Reinforced heat preservation pigeon shed
By designing a double-layer insulation structure in the pigeon coop, including an outer insulation structure and an inner insulation structure, the problem of poor insulation effect in existing pigeon coops has been solved, achieving effective insulation and ventilation functions, and ensuring the healthy growth of pigeons.
Patent Information
- Application Number
- CN202423096606.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-16
- Publication Date
- 2025-11-11
- Estimated Expiration
- 2034-12-16
AI Technical Summary
The existing pigeon coop's single-layer external insulation design results in poor insulation performance, failing to effectively keep warm in low-temperature environments, thus affecting the growth and health of pigeons.
It adopts a double-layer insulation structure, including an outer insulation structure and an inner insulation structure. The outer insulation structure consists of an arc-shaped support frame and an insulation film. The inner insulation structure realizes the winding and unfolding of the insulation film through an unwinding shaft and a rewinding shaft, and is fixed with Velcro and limit blocks to ensure the insulation effect and allow ventilation when needed.
The double-layer insulation of the pigeon coop improves the insulation effect, ensuring the healthy growth of pigeons in a low-temperature environment, and facilitates ventilation when needed, avoiding air leakage.
Smart Images

Figure CN223528713U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of breeding equipment technology, and in particular to a reinforced insulated pigeon coop. Background Technology
[0002] Pigeon lofts need to meet conditions such as dryness, ventilation, good drainage, cleanliness, sufficient number of cages, and suitable temperature. The optimal growth temperature for pigeons is 18-23℃, with an ideal temperature of 13℃. If the temperature is below 13℃, the physical condition of meat pigeons will decline, and below 12℃, the growth and development of young pigeons will be severely hindered. Furthermore, at excessively low temperatures, chicks are prone to frostbite, colds, or other diseases, and in severe cases, they may even freeze to death. Existing pigeon lofts typically have a single-layer external insulation layer, which has poor insulation performance and cannot achieve adequate insulation if the temperature is too low. Utility Model Content
[0003] To overcome the shortcomings of the existing problems mentioned above, this utility model provides a reinforced insulated pigeon coop.
[0004] The technical solution adopted by this utility model to solve its technical problem is as follows: a reinforced heat-insulating pigeon coop, including a wall, ventilation nets on both sides of the wall, an external heat-insulating structure outside the ventilation nets, the external heat-insulating structure including several arc-shaped support frames arranged side by side, the arc-shaped support frames covered with a first heat-insulating film, side support frames also provided on both sides of the arc-shaped support frames and on the wall, the side support frames are rotatably connected to the wall through a pivot, the side support frames are covered with a second heat-insulating film, the joint between the first heat-insulating film and the second heat-insulating film is provided with Velcro, and an internal heat-insulating structure is also provided between the external heat-insulating structure and the wall. In use, the side support frames are rotated to make the second heat-insulating film adhere to the first heat-insulating film and fix it with Velcro, effectively preventing air leakage at the gap between the first heat-insulating film and the second heat-insulating film. If the pigeon coop needs ventilation, the Velcro is removed and the side support frames are rotated to achieve ventilation inside the pigeon coop.
[0005] Preferably, a T-shaped track is fixedly connected above the arc-shaped support frame and to the wall, and a T-shaped slider is fixedly connected to one side of the first insulation film. The first insulation film is fixed above the arc-shaped support frame by the cooperation of the T-shaped track and the T-shaped slider. The first insulation film is easy to install and remove by the T-shaped track and the T-shaped slider.
[0006] Preferably, the internal insulation structure includes an unwinding shaft, an outer sleeve of which is a third insulation film. A counterweight is fixedly connected to the bottom of the third insulation film. The unwinding shaft is mounted on an arc-shaped support frame and on a wall. A winding shaft is located below the unwinding shaft. Pull ropes are fixedly connected to both ends of the unwinding shaft, and the other end of the pull ropes is fixedly connected to the winding shaft. A limit block is located above the winding shaft and on the wall. A groove that fits the winding shaft is opened below the limit block. A vertically arranged limit hole is opened in the limit block, and a limit rod is installed in the limit hole. The lower end of the limit rod passes through the winding shaft. In use, rotating the winding shaft causes the pull rope to rotate the unwinding shaft, gradually winding the third insulation film to the outer layer of the unwinding shaft. After winding is completed, the winding shaft is locked under the limit block, and the limit rod passes through the limit block and the winding shaft to complete the fixation. Removing the limit rod causes the third insulation film to unfold under the action of the counterweight.
[0007] Preferably, the bottom of the first insulation film is provided with the same number of straps as the arc-shaped support frame. The first insulation film is tied to the bottom of the arc-shaped support frame by the straps to prevent air leakage at the bottom of the first insulation film.
[0008] The beneficial effect of this utility model is that it achieves double-layer insulation through an external insulation structure and an internal insulation structure, effectively improving the insulation effect of the pigeon coop. Attached Figure Description
[0009] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0010] Figure 1 This is a three-dimensional structural diagram of the insulation film of this utility model when it is folded up;
[0011] Figure 2 This is a three-dimensional structural diagram of the thermal insulation film of this utility model in use;
[0012] Figure 3 yes Figure 1 A magnified view of a section at point A in the middle;
[0013] In the diagram, 1. Wall; 2. Ventilation net; 3. External insulation structure; 4. Arc-shaped support frame; 5. First insulation film; 6. Side support frame; 7. Second insulation film; 8. Velcro; 9. Spindle; 10. Internal insulation structure; 11. T-shaped track; 12. T-shaped slider; 13. Unwinding spindle; 14. Rewinding spindle; 15. Pull rope; 16. Third insulation film; 17. Counterweight; 18. Limiting block; 19. Limiting rod. Detailed Implementation
[0014] All features disclosed in this specification, or all steps in all disclosed methods or processes, may be combined in any way, except for mutually exclusive features and / or steps.
[0015] Any feature disclosed in this specification (including any appended claims, abstract, and drawings) may be replaced by other equivalent or similar features for a similar purpose, unless specifically stated otherwise. That is, unless specifically stated otherwise, each feature is merely one example of a series of equivalent or similar features.
[0016] like Figure 1-3 The diagram shows a reinforced insulated pigeon coop, comprising a wall 1 with ventilation nets 2 on both sides. An external insulation structure 3 is located outside the ventilation nets 2. The external insulation structure 3 includes several parallel arc-shaped support frames 4, each covered with a first insulation film 5. Side support frames 6 are also provided on both sides of the arc-shaped support frames 4 and on the wall 1. The side support frames 6 are rotatably connected to the wall 1 via pivots 9. A second insulation film 7 is also provided over the side support frames 6. Velcro 8 is provided at the joint between the first and second insulation films 5 and 7. An internal insulation structure 10 is also provided between the external insulation structure 3 and the wall 1. In use, rotating the side support frames 6 causes the second insulation film 7 to adhere to the first insulation film 5 and is secured with the Velcro 8, effectively preventing air leakage at the gaps between the first and second insulation films 5 and 7. If ventilation is needed in the pigeon coop, the Velcro 8 is removed and the side support frames 6 are rotated to achieve ventilation.
[0017] A T-shaped track 11 is fixedly connected above the arc-shaped support frame 4 and to the wall 1. A T-shaped slider 12 is fixedly connected to one side of the first insulation film 5. The first insulation film 5 is fixed above the arc-shaped support frame 4 by the cooperation of the T-shaped track 11 and the T-shaped slider 12. The T-shaped track 11 and the T-shaped slider 12 facilitate the installation and removal of the first insulation film 5.
[0018] The internal insulation structure 10 includes an unwinding shaft 13, an outer sleeve of which is a third insulation film 16. A counterweight 17 is fixedly connected to the bottom end of the third insulation film 16. The unwinding shaft 13 is mounted inside the arc-shaped support frame 4 and on the wall 1. A winding shaft 14 is located below the unwinding shaft 13. Pull ropes 15 are fixedly connected to both ends of the unwinding shaft 13, and the other end of the pull ropes 15 is fixedly connected to the winding shaft 14. A limit block 18 is provided above the winding shaft 14 and on the wall 1. A corresponding opening is provided below the limit block 18, which is connected to the winding shaft 14. The fitting groove has a vertically set limiting hole in the limiting block 18, and a limiting rod 19 is set in the limiting hole. The lower end of the limiting rod 19 passes through the winding shaft 14. In use, the winding shaft 14 is rotated, and the pull rope 15 drives the unwinding shaft 13 to rotate, gradually winding the third insulation film 16 to the outer layer of the unwinding shaft 13. After winding is completed, the winding shaft 14 is locked under the limiting block 18, and fixed by the limiting rod 19 passing through the limiting block 18 and the winding shaft 14. When the limiting rod 19 is removed, the third insulation film 16 will unfold under the action of the counterweight 17.
[0019] The bottom of the first insulation film 5 is provided with the same number of straps as the arc-shaped support frame 4. The first insulation film 5 is tied to the bottom of the arc-shaped support frame 4 by the straps to prevent air leakage at the bottom of the first insulation film 5. Specific Implementation
[0020] When the pigeon coop needs insulation, pull out the limiting rod 19 inside the limiting block 18. The third insulation film unfolds under the action of the counterweight 17 and covers the outside of the ventilation net 2. Then, the first insulation film 5 is fixed above the arc support frame 4 by the T-shaped slider 12 and the T-shaped track 11. Rotate the side support frame 6 to make the second insulation film 7 fit with the first insulation film 5 and fix it with Velcro 8. If the pigeon coop needs ventilation, peel off the Velcro 8 and rotate the side support frame 4 to achieve the ventilation effect. When the room temperature rises, the first insulation film 5 can be removed by removing the T-shaped slider 12, or the second insulation film 7 can be rolled up by rotating the winding shaft 14 and fixed by the limiting rod 19 to use the outer insulation structure 3 or the inner insulation structure 10 alone. If the room temperature is high enough that no additional insulation is needed, remove the first insulation film 5 and roll up the second insulation film 7.
[0021] This design is ingenious, achieving double-layer insulation through an external and internal insulation structure, effectively improving the insulation effect of the pigeon coop. In addition, the internal insulation structure is rolled up and fixed by a retractable shaft, limiting blocks, and limiting rods, making it simple to operate and convenient to use. Furthermore, the first and second insulation films are attached together with Velcro, and ventilation can be achieved by peeling off the Velcro and rotating the side support frame when ventilation is needed.
[0022] This invention is not limited to the specific embodiments described above. This invention extends to any new feature or combination disclosed in this specification, as well as any new method or process step or combination disclosed herein.
Claims
1. A reinforced insulated pigeon coop, characterized in that: The wall (1) is provided with ventilation nets (2) on both sides of the wall (1). An external insulation structure (3) is provided on the outside of the ventilation nets (2). The external insulation structure (3) includes several arc-shaped support frames (4) arranged side by side. The arc-shaped support frames (4) are covered with a first insulation film (5). Side support frames (6) are also provided on both sides of the arc-shaped support frames (4) and on the wall (1). The side support frames (6) are rotatably connected to the wall (1) through a pivot (9). The side support frames (6) are covered with a second insulation film (7). Velcro (8) is provided at the joint between the first insulation film (5) and the second insulation film (7). An internal insulation structure (10) is also provided between the external insulation structure (3) and the wall (1).
2. The reinforced insulated pigeon coop according to claim 1, characterized in that: A T-shaped track (11) is fixedly connected above the arc-shaped support frame (4) and on the wall (1), and a T-shaped slider (12) is fixedly connected to one side of the first insulation film (5).
3. The reinforced insulated pigeon coop according to claim 1, characterized in that: The internal insulation structure (10) includes an unwinding shaft (13), an outer sleeve of the unwinding shaft (13) with a third insulation film (16), a counterweight (17) fixedly connected to the bottom end of the third insulation film (16), the unwinding shaft (13) is mounted inside the arc-shaped support frame (4) and on the wall (1), a winding shaft (14) is provided below the unwinding shaft (13), a pull rope (15) is fixedly connected to both ends of the unwinding shaft (13), the other end of the pull rope (15) is fixedly connected to the winding shaft (14), a limit block (18) is provided above the winding shaft (14) and on the wall (1), a groove that fits the winding shaft (14) is provided below the limit block (18), a vertically set limit hole is provided in the limit block (18), a limit rod (19) is provided in the limit hole, and the lower end of the limit rod (19) passes through the winding shaft (14).
4. The reinforced insulated pigeon coop according to claim 1, characterized in that: The bottom end of the first insulation film (5) is provided with the same number of straps as the arc-shaped support frame (4).