A grid type bubble removing easy dismounting flow channel

CN224788553UActive Publication Date: 2026-09-22HANGZHOU QINGHONG TECH CO LTD
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Patent Information

Application Number
CN202522326788.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-03
Publication Date
2026-09-22
Estimated Expiration
2035-11-03

AI Technical Summary

Technical Problem

[0002]传统的格栅式除泡易拆卸流通槽存在多种缺陷,例如结构复杂、传感器安装不便、流体流动不稳定等

Benefits of technology

[0026]采用内部挖空设计小模块集成光学部件,减少外部干扰;

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a grid-type defoaming and easily detachable flow channel, relating to the field of flow channel technology. It includes: a main frame, which has a first partition slot, a second partition slot, a water inlet, a drain valve outlet, a water outlet, a flow meter mounting area, internal modules, a level gauge fixing window, a rear cover structure fixing surface, and an upper cover structure fixing surface. This utility model improves integration, simplifies the assembly process, and enhances the stability of fluid flow through modular design. It adopts an integrated or modular assembly method, optimizes the internal flow channel layout, and integrates multiple sensor fixing units, thereby improving measurement accuracy and reliability.
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Description

Technical Field

[0001] This utility model relates to the field of flow channel technology, specifically to a grid-type defoaming and easily detachable flow channel. Background Technology

[0002] Traditional grid-type defoaming and easily detachable flow channels have several drawbacks, such as complex structure, inconvenient sensor installation, and unstable fluid flow. Referring to traditional designs, flow channels are typically assembled in separate parts, resulting in poor sealing and difficult maintenance. Traditional flow channels have large outlet diameters, only supporting natural water flow, and the overflow outlets and rod-shaped sensor mounting ports are scattered, easily causing bubble interference. Some traditional flow channels achieve functionality through a turbidity control unit tank and multiple sensor mounting points, but this results in numerous components, low assembly efficiency, and the added complexity of the pressure relief valve design. Traditional solutions are not only costly to manufacture, but also have unoptimized fluid paths, easily leading to measurement errors. Therefore, there is an urgent need for a compact, highly integrated, and easy-to-maintain grid-type defoaming and easily detachable flow channel. Utility Model Content

[0003] The technical problem to be solved by this utility model is to provide a grid-type defoaming and easy-to-disassemble flow channel. Through modular design, it improves integration, simplifies the assembly process, and enhances the stability of fluid flow. It adopts an integrated or modular assembly method, optimizes the internal flow channel layout, and integrates multiple sensor fixing units, thereby improving measurement accuracy and reliability.

[0004] To solve the above problems, the technical solution provided by this utility model is as follows:

[0005] A grid-type defoaming and easily detachable flow channel is characterized by comprising: a main frame, wherein the main frame is provided with a partition slot one, a partition slot two, a water inlet, a drain valve outlet, a water outlet, a flow meter mounting position, an internal module, a level gauge fixing window, a rear cover structure fixing surface, and an upper cover structure fixing surface.

[0006] The overall framework of the flow channel assembly structure is defined, which integrates multiple key components into a compact design, reduces external piping connections, thereby lowering the risk of fluid leakage and improving equipment reliability. The main frame supports modular assembly through interfaces such as baffle slots, inlets, and drain valve outlets, making it suitable for precision applications such as water quality monitoring and simplifying maintenance procedures.

[0007] Optionally, the partition slots and partition grooves are used to install removable partitions to form multiple fluid chambers.

[0008] The baffle slot is mainly used to install removable baffles, which function to separate fluid chambers into multiple independent processing areas, thereby preventing the mixing of different fluids, reducing bubble buildup, and enhancing the accuracy of turbidity or chemical parameter measurements.

[0009] Optionally, the internal module includes a structure and turbidity power control unit fixing surface, a light source fixing structure block, a turbidity photovoltaic cell control unit fixing surface, a light source lens, and a photovoltaic cell lens.

[0010] The internal module's function lies in the high integration of optical components, such as the turbidity power control unit and lens, to reduce external environmental interference, thereby improving measurement accuracy (such as turbidity detection) and reducing the size of the device, making it suitable for space-constrained applications.

[0011] Optionally, the light source fixing structure block is provided with a light source fixing surface and a reference photocell alignment structure hole for precise alignment of optical components.

[0012] The light source fixing structure block functions to precisely fix the light source and reference photocell. It ensures optical alignment through the light source fixing surface and alignment hole, avoiding measurement errors caused by offset, thereby enhancing the reliability of the turbidity sensor.

[0013] Optionally, the level gauge fixing window is fitted with a level gauge slot pressure block structure, which fixes the level gauge by pressing.

[0014] The function of the level gauge fixing window and level gauge slot pressure block structure is to stably fix the level gauge, prevent displacement caused by vibration or fluid impact, ensure continuous and accurate level readings, and simplify the installation process.

[0015] Optionally, the rear cover structure fixing surface includes an external access wiring structure, a flow channel fixing plate structure, and a back cover plate structure. The external access wiring structure is used to connect external cables, and the flow channel fixing plate structure provides mechanical fixing points.

[0016] The function of the rear cover structure is to provide mechanical support and cable management. It integrates external connections through the external access wiring structure, reducing cable clutter. At the same time, the flow channel fixing plate structure enhances overall stability and facilitates equipment integration.

[0017] Optionally, the upper cover structure fixing surface is provided with a rod-shaped sensor fixing block, fixing block fixing screw holes and upper cover fixing holes. The rod-shaped sensor fixing block is used to install the rod-shaped sensor and fix it through the screw holes.

[0018] The top cover structure's fixing surface and rod-shaped sensor fixing block function to facilitate the installation of various rod-shaped sensors (such as pH or conductivity sensors). The fixing blocks and screw holes enable modular fixing, improving flexibility and maintenance efficiency.

[0019] Alternatively, the rod-shaped sensor mounting block is designed as a modular, replaceable structure.

[0020] The modular design of the rod-shaped sensor mounting block allows for quick replacement of different sensor types, extending the lifespan of the equipment. Its replaceable structure reduces maintenance costs and adapts to diverse monitoring needs.

[0021] Alternatively, the inlet and outlet of the drain valve can use standard interfaces to be directly connected to the flow meter and drain valve to simplify the fluid path.

[0022] The inlet and outlet of the drain valve are designed to simplify the connection with flow meters and drain valves using standard interfaces, enabling precise flow control, reducing pipeline complexity, and minimizing pressure loss.

[0023] Alternatively, the entire structure can be integrally molded by injection molding or CNC machining, using corrosion-resistant engineering plastics.

[0024] The overall structure and material properties ensure the durability and corrosion resistance of the flow channel. The one-piece engineering plastic molding design reduces weight, making it suitable for harsh environments, and standardized production ensures consistency.

[0025] Compared with the prior art, the technical solution provided by this utility model has the following advantages:

[0026] The optical components are integrated into small modules using an internal hollow design, reducing external interference;

[0027] Structural stability is improved by using partition slots and level gauge fixed windows;

[0028] Rapid assembly and maintenance are achieved by using the rear cover structure for fixing and the top cover structure for fixing. Attached Figure Description

[0029] Figure 1 A schematic diagram of the front structure of a grid-type defoaming and easily detachable flow channel proposed for an embodiment of this utility model;

[0030] Figure 2 A schematic diagram of the rear structure of a grid-type defoaming and easily detachable flow channel proposed for an embodiment of this utility model;

[0031] Figure 3 A schematic diagram of the structure of a grid-type defoaming and easily detachable flow channel partition proposed for an embodiment of this utility model;

[0032] Figure 4 A schematic diagram of the structure of the level gauge slot pressure block of the grid-type defoaming and easily detachable flow channel proposed for an embodiment of this utility model;

[0033] Figure 5 A schematic diagram of the fixed surface of the rear cover structure of a grid-type defoaming and easily detachable flow channel proposed for an embodiment of this utility model;

[0034] Figure 6 An internal module of a grid-type defoaming and easily detachable flow channel is proposed for an embodiment of this utility model;

[0035] Figure 7 A light source fixing structure block for a grid-type defoaming and easily detachable flow channel is proposed as an embodiment of this utility model;

[0036] Figure 8 An embodiment of this utility model provides a top cover structure for a grid-type defoaming and easily detachable flow channel;

[0037] Figure 9 An embodiment of this utility model provides a grid-type defoaming, easily detachable, flow-through grooved rod-shaped sensor fixing block structure;

[0038] Figure 10 A schematic diagram of the overall structure of a grid-type defoaming and easily detachable flow channel proposed for an embodiment of this utility model;

[0039] 10. Partition slot one; 20. Partition slot two; 30. Inlet; 100. Drain valve outlet; 40. Flow meter installation location; 50. Outlet; 60. Internal module; 601. Fixing surface of structure and turbidity power control unit; 602. Light source fixing block; 6021. Light source fixing surface; 6022. Reference photocell alignment hole; 603. Turbidity photocell control unit fixing surface; 605. Light source lens; 606. Photocell lens; 70. Level gauge fixing window; 80. Rear cover fixing surface; 801. External connection wiring structure; 802. Flow channel fixing plate structure; 803. Back cover structure; 90. Top cover fixing surface; 901. Rod sensor fixing block; 902. Fixing block fixing screw hole; 903. Top cover fixing hole. Detailed Implementation

[0040] To further understand the content of this utility model, a detailed description of this utility model will be provided in conjunction with the accompanying drawings and embodiments.

[0041] Example 1

[0042] Combined with appendix Figure 10A grid-type defoaming and easily detachable flow channel includes: a main frame, which has a first partition slot 10, a second partition slot 20, an inlet 30, a drain valve outlet 100, an outlet 50, a flow meter mounting part 40, an internal module 60, a level gauge fixing window 70, a rear cover structure fixing surface 80, and an upper cover structure fixing surface 90. The operation of this structure is based on the rigid support of the main frame. After the fluid enters through the inlet 30, it flows through the chambers separated by the first partition slot 10 and the second partition slot 20, undergoes optical measurement by the internal module 60, and is finally discharged controllably through the outlet 50 and the drain valve outlet 100. All components are fixed by the frame to ensure a stable fluid path and reduce bubble interference. The principle is to achieve coordinated operation of fluid processing and sensor monitoring through an integrated design.

[0043] Combined with appendix Figure 3 The partition slots and slits are used to install removable partitions to form multiple fluid chambers. During operation, the partitions form physical barriers after being inserted into the slots, and the fluid flows through each chamber sequentially to achieve graded treatment. The precise machining of the slots ensures the sealing of the partitions. The principle is to utilize the removability of the partitions to allow for quick cleaning or replacement, avoiding cross-contamination. At the same time, the chamber separation optimizes fluid dynamics and improves processing efficiency.

[0044] Combined with appendix Figure 6 The internal module 60 includes a structure and turbidity power control unit mounting surface 601, a light source fixing structure block 602, a turbidity photovoltaic cell control unit mounting surface 603, a light source lens 605, and a photovoltaic cell lens 606. The control unit is mounted via the modular mounting surface, and the light source fixing structure block 602 is aligned with the lens, maintaining a constant distance between the light source and the photovoltaic cell. When fluid flows through the module, the optical components measure changes in transmittance. This is based on the module's hollowed-out design to reduce optical path interference and ensure accurate turbidity data.

[0045] Combined with appendix Figure 7 The light source fixing structure block 602 is provided with a light source fixing surface 6021 and a reference photocell alignment structure hole 6022 for precise alignment of optical components. During operation, light-emitting elements such as LEDs are installed on the light source fixing surface 6021, and the reference photocell is calibrated through the alignment hole. The principle is to utilize the stability of the mechanical structure so that the light emitted by the light source is focused by the lens, and the photocell receives the reference signal to compensate for environmental changes and achieve real-time calibration.

[0046] Combined with appendix Figure 4The level gauge fixing window 70 is fitted with a level gauge slot pressure block structure, which fixes the level gauge by pressing. The mechanical pressure of the pressure block structure presses the level gauge onto the window, forming a sealed fixation. The level gauge detects the liquid level height based on capacitance or ultrasonic principles, and its stable fixation ensures interference-free signal transmission. The principle relies on the quick locking mechanism of the pressure block, which is suitable for different level gauge models.

[0047] Combined with appendix Figure 5 The rear cover structure fixing surface 80 includes an external access wiring structure 801, a flow channel fixing plate structure 802, and a back cover plate structure 803. The external access wiring structure 801 is used to connect external cables, and the flow channel fixing plate structure 802 provides mechanical fixing points. During operation, the rear cover is fixed to the main frame with screws through the fixing plate and the back cover plate. The principle is to use a rigid structure to distribute stress, and the external wiring structure centrally manages the power and data lines, ensuring reliable connection, reducing signal loss, and supporting long-term operation.

[0048] Combined with appendix Figure 8 The upper cover structure fixing surface 90 is provided with a rod-shaped sensor fixing block 901, fixing block fixing screw holes 902, and upper cover fixing holes 903. The rod-shaped sensor fixing block 901 is used to install the rod-shaped sensor and fix it through the screw holes. After the sensor is inserted into the fixing block, it is locked through the screw holes to ensure stable contact between the electrode and the fluid. The upper cover fixing holes 903 provide an overall seal. Its principle is based on mechanical fixation to reduce sensor shaking, ensure the continuity of measurement signals, and is suitable for variable fluid environments.

[0049] Combined with appendix Figure 9 The rod-shaped sensor mounting block 901 is designed as a modular and replaceable structure. Its operating principle involves a standardized interface design, allowing the mounting block to be disassembled and replaced. It utilizes modular clips or screws for fixation, ensuring the sensor is aligned with the fluid path, enabling plug-and-play functionality and reducing downtime.

[0050] Combined with appendix Figure 1 The inlet 30 and the outlet 100 of the drain valve use standard interfaces to connect directly to the flow meter and the drain valve, simplifying the fluid path. During operation, the fluid flows from the outside through the flow meter to the inlet 30, and the outlet 100 of the drain valve opens to release pressure when needed. The principle is based on the threaded or flanged design of the interface to ensure a sealed connection, and the flow is controlled by the valve to achieve automated management.

[0051] Combined with appendix Figure 10 The entire structure is integrally molded through injection molding or CNC machining, using corrosion-resistant engineering plastics. This integral molding process eliminates seam leaks; the material is chemically resistant, and its principle is to withstand fluid pressure through structural integrity, maintaining stable performance over long-term operation and supporting continuous water quality monitoring.

[0052] The present invention and its embodiments have been described above illustratively. This description is not restrictive, and the figures shown are only one embodiment of the present invention; the actual structure is not limited thereto. Therefore, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the inventive spirit of the present invention, such designs should fall within the protection scope of the present invention.

Claims

1. A grid-type defoaming, easily detachable flow channel, characterized in that, include: The main frame includes a partition slot one, a partition slot two, a water inlet, a drain valve outlet, a water outlet, a flow meter mounting position, an internal module, a level gauge fixing window, a rear cover structure fixing surface, and an upper cover structure fixing surface.

2. The grid-type defoaming easily detachable flow channel according to claim 1, characterized in that, The partition slots and partition grooves are used to install removable partitions to form multiple fluid chambers.

3. The grid-type defoaming easily detachable flow channel according to claim 1, characterized in that, The internal module includes a structure and turbidity power control unit mounting surface, a light source mounting structure block, a turbidity photovoltaic cell control unit mounting surface, a light source lens, and a photovoltaic cell lens.

4. The grid-type defoaming easily detachable flow channel according to claim 3, characterized in that, The light source fixing structure block is provided with a light source fixing surface and a reference photocell alignment structure hole for precise alignment of optical components.

5. The grid-type defoaming easily detachable flow channel according to claim 1, characterized in that, The level gauge fixing window is used in conjunction with the level gauge slot pressure block structure, which fixes the level gauge by pressing.

6. The grid-type defoaming easily detachable flow channel according to claim 1, characterized in that, The rear cover structure includes an external access wiring structure, a flow channel fixing plate structure, and a back cover plate structure. The external access wiring structure is used to connect external cables, and the flow channel fixing plate structure provides mechanical fixing points.

7. The grid-type defoaming easily detachable flow channel according to claim 1, characterized in that, The upper cover structure has a rod-shaped sensor fixing block, fixing screw holes and upper cover fixing holes on the fixing surface. The rod-shaped sensor fixing block is used to install the rod-shaped sensor and fix it through the screw holes.

8. The grid-type defoaming easily detachable flow channel according to claim 7, characterized in that, The rod-shaped sensor fixing block is designed as a modular and replaceable structure.

9. The grid-type defoaming easily detachable flow channel according to claim 1, characterized in that, The inlet and outlet of the drain valve use standard interfaces and can be directly connected to the flow meter and drain valve to simplify the fluid path.

10. The grid-type defoaming easily detachable flow channel according to any one of claims 1 to 9, characterized in that, The entire structure is integrally molded by injection molding or CNC machining, and the material is corrosion-resistant engineering plastic.