Building air conditioning panel drainage assembly
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-01
- Publication Date
- 2026-08-11
AI Technical Summary
[0004]上述专利中通过在空调板本体上设置有排水槽,排水槽的一侧设置有排水孔,将空调板的积水进行排出,但是缺少引流组件,容易引起水的堆积,因此需要一种空调板引流组件可以解决排放问题
[0018](1)通过设置有第一引流件以及第二引流件的结合,能够帮助空调板上的积水快速排出,防止影响建筑强度。
Smart Images

Figure CN224623137U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of air conditioning panel technology, and in particular to a building air conditioning panel diversion component. Background Technology
[0002] Indoor air conditioning is becoming increasingly indispensable in people's daily lives, requiring careful consideration of its placement in building design. This results in various architectural styles for the air conditioning units and building facades. However, the placement of these units necessitates consideration of the building's exterior and the drainage of condensate. When installing condensate pipes, a straight-up-down arrangement is preferable, which limits the design possibilities for the facade. Allowing condensate to drain freely results in scattered water droplets and dripping noise, which can corrode and pollute the building walls over time, significantly diminishing the building's functionality and user experience.
[0003] Currently, to address the issue of water accumulation on air conditioning panels, the industry typically employs the following measures: first, adding drainage channels to direct accumulated water to the sewer pipes; second, using waterproof coatings to improve the waterproof performance of the air conditioning panel surface; and third, installing guide plates to direct water flow to specific areas. For example, drainage channels are prone to clogging and require regular cleaning; waterproof coatings have limited durability and may fail over time; and guide plates are complex to design and difficult to install. Existing technology, such as Chinese Patent Publication No. CN212427777U, discloses a prefabricated air conditioning panel with drainage function, comprising an air conditioning panel body, transverse ribs, and longitudinal ribs perpendicular to the transverse ribs. The air conditioning panel body has an installation slot on its right side, drainage holes inside, and vertical, horizontal, and inclined drainage channels on its surface. An air conditioning pipe holder is fixedly installed on the surface, and two clamps are fixedly installed on the top of the air conditioning pipe holder. A slot is opened on the top of the air conditioning pipe holder on the opposite side of the two clamps, and locking screws are movably installed inside the two clamps.
[0004] The aforementioned patent describes a drainage groove on the air conditioning panel with a drainage hole on one side to drain accumulated water. However, it lacks a drainage component, which can easily cause water accumulation. Therefore, an air conditioning panel drainage component is needed to solve the drainage problem. Utility Model Content
[0005] The present invention proposes a drainage component for building air conditioning panels, which reduces water accumulation on the air conditioning panels by drainage, thereby achieving the purpose of unorganized drainage.
[0006] To achieve this objective, the present invention adopts the following technical solution:
[0007] An air conditioning panel drainage assembly is installed on the exterior wall of a building. The air conditioning panel is installed on the exterior wall of the building at an angle to the outside of the exterior wall. A first drainage component is installed on the side of the air conditioning panel with the lowest slope, and a second drainage component is installed inside the exterior wall of the building. The top of the first drainage component has a first water inlet, which is connected to the top of the air conditioning panel. A second water inlet is installed on one side of the second drainage component, and one end of the first drainage component is connected to the second water inlet.
[0008] The preferred technical solution of this utility model is that the first draining member and the second draining member are provided with a fixing anchor point on the side for fixing, and the fixing anchor point is inserted into the air conditioning panel or the building exterior wall; the end of the fixing anchor point for inserting into the air conditioning panel or the building exterior wall is set as a pointed end.
[0009] The preferred technical solution of this utility model is that the air conditioning panel is fixed to the two sides of the building exterior wall, which are respectively set as a first side and a second side, and the first side slopes towards the second side by 1%-3%, or the first side and the second side slope towards the middle of the air conditioning panel by 1%-3%.
[0010] The preferred technical solution of this utility model is that the first drainage member and the second drainage member are filled with porous material, and the first drainage member is sloped 1-3% towards the second drainage member.
[0011] The preferred technical solution of this utility model is that the porous material is a three-dimensional porous plastic material.
[0012] The preferred technical solution of this utility model is that the first diverting member is configured as a tube, and the opening of the first water inlet is at least 1 / 6 of the circumference of the first diverting member.
[0013] The preferred technical solution of this utility model is that the fixing anchor point on the first diverting member is set on one side of the first water inlet; when the lowest slope position of the air conditioning plate is located on the second side, the first diverting member is fixed on the air conditioning plate by the fixing anchor point, and the first water inlet is inclinedly set on one side of the air conditioning plate.
[0014] The preferred technical solution of this utility model is that the outer walls of the first drainage member and the second drainage member are made of stainless steel.
[0015] The preferred technical solution of this utility model is that one end of the second drainage component is connected to the ground.
[0016] The preferred technical solution of this utility model is that a flexible connecting tube is connected between the first drainage member and the second drainage member.
[0017] The beneficial effects of this utility model are as follows:
[0018] (1) By combining the first drainage component and the second drainage component, the water accumulated on the air conditioning panel can be drained quickly to prevent it from affecting the building strength.
[0019] (2) By providing porous material in the first and second drainage components, the water-holding capacity of the first and second drainage components can be increased, and water can quickly pass through the first and second drainage components and reach the ground. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the overall structure of the building air conditioning panel diversion component provided in a specific embodiment of this utility model;
[0021] Figure 2 yes Figure 1 Enlarged diagram of A in the middle;
[0022] Figure 3 This is a partial structural schematic diagram of the air conditioning panel and the first diversion component of the building air conditioning panel diversion assembly provided in a specific embodiment of this utility model;
[0023] Figure 4 This is a partial structural schematic diagram of the building air conditioning panel diversion component provided in a specific embodiment of this utility model;
[0024] Figure 5 This is a partial structural diagram of the building exterior wall and the second diversion component of the building air conditioning panel diversion assembly provided in a specific embodiment of this utility model;
[0025] In the picture:
[0026] 1. Air conditioning panel; 2. Building exterior wall; 3. First side; 4. Second side; 5. First drainage component; 501. First water inlet; 6. Second drainage component; 601. Second water inlet; 7. Fixed anchor point; 8. Porous material. Detailed Implementation
[0027] The technical solution of this utility model will be further described below with reference to the accompanying drawings and specific embodiments.
[0028] like Figure 1-5 As shown, the present invention provides a building air conditioning panel drainage component. The problem with the prior art is that the air conditioning panel 1 on the exterior wall of the building is prone to water accumulation, causing the wall surface to be damp and leaking. To address this, the present application mainly adopts a building air conditioning panel drainage component, which effectively collects and discharges the water accumulated on the air conditioning panel 1, prevents water accumulation, and reduces the risk of wall surface dampness and leakage.
[0029] Example 1
[0030] The building air conditioning panel drainage assembly provided in this application embodiment is installed on the building exterior wall 2. An air conditioning panel 1 is installed at an angle on the building exterior wall 2. A first drainage component 5 is installed on the side of the air conditioning panel 1 with the lowest slope. A second drainage component 6 is installed inside the building exterior wall 2. A first water inlet 501 is opened at the top of the first drainage component 5 and is connected to the top of the air conditioning panel 1. A second water inlet 601 is installed on one side of the second drainage component 6. One end of the first drainage component 5 is connected to the second water inlet 601. This achieves effective collection and drainage of water accumulated on the air conditioning panel 1, prevents water accumulation, reduces the risk of wall dampness and leakage, and can drain the condensate and other water in the first drainage component 5 to the ground through the second drainage component 6.
[0031] The air conditioning panel 1 includes a first side 3 and a second side 4. The first side 3 slopes towards the second side 4 by 1%-3%, or the first side 3 and the second side 4 slope towards the middle of the air conditioning panel 1 by 1%-3%. This design allows rainwater or condensate and other liquids to flow naturally to the lowest point under gravity, so that they can be collected in time by the first drainage component 5. It also prevents the support of the air conditioning panel 1 from being affected by excessive tilting. At the same time, the first drainage component 5 slopes towards the second drainage component 6 by 1-3%, preferably 2%, so that the water in the first drainage component 5 can flow to the second drainage component 6 in time.
[0032] The first drainage component 5 includes a tubular structure, and the opening of the first inlet 501 is at least 1 / 6 of the circumference of the first drainage component 5. This design ensures sufficient water inlet area, preventing water from accumulating and failing to drain in time due to an insufficiently small inlet. The first drainage component 5 can be made of stainless steel, which has good corrosion resistance and durability. The interior of the first drainage component 5 can also be filled with a porous material 8, such as a three-dimensional porous plastic material. These materials can increase the water flow path, improve drainage efficiency, and filter out some impurities, preventing the first drainage component 5 from becoming clogged.
[0033] The fixing method of the first draining component 5 and the second draining component 6 is also very important. The first draining component 5 and the second draining component 6 are equipped with fixing anchor points 7 on their fixing sides. The fixing anchor points 7 are inserted into the air conditioning panel 1 or the building's exterior wall 2. One end of the fixing anchor point 7 is designed as a pointed tip to facilitate insertion into the wall and improve the stability of the fixing. The fixing anchor points 7 can use common fasteners such as threaded rods or expansion bolts to ensure reliability in various environments.
[0034] A second inlet 601 is provided on one side of the second diversion component 6, and one end of the first diversion component 5 is connected to the second inlet 601. The other end of the second diversion component 6 is connected to the ground, so that the collected water can be directly discharged into the ground to avoid secondary pollution. The second diversion component 6 is also made of stainless steel to ensure its corrosion resistance and durability.
[0035] By rationally designing the slope of the air conditioning panel 1 and the structure of the first drainage component 5, accumulated water is rapidly guided to the first drainage component 5 using gravity, and then discharged into the ground through the second drainage component 6. This design not only improves drainage efficiency and reduces the possibility of water accumulation, but also extends the service life of the building's exterior wall 2 and the air conditioning panel 1, reducing maintenance costs. At the same time, the application of porous material 8 further improves the reliability and maintainability of the drainage system.
[0036] Example 2
[0037] The difference between this embodiment and the previous embodiment lies in the optimized connection method between the first drainage component 5 and the second drainage component 6. A flexible connecting pipe can be used to connect the first drainage component 5 and the second drainage component 6. This flexible connecting pipe can adapt to certain displacement and deformation, preventing pipe breakage due to temperature changes or other reasons. The flexible connecting pipe can be made of materials such as rubber hoses or corrugated metal pipes, which have good flexibility and sealing properties, providing necessary expansion and contraction space while maintaining connection strength.
[0038] Furthermore, the outer walls of the first drainage component 5 and the second drainage component 6 are coated with an anti-ultraviolet (UV) coating to prevent material aging caused by prolonged exposure to sunlight. The UV-resistant coating can be made of materials such as silicone resin and fluorocarbon resin, which possess excellent weather resistance and anti-aging properties, significantly extending the service life of the drainage system. By employing flexible connecting pipes and the UV-resistant coating, the connection reliability and weather resistance of the first drainage component 5 and the second drainage component 6 are improved, making the entire drainage system more stable and durable. Even under extreme weather conditions, it maintains good drainage performance, further enhancing the drainage performance and service life of the building's air conditioning panel 1.
[0039] Example 3
[0040] The difference between this embodiment and the previous embodiment is that the outer walls of the first drainage component 5 and the second drainage component 6 are made of a double-layer composite material, with an inner layer of stainless steel and an outer layer of polymer. This design retains the corrosion resistance and durability of stainless steel while increasing the impact resistance and scratch resistance of the polymer, enabling the first drainage component 5 and the second drainage component 6 to maintain good performance in various environments.
[0041] Furthermore, the porous material 8 filling the interior of the first drainage element 5 and the second drainage element 6 has been improved. The porous material 8 is a mixture of activated carbon and ceramsite. Activated carbon has excellent adsorption properties, effectively removing odors and impurities from the water, while ceramsite increases the water flow path and improves drainage efficiency. The application of this mixed material not only enhances the purification capacity of the drainage system but also extends its service life.
[0042] By employing a double-layer composite material and a modified porous material 8, the overall performance of the first drainage component 5 and the second drainage component 6 is further improved, enabling them to maintain efficient drainage under various environments. Simultaneously, the addition of activated carbon enhances the system's purification capacity, resulting in cleaner discharged water and further improving the drainage performance and environmental friendliness of the building air conditioning panel 1.
[0043] Example 4
[0044] The difference between this embodiment and the previous embodiment is that the fixing anchor points 7 of the first drainage component 5 and the second drainage component 6 are designed to be adjustable, allowing for adjustment of the fixing position and angle according to actual conditions. The adjustable fixing anchor points 7 can be in the form of threaded rods with spring washers, ensuring a certain degree of elasticity during fixing and adapting to walls and air conditioning panels 1 of different thicknesses. Furthermore, the fixing anchor points 7 of the first drainage component 5 and the second drainage component 6 can also be set with self-tapping screws for convenient and quick installation and disassembly, improving construction efficiency. By adopting the adjustable fixing anchor point 7 design, the ease of installation and maintenance of the first drainage component 5 and the second drainage component 6 is improved, making the entire drainage system more flexible and efficient in practical applications. Whether for initial installation or subsequent maintenance, it saves a significant amount of time and manpower, improving the practicality and economy of the building air conditioning panel 1 drainage system.
[0045] This utility model has been described through preferred embodiments. Those skilled in the art will understand that various changes or equivalent substitutions can be made to these features and embodiments without departing from the spirit and scope of this utility model. This utility model is not limited to the specific embodiments disclosed herein; other embodiments falling within the scope of the claims of this application are all within the protection scope of this utility model.
Claims
1. A building air conditioning panel diversion assembly, disposed on a building exterior wall (2), wherein an air conditioning panel (1) is disposed on the building exterior wall (2), characterized in that: The air conditioning panel (1) is inclinedly installed on the outer side of the building exterior wall (2). A first diversion component (5) is provided on the side of the air conditioning panel (1) with the lowest slope. A second diversion component (6) is provided inside the building exterior wall (2). A first water inlet (501) is provided at the top of the first diversion component (5). The first water inlet (501) is connected to the top of the air conditioning panel (1). A second water inlet (601) is provided on one side of the second diversion component (6). One end of the first diversion component (5) is connected to the second water inlet (601).
2. The building air conditioning panel diversion assembly according to claim 1, characterized in that: The first draining component (5) and the second draining component (6) are provided with a fixing anchor point (7) on one side for fixing. The fixing anchor point (7) is inserted into the air conditioning panel (1) or the building exterior wall (2). The fixed anchor point (7) is used to insert one end into the air conditioning panel (1) or the building exterior wall (2), and is set as a pointed end.
3. The building air conditioning panel diversion assembly according to claim 2, characterized in that: The air conditioning panel (1) is fixed to the two sides of the building exterior wall (2) and is respectively set as a first side (3) and a second side (4). The first side (3) slopes towards the second side (4) by 1%-3%, or the first side (3) and the second side (4) slope towards the middle of the air conditioning panel (1) by 1%-3%.
4. The building air conditioning panel diversion assembly according to claim 1, characterized in that: The first drainage element (5) and the second drainage element (6) are filled with porous material (8), and the first drainage element (5) slopes 1-3% towards the second drainage element (6).
5. The building air conditioning panel diversion assembly according to claim 4, characterized in that: The porous material (8) is configured as a three-dimensional porous plastic material.
6. The building air conditioning panel diversion assembly according to claim 1, characterized in that: The first draining member (5) is configured as a tube, and the opening of the first inlet (501) is at least 1 / 6 of the circumference of the first draining member (5).
7. The building air conditioning panel diversion assembly according to claim 3, characterized in that: The fixed anchor point (7) on the first diverting component (5) is located on one side of the first inlet (501); When the lowest slope of the air conditioning panel (1) is located on the second side (4), the first diverting component (5) is fixed on the air conditioning panel (1) by the fixed anchor point (7), and the first water inlet (501) is inclined on one side of the air conditioning panel (1).
8. The building air conditioning panel diversion assembly according to claim 1, characterized in that: The outer walls of the first drainage member (5) and the second drainage member (6) are made of stainless steel.
9. The building air conditioning panel diversion assembly according to claim 1, characterized in that: One end of the second drainage component (6) is connected to the ground.
10. The building air conditioning panel diversion assembly according to claim 1, characterized in that: A flexible connecting tube connects the first drainage element (5) and the second drainage element (6).
Citation Information
Patent Citations
Prefabricated air conditioning board with drainage function
CN212427777U