is a structural diagram of the monitoring agency.

[0022] Figure 5 This is a structural diagram of the bubble collecting mechanism.

[0023] The diagram is labeled as follows: 1. Solution tank; 2. Monitoring mechanism; 21. Telescopic lens tube; 211. Telescopic sleeve; 212. Telescopic ring; 23. Microscope; 24. Camera; 25. Observation components; 251. Light source support; 252. Light source; 253. Observation cavity;

[0024] 3. Bubble collection mechanism; 31. Bubble detection container; 32. Bubble collection container; 33. Flow chamber. Detailed Implementation

[0025] The present invention will now be described in further detail with reference to the accompanying drawings. These drawings are simplified schematic diagrams, illustrating only the basic structure of the present invention, and therefore only show the components relevant to the present invention.

[0026] It should be noted that when a component is referred to as being "fixed to" or "set on" another component, it can be directly on or indirectly set on the other component; when a component is referred to as being "connected to" another component, it can be directly connected to or indirectly connected to the other component.

[0027] It should be understood that the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", and "outer" indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or component referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this application.

[0028] like Figure 2 As shown, the first end of the telescopic lens tube 21 is located outside the solution tank 1, and the second end of the telescopic lens tube 21 is located inside the solution tank 1.

[0029] Example 1:

[0030] Please refer to Figures 1-5 This utility model provides a liquid bubble visual monitoring device, including: a solution tank 1, a monitoring mechanism 2 passing through the side wall of the solution tank 1, and a bubble collecting mechanism 3 installed at the end of the monitoring mechanism 2; the bubble collecting mechanism 3 is located inside the solution tank 1.

[0031] The monitoring mechanism 2 includes: a telescopic lens tube 21 inserted through the side wall of the solution tank 1, a microscope 23 and a camera 24 installed sequentially at the first end of the telescopic lens tube 21, and an observation component 25 installed at the second end of the telescopic lens tube 21; the observation component 25 is located inside the bubble collection mechanism 3 and is used to monitor the bubble information in the solution tank 1 in real time.

[0032] In this embodiment, the bubble-collecting mechanism 3 collects the bubbles generated by the mixture in the solution tank 1 and allows the bubbles to flow to the observation component 25. Through the cooperation of the microscope 23 and the telescopic lens tube 21, the camera 24 can capture real-time images of the bubbles. By extracting the images, the state of the bubbles can be observed accurately in real time and recorded. This structure not only enables real-time monitoring and recording of bubbles in the mixture through high-speed imaging by the camera 24, but also allows for more precise observation of the real-time state of the bubbles through image capture. Furthermore, it is applicable to all types of mixed liquids, exhibiting strong applicability and practicality.

[0033] In this embodiment, the telescopic lens tube 21 is fixedly installed on the wall of the solution tank 1, and the solution tank 1 can provide support for the monitoring mechanism 2. The camera 24 takes pictures of the bubble located at the observation component 25. The microscope 23 can be set to adjust the display magnification of the bubble's image and can also be scaled up and down. The telescopic lens tube 21 can be set to adjust the shooting distance between the camera 24 and the bubble, which enhances the adaptability and flexibility of the monitoring mechanism 2, and thus enhances the overall flexibility of the device.

[0034] like Figure 4 As shown, the observation assembly 25 includes: a light source bracket 251 installed at the second end of the telescopic tube 21, and a light source 252 installed on the light source bracket 251 facing the telescopic tube 21; the light source bracket 251 has an observation cavity 253 for the passage of bubbles in the middle, and the bubbles in the observation cavity 253 are collected by the telescopic tube 21.

[0035] In this embodiment, the bubble flows into the observation cavity 253 and is illuminated by the light source 252, so that the camera 24 can take pictures of the illuminated bubble through the telescopic lens tube 21, resulting in a bright and clear image.

[0036] Furthermore, the telescopic lens tube 21 is provided with a through hole for installing the light source 252 wire. The light source 252 wire passes through the through hole and passes through the side wall of the solution tank 1 to connect with the light source 252 inside the solution tank 1, providing current to the light source 252. The through hole ensures that the light source 252 wire can provide sufficient current to the light source 252 without being damaged.

[0037] like Figure 5As shown, the bubble collection mechanism 3 includes a bubble detection barrel 31 installed with the telescopic mirror barrel 21, and a conical bubble collection barrel 32 installed with the bottom of the bubble detection barrel 31; the large diameter end of the bubble collection barrel 32 is close to the liquid in the solution barrel 1, and the small diameter end of the bubble collection barrel 32 is integrally formed with the bubble detection barrel 31.

[0038] Furthermore, the bubble detection barrel 31 is provided with a flow chamber 33 for the flow of bubbles, and the observation component 25 is disposed within the flow chamber 33.

[0039] In this embodiment, bubbles enter the bubble collection tank 32 through the large-diameter end of the bubble collection tank 32 and flow into the bubble detection tank 31 from the small-diameter end of the bubble collection tank 32. The observation chamber 253 is set in the flow chamber 33. When the bubbles flow into the flow chamber 33, the monitoring mechanism 2 monitors the state of the bubbles in real time and accurately.

[0040] To further explain, the bubble collection mechanism 3 collects the bubbles generated by the mixed liquid in the solution tank 1. The bubbles flow into the bubble collection mechanism 3 through the large diameter end of the bubble collection tank 32 and circulate in the flow chamber 33. When the bubbles circulate in the observation chamber 253, the light source 252 is turned on to illuminate the bubbles in the observation chamber 253. The magnification of the microscope 23 is adjusted adaptively, and the camera 24 takes high-speed, continuous images of the bubbles, which facilitates continuous observation of the real-time state of the bubbles. The real-time state of the bubbles can be recorded by extracting the images.

[0041] like Figure 4 As shown, the telescopic lens tube 21 includes: a telescopic sleeve 211 installed on the solution tank 1, a telescopic ring 212 that extends and retracts within the telescopic sleeve 211, and a filter installed within the telescopic ring 212. The filter is used to filter diffuse reflection in the observed bubble.

[0042] Furthermore, the telescopic lens tube 21 is provided with a through hole for installing the wire of the light source 252.

[0043] In this embodiment, the telescopic ring 212 allows the microscope 23 to be extended or retracted within the telescopic sleeve 211, which can further adjust the distance between the camera 24 and the observed bubble, enhancing the flexibility and adaptability of the monitoring mechanism 2.

[0044] Furthermore, since the bubble is magnified and displayed under the microscope 23, the surface of the bubble is uneven, which will produce diffuse reflection under the illumination of the observation component 25. The telescopic ring 212 is a hollow structure. By setting a filter inside the telescopic ring 212 to filter the diffuse reflection of the observed bubble, the image presented by the camera 24 can not only show the microscopic structure, but also clearly and accurately observe the real-time state of the bubble.

[0045] Furthermore, the telescopic sleeve 211 has a hollow observation cavity inside, through which the camera 24 can monitor and photograph the bubbles in real time. The telescopic lens tube 21 allows the camera 24 to be placed outside the solution tank 1, and the mixed liquid bubbles inside the solution tank 1 can be photographed and monitored by extending the length of the hollow observation cavity.

[0046] Example 2:

[0047] The difference between Example 2 and Example 1 is that the telescopic lens tube 21 and the side wall of the solution tank 1 can be detached and installed, and the telescopic lens tube 21 and the bubble detection tank 31 can be detached and installed.

[0048] Furthermore, the telescopic lens tube 21 can be installed with the solution tank 1 and the bubble detection tank 31 using detachable installation methods such as threaded connection and snap-fit ​​connection. Any detachable installation method that can be conceived by those skilled in the art can be applied here, and will not be elaborated further.

[0049] Furthermore, since it is detachable, the monitoring mechanism 2 and the bubble collecting mechanism 3 can be removed from the solution tank 1 respectively. The camera 24 and microscope 23 are both relatively precise structures, requiring regular maintenance and cleaning to ensure that the captured images are more accurate and clear. The detachable installation method facilitates the overall cleaning and maintenance of the monitoring mechanism 2. The bubble collecting mechanism 3 is located inside the solution tank 1, and the large-diameter end of the bubble collecting tank 32 is close to the surface of the mixture. If the mixture is corrosive, prolonged contact with its surface will cause some damage to the bubble collecting mechanism 3. Therefore, the bubble collecting mechanism 3 needs to be replaced or maintained regularly. The detachable installation method of this embodiment facilitates the replacement and maintenance of the bubble collecting mechanism 3, enabling it to better collect bubbles and further ensuring the overall operating efficiency of the device.

[0050] It should be understood that the specific embodiments described above are only for explaining the present invention and are not intended to limit the present invention. Obvious variations or modifications derived from the spirit of the present invention are still within the protection scope of the present invention.

Claims

1. A visual monitoring device for liquid bubbles, characterized in that, It includes a solution tank (1), a monitoring mechanism (2) passing through the side wall of the solution tank (1), and a bubble collecting mechanism (3) installed at the end of the monitoring mechanism (2); the bubble collecting mechanism (3) is located inside the solution tank (1); The monitoring mechanism (2) includes: a telescopic lens tube (21) inserted through the side wall of the solution tank (1), a microscope (23) and a camera (24) installed sequentially at the first end of the telescopic lens tube (21), and an observation component (25) installed at the second end of the telescopic lens tube (21); the observation component (25) is located inside the bubble collection mechanism (3) and is used to monitor the bubble information in the solution tank (1) in real time.

2. The liquid bubble visual monitoring device according to claim 1, characterized in that, The observation assembly (25) includes: a light source bracket (251) installed at the second end of the telescopic lens tube (21), and a light source (252) installed on the light source bracket (251) facing the telescopic lens tube (21); the light source bracket (251) has an observation cavity (253) for the passage of bubbles in the middle, and the bubbles in the observation cavity (253) are collected by the telescopic lens tube (21).

3. The liquid bubble visual monitoring device according to claim 1, characterized in that, The bubble collection mechanism (3) includes: a bubble detection barrel (31) installed with the telescopic mirror barrel (21), and a conical bubble collection barrel (32) installed with the bottom of the bubble detection barrel (31); the large diameter end of the bubble collection barrel (32) is close to the liquid in the solution barrel (1), and the small diameter end of the bubble collection barrel (32) is integrally formed with the bubble detection barrel (31).

4. The liquid bubble visual monitoring device according to claim 3, characterized in that, The bubble detection barrel (31) is provided with a flow chamber (33) for the flow of bubbles, and the observation component (25) is disposed in the flow chamber (33).

5. The liquid bubble visual monitoring device according to claim 1, characterized in that, The telescopic lens tube (21) includes: a telescopic sleeve (211) installed on the solution tank (1), a telescopic ring (212) that extends and retracts within the telescopic sleeve (211), and a filter installed within the telescopic ring (212), the filter being used to filter diffuse reflection in the observed bubble.

6. The liquid bubble visual monitoring device according to claim 2, characterized in that, The telescopic lens tube (21) is provided with a through hole for installing the wire of the light source (252).

7. The liquid bubble visual monitoring device according to claim 1, characterized in that, The telescopic lens tube (21) and the solution tank (1) are detachably installed.

8. The liquid bubble visual monitoring device according to claim 3, characterized in that, The telescopic lens tube (21) and the bubble detection barrel (31) are detachable and installable.