Waterway integrated structure and water purification equipment

By integrating the water circuit structure, the heating components, heating water pump, and regulating components are mounted on the same bracket, solving the problems of the messy appearance and bulky size of existing water circuit systems, and achieving stable operation and improved aesthetics.

CN224185863UActive Publication Date: 2026-05-01FOSHAN XINYAO ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
FOSHAN XINYAO ENVIRONMENTAL PROTECTION TECHNOLOGY CO LTD
Filing Date
2025-01-26
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

Existing water systems are cluttered and bulky due to their complex pipe networks and connecting components, making them unsuitable for high-end or precision applications.

Method used

The water circuit is integrated, which integrates the heating components, heating water pump and regulating components on the same mounting bracket. The pipes are fixed by clamps, and the flow rate is regulated by the control board and thyristor. It is also equipped with a shock-absorbing layer and flow meter to optimize the component layout and space utilization.

Benefits of technology

It achieves stable operation and long-term reliability of the water system, reduces size, improves ease of operation and aesthetics, and adapts to various installation environments.

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Abstract

The utility model relates to the field of water purification equipment, in particular to a waterway integrated structure and water purification equipment. The waterway integrated structure comprises a mounting support, a heating assembly, a heating water pump and an adjusting assembly, the heating assembly, the heating water pump and the adjusting assembly are all arranged on the mounting support, the water outlet end of the heating water pump is connected with the water inlet end of the heating assembly through a pipeline, and the adjusting assembly is arranged between the heating assembly and the heating water pump. The adjusting assembly is used for adjusting the water outlet flow of the heating water pump, a clamp is arranged on the adjusting assembly, and the clamp is used for fixing a pipeline between the heating water pump and the heating assembly. The multiple assemblies are integrated on the installation support to form a compact whole, dependence on the installation space is reduced, the problem that pipelines in a traditional water path system are complex and disordered is solved through reasonable layout, and stable operation and long-term reliability of the water path system are ensured by accurately adjusting the water outlet flow of the heating water pump and stable pipeline connection.
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Description

Technical Field

[0001] This utility model relates to the field of water purification equipment, and in particular to an integrated water circuit structure and a water purification device. Background Technology

[0002] While widely adopted water systems can functionally meet many application requirements, their core design relies on complex pipe networks and numerous connecting components. This complex pipe layout results in a cluttered appearance, affecting aesthetics and limiting their application in high-end or precision settings. Furthermore, the large number of pipes and connectors often leads to a bulky system size. In today's pursuit of cleanliness, efficiency, and modernization, this design clearly cannot meet the high standards required for water systems in certain specific fields. Utility Model Content

[0003] The technical problem to be solved by this utility model is to provide at least one beneficial option or create conditions to solve one or more technical problems existing in the prior art.

[0004] The solution to the technical problem of this utility model is: an integrated water circuit structure, which includes a mounting bracket and a heating component, a heating water pump and an adjusting component, all mounted on the mounting bracket. The outlet end of the heating water pump is connected to the inlet end of the heating component through a pipe. The adjusting component is located between the heating component and the heating water pump. The adjusting component is used to adjust the outlet flow rate of the heating water pump. The adjusting component is provided with a clamp for fixing the pipe between the heating water pump and the heating component.

[0005] As a further improvement to the above technical solution, the adjustment component also includes a control board and a thyristor. The control board is mounted on the mounting bracket, the clamp is mounted on the control board, the thyristor is mounted on the clamp, and the control board is electrically connected to the heating water pump.

[0006] As a further improvement to the above technical solution, the heating component includes an instant heating pipe assembly, an inlet NTC, and an outlet NTC. The inlet end of the instant heating pipe assembly is connected to the outlet end of the heating water pump through the inlet NTC, and the outlet NTC is located at the outlet end of the instant heating pipe assembly.

[0007] As a further improvement to the above technical solution, the mounting bracket is provided with a mounting seat, the mounting seat includes a connecting plate disposed on the mounting bracket and a mounting cylinder disposed perpendicular to the connecting plate, the interior of the mounting cylinder forms a third mounting space, and the heating water pump is detachably installed in the third mounting space.

[0008] As a further improvement to the above technical solution, the inner wall of the mounting cylinder is provided with a shock-absorbing layer.

[0009] As a further improvement to the above technical solution, the connecting plate is provided with an opening for connecting the heating water pump and the regulating component.

[0010] As a further improvement to the above technical solution, the integrated water circuit structure also includes a flow meter, which is mounted on the mounting bracket and connected to the inlet of the heating water pump via a pipe.

[0011] As a further improvement to the above technical solution, the mounting bracket is provided with a partition, which divides the mounting bracket into a first mounting space and a second mounting space. The heating component is disposed in the first mounting space, and the heating water pump and the regulating component are disposed in the second mounting space.

[0012] As a further improvement to the above technical solution, the mounting bracket is provided with mounting holes.

[0013] A water purification device comprising the water circuit integrated structure described in any one of the above claims.

[0014] The water purification equipment integrates heating, pumping, and flow regulation functions through an integrated water circuit structure, thereby improving overall performance. This integrated structure combines all key components onto a single mounting bracket, forming a compact unit that reduces the size of the equipment, lowers its dependence on installation space, and allows for greater flexibility in adapting to various installation environments.

[0015] The beneficial effects of this utility model are as follows: the heating water pump drives the water flow, the heating component heats the water flow, and the adjusting component is located between the heating component and the heating water pump. The clamp structure on the adjusting component enhances the stability of the pipe connection, avoiding potential failures caused by loose or misaligned pipes. This layout not only facilitates operation and control but also allows for precise adjustment of the water flow rate of the heating water pump. All components are integrated on the same mounting bracket, forming a compact whole, reducing the overall volume and dependence on installation space. Through reasonable layout and design, the water path is clear and unambiguous, avoiding the complex and messy pipe problems of traditional water systems. By precisely adjusting the water flow rate of the heating water pump and ensuring stable pipe connections, the stable operation and long-term reliability of the water system are guaranteed. Attached Figure Description

[0016] Figure 1 This is a front view of the integrated water system structure in this utility model;

[0017] Figure 2 This is a schematic diagram of the integrated water system structure in this utility model.

[0018] In the attached diagram: 1-mounting bracket, 101-mounting base, 102-connecting plate, 103-mounting cylinder, 104-opening, 105-partition, 106-mounting hole, 2-heating component, 3-heating water pump, 4-adjusting component, 401-clamp, 402-control board, 403-thyristor, 5-flow meter. Detailed Implementation

[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model, the drawings used in the description of the embodiments have been briefly explained above. Obviously, the described drawings are only a part of the embodiments of this utility model, not all of them. Those skilled in the art can obtain other design schemes and drawings based on these drawings without creative effort.

[0020] The following will clearly and completely describe the concept, specific structure, and technical effects of this utility model in conjunction with embodiments and accompanying drawings, so as to fully understand the purpose, features, and effects of this utility model. Obviously, the described embodiments are only a part of the embodiments of this utility model, not all of them. Other embodiments obtained by those skilled in the art based on the embodiments of this utility model without creative effort are all within the scope of protection of this utility model. Furthermore, all connections / linkages mentioned herein do not simply refer to direct contact between components, but rather to the ability to form a better connection structure by adding or reducing connecting accessories according to specific implementation conditions. The various technical features in this utility model can be combined interactively without contradicting each other.

[0021] While widely adopted water systems can functionally meet many application requirements, their core design relies on complex pipe networks and numerous connecting components. This complex pipe layout results in a cluttered appearance, affecting aesthetics and limiting their application in high-end or precision settings. Furthermore, the large number of pipes and connectors often leads to a bulky system size. In today's pursuit of cleanliness, efficiency, and modernization, this design clearly cannot meet the high standards required for water systems in certain specific fields.

[0022] Therefore, this utility model proposes an integrated waterway structure, referring to... Figures 1-2It includes a mounting bracket 1 and a heating component 2, a heating water pump 3, and an adjusting component 4, all mounted on the mounting bracket 1. The outlet end of the heating water pump 3 is connected to the inlet end of the heating component 2 via a pipe. The adjusting component 4 is located between the heating component 2 and the heating water pump 3. The adjusting component 4 is used to adjust the outlet flow rate of the heating water pump 3. The adjusting component 4 is provided with a clamp 401, which is used to fix the pipe between the heating water pump 3 and the heating component 2.

[0023] Heating pump 3 drives the water flow, heating component 2 heats the water, and regulating component 4 is located between heating component 2 and heating pump 3. The clamp 401 structure on regulating component 4 enhances the stability of the pipe connection, avoiding potential failures caused by loose or misaligned pipes. This layout not only facilitates operation and control but also allows for precise adjustment of the water flow rate of heating pump 3. All components are integrated on the same mounting bracket 1, forming a compact whole, reducing the overall size and dependence on installation space. Through reasonable layout and design, the water path is clear and unambiguous, avoiding the complex and messy pipe problems of traditional water systems. Precise adjustment of the water flow rate of heating pump 3 and stable pipe connections ensure the stable operation and long-term reliability of the water system.

[0024] When a user needs hot water, the heating water pump 3 is activated, pumping cold water from the water source to the heating element 2 for heating. Simultaneously, the regulating component 4 adjusts the outlet flow rate of the heating water pump 3 according to a preset flow rate setting. In the heating element 2, the cold water becomes hot water after being heated by the heating element. The heating efficiency and hot water output of the heating element are controlled by the regulating component 4 to ensure precise temperature regulation and stable output. During the heating process, the regulating component 4 adjusts the outlet flow rate of the heating water pump 3 in real time according to the user's actual needs and water temperature changes. By adjusting the flow rate, the heating efficiency and hot water output of the heating element 2 can be controlled to meet the needs of different users. At the same time, the clamp 401 structure ensures the stability of the pipe connection and avoids potential malfunctions caused by loose or misaligned pipes.

[0025] The thyristor 403 generates heat during operation. Excessive temperature can degrade its performance or even cause malfunctions such as short circuits or open circuits, affecting the normal operation of the entire integrated water circuit structure. Therefore, in one embodiment, the regulating component 4 further includes a control board 402 and a thyristor 403. The control board 402 is mounted on the mounting bracket 1, the clamp 401 is mounted on the control board 402, and the thyristor 403 is mounted on the clamp 401. The control board 402 is electrically connected to the heating water pump 3. The control board 402 is responsible for receiving instructions, processing data, and issuing control signals to achieve precise adjustment of the water flow rate of the heating water pump 3. The thyristor 403 is responsible for adjusting the current and controlling the water flow rate of the heating water pump 3. Mounted on the clamp 401, when the heating water pump 3 flows water to the heating component 2, this water flow passes through the thyristor 403, absorbing and carrying away the heat it generates, thus achieving effective heat dissipation for the thyristor 403.

[0026] Excessively high water temperatures may cause safety hazards such as scalding. Therefore, in one embodiment, the heating component 2 includes an instant heating pipe assembly, an inlet NTC, and an outlet NTC. The inlet end of the instant heating pipe assembly is connected to the outlet end of the heating water pump 3 via the inlet NTC, and the outlet NTC is located at the outlet end of the instant heating pipe assembly. The inclusion of the inlet and outlet NTCs allows the system to measure the inlet and outlet water temperatures in real time and accurately, providing a reliable data foundation for temperature control. By monitoring the water temperature in real time and making precise adjustments as needed, the system can more flexibly respond to temperature changes in different application scenarios, improving the working efficiency and adaptability of the heating component 2.

[0027] Water pumps generate vibrations and impacts during operation, which may cause shaking or displacement. Therefore, in one embodiment, the mounting bracket 1 is provided with a mounting base 101. The mounting base 101 includes a connecting plate 102 disposed on the mounting bracket 1 and a mounting cylinder 103 disposed perpendicular to the connecting plate 102. The interior of the mounting cylinder 103 forms a third mounting space, and the heating water pump 3 is detachably installed in the third mounting space. The water pump is firmly fixed in the mounting cylinder 103, effectively preventing shaking and displacement of the water pump during operation, improving the stability of the entire water system. The detachable water pump installation method makes the installation and maintenance process of the water pump simpler and faster, reducing the difficulty of operation and time costs.

[0028] Water pumps generate vibrations during operation, which may damage connected pipes and other components. Therefore, in one embodiment, the inner wall of the mounting cylinder 103 is provided with a vibration-damping layer. This layer is located on the inner wall of the mounting cylinder 103 and is in direct contact with the water pump. The vibration-damping layer has good elasticity and damping performance, effectively absorbing and dispersing the vibration energy generated during water pump operation, thereby significantly reducing the vibration amplitude and frequency of the water pump. Simultaneously, the vibration-damping layer can also isolate noise transmission to a certain extent, reducing the noise level of the water pump during operation and providing users with a quieter and more comfortable operating environment.

[0029] In one embodiment, the connecting plate 102 is provided with an opening 104 for connecting the heating water pump 3 to the regulating component. By adding the opening 104, the water pump plug can be exposed on the outside of the connecting plate 102, thereby simplifying the connection and disassembly process between the water pump and the regulating component, improving work efficiency. By ensuring that the plug can be firmly inserted into the opening 104 and achieve a good electrical connection with the regulating component, the stability and reliability of the connection between the water pump and the regulating component are guaranteed, thereby ensuring the stable operation of the entire water system.

[0030] Inaccurate flow control can lead to excessively high or low water flow, failing to meet user needs or wasting energy. Therefore, in one embodiment, the integrated water system structure further includes a flow meter 5, which is mounted on the mounting bracket 1 and connected to the inlet of the heating water pump 3 via a pipe. By introducing the flow meter 5, water flow can be measured accurately in real time, providing precise control data for the regulating component 4, thereby improving the accuracy and stability of flow control. Precise flow control and real-time flow monitoring not only ensure the efficient and stable operation of the water system but also provide users with a more stable and reliable user experience.

[0031] Heating component 2 generates a large amount of heat during operation, which may be transferred to the second installation space, affecting the working environment of heating water pump 3 and regulating component 4. Therefore, in one embodiment, the mounting bracket 1 is provided with a partition 105, which divides the mounting bracket 1 into a first installation space and a second installation space. The heating component 2 is disposed in the first installation space, and the heating water pump 3 and regulating component 4 are disposed in the second installation space. By dividing the mounting bracket 1 with the partition 105, the heating component 2, heating water pump 3, and regulating component 4 can be more rationally arranged in their respective spaces, optimizing the overall layout and space utilization of the integrated water circuit structure. The partition 105 effectively confines the heat generated by the heating component 2 within the first installation space, reducing the heat transfer to the heating water pump 3 and regulating component 4 in the second installation space. This results in a more stable operating temperature for the heating water pump 3 and regulating component 4, reducing performance fluctuations caused by temperature changes.

[0032] In one embodiment, the mounting bracket 1 is provided with mounting holes 106. By using fasteners to connect the mounting bracket 1 to the housing of the water purification equipment, the stability and reliability of the water circuit integrated structure after installation are ensured, avoiding performance degradation or failure caused by vibration or loosening. The mounting holes 106 allow the water circuit integrated structure to be easily disassembled and reinstalled when maintenance and upgrades are required, providing users with more convenient and efficient maintenance services.

[0033] A water purification device comprising the water circuit integrated structure described in any one of the above claims.

[0034] The water purification equipment integrates heating, pumping, and flow regulation functions through an integrated water circuit structure, thereby improving overall performance. The integrated water circuit structure integrates all key components onto a single mounting bracket 1, forming a compact whole. This reduces the size of the water purification equipment, lowers its dependence on installation space, and allows it to adapt more flexibly to various installation environments.

[0035] The preferred embodiments of the present invention have been described in detail above, but the present invention is not limited to the embodiments described. Those skilled in the art can make various equivalent modifications or substitutions without departing from the spirit of the present invention, and these equivalent modifications or substitutions are all included within the scope defined by the claims of this application.

Claims

1. A waterway integration structure, characterized by, The device includes a mounting bracket (1) and a heating component (2), a heating water pump (3), and an adjusting component (4) all mounted on the mounting bracket (1). The outlet end of the heating water pump (3) is connected to the inlet end of the heating component (2) through a pipe. The adjusting component (4) is located between the heating component (2) and the heating water pump (3). The adjusting component (4) is used to adjust the outlet flow rate of the heating water pump (3). The adjusting component (4) is provided with a clamp (401), which is used to fix the pipe between the heating water pump (3) and the heating component (2).

2. The water route integration structure according to claim 1, wherein The adjustment component (4) further includes a control board (402) and a thyristor (403). The control board (402) is mounted on the mounting bracket (1), the clamp (401) is mounted on the control board (402), and the thyristor (403) is mounted on the clamp (401). The control board (402) is electrically connected to the heating water pump (3).

3. The water route integration structure according to claim 1, wherein The heating component (2) includes an instant heating pipe assembly, an inlet NTC and an outlet NTC. The inlet end of the instant heating pipe assembly is connected to the outlet end of the heating water pump (3) through the inlet NTC. The outlet NTC is located at the outlet end of the instant heating pipe assembly.

4. The water route integration structure according to claim 1, wherein The mounting bracket (1) is provided with a mounting seat (101). The mounting seat (101) includes a connecting plate (102) disposed on the mounting bracket (1) and a mounting cylinder (103) disposed perpendicular to the connecting plate (102). The interior of the mounting cylinder (103) forms a third mounting space. The heating water pump (3) is detachably installed in the third mounting space.

5. The integrated waterway structure according to claim 4, characterized in that, The inner wall of the mounting cylinder (103) is provided with a shock-absorbing layer.

6. The water route integration structure according to claim 4, wherein The connecting plate (102) is provided with an opening (104) for connecting the heating water pump (3) and the regulating component.

7. The water route integration structure according to claim 1, wherein The integrated water circuit structure also includes a flow meter (5), which is mounted on the mounting bracket (1) and connected to the inlet of the heating water pump (3) via a pipe.

8. The integrated waterway structure according to claim 1, characterized in that, The mounting bracket (1) is provided with a partition (105), which divides the mounting bracket (1) into a first mounting space and a second mounting space. The heating component (2) is located in the first mounting space, and the heating water pump (3) and the regulating component (4) are located in the second mounting space.

9. The water route integration structure according to claim 2, wherein The mounting bracket (1) is provided with mounting holes (106).

10. A water purification apparatus characterized by comprising: Includes the waterway integrated structure as described in any one of claims 1-9.