Outdoor arc corridor surface rainwater guiding device

By designing rainwater diversion devices on the corridor surfaces of curved or spherical buildings, and utilizing a combination of intercepting channels and drip lines, the problem of rainwater dripping or flowing is solved, improving cleanliness and reducing cleaning costs.

CN223893675UActive Publication Date: 2026-02-10MCC TIANGONG GROUP
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Patent Information

Application Number
CN202423254693.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-28
Publication Date
2026-02-10
Estimated Expiration
2034-12-28

AI Technical Summary

Technical Problem

In the exterior decoration of curved or spherical buildings, rainwater will drip or flow in different ways, causing dust to adhere, affecting the appearance and making it difficult to clean.

Method used

Design a rainwater diversion device for the surface of an outdoor arc-shaped corridor, including a first arc-shaped main body and a second arc-shaped main body. The first arc-shaped main body is set at the top of the corridor frame and has a water interception groove, while the second arc-shaped main body is set at the bottom and has a drip line. Through the abutting structure of the first arc-shaped main body and the second arc-shaped main body, rainwater accumulates in the water interception groove and overflows to the outside and drips along the drip line, avoiding dripping or flowing.

Benefits of technology

It improves the cleanliness of curved or spherical corridor surfaces, reduces cleaning costs, and maintains the building's aesthetic appeal.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides an outdoor arc corridor surface rainwater diversion device, which relates to the technical field of building construction, and comprises a first arc-shaped main body and a second arc-shaped main body, the first arc-shaped main body is arranged at the periphery of a corridor framework and is arranged at the top of the corridor framework, and the two sides of the bottom of the first arc-shaped main body are respectively provided with a water cut-off groove; the second arc-shaped main body is arranged on the periphery of the corridor framework and mounted at the bottom of the corridor framework, and a water drip is arranged on the second arc-shaped main body; the top surface of the second arc-shaped main body abuts against the bottom of the first arc-shaped main body, and the outer diameter of the cross section of the top surface of the second arc-shaped main body is the same as that of the cross section of the bottom surface of the first arc-shaped main body. The water dripping state or the random flowing state at the bottom of the arc-shaped or spherical corridor in rainy days can be effectively solved; the cleanliness of the arc-shaped or spherical bottom is improved, and the cleaning cost is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of building construction technology, and in particular to a rainwater diversion device for the surface of an outdoor arc-shaped corridor. Background Technology

[0002] With the rapid development of the construction industry, especially in urban construction, due to the need for both aesthetics and practicality, architectural designs reflect both various shapes and actual building requirements.

[0003] Especially in the exterior decoration of buildings with arc or spherical shapes, when it rains, the bottom of the arc or spherical shape will show different dripping or flowing states depending on the intensity of the rain and the curvature. Over time, the accumulation of dust and other substances not only affects the aesthetics but is also difficult to clean.

[0004] Therefore, there is an urgent need for an outdoor arc-shaped corridor surface rainwater diversion device to solve the above-mentioned technical problems. Utility Model Content

[0005] The purpose of this utility model is to provide a rainwater diversion device for the surface of an outdoor arc-shaped corridor, to solve the technical problem in the prior art where, in the exterior decoration of arc-shaped or spherical architectural shapes, the bottom of the arc or spherical shape exhibits different dripping or flowing states depending on the intensity of the rain and the curvature. Over time, dust and other substances adhere to this, affecting aesthetics and making cleaning difficult. The various technical effects of the preferred technical solution provided by this utility model are detailed below.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] This utility model provides a rainwater diversion device for the surface of an outdoor arc-shaped corridor, comprising a first arc-shaped main body and a second arc-shaped main body, wherein:

[0008] The first arc-shaped main body is disposed on the periphery of the corridor frame and installed on the top of the corridor frame, and water interception grooves are provided on both sides of the bottom of the first arc-shaped main body;

[0009] The second arc-shaped main body is disposed on the periphery of the corridor frame and installed at the bottom of the corridor frame, and a drip line is provided on the second arc-shaped main body;

[0010] The top surface of the second arc-shaped body abuts against the bottom of the first arc-shaped body, and the outer diameter of the top surface section of the second arc-shaped body is the same as the outer diameter of the bottom surface section of the first arc-shaped body.

[0011] Preferably, the first arc-shaped body includes a first arc-shaped plate, a second arc-shaped plate, and a first connecting plate, wherein:

[0012] One end of the first arc-shaped plate is connected to the first connecting plate, and the other end of the first arc-shaped plate is provided with the water interception groove;

[0013] One end of the second arc-shaped plate is connected to the first connecting plate, and the other end of the second arc-shaped plate is provided with the water interception groove.

[0014] Preferably, both the first arc-shaped plate and the second arc-shaped plate include a body, and a flange protruding from the end of the body is provided along the end of the body. A "U"-shaped groove is opened obliquely towards the end of the body along the end face of the flange to form the water interception groove.

[0015] Preferably, the second arc-shaped body includes a third arc-shaped plate and a fourth arc-shaped plate, wherein the third arc-shaped plate is disposed at the bottom of the first arc-shaped plate and the fourth arc-shaped plate is disposed at the bottom of the second arc-shaped plate.

[0016] Preferably, the drip line is provided in the middle of the third arc-shaped plate and in the middle of the fourth arc-shaped plate.

[0017] Preferably, the second arc-shaped body further includes a second connecting plate, which is disposed between the third arc-shaped plate and the fourth arc-shaped plate.

[0018] Preferably, a sealing structure is provided between the third arc-shaped plate and the second connecting plate, and between the second connecting plate and the fourth arc-shaped plate.

[0019] Preferably, a sealing structure is provided between the first arc-shaped plate and the first connecting plate, and between the first connecting plate and the second arc-shaped plate.

[0020] This utility model provides a rainwater diversion device for the surface of an outdoor arc-shaped corridor, comprising a first arc-shaped body and a second arc-shaped body. The first arc-shaped body is set on the periphery of the corridor frame and installed on the top of the corridor frame, with water interception grooves on both sides of the bottom of the first arc-shaped body. The second arc-shaped body is set on the periphery of the corridor frame and installed on the bottom of the corridor frame, with a drip line on the second arc-shaped body. The overall structure is simple. When it rains, rainwater enters the water interception groove from the top of the first arc-shaped body through the outside of the first arc-shaped body. When a large amount of rainwater is stored in the water interception groove, it overflows from the water interception groove to the outside of the water interception groove. By setting the top surface of the second arc-shaped body to abut against the bottom of the first arc-shaped body, and the outer diameter of the top surface section of the second arc-shaped body is the same as the outer diameter of the bottom surface section of the first arc-shaped body, rainwater drips down along the outer surface of the second arc-shaped body through the drip line, avoiding the formation of dripping or random flow at the bottom of the arc-shaped or spherical corridor surface, improving the cleanliness of the arc-shaped or spherical bottom and reducing cleaning costs. Attached Figure Description

[0021] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0022] Figure 1 This is a schematic diagram of the structure of an embodiment of the rainwater diversion device for the surface of an outdoor arc-shaped corridor according to this utility model;

[0023] Figure 2 This is a side view of the rainwater diversion device for the outdoor arc-shaped corridor surface of this utility model.

[0024] Figure 3 This is a schematic diagram of the structure of the first arc-shaped plate in the outdoor arc-shaped corridor surface rainwater diversion device of this utility model;

[0025] Figure 4 This is a schematic diagram of the structure of the second arc-shaped plate in the rainwater diversion device for the outdoor arc-shaped corridor surface of this utility model;

[0026] Figure 5 This is a flowchart of the construction method for the outdoor arc-shaped corridor surface rainwater diversion device of this utility model.

[0027] In the figure: 1. First arc-shaped main body; 10. Water interception channel; 11. First arc-shaped plate; 12. Second arc-shaped plate; 13. First connecting plate; 100. Body; 101. Flange;

[0028] 2. Second arc-shaped main body; 20. Drip line; 21. Third arc-shaped plate; 22. Fourth arc-shaped plate; 23. Second connecting plate;

[0029] 3. Corridor framework;

[0030] 4. Sealed structure. Detailed Implementation

[0031] To make the objectives, technical solutions, and advantages of this utility model clearer, the technical solutions of this utility model will be described in detail below. Obviously, the described embodiments are only a part of the embodiments of this utility model, and not all of them. Based on the embodiments of this utility model, all other implementation methods obtained by those skilled in the art without creative effort are within the scope of protection of this utility model.

[0032] Figure 1 This is a structural schematic diagram of this embodiment. Figure 2 This is a side view structural diagram of this embodiment, as shown below. Figure 1 and Figure 2 As shown, this embodiment provides a rainwater diversion device for the surface of an outdoor arc-shaped corridor, including a first arc-shaped body 1 and a second arc-shaped body 2.

[0033] The first arc-shaped main body 1 is located on the periphery of the corridor frame 3 and installed on the top of the corridor frame 3. Water interception grooves 10 are provided on both sides of the bottom of the first arc-shaped main body 1.

[0034] The second arc-shaped main body 2 is set on the periphery of the corridor frame 3 and installed at the bottom of the corridor frame 3. A drip line 20 is set on the second arc-shaped main body 2.

[0035] The top surface of the second arc-shaped body 2 abuts against the bottom of the first arc-shaped body 1, and the outer diameter of the top surface section of the second arc-shaped body 2 is the same as the outer diameter of the bottom surface section of the first arc-shaped body 1.

[0036] This outdoor arc-shaped corridor surface rainwater diversion device includes a first arc-shaped body 1 and a second arc-shaped body 2. The first arc-shaped body 1 is set on the periphery of the corridor frame 3 and installed on the top of the corridor frame 3. Water interception grooves 10 are set on both sides of the bottom of the first arc-shaped body 1. The second arc-shaped body 2 is set on the periphery of the corridor frame 3 and installed on the bottom of the corridor frame 3. A drip line 20 is set on the second arc-shaped body 2. The overall structure is simple. When it rains, rainwater enters from the outside of the first arc-shaped body 1 through the top of the first arc-shaped body 1. When rainwater accumulates in the intercepting trough 10, it overflows to the outside of the intercepting trough 10. By setting the top surface of the second arc-shaped main body 2 to abut the bottom of the first arc-shaped main body 1, and the outer diameter of the top surface section of the second arc-shaped main body 2 is the same as the outer diameter of the bottom surface section of the first arc-shaped main body 1, the rainwater drips along the outer surface of the second arc-shaped main body 2 through the drip line 20, avoiding the formation of dripping or random flow at the bottom of the arc-shaped or spherical corridor surface, improving the cleanliness of the arc-shaped or spherical bottom and reducing cleaning costs.

[0037] As an optional implementation, the first arc-shaped body 1 includes a first arc-shaped plate 11, a second arc-shaped plate 12, and a first connecting plate 13.

[0038] One end of the first arc-shaped plate 11 is connected to the first connecting plate 13, and the other end of the first arc-shaped plate 11 is provided with a water interception groove 10; one end of the second arc-shaped plate 12 is connected to the first connecting plate 13, and the other end of the second arc-shaped plate 12 is provided with a water interception groove 10.

[0039] In this embodiment, the first arc-shaped plate 11 and the second arc-shaped plate 12 are symmetrically arranged on both sides of the first connecting plate 13, and the first connecting plate 13 adopts an annular plate structure.

[0040] As an optional implementation method, Figure 3 This is a schematic diagram of the structure of the first arc-shaped plate in this embodiment. Figure 4 This is a schematic diagram of the structure of the second arc-shaped plate in this embodiment, as shown below. Figure 3 and Figure 4 As shown, both the first arc plate 11 and the second arc plate 12 include a body 100. A flange 101 protruding from the end of the body 100 is provided along the end of the body 100. A "U"-shaped groove is opened obliquely towards the end of the body 100 along the end face of the flange 101 to form a water interception groove 10.

[0041] With this configuration, the water interception trough 10 is inclined toward the end of the main body 100, which facilitates rainwater to smoothly enter the water interception trough 10 along the first arc plate 11 or the second arc plate 12, and can smoothly overflow from the water interception trough 10 to the second arc body 2.

[0042] Specifically, in this embodiment, sealing structures 4 are provided between the first arc-shaped plate 11 and the first connecting plate 13, and between the first connecting plate 13 and the second arc-shaped plate 12. This prevents water from seeping between the first arc-shaped plate 11 and the first connecting plate 13, and between the first connecting plate 13 and the second arc-shaped plate 12, when the outdoor arc-shaped corridor surface rainwater diversion device is in use.

[0043] As an optional implementation, the second arc-shaped body 2 includes a third arc-shaped plate 21 and a fourth arc-shaped plate 22. The third arc-shaped plate 21 is disposed at the bottom of the first arc-shaped plate 11, and the fourth arc-shaped plate 22 is disposed at the bottom of the second arc-shaped plate 12.

[0044] Preferably, in this embodiment, a drip line 20 is provided in the middle of the third arc-shaped plate 21 and in the middle of the fourth arc-shaped plate 22. Of course, in some embodiments, the drip line 20 can also be provided in the upper middle part of the third arc-shaped plate 21 and the fourth arc-shaped plate 22.

[0045] This design prevents rainwater from flowing to the bottom of the curved or spherical shape, thus avoiding dripping or random flow and improving the cleanliness of the bottom, reducing cleaning costs.

[0046] As an optional implementation, the second arc-shaped body 2 also includes a second connecting plate 23, which is disposed between the third arc-shaped plate 21 and the fourth arc-shaped plate 22.

[0047] In this embodiment, the third arc-shaped plate 21 and the fourth arc-shaped plate 22 are symmetrically arranged on both sides of the second connecting plate 23, and the second connecting plate 23 is also an arc-shaped plate.

[0048] Specifically, a sealing structure 4 is provided between the third arc-shaped plate 21 and the second connecting plate 23, and between the second connecting plate 23 and the fourth arc-shaped plate 22, to prevent water from seeping between the third arc-shaped plate 21 and the second connecting plate 23, and between the second connecting plate 23 and the fourth arc-shaped plate 22 when the outdoor arc-shaped corridor surface rainwater diversion device is in use.

[0049] Figure 5 This is a flowchart illustrating the construction method for rainwater diversion on the surface of an outdoor curved corridor, as shown below. Figure 5 As shown, this embodiment provides a construction method for rainwater diversion on the surface of the outdoor arc-shaped corridor, including the following steps:

[0050] S1: Based on the dimensions of the corridor frame, prefabricate curved panels with water interception grooves and curved panels with drip lines;

[0051] Specifically, this includes using BIM technology to optimize the layout of the ring keel and decorative panels, designing the installation positions and separation joints between each panel; and prefabricating curved panels with water interception grooves and curved panels with drip lines.

[0052] S2: Install an arc-shaped plate with a water-cutting groove on the upper outer side of the corridor frame; specifically, install the arc-shaped plate with the water-cutting groove. The plate should be installed firmly and the slope should facilitate drainage on both sides; after installation, conduct a water tightness test. After passing the test, proceed to the next process.

[0053] S3: Install an arc-shaped plate with a drip line on the lower outer side of the corridor frame; specifically, install the arc-shaped plate with a drip line on the lower side of the arc-shaped plate with a water interception groove according to the layout position, so as to facilitate the overflow of rainwater from the diversion groove and the pollution of the bottom of the arc-shaped plate by rainwater from the outside.

[0054] S4: Install the connecting plate and seal it; specifically, install the curved plates in other parts, and install the curved plates in other parts in sequence according to the layout requirements; the spacing between the plates must meet the design requirements;

[0055] S5: After installation, a water spray test is conducted. During the test, there was no leakage in the entire circular corridor. The drainage method ensures smooth drainage and effectively solves the problems of dripping or random flow at the curved or spherical bottom during rain, improving the cleanliness of the curved or spherical bottom.

[0056] The above description is merely a specific embodiment of this utility model, but the protection scope of this utility model is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in this utility model should be included within the protection scope of this utility model. Therefore, the protection scope of this utility model should be determined by the protection scope of the claims.

Claims

1. A rainwater diversion device for the surface of an outdoor arc-shaped corridor, characterized in that, It includes a first arc-shaped main body and a second arc-shaped main body, wherein: The first arc-shaped main body is disposed on the periphery of the corridor frame and installed on the top of the corridor frame, and water interception grooves are provided on both sides of the bottom of the first arc-shaped main body; The second arc-shaped main body is disposed on the periphery of the corridor frame and installed at the bottom of the corridor frame, and a drip line is provided on the second arc-shaped main body; The top surface of the second arc-shaped body abuts against the bottom of the first arc-shaped body, and the outer diameter of the top surface section of the second arc-shaped body is the same as the outer diameter of the bottom surface section of the first arc-shaped body.

2. The outdoor arc-shaped corridor surface rainwater diversion device according to claim 1, characterized in that, The first arc-shaped main body includes a first arc-shaped plate, a second arc-shaped plate, and a first connecting plate, wherein: One end of the first arc-shaped plate is connected to the first connecting plate, and the other end of the first arc-shaped plate is provided with the water interception groove; One end of the second arc-shaped plate is connected to the first connecting plate, and the other end of the second arc-shaped plate is provided with the water interception groove.

3. The outdoor arc-shaped corridor surface rainwater diversion device according to claim 2, characterized in that: Both the first arc-shaped plate and the second arc-shaped plate include a body, and a flange protruding from the end of the body is provided along the end of the body. A "U"-shaped groove is opened obliquely towards the end of the body along the end face of the flange to form the water interception groove.

4. The outdoor arc-shaped corridor surface rainwater diversion device according to claim 2 or 3, characterized in that: The second arc-shaped body includes a third arc-shaped plate and a fourth arc-shaped plate. The third arc-shaped plate is disposed at the bottom of the first arc-shaped plate, and the fourth arc-shaped plate is disposed at the bottom of the second arc-shaped plate.

5. The outdoor arc-shaped corridor surface rainwater diversion device according to claim 4, characterized in that: The drip line is provided in the middle of the third arc-shaped plate, and the drip line is provided in the middle of the fourth arc-shaped plate.

6. The outdoor arc-shaped corridor surface rainwater diversion device according to claim 4, characterized in that: The second arc-shaped body also includes a second connecting plate, which is disposed between the third arc-shaped plate and the fourth arc-shaped plate.

7. The outdoor arc-shaped corridor surface rainwater diversion device according to claim 6, characterized in that: A sealing structure is provided between the third arc-shaped plate and the second connecting plate, and between the second connecting plate and the fourth arc-shaped plate.

8. The outdoor arc-shaped corridor surface rainwater diversion device according to claim 2 or 3, characterized in that: A sealing structure is provided between the first arc-shaped plate and the first connecting plate, and between the first connecting plate and the second arc-shaped plate.