Refrigeration warehouse aluminum row integrated drainage structure
Patent Information
- Application Number
- CN202522244585.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-09-29
- Estimated Expiration
- 2035-10-23
AI Technical Summary
传统做法中,这些水滴往往直接滴落至地面或产品表面, 易导致积水、结冰等问题,影响冷库卫生环境
1. 通过为每根铝排精准配置接水板,从源头有效承接所有冷凝水与化霜水,并利用倾斜设计与集成管路将水滴有序导流至指定点。这从根本上解决了水滴直接滴落导致地面积水、结冰的顽固问题,极大地提升了冷库的卫生安全与操作环境;
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Figure CN224815225U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of cold storage drainage technology, and in particular to an integrated aluminum drainage structure for cold storage. Background Technology
[0002] In low-temperature environments such as cold storage and mobile mushroom cultivation rooms, aluminum busbars are key heat exchange components for maintaining low temperatures. To ensure the installation stability and heat exchange uniformity of the aluminum busbars, multiple adjacent aluminum busbars need to be fixedly connected by horizontally arranged connecting rods to form a whole aluminum busbar assembly. This aluminum busbar assembly is then suspended and fixed to the top of the cold storage or mobile mushroom cultivation room by U-shaped hooks, thereby achieving reliable support for multiple aluminum busbars.
[0003] During operation, condensation or water droplets from melting frost can easily form on the surface. In traditional practices, these water droplets often drip directly onto the ground or product surface, which can easily lead to water accumulation, freezing, and other problems, affecting the hygiene of the cold storage environment. Utility Model Content
[0004] In order to improve the hygienic environment of cold storage, this application provides an integrated aluminum drainage structure for cold storage.
[0005] This application provides an integrated aluminum drainage structure for cold storage, employing the following technical solution: An integrated drainage structure for aluminum bars in a cold storage facility includes a water receiving plate and a water collecting pipe. Multiple water receiving plates are provided, each corresponding to a specific number of aluminum bars. Each water receiving plate has an upward-facing water receiving groove. The water receiving plates are fixedly installed below the aluminum bars, with the water receiving groove aligned with the aluminum bars to collect water droplets falling from their surfaces. Each water receiving plate has a drain outlet at one end. The water collecting pipe connects to the drain outlets of each water receiving plate, and a drain pipe is connected to the bottom of one end of the water collecting pipe. The drain pipe directs the collected water droplets to a designated discharge point.
[0006] By adopting the above technical solution, the condensate or defrost water dripping from each aluminum bar can be collected at the source and channeled in an orderly manner through the water collection pipe and the drain pipe, which completely avoids water droplets dripping directly onto the ground or goods, thereby effectively solving the problem of water accumulation and ice formation on the ground of the cold storage and improving environmental hygiene.
[0007] Optionally, it also includes several support rods, which are detachably connected to the connecting rods of the aluminum busbar via connectors. The support rods are supported on the bottom of the water receiving plate, and the water receiving plate abuts against the connecting rods of the aluminum busbar under the cooperation of the support rods and connectors.
[0008] By adopting the above technical solution, an independent and stable support is provided for the water receiving plate. By connecting it with the original connecting rod of the aluminum drain, the installation is more secure, effectively preventing the water receiving plate from shifting or sagging due to its own weight or external force. This ensures that the water receiving trough is always aligned with the aluminum drain, thus improving the long-term stability of the drainage structure.
[0009] Optionally, the connector includes a cable tie that binds the support rod and the connecting rod together, so that the water receiving plate is confined between the support rod and the aluminum busbar connecting rod.
[0010] By employing the above-mentioned technical solution, using cable ties for binding and fixing is a low-cost, convenient, and reliable connection method. It can quickly and securely fasten the support rod and the connecting rod together, thereby firmly clamping the water receiving plate in the middle, achieving precise positioning and limiting of the water receiving plate, and preventing it from loosening.
[0011] Optionally, the water receiving plate is fixedly provided with multiple positioning block groups, each positioning block group including two positioning blocks, and a positioning gap is left between the two positioning blocks for the edge of the aluminum busbar to be inserted, so as to form a relative positioning between the water receiving plate and the aluminum busbar.
[0012] By adopting the above technical solution, and through the positioning gap formed by the positioning block assembly and its engagement with the edge of the aluminum busbar, rapid and precise lateral positioning between the water receiving plate and the aluminum busbar is achieved. This ensures that during installation, the water receiving trough can automatically align directly below the aluminum busbar, improving installation efficiency and alignment accuracy.
[0013] Optionally, the water receiving plate has a water receiving groove that is inclined along its length, and the drain outlet is located near the downward-inclined end of the water receiving groove of the water receiving plate.
[0014] By adopting the above technical solution, the water collected in the water receiving tank can flow automatically and smoothly to the drain at the lower end by utilizing gravity, thus avoiding water from spreading and accumulating in the water receiving tank. This greatly improves the drainage efficiency and smoothness of a single water receiving plate and reduces the risk of residual water freezing.
[0015] Optionally, the water collection pipe is inclined downwards along its length toward the drain pipe.
[0016] By adopting the above technical solution, the principle of gravity is also utilized to enable the water flowing from each water receiving plate into the water collection pipe to automatically flow towards the drain pipe, ensuring that the collected water can be smoothly guided away, preventing blockage or water accumulation in the water collection pipe, and ensuring unobstructed drainage of the entire integrated drainage system.
[0017] Optionally, the bottom of the water receiving trough has a rounded transition.
[0018] By adopting the above technical solution, the arc-shaped bottom design reduces water flow resistance, which is conducive to the collection and flow of water droplets and tiny ice crystals, preventing residue from remaining in corners. At the same time, the arc-shaped transition structure provides a more uniform stress distribution, making it less prone to dirt accumulation and easier to clean, while also enhancing the structural strength of the water receiving plate. In summary, this application includes at least one of the following beneficial effects: 1. By precisely configuring water collection plates for each aluminum bar, all condensate and defrost water are effectively collected at the source, and the inclined design and integrated piping guide the water droplets to designated points in an orderly manner. This fundamentally solves the stubborn problem of water droplets dripping directly onto the ground, causing water accumulation and freezing, and greatly improves the hygiene, safety, and operating environment of the cold storage. 2. The design of support rods, detachable connectors and positioning blocks ensures that the water receiving components are installed firmly and positioned accurately. Attached Figure Description
[0019] Figure 1 This is a schematic diagram of the overall structure of an embodiment of this application; Figure 2 This is a schematic diagram illustrating the structure of the water receiving plate and aluminum busbar in the embodiments of this application; Figure 3 This is a partial schematic diagram illustrating the support rod and cable tie in an embodiment of this application; Figure 4 This is a schematic diagram of the water receiving plate in the embodiments of this application.
[0020] Explanation of reference numerals in the attached diagram: 1. Aluminum strip; 2. Connecting rod; 3. Water receiving plate; 4. Water receiving trough; 5. Drain outlet; 6. Water collection pipe; 7. Drain pipe; 8. Support rod; 9. Cable tie; 10. Positioning block. Detailed Implementation
[0021] The present application will be further described in detail below with reference to the accompanying drawings.
[0022] This application discloses an integrated drainage structure for aluminum drains in cold storage, which aims to solve the problems of water accumulation, freezing, and hygiene caused by condensate or defrost water droplets falling on the ground during the operation of the aluminum drain, and to achieve the orderly collection and discharge of water droplets.
[0023] Reference Figure 1 , 2 The integrated drainage structure of the aluminum drain in the cold storage includes a water receiving plate 3 and a water collection pipe 6. The number of water receiving plates 3 corresponds one-to-one with the number of aluminum drains 1, ensuring that water droplets generated by each aluminum drain 1 can be collected. The water receiving plate 3 is generally elongated, and the top of the water receiving plate 3 has an upward-facing water receiving groove 4. The width of the water receiving groove 4 is larger than the width of the corresponding aluminum drain 1, so as to completely cover the projected area of the aluminum drain 1 and ensure that water droplets dripping from the surface of the aluminum drain 1 will not leak out.
[0024] Reference Figure 2 , 3 The bottom of the water receiving trough 4 adopts a rounded transition design, and the radius of the rounded arc can be selected according to the size of the water receiving plate 3. This structure not only reduces water flow resistance, but also makes it easier for water droplets and small ice crystals to collect and flow, avoiding residue in corners. The water receiving trough 4 of each water receiving plate 3 is set in an inclined state along its length direction. The inclination angle can be adjusted according to the actual drainage needs. The water receiving plate 3 has a drain outlet 5 at the lower end of the inclined direction of the water receiving trough 4, so that the water in the water receiving trough 4 can automatically flow to the drain outlet 5 under the action of gravity, avoiding water accumulation.
[0025] Reference Figure 1 The water collection pipe 6 is used to collect the water discharged from each water receiving plate 3. The upper end of the water collection pipe 6 has an opening, and one end of the drain outlet 5 of each water receiving plate 3 rests against the opening of the water collection pipe 6, allowing water droplets inside the water receiving plate 3 to flow into the water collection pipe 6 for collection. The water collection pipe 6 can be fixed to the wall of the cold storage or mushroom house with bolts or other fasteners.
[0026] Reference Figure 1 One end of the water collection pipe 6 is connected to a drain pipe 7, which extends to a designated discharge point to concentrate and guide the collected water droplets to the designated discharge point. The water collection pipe 6 is also inclined along its length toward the drain pipe 7, so that the water collected in the water collection pipe 6 can flow smoothly to the drain pipe 7 under the action of gravity.
[0027] Reference Figure 2 , 3 To ensure the installation stability of the water receiving plate 3, the structure also includes several support rods 8. The support rods 8 adopt a rigid rod structure, and the material can be galvanized steel pipe or high-strength engineering plastic. The support rods 8 are set at the bottom of the water receiving plate 3 and are perpendicular to the extension direction of the water receiving plate 3 to form simultaneous support for multiple water receiving plates 3; in addition, the support rods 8 and the original transverse connecting rods 2 of the aluminum busbar 1 are detachably connected by connectors. Under the combined action of the supporting force of the support rods 8 and the constraint force of the connectors, the water receiving plate 3 is tightly pressed against the connecting rods 2 of the aluminum busbar 1, effectively preventing the water receiving plate 3 from shifting or sagging due to its own weight or external force.
[0028] Reference Figure 3 In this embodiment, the connector is a cable tie 9, preferably a low-temperature resistant nylon cable tie 9, to ensure sufficient binding strength. During installation, the cable tie 9 is passed through the support rod 8 and the connecting rod 2 of the aluminum busbar 1, and the two are firmly bound together by tightening the cable tie 9, so that the water receiving plate 3 is clamped and limited between the support rod 8 and the connecting rod 2 of the aluminum busbar 1. This connection method is not only low in cost, but also very convenient for installation, disassembly and adjustment.
[0029] Reference Figure 3 , 4To further improve the alignment accuracy between the water receiving plate 3 and the aluminum busbar 1, multiple positioning block groups are fixedly installed at intervals along the length of the water receiving groove 4 of the water receiving plate 3. Each positioning block group consists of two opposing positioning blocks 10. The positioning blocks 10 can be fixed and installed by integral molding with the water receiving plate 3 or by adhesive bonding. The width of the positioning gap formed between the two positioning blocks 10 is adapted to the thickness of the aluminum busbar 1. During installation, the edge of the aluminum busbar 1 is inserted into the corresponding positioning gap. Through the limiting effect of the positioning blocks 10, the water receiving plate 3 and the aluminum busbar 1 are horizontally positioned, ensuring that the water receiving groove 4 is always directly below the aluminum busbar 1, and avoiding water leakage due to installation deviation.
[0030] The implementation principle of the integrated aluminum drainage structure for cold storage in this application embodiment is as follows: During operation, condensate or defrost water generated on the surface of aluminum drain 1 drips into the corresponding water receiving plate 3 and water receiving trough 4 below. Because the water receiving trough 4 is inclined, the water flows along the water receiving trough 4 to the drain outlet 5 and into the water collection pipe 6. The inclined design of the water collection pipe 6 causes the collected water to flow to the drain pipe 7 at its lower end, and finally discharges it to a designated location outside the cold storage through the drain pipe 7, realizing the orderly collection and discharge of water dripping from aluminum drain 1 throughout the entire process.
[0031] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. An integrated aluminum drainage structure for cold storage, characterized in that: The system includes a water receiving plate (3) and a water collecting pipe (6). The water receiving plate (3) has multiple plates, each corresponding to one of the aluminum busbars (1). Each water receiving plate (3) has an upward-facing water collecting groove (4). The water receiving plate (3) is fixedly installed below the aluminum busbar (1), with the water collecting groove (4) aligned with the aluminum busbar (1) to collect water droplets falling from its surface. Each water receiving plate (3) has a drain outlet (5) at one end. The water collecting pipe (6) connects to the drain outlet (5) of each water receiving plate (3). A drain pipe (7) is connected to the bottom of one end of the water collecting pipe (6), which guides the collected water droplets to a central location. The system includes a designated discharge point and several support rods (8). The support rods (8) are detachably connected to the connecting rods (2) of the aluminum busbar (1) via connectors. The support rods (8) are supported at the bottom of the water receiving plate (3). Under the cooperation of the support rods (8) and connectors, the water receiving plate (3) abuts against the connecting rods (2) of the aluminum busbar (1). Multiple positioning block groups are fixedly arranged inside the water receiving plate (3). Each positioning block group includes two positioning blocks (10). A positioning gap is left between the two positioning blocks (10) for the edge of the aluminum busbar (1) to be inserted, so as to form a relative positioning between the water receiving plate (3) and the aluminum busbar (1).
2. The integrated aluminum drainage structure for cold storage according to claim 1, characterized in that: The connector includes a cable tie (9) that binds the support rod (8) and the connecting rod (2) together, so that the water receiving plate (3) is confined between the support rod (8) and the aluminum busbar (1) connecting rod (2).
3. The integrated aluminum drainage structure for cold storage according to claim 1, characterized in that: The water receiving plate (3) has a water receiving groove (4) that is inclined along its length, and the drain outlet (5) is close to the downward inclined end of the water receiving groove (4) of the water receiving plate (3).
4. The integrated aluminum drainage structure for cold storage according to claim 3, characterized in that: The water collection pipe (6) slopes downward along its length toward the drain pipe (7).
5. The integrated aluminum drainage structure for cold storage according to claim 3, characterized in that: The bottom of the water receiving trough (4) is rounded.