Water collector capable of efficiently guiding flow

By flexibly adjusting the position and angle of the guide plate, the problem of inaccurate installation of existing water collectors is solved, achieving a stable flow guiding effect under different flow conditions and improving the flow guiding efficiency and accuracy of the system.

CN223610682UActive Publication Date: 2025-11-28SHANDONG QIRUI ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202422851203.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-22
Publication Date
2025-11-28
Estimated Expiration
2034-11-22

AI Technical Summary

Technical Problem

The existing water collectors were not installed precisely at the optimal flow angle, affecting the flow guiding effect. Furthermore, they were not adjusted according to the actual situation, resulting in poor overall flow guiding performance.

Method used

The design incorporates a shell, guide holes, and a baffle plate. Through the linkage of components such as threaded rods, moving blocks, worm gears, and linkage rods, the position and angle of the baffle plate can be flexibly adjusted, ensuring the accuracy and stability of the baffle effect.

Benefits of technology

It achieves stable flow guidance under different flow conditions, improves the flow guidance efficiency and accuracy of the system, ensures the uniformity and stability of fluid guidance, and adapts to different flow requirements.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a water collector with efficient flow guide, which relates to the technical field of water collectors and comprises a shell, three guide holes are arranged on the inner wall of the shell, three flow guide plates are arranged on the inner side of the shell, and three control mechanisms are mounted on the outer surface of the shell. The position of the flow guide plate is indirectly changed to optimize a fluid path, translation of the first moving block pushes the shell to move synchronously, so that the position of the flow guide plate is adjusted to adapt to different flow requirements, a transmission structure of the linkage rod ensures synchronous movement between the first moving block and the two second moving blocks, and the flow guide effect is evenly distributed. The shell slides on the fixed rotating rod, the limiting strip is driven to act on the worm and drive the worm gear, finally, the angle of the flow guide plate is adjusted through the transmission rod, synchronous adjustment of multiple plates is achieved, the system structure is stable, adjustment is accurate, and the stable flow guide effect can be provided under various flow conditions.
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Description

TECHNICAL FIELD

[0001] The utility model relates to water collector technical field especially relates to a high -efficient water collector of diversion. BACKGROUND

[0002] In the operation process of cooling tower, the circulating water is sprayed downward from the water distribution system at the top of the cooling tower. After the air and water are fully contacted for heat exchange, a large amount of water vapor is generated. If there is no water collector, part of the small water droplets will be taken out of the cooling tower by the rising airflow, causing the water floating phenomenon.

[0003] Such as the publication number CN218524012U discloses a high -efficient water collector of diversion, including water collector and stand column formula connecting plate, the top outer wall of water collector is fixedly connected with the water collecting hopper, the bottom outer wall of water collector is fixedly connected with the bottom plate, and the bottom plate is provided with a circular groove, the inner diameter size of the circular groove is same with the inner diameter size of water collector, the outer wall of water collector is fixedly connected with the reinforcing rib, and the outer wall of the side away from water collector of reinforcing rib is fixedly connected with the top outer wall of bottom plate, the inner wall of water collector is fixedly connected with the guide vane.

[0004] But in the prior art, due to different types of cooling tower and different operating conditions, each corresponds to a relatively optimal water collector diversion angle, however, ordinary water collector cannot be installed according to the best diversion angle accurately in the installation process, which will affect its diversion effect, and when installing, the layout is not adjusted according to the actual situation, which will further affect the overall diversion effect. UTILITY MODEL CONTENTS

[0005] The utility model aims at solving the problems in the prior art that the layout is not adjusted according to the actual situation, which will further affect the overall diversion effect, and provides a high -efficient water collector of diversion.

[0006] In order to achieve the above object, the utility model adopts the following technical scheme: a high -efficient water collector of diversion, including the shell, three guide holes are formed in the inner wall of the shell, and three diversion plates are arranged on the inner side of the shell, three control mechanisms are installed on the outer surface of the shell.

[0007] The control mechanism comprises a mounting frame, a threaded rod is rotationally connected to the inside of the mounting frame, a first moving block is threadedly connected to the outer surface of the threaded rod, two first moving blocks are fixedly connected to the outer surface of one end of the threaded rod, a shell is fixedly connected to the inside of one end of the first moving block and the second moving block, a worm wheel is rotationally connected to one end of the inner cavity of the shell, and a worm is rotationally connected to the other end of the inner cavity of the shell, a rotating rod is arranged on one side of the threaded rod, the rotating rod is rotationally connected to the inner wall of the mounting frame, a limiting strip is fixedly connected to the outer surface of the rotating rod, the first moving block and the second moving block are slidingly connected to the rotating rod, the limiting strip is slidingly connected to the worm, and a transmission rod is fixedly connected to the inside of the worm wheel.

[0008] Preferably, the transmission rod is rotationally connected to the shell, and one end of the transmission rod is fixedly connected to the flow guide plate.

[0009] Preferably, a sliding rod is arranged on one side of the threaded rod, and the first moving block and the second moving block are slidingly connected to the sliding rod, and the sliding rod is fixedly connected to the inner wall of the mounting frame.

[0010] Preferably, a first handle is fixedly connected to one end of the threaded rod, and a second handle is fixedly connected to one end of the rotating rod.

[0011] Preferably, the transmission rod is slidingly connected to the guide hole, and a plurality of flow guide holes are formed in the surface of the flow guide plate.

[0012] Preferably, a linkage rod is rotationally connected to one side of the first moving block, and the linkage rod is rotationally connected to the second moving block.

[0013] Preferably, a connecting rod is rotationally connected to one end of the linkage rod, and the connecting rod is rotationally connected to the mounting frame.

[0014] Compared with the prior art, the utility model has the advantages and positive effects that:

[0015] 1、in the utility model, the rotation of the threaded rod drives the first moving block to move, indirectly changes the position of the flow guide plate, optimizes the fluid path, the translation of the first moving block pushes the shell to move synchronously, thereby adjusting the position of the flow guide plate, adapting to different flow requirements, the transmission structure of the linkage rod ensures the synchronous motion between the first moving block and the two second moving blocks, uniformly distributes the flow guiding effect, the shell slides on the fixed rotating rod, drives the limiting strip to act on the worm and drives the worm wheel, finally adjusts the angle of the flow guide plate through the transmission rod, realizes the synchronous adjustment of multiple plates, the system structure is stable, the adjustment is accurate, and stable flow guiding effect can be provided under various flow conditions.

[0016] 2、 The utility model discloses a whole three -dimensional structure schematic diagram of the water collector of high -efficient flow guide is provided, and the water collector of high -efficient flow guide is provided with the outer shell, the guide hole, the control mechanism, the linkage rod and the flow guide plate. BRIEF DESCRIPTION OF DRAWINGS

[0017] Figure 1 A whole three -dimensional structure schematic diagram of the water collector of high -efficient flow guide is provided.

[0018] Figure 2 A whole three -dimensional structure schematic diagram of the water collector of high -efficient flow guide is provided.

[0019] Figure 3 A whole three -dimensional structure schematic diagram of the water collector of high -efficient flow guide is provided.

[0020] Figure 4 A whole three -dimensional structure schematic diagram of the water collector of high -efficient flow guide is provided.

[0021] Legend: 1, shell, 2, guide hole, 3, control mechanism, 31, mounting bracket, 32, threaded rod, 321, first handle, 33, slide bar, 34, first moving block, 35, second moving block, 36, rotating rod, 361, limit strip, 362, second handle, 37, transmission rod, 371, worm wheel, 372, worm, 38, linkage rod, 381, connecting rod, 39, shell, 4, flow guide plate, 41, flow guide hole. DETAILED DESCRIPTION

[0022] In order to more clearly understand the above purpose, features and advantages of the utility model, the utility model is further described below in conjunction with the drawings and examples. It should be explained that the embodiment of the application and the features in the embodiment can be combined with each other without conflict.

[0023] In the following description, a lot of specific details are set forth in order to facilitate a full understanding of the utility model, but the utility model can also be implemented in other ways different from the description, therefore, the utility model is not limited to the specific embodiment disclosed in the following disclosure.

[0024] Example one: asFigure 1 Figure 3 As shown in the utility model provides a kind of water collector of efficient flow guide, including shell 1, three guide holes 2 are opened in shell 1 inner wall, and three flow guide plates 4 are provided in the inside of shell 1, and three control mechanisms 3 are installed on the outer surface of shell 1;

[0025] Control mechanism 3 includes mounting bracket 31, threaded rod 32 is rotatably connected to the inside of mounting bracket 31, first moving block 34 is threadedly connected to the outer surface of threaded rod 32, two first moving blocks 34 are fixedly connected to the outer surface of one end of threaded rod 32, shell 38 is fixedly connected to the inside of one end of first moving block 34 and second moving block 35, worm wheel 371 is rotatably connected to the inner cavity of one end of shell 38, and worm 372 is rotatably connected to the inner cavity of another end of shell 38, rotating rod 36 is provided on one side of threaded rod 32, rotating rod 36 is rotatably connected to the inner wall of mounting bracket 31, and limiting strip 361 is fixedly connected to the outer surface of rotating rod 36, first moving block 34 and second moving block 35 are slidably connected with rotating rod 36, limiting strip 361 is slidably connected with worm 372, and transmission rod 37 is fixedly connected to the inside of worm wheel 371.

[0026] The specific settings and effects of the present embodiment will be described below, in this adjustment system, the rotation of threaded rod 32 not only drives the movement of first moving block 34 along the preset track, but also indirectly changes the actual position of flow guide plate 4 through its connection with shell 39, thereby optimizing and adjusting the flow guiding effect. Specifically, when the translational action of first moving block 34 pushes the connected shell 39 to move synchronously, it will adjust the position of flow guide plate 4 in the fluid path to adapt to different flow requirements and flow guiding conditions. In addition, the movement of first moving block 34 also links with linkage rod 38, thereby driving two second moving blocks 35 to move synchronously, ensuring that the distance between first moving block 34 and two second moving blocks 35 remains consistent, thereby evenly distributing the relative positions of flow guide plates 4.

[0027] At the same time, during the movement of shell 39, it slides on the surface of fixed rotating rod 36, keeping the entire system stable. Limiting strip 361 is designed on the outer surface of rotating rod 36, and when rotating, limiting strip 361 will exert a certain force on adjacent worm 372, prompting worm 372 to rotate and further driving the rotation of worm wheel 371. The rotational force of worm wheel 371 is transmitted to transmission rod 37, driving transmission rod 37 to rotate and ultimately affecting the angle adjustment of flow guide plate 4. This design enables the rotation of one rotating rod 36 to coordinate the angle adjustment of three flow guide plates 4, facilitating simultaneous changes in flow direction and angle, thereby achieving precise flow guiding adjustment.

[0028] ​During the adjustment process, the system's synchronicity and structural stability were well guaranteed. The transmission structure of the linkage 38 ensured the synchronous movement of all moving blocks, while the combination of the rotating rod 36 with the limit bar 361, worm gear 372, and worm wheel 371 not only improved the smoothness of the adjustment process but also ensured the accuracy of the 4-angle change of the guide plate. Therefore, this adjustment structure can not only meet the flow guidance requirements under different flow conditions but also provide a stable and precise flow guidance effect during use.

[0029] Example 2: Figure 3 and Figure 4 As shown, the transmission rod 37 is rotatably connected to the housing 39, and one end of the transmission rod 37 is fixedly connected to the guide plate 4. A slide rod 33 is provided on one side of the threaded rod 32. The first moving block 34 and the second moving block 35 are both slidably connected to the slide rod 33, and the slide rod 33 is fixedly connected to the inner wall of the mounting frame 31. A first handle 321 is fixedly connected to one end of the threaded rod 32, and a second handle 362 is fixedly connected to one end of the rotating rod 36. The transmission rod 37 is slidably connected to the guide hole 2, and multiple guide holes 41 are opened on the surface of the guide plate 4. A linkage rod 38 is rotatably connected to one side of the first moving block 34, and the middle part of the linkage rod 38 is rotatably connected to the second moving block 35. A connecting rod 381 is rotatably connected to one end of the linkage rod 38, and the connecting rod 381 is rotatably connected to the mounting frame 31.

[0030] The overall effect of this embodiment is that, during the installation of the flow guiding system, the three guide plates 4 on the same side can be rationally distributed according to requirements to improve the flow guiding effect and adapt to different flow guiding needs. This distributed installation design allows for flexible adjustment of the position and angle of the guide plates 4, making the fluid guidance more precise and further improving the system's flow guiding efficiency. Each control mechanism 3 coordinates the three guide plates 4 through the distributed installation method, enabling them to better cooperate during fluid flow guiding and improving the overall system's flow guiding performance.

[0031] During adjustment, rotating the first handle 321 drives the threaded rod 32 to rotate, thereby controlling the adjustment accuracy of the system. When the threaded rod 32 rotates, the second moving block 35 slides along a set trajectory on the surface of the threaded rod 32, thus changing the relative position of the guide vanes 4. In this process, the linkage rod 38 plays a crucial role. The deployment of the linkage rod 38 allows the force to be evenly transmitted to the two second moving blocks 35, while the connecting rod 381 remains in place, providing additional stability to the system and preventing deviations during movement. Furthermore, the combination of the linkage rod 38 and the connecting rod 381 ensures the coordination and synchronization of the various moving blocks, allowing the multiple guide vanes 4 to maintain a uniform spacing and relatively stable position during adjustment.

[0032] Meanwhile, the first moving block 34 and the second moving block 35 slide on the surface of the slide rod 33, which provides a stable support structure, avoiding shaking or deviation caused by gravity or external force during movement. This design reduces friction and resistance when sliding, ensuring the smoothness of the adjustment, making the movement of the first moving block 34 and the second moving block 35 more stable and smooth.

[0033] In addition, the cooperation of the rotating rod 36 and the limiting strip 361 provides a reliable control means for the system. The limiting strip 361 exerts force on the worm 372 when the rotating rod 36 rotates. Although the rotating rod 36 and the worm 372 are in sliding connection, the design of the limiting strip 361 ensures the accurate transmission of force during rotation. The rotating rod 36 drives the rotation of the worm 372 through the control of the limiting strip 361, and further drives the rotation of the transmission rod 37 through the worm gear 371, thereby adjusting the angle of the guide vane 4. This structure ensures that the angle adjustment of the guide vane 4 is still accurate and stable even in the case of frequent adjustment.

[0034] The use method and working principle of the device: by rotating the threaded rod 32, the first moving block 34 can be moved, thereby moving the connected shell 39 when moving, and indirectly changing the position of the guide vane 4, so as to adjust the guide effect.

[0035] When the first moving block 34 moves, the connecting rod 38 transmits power to drive the two second moving blocks 35 to move synchronously, so that the first moving block 34 and the two second moving blocks 35 maintain the same spacing movement, thereby adjusting the spacing of the three guide vanes 4. During adjustment, the shell 39 slides along the surface of the rotating rod 36, while the rotating rod 36 rotates, and the limiting strip 361 on the outer surface of the rotating rod 36 exerts force on the worm 372 to promote the rotation of the worm 372. Subsequently, the worm 372 drives the worm gear 371 to rotate, thereby driving the transmission rod 37 to rotate. When the transmission rod 37 rotates, the guide vane 4 also rotates. In this adjustment process, the angles of the three guide vanes 4 can be adjusted simultaneously through the rotating rod 36 to improve the guide effect.

[0036] When installing the guide vane 4, the three guide vanes 4 on one side of the same control mechanism 3 can be flexibly distributed and installed according to the needs, thereby further improving the effect during guide.

[0037] When the first handle 321 is rotated, the threaded rod 32 can be driven to rotate, so that the second moving block 35 slides along the surface of the threaded rod 32. When the connecting rod 38 is expanded, power is transmitted to the two second moving blocks 35, while the position of the connecting rod 381 remains unchanged, playing a stabilizing role.

[0038] When the first moving block 34 and the second moving block 35 move, they slide along the surface of the slide rod 33, thereby ensuring stability during movement. Due to the presence of the limiting strip 361, although the rotating rod 36 is in sliding connection with the worm 372, when the rotating rod 36 rotates, the limiting strip 361 can exert a force on the worm 372, thereby ensuring the accuracy of transmission.

[0039] The above is only the preferred embodiment of the present application, and is not intended to limit the present application in other forms. Any skilled person in the art can modify or change the above disclosed technical content to equivalent embodiments applied to other fields, but any simple modification, equivalent change and modification made to the above embodiments without departing from the technical scheme of the present application, in accordance with the technical essence of the present application, still belong to the protection scope of the technical scheme of the present application.

Claims

1. A water collector with high flow guiding efficiency, comprising a shell (1), three guiding holes (2) are formed in the inner wall of the shell (1), and three flow guiding plates (4) are arranged on the inner side of the shell (1), characterized in that: The outer surface of the shell (1) is provided with three control mechanisms (3); The control mechanism (3) comprises a mounting frame (31), the inner side of which is rotationally connected with a threaded rod (32), the outer surface of which is threadedly connected with a first moving block (34), the outer surface of one end of the threaded rod (32) is fixedly connected with two first moving blocks (34), the inner side of one end of the first moving block (34) and the second moving block (35) is fixedly connected with a shell (39), the inner cavity of the shell (39) is rotationally connected with a worm wheel (371) at one end, and the inner cavity of the shell (39) is rotationally connected with a worm (372) at the other end, one side of the threaded rod (32) is provided with a rotating rod (36), the rotating rod (36) is rotationally connected with the inner wall of the mounting frame (31), and the outer surface of the rotating rod (36) is fixedly connected with a limiting strip (361), the first moving block (34) and the second moving block (35) are slidingly connected with the rotating rod (36), the limiting strip (361) is slidingly connected with the worm (372), and the inner side of the worm wheel (371) is fixedly connected with a transmission rod (37).

2. The water collector of claim 1, wherein: The transmission rod (37) is rotationally connected with the shell (39), and one end of the transmission rod (37) is fixedly connected with the guide plate (4).

3. The water collector of claim 1, wherein: One side of the threaded rod (32) is provided with a sliding rod (33), the first moving block (34) and the second moving block (35) are slidingly connected with the sliding rod (33), and the sliding rod (33) is fixedly connected with the inner wall of the mounting frame (31).

4. The water collector of claim 1, wherein: One end of the threaded rod (32) is fixedly connected with a first handle (321), and one end of the rotating rod (36) is fixedly connected with a second handle (362).

5. The water collector of claim 1, wherein: The transmission rod (37) is slidingly connected with the guide hole (2), and the surface of the guide plate (4) is provided with a plurality of guide holes (41).

6. The water collector of efficient water collection according to claim 1, characterized in that: One side of the first moving block (34) is rotationally connected with a linkage rod (38), and the linkage rod (38) is rotationally connected with the second moving block (35) at the middle part.

7. The water collector of claim 6, wherein: One end of the linkage rod (38) is rotationally connected with a connecting rod (381), and the connecting rod (381) is rotationally connected with the mounting frame (31).

Citation Information

Patent Citations

  • Water collector capable of efficiently guiding flow

    CN218524012U