Green building energy-saving roof
By designing a green building energy-saving roof with a supporting frame and filtering mechanism, the problems of easy clogging and poor thermal insulation of rainwater collection are solved, efficient filtration and collection of rainwater is achieved, and the energy-saving effect of the roof is improved.
Patent Information
- Application Number
- CN202422806267.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-18
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2034-11-18
AI Technical Summary
The existing green building roofs are prone to clogging when collecting rainwater and have poor thermal insulation, resulting in incomplete rainwater filtration and the indoor environment being susceptible to external influences.
A green building energy-saving roof is designed, which includes a supporting frame, a roof body, drainage guide columns and a filtering mechanism. Through the drainage trough, drainage channel and filter screen and filter plate structure, it can effectively filter and collect rainwater and prevent clogging by impurities.
It achieves efficient collection and filtration of rainwater, avoids pipe blockage, improves the thermal insulation performance of the roof, and ensures a stable indoor environment.
Smart Images

Figure CN223398298U_ABST
Abstract
Description
Technical Field
[0001] The utility model belongs to the field of building structures, and in particular relates to a green building energy-saving roof. Background Art
[0002] Green buildings are high-quality buildings that save resources, protect the environment, reduce pollution, provide people with healthy, applicable and efficient use space throughout their entire life cycle, and maximize the harmonious coexistence of man and nature. The green energy-saving effect is achieved through the design of the roof. The existing technical solutions have certain defects. When collecting rainwater during use, simply filtering it through the receiving pipe can easily lead to pipe blockage. Impurities such as fallen leaves cannot be filtered out when collecting rainwater. At the same time, the roof has poor thermal insulation during use, which makes the indoor environment susceptible to external environmental influences. Summary of the Invention
[0003] In order to solve the deficiencies in the prior art, the utility model provides a green building energy-saving roof.
[0004] To achieve the above objectives, the present invention provides the following technical solutions:
[0005] A green building energy-saving roof, comprising:
[0006] A supporting frame, wherein both ends of the supporting frame are provided with first drainage channels;
[0007] A roof body, the roof body being arranged at the upper end of the support frame, the upper end of the roof body being provided with a plurality of first drainage grooves, the first drainage channels being correspondingly arranged at the lower ends of the first drainage grooves;
[0008] A drainage guide column is arranged at the lower end of the support frame, a first guide hole is provided at the upper end of the drainage guide column, a first drainage hole is provided at one end of the first drainage channel, the first guide hole matches the first drainage hole, and a filtering mechanism is provided at the lower end of the drainage guide column.
[0009] Furthermore, the filtering mechanism includes a first filter screen, a plurality of first hanging rings are provided around the first filter screen, a first support ring is provided at the lower end of the drainage guide column, a plurality of first hooks are provided on the first support ring, the first hanging ring matches the first hook, and a first hollowing hole is provided at the lower end of the drainage guide column, and the first hollowing hole matches the first filter screen.
[0010] Furthermore, the filtering mechanism includes a first filter plate, a second support ring is provided in the drainage guide column, the upper end of the second support ring is inclined, the upper end of the drainage guide column is provided with a first slag discharge port, the first slag discharge port corresponds to the second support ring, one end of the first filter plate is hinged to the upper end of the second support ring, and the other end of the first filter plate is arranged at the first slag discharge port.
[0011] Furthermore, a first mounting shell is provided at the upper end of the drainage guide column, a first cylinder is provided in the first mounting shell, a first connecting rod is hingedly provided at the lower end of the first cylinder, and the lower end of the first connecting rod is hingedly connected to the first filter plate.
[0012] Furthermore, the support frame is provided with a plurality of first connecting pipes, the first drainage channel is provided with a plurality of first connecting ports, and both ends of the first connecting pipes are connected to the first connecting ports in a one-to-one correspondence.
[0013] The green building energy-saving roof disclosed by the utility model has the beneficial effect compared with the existing technology in that it can guide rainwater into the first drainage channel through the first drainage groove on rainy days, and collect the rainwater flowing into the drainage guide column through the first drainage channel. Impurities such as fallen leaves can be filtered out through the first filter plate and the first filter screen, ensuring that the drainage is not easily blocked, thereby also realizing the rainwater collection function. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a structural schematic diagram of a preferred embodiment provided by the utility model from one perspective.
[0015] Figure 2 It is a structural schematic diagram of another perspective of a preferred embodiment provided by the utility model.
[0016] Figure 3 It is a structural schematic diagram of the first slag discharge port of the preferred embodiment provided by the present utility model.
[0017] Figure 4 It is a structural schematic diagram of the first hollowing opening of the preferred embodiment provided by the utility model.
[0018] The reference numerals include: 100, roof main body; 110, first drainage trough; 200, supporting frame; 210, first drainage channel; 220, first connecting pipe; 300, drainage guide column; 310, first slag discharge port; 320, first digging port; 330, first mounting shell; 340, first cylinder; 350, first connecting rod; 360, second support ring; 370, first filter plate; 380, first support ring; 381, first hook; 390, first filter screen; 391, first hanging ring. DETAILED DESCRIPTION
[0019] The utility model discloses a green building energy-saving roof. The specific implementation of the utility model is further described below in conjunction with preferred embodiments.
[0020] See attached figure Figure 1-4 , Figure 1 This is a structural diagram of a preferred embodiment provided by the utility model from one perspective. Figure 2 This is a structural diagram of another perspective of a preferred embodiment provided by the present invention. Figure 3 This is a structural diagram of the first slag discharge port 310 of a preferred embodiment provided by the present invention. Figure 4 It is a structural diagram of the first opening 320 of the preferred embodiment provided by the present utility model.
[0021] Preferred embodiment.
[0022] This embodiment provides a green building energy-saving roof, including:
[0023] A support frame 200 , with first drainage channels 210 provided at both ends of the support frame 200 ;
[0024] The roofing body 100 is disposed at the upper end of the supporting frame 200 . The upper end of the roofing body 100 is provided with a plurality of first drainage grooves 110 . The first drainage channels 210 are correspondingly disposed at the lower ends of the first drainage grooves 110 .
[0025] The drainage guide column 300 is arranged at the lower end of the support frame 200. The upper end of the drainage guide column 300 is provided with a first guide hole. One end of the first drainage channel 210 is provided with a first drainage hole. The first guide hole matches the first drainage hole. The lower end of the drainage guide column 300 is provided with a filtering mechanism.
[0026] Furthermore, the filtering mechanism includes a first filter screen 390, and a plurality of first hanging rings 391 are provided around the first filter screen 390. The lower end of the drainage guide column 300 is provided with a first support ring 380, and the first support ring 380 is provided with a plurality of first hooks 381. The first hanging ring 391 matches the first hook 381. The lower end of the drainage guide column 300 is provided with a first opening 320, and the first opening 320 matches the first filter screen 390.
[0027] Furthermore, the filtering mechanism includes a first filter plate 370, a second support ring 360 is provided in the drainage guide column 300, the upper end of the second support ring 360 is inclined, and the upper end of the drainage guide column 300 is provided with a first slag discharge port 310, the first slag discharge port 310 corresponds to the second support ring 360, one end of the first filter plate 370 is hinged to the upper end of the second support ring 360, and the other end of the first filter plate 370 is set at the first slag discharge port 310.
[0028] Furthermore, a first mounting shell 330 is provided at the upper end of the drainage guide column 300, a first cylinder 340 is provided in the first mounting shell 330, a first connecting rod 350 is hingedly provided at the lower end of the first cylinder 340, and the lower end of the first connecting rod 350 is hinged to the first filter plate 370.
[0029] Furthermore, a plurality of first connecting pipes 220 are provided on the support frame 200 , and a plurality of first connecting ports are provided on the first drainage channel 210 . Both ends of the first connecting pipes 220 are connected to the first connecting ports in a one-to-one correspondence.
[0030] Working principle: The support frame 200 supports the roof body 100. When it rains, rainwater can fall down along the first drainage trough 110 and enter the first drainage channel 210. The first drainage channels 210 at both ends are connected by the first connecting pipe 220 arranged at the bottom. The communicating vessel principle is used to ensure that the water levels of the first drainage channels 210 at both ends are the same. The water in the first drainage channel 210 enters the drainage guide column 300 through the first drainage hole and the first guide hole. After being filtered by the first filter plate 370, the rainwater can then fall toward the drainage guide column 300, while fallen leaves, sand and gravel are blocked at the upper end of the first filter plate 370. When the first cylinder 340 is started, it can drive the first connecting rod 350 to move, and then drive the first filter plate 370 to flip and vibrate, so that the fallen leaves, sand and gravel are discharged through the first slag discharge port 310, thereby preventing fallen leaves, sand and gravel from accumulating in the drainage guide column 300. In addition, the first filter 390 can also filter out fallen leaves that have not been discharged, and can be taken out through the first opening 320.
[0031] It is worth mentioning that the technical features such as the first cylinder 340 involved in this utility model patent application should be regarded as prior art. The specific structure, working principle and possible control method and spatial layout method of these technical features can be selected by conventional means in the field, and should not be regarded as the utility model point of this utility model patent. This utility model patent will not be further elaborated.
[0032] For those skilled in the art, it is still possible to modify the technical solutions described in the aforementioned embodiments, or to replace some of the technical features therein with equivalents. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principles of the present utility model should be included in the scope of protection of the present utility model.
Claims
1. A green building energy-saving roof, characterized in that: include: A supporting frame (200), wherein first drainage channels (210) are provided at both ends of the supporting frame (200); A roofing body (100), the roofing body (100) being arranged at the upper end of the supporting frame (200), the upper end of the roofing body (100) being provided with a plurality of first drainage grooves (110), the first drainage channels (210) being correspondingly arranged at the lower ends of the first drainage grooves (110); A drainage guide column (300) is provided at the lower end of the support frame (200), a first guide hole is provided at the upper end of the drainage guide column (300), a first drainage hole is provided at one end of the first drainage channel (210), the first guide hole matches the first drainage hole, and a filtering mechanism is provided at the lower end of the drainage guide column (300).
2. The green building energy-saving roof according to claim 1, characterized in that: The filtering mechanism comprises a first filter screen (390), a plurality of first hanging rings (391) are provided around the first filter screen (390), a first support ring (380) is provided at the lower end of the drainage guide column (300), a plurality of first hooks (381) are provided on the first support ring (380), the first hanging rings (391) match the first hooks (381), and a first opening (320) is provided at the lower end of the drainage guide column (300), and the first opening (320) matches the first filter screen (390).
3. The green building energy-saving roof according to claim 2, characterized in that: The filtering mechanism includes a first filter plate (370), a second support ring (360) is provided in the drainage guide column (300), the upper end of the second support ring (360) is inclined, a first slag discharge port (310) is provided at the upper end of the drainage guide column (300), the first slag discharge port (310) corresponds to the second support ring (360), one end of the first filter plate (370) is hinged to the upper end of the second support ring (360), and the other end of the first filter plate (370) is arranged at the first slag discharge port (310).
4. The green building energy-saving roof according to claim 3, characterized in that: A first mounting shell (330) is provided at the upper end of the drainage guide column (300), a first cylinder (340) is provided in the first mounting shell (330), a first connecting rod (350) is hingedly provided at the lower end of the first cylinder (340), and the lower end of the first connecting rod (350) is hingedly connected to the first filter plate (370).
5. The green building energy-saving roof according to claim 4, characterized in that: The support frame (200) is provided with a plurality of first connecting pipes (220), the first drainage channel (210) is provided with a plurality of first connecting ports, and both ends of the first connecting pipes (220) are connected to the first connecting ports in a one-to-one correspondence.