Energy-saving atrium roof-out structure
By installing shading sidewalls and heat exhaust mechanisms around the building's atrium, combined with motorized shading louvers and a temperature control system, the problems of hot air accumulation and direct sunlight at the top of the atrium were solved, resulting in extended daylighting time and reduced energy consumption.
Patent Information
- Application Number
- CN202520094150.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-15
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2035-01-15
AI Technical Summary
The existing building's atrium roof is experiencing high temperatures due to the accumulation of hot air and sunlight, increasing the air conditioning load and energy consumption.
Design an energy-saving atrium roof structure, including a sunshade sidewall, motorized sunshade louvers, a heat exhaust mechanism, and a temperature control system. By cooperating with the atrium glass, the sunshade sidewall controls direct sunlight and the exhaust of hot air, and the operation of the exhaust fan is precisely regulated by temperature sensors and solenoid valves.
It effectively reduces direct sunlight and hot air entering the room, extends the lighting time, reduces energy consumption, improves the performance and enhances structural stability.
Smart Images

Figure CN223689171U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to a kind of building eaves structure, specifically refers to a kind of energy-saving atrium eaves structure. BACKGROUND
[0002] Contemporary public buildings, such as commercial complexes, etc. use atrium, an indoor space form, in large quantities. A large amount of light glass is used on the top of the atrium to form a skylight. The combination of the atrium and the circular corridor around it is conducive to the creation of an indoor space atmosphere. However, this approach has some drawbacks in actual use. The high vertical space of the atrium causes the hot air generated to accumulate at the top, resulting in energy consumption. In addition, the long-term exposure to sunlight at the top causes the temperature inside the building to be too high, significantly increasing the air conditioning load inside the building and causing energy waste.
[0003] To solve this problem, the common practice is to set black curtains or shutters on the underside of the atrium glass for shading. Due to the long duration of sunlight, the atrium glass is in a closed state for most of the time, resulting in the loss of the true value of the atrium glass. If the atrium glass is not shaded, the lighting time is extended, which will increase the air conditioning load inside the building, resulting in an increase in energy consumption.
[0004] Therefore, the purpose of the present utility model is to design an energy-saving atrium eaves structure that can effectively ensure the lighting duration and solve the problem of the significant increase in the temperature inside the building caused by sunlight exposure, thereby improving the use effect and reducing energy consumption. SUMMARY
[0005] To solve the technical problems of the prior art, the present utility model provides an energy-saving atrium eaves structure that can effectively solve the technical problems of the prior art.
[0006] The technical solution of the present utility model is as follows:
[0007] An energy-saving atrium eaves structure includes:
[0008] A side stop mechanism includes a shading side wall around the perimeter of the atrium of the building;
[0009] An atrium glass is fixedly installed on the top of the shading side wall, and a corresponding shading louver is fixedly installed on the shading side wall at the bottom side of the atrium glass;
[0010] A hot air exhaust mechanism includes a plurality of exhaust pipes installed side by side on the shading side wall, and a corresponding exhaust fan is fixedly installed on the exhaust pipe;
[0011] The exhaust adjusting mechanism comprises a tee pipe connected to the air outlet end of the exhaust pipe, one end of the tee pipe not connected to the exhaust pipe is connected to the indoor space through a first electromagnetic valve, and the other end of the tee pipe not connected to the exhaust pipe is connected to the outdoor space through a second electromagnetic valve.
[0012] The temperature control mechanism comprises a first temperature sensor installed on the inner side of the sunshade side wall and a second temperature sensor installed on the air outlet end of the exhaust pipe, and the first temperature sensor, the second temperature sensor and the exhaust fan are respectively electrically connected to the corresponding control system.
[0013] One side of the sunshade side wall is externally fixed with a corresponding convex edge, and one end of the convex edge not connected to the sunshade side wall is fixedly connected with a corresponding foot downward.
[0014] The height of the sunshade side wall is not less than 800 mm.
[0015] The sunshade louver is an electric sunshade louver.
[0016] The other end of the tee pipe not connected to the exhaust pipe is arranged downwardly inclined.
[0017] The air inlet end of the exhaust pipe is connected to the middle part of the sunshade side wall, respectively.
[0018] The advantages of the utility model are:
[0019] 1) The sunshade side wall is arranged on the periphery of the building atrium, a high and opaque partition is formed in the building atrium, and the partition formed by the atrium glass is matched, so that the sunlight can be reduced to directly irradiate the building indoor through the atrium glass, and good scattering lighting can be obtained, and the sunshade louver only needs to be closed during the period of the direct sunlight of the sun, so that the lighting time length can be effectively ensured, and the problem of the obvious temperature rise in the building caused by the sunlight irradiation can be solved, and the use effect of the utility model and the energy consumption are reduced.
[0020] 2) The utility model further comprises a hot air exhaust mechanism and an exhaust adjusting mechanism, the first temperature sensor installed on the inner side of the sunshade side wall is used for detecting the temperature in the space formed by the sunshade side wall, when the temperature in the space formed by the sunshade side wall reaches the set value T1, the exhaust fan of the hot air exhaust mechanism is started to exhaust the high-temperature air at the top, so that the heat entering the building indoor is reduced, and the practical effect of the utility model is improved.
[0021] 3) When the exhaust fan is started to exhaust the high-temperature air, the second temperature sensor installed at the air outlet end of the exhaust pipe is used to measure the temperature of the exhaust air, and when the temperature of the exhaust air is lower than the set value T2 for a continuous time t1, the exhaust fan of the hot air exhaust mechanism stops running. Therefore, the exhaust amount of the high-temperature air is accurately controlled, so as to further improve the practical effect of the utility model.
[0022] 4) The convex edge is fixedly connected to the outside of the sunshade side wall, and the end of the convex edge not connected to the sunshade side wall is fixedly connected with a corresponding supporting leg downward. Through the setting of the convex edge, a corresponding resting seat is formed, so as to improve the use function of the utility model; and the overall structural stability of the sunshade side wall is enhanced, so as to further improve the practical effect of the utility model.
[0023] 5) The other end of the tee pipe not connected to the exhaust pipe is inclined downward, so as to prevent external rainwater from entering, thereby further improving the practical effect of the utility model. BRIEF DESCRIPTION OF DRAWINGS
[0024] Figure 1 It is a structural schematic view of the utility model.
[0025] Figure 2 It is a top view schematic view of the utility model.
[0026] Figure 3 It is Figure 2 A-A sectional view schematic view.
[0027] In the drawings: side blocking mechanism 1, sunshade side wall 101, convex edge 102, supporting leg 103, atrium glass 2, sunshade louver 3, hot air exhaust mechanism 4, exhaust pipe 401, exhaust fan 402, tee pipe 501, first electromagnetic valve 502, second electromagnetic valve 503, first temperature sensor 601, second temperature sensor 602. DETAILED DESCRIPTION
[0028] In order to facilitate those skilled in the art to understand, the structure of the utility model will be further described in detail in combination with the drawings:
[0029] Referring to Figures 1-3 An energy-saving atrium roof structure, comprising:
[0030] The side blocking mechanism 1 comprises a sunshade side wall 101 surrounding the periphery of the atrium of the building;
[0031] The atrium glass 2 is fixedly installed at the top of the sunshade side wall 101, and the sunshade louver 3 is fixedly installed on the sunshade side wall 101 at the bottom side of the atrium glass 2;
[0032] The hot air exhaust mechanism 4 comprises a plurality of exhaust pipes 401 installed side by side on the sunshade side wall 101, and corresponding exhaust fans 402 are fixedly installed on the exhaust pipes 401.
[0033] The exhaust air adjusting mechanism comprises a tee pipe 501 connected to the air outlet end of the exhaust pipe 401, one end of the tee pipe 501 not connected to the exhaust pipe 401 is connected to the building space through a first electromagnetic valve 502, and the other end of the tee pipe 501 not connected to the exhaust pipe 401 is connected to the building external space through a second electromagnetic valve 503.
[0034] The temperature control mechanism comprises a first temperature sensor 601 installed on the inner side of the sunshade side wall 101 and a second temperature sensor 602 installed on the air outlet end of the exhaust pipe 401, and the first temperature sensor 601, the second temperature sensor 602 and the exhaust fan 402 are electrically connected to corresponding control systems.
[0035] By the intervention of the sunshade side wall 101 arranged around the building atrium, a higher and opaque partition is formed at the building atrium, which cooperates with the partition formed by the atrium glass 2 to reduce the direct sunlight through the atrium glass 2 to the building room and obtain good scattered lighting, and only the sunshade louver 3 needs to be closed during the period of direct sunlight at noon, so that the lighting time can be effectively ensured, and the problem of obvious temperature rise in the building caused by sunlight can be solved, thereby improving the use effect and reducing the energy consumption.
[0036] The hot air exhaust mechanism 4 and the exhaust air adjusting mechanism are further arranged, the first temperature sensor 601 installed on the inner side of the sunshade side wall 101 is used to detect the temperature in the space formed by the sunshade side wall 101, when the temperature in the space formed by the sunshade side wall 101 reaches a set value T1, the exhaust fan 402 of the hot air exhaust mechanism 4 is started to exhaust and discharge the high-temperature air at the top, so that the heat entering the building room is reduced.
[0037] When the exhaust fan 402 is started to exhaust the high-temperature air, the second temperature sensor 602 installed on the air outlet end of the exhaust pipe 401 is used to detect the temperature of the exhaust air, when the temperature of the exhaust air is lower than a set value T2 within a continuous time t1, the exhaust fan of the hot air exhaust mechanism stops running, so that the exhaust amount of the high-temperature air is accurately controlled.
[0038] The sunshade side wall 101 is externally and fixedly connected with a corresponding protruding edge 102, and the protruding edge 102 is fixedly connected with a corresponding supporting leg 103 downward at one end not connected to the sunshade side wall 101.
[0039] The convex edge 102 is arranged to form a corresponding rest seat, thereby improving the use function of the utility model, and the overall structural stability of the sunshade side wall 101 is enhanced, thereby further improving the practical effect of the utility model.
[0040] The height of the sunshade side wall 101 is not less than 800 mm. The sunshade louver 3 is an electric sunshade louver.
[0041] The other end of the tee pipe 501 connected to the exhaust pipe 401 is arranged to be inclined downward. The feeding end of the exhaust pipe 401 is connected to the middle part of the sunshade side wall 101 respectively. The other end of the tee pipe 501 connected to the exhaust pipe 401 is arranged to be inclined downward to prevent external rainwater from entering.
[0042] The above is only the preferred embodiment of the utility model, and it should be pointed out that for ordinary skilled in the art, without departing from the principle of the utility model, a number of improvements and refinements can be made, and these improvements and refinements should be considered as the protection scope of the utility model.
Claims
1. An energy saving atrium roof structure, characterized by, The utility model relates to a kind of side blocking mechanism (1), including the sunshade side wall (101) of being surrounded in the periphery of building atrium;Atrium glass (2) is fixedly installed in the top of the sunshade side wall (101), and the corresponding sunshade shutter (3) is fixedly installed on the sunshade side wall (101) of the bottom side of the atrium glass (2);Hot air exhaust mechanism (4) includes several exhaust pipes (401) installed side by side on the sunshade side wall (101), and the corresponding exhaust fan (402) is fixedly installed on the exhaust pipe (401);Exhaust adjusting mechanism includes three-way pipe (501) connected to the air outlet end of the exhaust pipe (401), and the end of the three-way pipe (501) not connected to the exhaust pipe (401) is connected to the building space by first solenoid valve (502), and the other end of the three-way pipe (501) not connected to the exhaust pipe (401) is connected to the building outside space by second solenoid valve (503);Temperature control mechanism includes first temperature sensor (601) installed in the inner side of the sunshade side wall (101) and second temperature sensor (602) installed in the air outlet end of the exhaust pipe (401), and the first temperature sensor (601), second temperature sensor (602) and exhaust fan (402) are electrically connected to the corresponding control system respectively. The side of the sunshade side wall (101) is externally fixed with the corresponding convex edge (102), and the end of the convex edge (102) not connected to the sunshade side wall (101) is fixedly connected with the corresponding supporting leg (103) downward. The height of the sunshade side wall (101) is not less than 800mm. The sunshade shutter (3) is an electric sunshade shutter. The other end of the three-way pipe (501) not connected to the exhaust pipe (401) is arranged downwardly inclined. The feeding end of the exhaust pipe (401) is respectively connected to the middle part of the sunshade side wall (101).
2. The energy saving atrium outroof structure according to claim 1, wherein, 3. The energy saving atrium outroof structure according to claim 1, characterized in that, 4. The energy saving atrium outroof structure according to claim 1, wherein 5. The energy saving atrium outroof structure according to claim 1, wherein 6. The energy saving atrium outroof structure according to claim 1, wherein