Integrated waterway board
The integrated water route board with internal dividers optimizes channel layout by separating flow paths, reducing size and connections, enhancing space efficiency and flow management.
Patent Information
- Application Number
- CN202422110992.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-29
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-08-29
AI Technical Summary
The existing integrated water circuit boards have shortcomings in terms of channel number and space occupation, resulting in complex equipment design and large space occupancy.
The inner wall of the runner is provided with a partition plate, which divides the runner into at least two independent areas that are not connected, and reduces the number of pipes and connectors by optimizing the angle and structural design of the partition plate.
It effectively reduces the number of pipes and connectors, optimizes the space utilization rate, improves the flow efficiency and stability of the runner, and reduces the risk of water leakage.
Smart Images

Figure CN223102764U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of water purification equipment, in particular to an integrated water circuit board. Background Art
[0002] As a modern water flow management solution, the integrated water circuit board can effectively integrate multiple water flow channels, thus simplifying the design and installation of equipment. By integrating the water flow channels on a board, it effectively simplifies the internal structure of the equipment, reduces the pipe connection points, and thus reduces the risk of water leakage. However, the existing integrated water circuit boards still have deficiencies, especially in terms of the number of channels and space occupation. Although the current design of the integrated water circuit board reduces the use of pipe connectors, there may still be a problem that the integrated water circuit board needs to design multiple channels to guide the water flows in different directions, resulting in a large space occupation.
[0003] Therefore, it is necessary to develop an integrated water circuit board to further reduce the number of channels and improve the space utilization rate. Summary of the Utility Model
[0004] In view of the problem of how to optimize the channel structure to reduce space occupation in the above-mentioned existing technology, the technical solution adopted by the utility model to solve its technical problems is as follows:
[0005] An integrated water circuit board includes a board body and a pipe connected to the board body. A flow channel is provided inside the pipe, and a partition plate connected to the inner wall of the flow channel is provided in the flow channel. The partition plate divides the flow channel into at least two non-connecting independent regions.
[0006] Further, in the integrated water circuit board of the solution, the partition plate divides the flow channel into a first flow channel and a second flow channel. The pipe is provided with a first flow channel inlet and a first flow channel outlet respectively communicating with the first flow channel, and a second flow channel inlet and a second flow channel outlet respectively communicating with the second flow channel. Multiple partition plates can be provided.
[0007] Further, in the integrated water circuit board of the solution, the board body is further provided with a first plane. The partition plate is provided with a second partition plate arranged along the pipe direction and at an angle α with the first plane, a first partition plate connected to the side of the second partition plate close to the first flow channel, and a third partition plate connected to the side of the second partition plate close to the second flow channel.
[0008] Further, in the integrated water circuit board of the solution, the angle α is 30° - 75°.
[0009] Further, for an integrated waterway board described in the solution, the first flow channel is provided with a water inlet area, the second flow channel is provided with a water outlet area, the outlet of the first flow channel communicates with the water inlet area, the inlet of the second flow channel communicates with the water outlet area, the water inlet area is enclosed by the second partition board, the third partition board and the inner wall of the first flow channel, and the water outlet area is enclosed by the first partition board, the second partition board and the inner wall of the second flow channel.
[0010] Further, for an integrated waterway board described in the solution, the second partition board further has a first connection edge away from the board body and connected to the inner wall of the first flow channel, and the outlet of the first flow channel is connected to the first connection edge.
[0011] Further, for an integrated waterway board described in the solution, the second partition board further has a second connection edge away from the board body and connected to the inner wall of the second flow channel, and the inlet of the second flow channel is connected to the second connection edge.
[0012] Further, for an integrated waterway board described in the solution, the second partition board and the first partition board are connected by a transition board with an arc-shaped cross section.
[0013] Further, for an integrated waterway board described in the solution, the first flow channel further has a first guiding block connected to the first partition board and extending along the direction of the first flow channel, and the second flow channel further has a second guiding block connected to the third partition board and extending along the direction of the second flow channel.
[0014] Further, for an integrated waterway board described in the solution, the inlet of the first flow channel is located at one end of the pipeline, and a first guiding surface with an arc-shaped cross section is further provided on one side of the first guiding block close to the inlet of the first flow channel. The outlet of the second flow channel is located at the other end of the pipeline, and a second guiding surface with an arc-shaped cross section is further provided on one side of the second guiding block close to the outlet of the second flow channel.
[0015] The beneficial effects of the present utility model are as follows:
[0016] By arranging partition boards on the inner wall of the flow channel, the present utility model effectively divides the flow channel into at least two non-communicating independent regions. This setting can reduce the volume of the integrated waterway board by reducing the number of pipelines and pipeline connectors, and further improve the space utilization rate.
[0017] The following will further illustrate the present utility model in conjunction with the drawings and specific embodiments. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic external view of an integrated waterway board of the present utility model.
[0019] Figure 2A schematic cross-sectional view of an integrated water circuit board of the present utility model.
[0020] Figure 3 A partially enlarged schematic cross-sectional view of an integrated water circuit board of the present utility model.
[0021] Figure 4 A schematic external view of an integrated water circuit board of the present utility model.
[0022] Figure 5 A schematic cross-sectional view of an integrated water circuit board of the present utility model.
[0023] Figure 6 A schematic cross-sectional view of an integrated water circuit board of the present utility model.
[0024] Figure 7 A schematic cross-sectional view of an integrated water circuit board of the present utility model.
[0025] Figure 8 A schematic external view of an integrated water circuit board of the present utility model.
[0026] Figure 9 A schematic cross-sectional view of an integrated water circuit board of the present utility model. Specific embodiments
[0027] The following describes the embodiments of the present utility model in detail with reference to the accompanying drawings.
[0028] As Figures 1-9 shown, an integrated water circuit board includes a board body 5 and a pipe 1 connected to the board body 5. A flow channel 2 is provided inside the pipe 1. A partition plate 3 is connected to the inner wall of the flow channel 2, and the partition plate 3 divides the flow channel 2 into at least two non-communicating independent regions.
[0029] By providing the partition plate 3 on the inner wall of the flow channel 2, the present utility model effectively divides the flow channel 2 into at least two non-communicating independent regions. This setting can reduce the volume of the integrated water circuit board by reducing the number of pipes 1 and the number of pipe connectors, and further improve the space utilization rate.
[0030] In this embodiment, by arranging a partition plate 3 on the inner wall of the flow channel 2, the flow channel 2 is divided into two non - communicating regions. This setting optimizes the structure of the traditional water circuit board, reduces the dependence on the pipeline 1 and pipeline connectors, thereby reducing the number of the pipeline 1 and pipeline connectors. Further, this setting realizes the flow of two water flows simultaneously in one pipeline 1 by dividing two independent fluid channels and avoids the interference between water flows, further improving the utilization efficiency of the flow channel. Further, by this setting, the number of the pipeline 1 and the requirement of pipeline connectors are reduced, which not only simplifies the overall design, but also reduces the volume of the integrated water circuit board to a certain extent, improves the space utilization rate, enables the integrated water circuit board to achieve more functions in a smaller space, and thus improves the applicability of the integrated water circuit board. Further, by reducing the number of pipeline connectors, the number of connection points between pipelines 1 is reduced, the potential leakage risk and maintenance cost are reduced, and the reliability and durability of the integrated water circuit board are improved.
[0031] Further, as Figures 1-9 shown in an integrated water circuit board, wherein the partition plate 3 divides the flow channel 2 into a first flow channel 21 and a second flow channel 22, the pipeline 1 is provided with a first flow channel inlet 11 and a first flow channel outlet 13 respectively communicating with the first flow channel 21, a second flow channel inlet 14 and a second flow channel outlet 12 respectively communicating with the second flow channel 22, and a plurality of the partition plates 3 can be arranged.
[0032] In this embodiment, there is 1 partition plate 3. The utility model divides the flow channel 2 into non - communicating first flow channel 21 and second flow channel 22 through the partition plate 3, and is provided with inlets and outlets respectively communicating with the first flow channel 21 and the second flow channel 22. This setting effectively divides the flow channel into two independent parts, realizes the independent management of different water flows, thereby reducing the number of pipeline connectors and optimizing the space layout. Further, this setting also simplifies the structure of the pipeline 1 and further reduces the volume of the integrated water circuit board.
[0033] Further, as Figures 1-9 shown in an integrated water circuit board, wherein the plate body 5 is further provided with a first plane 51, and the partition plate 3 is provided with a second partition plate 32 arranged along the direction of the pipeline 1 and at an angle α with the first plane 51, a first partition plate 31 connected to the side of the second partition plate 32 close to the first flow channel 21, and a third partition plate 33 connected to the side of the second partition plate 32 close to the second flow channel 22.
[0034] In the present utility model, the second partition plate 32 is arranged along the direction of the pipeline 1 and at an angle with the first plane 51, and the second partition plate 32 is seamlessly connected to the inner wall of the flow channel 2. This arrangement helps to better guide the water flow into the inlet or flow out from the outlet more effectively. Through this arrangement, the second partition plate 32 can effectively optimize the path and flow direction of the water flow, improving the water flow management efficiency of the flow channel. Further, this arrangement also reduces the resistance and interference of the water flow in the flow channel 2, thereby improving the flow performance of the water flow in the flow channel 2. Further, through the arrangement of the first partition plate 31, the second partition plate 32 and the third partition plate 33, the structure of the flow channel becomes more flexible, enabling water flow separation in a limited space and realizing the guiding function of the water flow, further improving the space utilization rate and reducing the volume of the integrated water circuit board. Further, the first partition plate 31 and the third partition plate 33 are respectively seamlessly connected to the second partition plate 32 and the inner wall of the flow channel 2, realizing the sealing function of the partition plate 3 between the first flow channel 21 and the second flow channel 22.
[0035] Further, as Figures 1-9 shown in an integrated water circuit board, wherein the included angle α is 30° - 75°.
[0036] In the present utility model, the second partition plate 32 is arranged along the direction of the pipeline 1 and at an angle of 30° - 75° with the first plane 51. This arrangement can effectively adjust the flow direction of the water flow in the flow channel 2, better guide the water flow to flow along the predetermined path, reduce the resistance of the water flow in the flow channel 2, and improve the overall flow efficiency. Further, if the included angle of the partition plate 3 is less than 30°, it will lead to poor guiding effect of the water flow in the flow channel 2, resulting in greater resistance to the water flow, thereby reducing the flow efficiency and possibly causing instability or vortex phenomenon of the water flow. Further, if the included angle is greater than 75°, it will lead to too strong guiding effect of the partition plate 3 on the water flow, resulting in sharp changes in the water flow, uneven water flow in the flow channel 2 or the formation of vortices, reducing the efficiency of the water flow.
[0037] Further, as Figures 1-9 shown in an integrated water circuit board, wherein the first flow channel 21 is provided with a water inlet area 23, the second flow channel 22 is provided with a water outlet area 24, the first flow channel outlet 13 communicates with the water inlet area 23, the second flow channel inlet 14 communicates with the water outlet area 24, the water inlet area 23 is enclosed by the second partition plate 32, the third partition plate 33 and the inner wall of the first flow channel 21, and the water outlet area 24 is enclosed by the first partition plate 31, the second partition plate 32 and the inner wall of the second flow channel 22.
[0038] The utility model provides an effective buffer for water flow to enter the first flow channel 21 by arranging a water inlet area 23 enclosed by a second partition plate 32, a third partition plate 33 and the inner wall of the first flow channel 21 in the integrated water channel plate. As a result, after the water flow reaches the water inlet area 23, it can smoothly flow along the second partition plate 32 to the first flow channel outlet 13. This setting effectively ensures the stability of the water flow when it enters the first flow channel 21. Further, by arranging the water inlet area 23, the phenomenon of uneven or disordered water flow can be avoided when the water flow flows into the first flow channel outlet 13, thereby optimizing the distribution of the water flow in the flow channel 2. Further, the water outlet area 24 is enclosed by the first partition plate 31, the second partition plate 32 and the inner wall of the second flow channel 22, which enables the water flow to reach the water outlet area 24 first when flowing out, and smoothly flow out to the second flow channel 22 along the second partition plate 32 in the water outlet area 24. This setting effectively reduces the flow resistance of the water flow and improves the discharge efficiency of the water flow.
[0039] Further, as Figures 1-9 shown in an integrated water channel plate, the second partition plate 32 further has a first connecting edge 321 away from the plate body 5 and connected to the inner wall of the first flow channel 21, and the first flow channel outlet 13 is connected to the first connecting edge 321.
[0040] By connecting the first flow channel outlet 13 with the first connecting edge 321, the utility model ensures that the first flow channel outlet 13 can have a smooth transition with the second partition plate 32, enabling the water flow to flow into the first flow channel outlet 13 more smoothly along the second partition plate 32. This setting not only optimizes the transition effect of the water flow but also reduces the resistance during the water flow entering the first flow channel outlet 13, improving the stability and flow efficiency of the water flow.
[0041] Further, as Figures 1-9 shown in an integrated water channel plate, the second partition plate 32 further has a second connecting edge 322 away from the plate body 5 and connected to the inner wall of the second flow channel 22, and the second flow channel inlet 14 is connected to the second connecting edge 322.
[0042] By connecting the second flow channel inlet 14 with the second connecting edge 322, the utility model ensures that the second flow channel inlet 14 can have a smooth transition with the second partition plate 32, enabling the water flow to smoothly transition from the second flow channel inlet 14 to the second flow channel 22 through the second partition plate 32. This setting not only optimizes the transition effect of the water flow but also reduces the resistance when the water flow flows out from the second flow channel inlet 14 to the second flow channel 22, improving the stability and discharge efficiency of the water flow in the flow channel 2.
[0043] Further, as Figures 1-9An integrated water circuit board as shown, wherein a transition plate 34 with an arc-shaped cross section is connected between the second partition plate 32 and the first partition plate 31.
[0044] In the present utility model, the second partition plate 32 and the first partition plate 31 are connected by a transition plate 34 with an arc-shaped cross section. This setting can achieve the effect of guiding water flow into the water inlet area 23 more smoothly, improving the smoothness of the water flow when entering the water inlet area 23, effectively avoiding the sharp change of the water flow path when passing through the first partition plate 31 and entering the water inlet area 23, thereby reducing the flow friction and turbulence of the water flow.
[0045] Further, as Figures 1-9 An integrated water circuit board as shown, wherein the first flow channel 21 is further provided with a first guiding block 41 connected to the first partition plate 31 and extending along the direction of the first flow channel 21, and the second flow channel 22 is further provided with a second guiding block 42 connected to the third partition plate 33 and extending along the direction of the second flow channel 22.
[0046] In the present utility model, by arranging the first guiding block 41 extending along the flow channel 2 direction in the first flow channel 21 and connecting the first guiding block 41 to the first partition plate 31, this setting ensures the smooth flow of water in the first flow channel 21 and effectively guides the water flow from the flow channel 2 to the water inlet area 23 through the first guiding block 41, reducing the instability and cross-flow phenomenon during the flow; further, a second guiding block 42 extending along the flow channel 2 direction is arranged in the second flow channel 22, and the second guiding block 42 is connected to the third partition plate 33, ensuring that after the water flow flows out from the second flow channel inlet 14, it can smoothly pass through the third partition plate 33 and be guided to the second flow channel outlet 12 through the second guiding block 42. This setting optimizes the discharge path of the water flow in the second flow channel 22 and further improves the discharge effect of the water flow.
[0047] Further, as Figures 1-9 An integrated water circuit board as shown, wherein the first flow channel inlet 11 is located at one end of the pipeline 1, a first guiding surface 411 with an arc-shaped cross section is further arranged on one side of the first guiding block 41 close to the first flow channel inlet 11, the second flow channel outlet 12 is located at the other end of the pipeline 1, and a second guiding surface 412 with an arc-shaped cross section is further arranged on one side of the second guiding block 42 close to the second flow channel outlet 12.
[0048] In the present utility model, by providing an arc-shaped first guiding surface 411 on one side of the first guiding block 41 close to the first flow channel inlet 11, a smooth transition surface is provided for the water flow to enter the deep part of the first flow channel 21, optimizing the flow path of the water flow, effectively reducing the sharp path change of the water flow when passing through the first guiding block 41, thereby reducing the flow resistance and turbulence phenomenon of the water flow. This setting helps the water flow enter the deep part of the first flow channel 21 more smoothly, improving the overall flow efficiency. Further, in the present utility model, by providing an arc-shaped second guiding surface 412 on one side of the second guiding block 42 close to the second flow channel outlet 12, a smooth transition surface is provided for the water flow to leave the second flow channel 22, optimizing the flow path of the water flow, reducing the flow resistance and turbulence phenomenon when the water flow leaves the second flow channel 22 and is discharged to the second flow channel outlet 12. At the same time, the arc-shaped second guiding surface 412 effectively guides the water flow to flow smoothly towards the second flow channel outlet 12, improving the stability of the water flow and the overall discharge efficiency.
[0049] Furthermore, as Figures 1-9 shown, an integrated water channel board, wherein at least one of the pipeline 1, the first flow channel outlet 13, and the second flow channel outlet 12 is provided.
[0050] In the present utility model, at least one of the pipeline 1, the first flow channel outlet 13, and the second flow channel outlet 12 is provided. This setting enables the number of the pipeline 1, the first flow channel outlet 13, and the second flow channel outlet 12 to be set according to the actual requirements of customers, increasing the usage scenarios of the integrated water channel board and further improving the applicability of the integrated water channel board.
[0051] As Figures 1-9 shown, the implementation manner of this embodiment is as follows:
[0052] Embodiment 1:
[0053] The integrated water channel board in this embodiment is used to connect with a filter to filter raw water into pure water. In this embodiment, there is 1 each of the partition board 3, the pipeline 1, the first flow channel outlet 13, and the second flow channel outlet 12, and the included angle α between the second partition board 32 and the first plane 51 is 30°.
[0054] When raw water is passed into the integrated water channel board, the water flow first enters the first flow channel 21 through the first flow channel inlet 11, then follows the first guiding block 41 and passes through the transition board 34 on the first partition board 31 to enter the water inlet area 23, so that the water flow is buffered. Then the water flow will flow along the second partition board 32 in the water inlet area 23 to the first flow channel outlet 13, and finally be discharged from the first flow channel outlet 13 and enter the filter.
[0055] When the raw water is filtered by the filter to become pure water, the pure water enters the water outlet area 24 along the second separator 32 through the second flow channel inlet 14, so that the water flow is buffered, and then passes through the second flow channel 22 along the second guiding block 42, and finally discharges the pure water from the second flow channel outlet 12.
[0056] In this process, the first guiding block 41 is provided with a first guiding surface 411, and the second guiding block 42 is provided with a second guiding surface 412. The water flow can be further guided and the flow resistance can be reduced through the first guiding surface 411 and the second guiding surface 412.
[0057] Embodiment 2:
[0058] In this embodiment, the features and working principle of the integrated water circuit board are similar to those of Embodiment 1, the difference being that the angle α between the second separator 32 and the first plane 51 is 75°.
[0059] Embodiment 3:
[0060] In this embodiment, the features and working principle of the integrated water circuit board are similar to those of Embodiment 1, the difference being that the angle α between the second separator 32 and the first plane 51 is 54°.
[0061] Embodiment 4:
[0062] In this embodiment, the features and working principle of the integrated water circuit board are similar to those of Embodiment 1, the difference being that the angle α between the second separator 32 and the first plane 51 is 45°.
[0063] The above only further illustrates the technical content of the present invention by way of embodiments, so as to make it easier for readers to understand, but it does not mean that the implementation modes of the present invention are limited to this. Any technical extension or re-creation made according to the present invention is protected by the present invention. The protection scope of the present invention is subject to the claims.
Claims
1. An integrated water circuit board, comprising a board body (5) and a pipe (1) connected to the board body (5), wherein a flow channel (2) is provided inside the pipe (1), and it is characterized in that: The flow channel (2) is provided with a partition plate (3) connected to the inner wall of the flow channel (2), and the partition plate (3) divides the flow channel (2) into at least two non - communicating independent regions; The partition plate (3) divides the flow channel (2) into a first flow channel (21) and a second flow channel (22). The pipeline (1) is provided with a first flow channel inlet (11) and a first flow channel outlet (13) respectively communicating with the first flow channel (21), and a second flow channel inlet (14) and a second flow channel outlet (12) respectively communicating with the second flow channel (22). Multiple partition plates (3) can be provided.
2. The integrated water circuit board according to claim 1, characterized in that: The plate body (5) is further provided with a first plane (51). The partition plate (3) is provided with a second partition plate (32) arranged along the direction of the pipeline (1) and forming an angle α with the first plane (51), a first partition plate (31) connected to the side of the second partition plate (32) close to the first flow channel (21), and a third partition plate (33) connected to the side of the second partition plate (32) close to the second flow channel (22).
3. The integrated water circuit board according to claim 2, characterized in that: The angle α is 30° - 75°.
4. An integrated water circuit board according to claim 2, characterized in that: The first flow channel (21) is provided with a water inlet area (23), and the second flow channel (22) is provided with a water outlet area (24). The first flow channel outlet (13) communicates with the water inlet area (23), and the second flow channel inlet (14) communicates with the water outlet area (24). The water inlet area (23) is enclosed by the second partition plate (32), the third partition plate (33) and the inner wall of the first flow channel (21), and the water outlet area (24) is enclosed by the first partition plate (31), the second partition plate (32) and the inner wall of the second flow channel (22).
5. The integrated water circuit board according to claim 2, wherein: The second partition plate (32) is further provided with a first connecting edge (321) away from the plate body (5) and connected to the inner wall of the first flow channel (21), and the first flow channel outlet (13) is connected to the first connecting edge (321).
6. An integrated water circuit board according to claim 2, characterized in that: The second partition plate (32) is further provided with a second connecting edge (322) away from the plate body (5) and connected to the inner wall of the second flow channel (22), and the second flow channel inlet (14) is connected to the second connecting edge (322).
7. The integrated water circuit board according to claim 2, wherein: The second partition plate (32) and the first partition plate (31) are connected by a transition plate (34) with an arc - shaped cross - section.
8. The integrated water circuit board according to claim 2, wherein: The first flow channel (21) is further provided with a first guiding block (41) connected to the first partition plate (31) and extending along the direction of the first flow channel (21), and the second flow channel (22) is further provided with a second guiding block (42) connected to the third partition plate (33) and extending along the direction of the second flow channel (22).
9. An integrated water circuit board according to claim 8, characterized in that: The first flow channel inlet (11) is located at one end of the pipeline (1). A first guiding surface (411) with an arc - shaped cross - section is further provided on the side of the first guiding block (41) close to the first flow channel inlet (11). The second flow channel outlet (12) is located at the other end of the pipeline (1). A second guiding surface (412) with an arc - shaped cross - section is further provided on the side of the second guiding block (42) close to the second flow channel outlet (12).