Daylighting roof system
By setting up a fixed structure, flow guide and discharge parts in the lighting roof system, rainwater flows into the storage chamber and is discharged under gravity, solving the problem of rainwater leakage and improving the living experience.
Patent Information
- Application Number
- CN202421724359.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-19
- Publication Date
- 2025-08-15
- Estimated Expiration
- 2034-07-19
AI Technical Summary
The existing lighting roof system is prone to leakage during rainy days, affecting residents' living experience.
A lighting roof system is designed, including a fixed structure, a flow guide and a discharge member. The fixed structure is arranged at intervals on the steel structure. The flow guide is in communication with the connecting component and the discharge member is in communication with the outside world. Rainwater flows into the receiving chamber through gravity and is finally discharged to the outside world to avoid leakage into the room.
Effectively prevent rainwater from leaking indoors, improving residents' living experience.
Smart Images

Figure CN223226947U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of curtain walls, in particular to a skylight system. Background Art
[0002] Glass curtain wall refers to the building's external protective structure or decorative structure, which has a supporting structural system that can have a certain displacement ability relative to the main structure and does not share the forces exerted on the main structure. Due to its good light transmittance, glass curtain wall is increasingly used in the field of skylights.
[0003] In the prior art, glass in glass curtain walls is often installed by using sealant to connect the glass to the curtain wall's connecting structure, thereby securing the glass to the curtain wall. This allows sunlight to penetrate the glass and illuminate the interior during the day. However, over time, due to the effects of continuous sunlight, environmental factors, and the sealant's inherent properties, the sealant can age and crack, compromising the seal between the glass and curtain wall's connecting structure. Consequently, on rainy days, rainwater can flow into the interior through the gap between the glass and curtain wall's connecting structure, altering the indoor environment and impacting residents' living experience. Utility Model Content
[0004] Therefore, the technical problem to be solved by the present invention is to overcome the defect of the existing skylight system that rainwater leaks, thereby affecting the living experience of residents.
[0005] To this end, the utility model provides a skylight system, comprising:
[0006] A plurality of fixing structures, all of which are spaced apart and arranged on a steel structure, the fixing structures comprising fixing members and connecting assemblies, the fixing members being connected to the steel structure and being inclined away from a connecting wall of the steel structure, the connecting assemblies being connected to the connecting wall, and the connecting assemblies being suitable for connecting to glass members and having accommodating cavities on both sides thereof;
[0007] a plurality of flow guide members, each of which is disposed between two adjacent fixed structures, the flow guide member having a flow guide channel with openings at both ends, and the two ends of the flow guide member are respectively connected to one of the connecting components to connect the flow guide channel with the accommodating cavity;
[0008] A discharge member, one end of which is connected to the accommodating cavity of the connecting assembly, and the other end of which is connected to the outside world. The discharge member has a discharge channel. When rainwater leaks, the rainwater is suitable for flowing into the accommodating cavity under the action of gravity. The rainwater in the accommodating cavity is suitable for flowing into the diversion channel under the action of gravity, so as to flow into the discharge channel after passing through several of the accommodating cavities and the diversion channels, and be discharged to the outside world in the discharge channel.
[0009] Optionally, in the above-mentioned skylight system, the connection assembly includes:
[0010] a connecting member connected to the fixing member and abutting against the connecting wall so that the connecting member is arranged obliquely, and the accommodating cavity is formed on both sides of the connecting member;
[0011] a drainage member, the drainage member comprising an abutment wall and a drainage wall disposed opposite to each other, the abutment wall being adapted to be connected to the glass member, the drainage wall being connected to the connecting member, and a drainage portion communicating with the accommodating cavity being formed on the drainage member between the abutment wall and the drainage wall;
[0012] When the rainwater leaks, the rainwater is suitable for falling onto the drainage wall under the action of gravity, and the rainwater on the drainage wall is suitable for flowing into the accommodating cavity through the drainage part under the action of gravity, so that the rainwater flows into the diversion channel in the accommodating cavity and then flows out to the outside through the discharge channel.
[0013] Optionally, in the above-mentioned skylight system, the connecting component also includes a accommodating member, which is arranged in the accommodating cavity, and the accommodating member has relatively arranged blocking walls, and any one of the blocking walls is connected to the guide member to connect the accommodating cavity with the guide channel, and when the rainwater flows into the accommodating cavity, the two blocking walls block the rainwater so that the rainwater flows into the guide channel.
[0014] Optionally, the above-mentioned skylight system further includes an isolating member, which is arranged on the connecting wall and between the connecting member and the fixing member to separate the connecting member from the fixing member.
[0015] Optionally, the above-mentioned skylight system further includes a locking assembly, which includes a first locking member. The first locking member is suitable for penetrating the connecting member and the fixing member under the action of an external force to connect the connecting member and the fixing member.
[0016] Optionally, the above-mentioned skylight system further includes an anti-slip member, which is arranged between the first locking member and the fixing member to prevent the first locking member from moving after the first locking member is connected to the fixing member and the connection.
[0017] Optionally, in the above-mentioned skylight system, the locking assembly further includes a second locking member, which is suitable for penetrating the connecting member and the drainage member under the action of an external force to connect the connecting member and the drainage member.
[0018] Optionally, the above-mentioned skylight system further includes a plurality of abutment members, one end of any abutment member is suitable for being connected to the steel structure, and the other end is suitable for abutting against the glass member to prevent the glass member from moving.
[0019] Optionally, the above-mentioned skylight system further includes a sealing assembly, wherein the sealing assembly includes a first sealing member, and the first sealing member is arranged between the glass member and the drainage member to seal the gap between the glass member and the drainage member.
[0020] Optionally, in the above-mentioned skylight system, the sealing assembly further includes a second sealing member, and the second sealing member is arranged between the glass member and the abutting member to seal the gap between the glass member and the abutting member.
[0021] The technical solution provided by the utility model has the following advantages:
[0022] 1. The skylight system provided by the present invention includes a plurality of fixed structures and a plurality of guide members, all of which are arranged at intervals on the steel structure, the fixed structures including fixing members and connecting components, the fixing members being connected to the steel structure, and the fixing members being inclined away from the connecting wall of the steel structure, the connecting components being connected to the connecting wall, and the connecting components being suitable for connection with the glass member, and having a receiving cavity on both sides thereof; any guide member is arranged between two adjacent fixed structures, the guide member having a guide channel with openings at both ends, and the two ends of the guide member are respectively connected to a connecting component to connect the guide channel with the receiving cavity; wherein, one end of at least one guide member is connected with the receiving cavity of the connecting component, and the other end is connected with the outside world, when rainwater leaks, the rainwater is suitable for flowing into the receiving cavity under the action of gravity, and the rainwater in the receiving cavity is suitable for flowing into the guide channel under the action of gravity, so as to flow out to the outside world after passing through the plurality of receiving cavities and the guide channel.
[0023] The skylight system of this structure is provided with a plurality of fixed structures arranged on the steel structure, a flow guide member arranged between the fixed structures, and a discharge member having one end connected to the accommodating cavity of the connecting component and the other end connected to the outside world, wherein all the fixed structures are arranged at intervals on the steel structure, and the fixed structure specifically includes a fixing member and a connecting component, wherein the fixing member is suitable for connection to the steel structure, and a side wall of the fixing member away from the steel structure is provided as an inclined connecting wall, so that after the connecting component is connected to the connecting wall of the fixing member, the connecting component can also be inclined, and at the same time, the connecting component can also be connected to the glass component, and the glass component can be inclined, thereby forming a skylight system, in addition, there is a accommodating cavity on both sides of the connecting component, which can accommodate water flow, and the flow guide member is specifically provided between two adjacent fixed structures, and the flow guide member also has There is a guide channel with openings at both ends, and the two ends of the guide member are connected to the connecting components of the two adjacent fixed structures, so that the guide channel can be connected to the accommodating cavity. In addition, one end of the discharge member is connected to the connecting component, and the other end is connected to the outside world. The discharge member has a discharge channel, so that when rainwater leaks into the fixed structure, the rainwater will flow into the accommodating cavity of the connecting component under the action of gravity, and because the connecting component is inclined, the rainwater in the accommodating cavity will flow into the guide channel through the opening under the action of gravity, so that after passing through several accommodating cavities and guide channels, the rainwater will flow into the discharge channel and flow out from the discharge channel to the outside, thereby avoiding the situation where rainwater leaks into the fixed structure and then leaks into the room, causing changes in the indoor environment, which is beneficial to improving the living experience of residents. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the specific implementation methods of the utility model or the technical solutions in the prior art, the drawings required for use in the specific implementation methods or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are some implementation methods of the utility model. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0025] Figure 1 A schematic plan view of a skylight system provided in an embodiment of the present utility model;
[0026] Figure 2 A schematic diagram of the high elevation position of the skylight system provided in an embodiment of the present utility model;
[0027] Figure 3 This is a schematic diagram of the low elevation position of the skylight system provided in an embodiment of the present utility model;
[0028] Figure 4This is a schematic diagram of the position of the main beams of the skylight system provided in an embodiment of the present utility model;
[0029] Figure 5 A schematic diagram of the position of the secondary beam of the skylight system provided in an embodiment of the present utility model;
[0030] Description of reference numerals:
[0031] 1-fixed structure; 11-fixed member; 121-connecting member; 122-drainage member; 123-accommodating member;
[0032] 2-flow guide; 3-isolator; 4-anti-slip member; 5-abutment member; 6-steel structure; 7-glass member;
[0033] 8-locking assembly; 81-first locking member; 82-second locking member;
[0034] 9-seal assembly; 91-first seal; 92-second seal;
[0035] 10-Ejector. DETAILED DESCRIPTION
[0036] The following is a clear and complete description of the technical solution of the present invention in conjunction with the accompanying drawings. Obviously, the embodiments described are only some of the embodiments of the present invention, not all of them. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making any creative efforts are within the scope of protection of the present invention.
[0037] In the description of this utility model, it should be noted that the terms "center," "upper," "lower," "left," "right," "vertical," "horizontal," "inner," and "outer," etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings and are intended solely to facilitate the description of this utility model and simplify the description. They do not indicate or imply that the devices or components referred to must have a specific orientation, be constructed, or operate in a specific orientation. Therefore, they should not be construed as limitations on this utility model. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.
[0038] In the description of this utility model, it should be noted that, unless otherwise expressly specified or limited, the terms "mounted," "connected," and "connected" should be understood in a broad sense. For example, they can refer to fixed connections, detachable connections, or integral connections; mechanical connections, electrical connections; direct connections, indirect connections through an intermediate medium, and internal communication between two components. Those skilled in the art will understand the specific meanings of the above terms in this utility model based on the specific circumstances.
[0039] In addition, the technical features involved in the different embodiments of the present invention described below can be combined with each other as long as they do not conflict with each other.
[0040] Example 1
[0041] This embodiment provides a skylight system, such as Figures 1 to 5 As shown, it includes several fixed structures 1, several guide members 2 and discharge members 10. All the fixed structures 1 are arranged at intervals on the steel structure 6. The fixed structure 1 includes a fixing member 11 and a connecting assembly. The fixing member 11 is connected to the steel structure 6, and the connecting wall of the fixing member 11 away from the steel structure 6 is inclined. The connecting assembly is connected to the connecting wall, and the connecting assembly is suitable for connecting to the glass member 7, and has a accommodating cavity on both sides; any guide member 2 is arranged between two adjacent fixed structures 1, the guide member 2 has a guide channel with openings at both ends, and the two ends of the guide member 2 are respectively connected to a connecting assembly to connect the guide channel with the accommodating cavity; one end of the discharge member 10 is connected with the accommodating cavity of the connecting assembly, and the other end is connected with the outside world. The discharge member 10 has a discharge channel. When rainwater leaks, the rainwater is suitable for flowing into the accommodating cavity under the action of gravity, and the rainwater in the accommodating cavity is suitable for flowing into the guide channel under the action of gravity, so as to flow into the discharge channel after passing through several accommodating cavities and the guide channel, and be discharged to the outside world in the discharge channel.
[0042] The skylight system of the above structure is composed of several fixed structures 1 arranged on the steel structure 6, flow guides 2 arranged between the fixed structures 1, and a discharge member 10 whose one end is connected to the accommodating cavity of the connecting component and the other end is connected to the outside world. The flow guide 2 is a water pipe in this embodiment, and the discharge member 10 is a discharge pipe in this embodiment. All the fixed structures 1 are arranged at intervals on the steel structure 6, and the fixed structure 1 specifically includes a fixing member 11 and a connecting component. The fixing member 11 is a steel U-groove in this embodiment, wherein the fixing member 11 is suitable for connection to the steel structure 6, and a side wall of the fixing member 11 away from the steel structure 6 is set as an inclined connecting wall, so that after the connecting component is connected to the connecting wall of the fixing member 11, the connecting component can also be inclined. At the same time, the connecting component can also be connected to the glass component 7, and the glass component 7 can be inclined, thereby forming a skylight system. In addition, there is a accommodating cavity on both sides of the connecting component, which can accommodate The water flow, the guide member 2 is specifically arranged between two adjacent fixed structures 1, and the guide member 2 also has a guide channel with openings at both ends, and the two ends of the guide member 2 are respectively connected to the connecting components of the two adjacent fixed structures 1, so that the guide channel can be connected with the accommodating cavity. In addition, one end of the discharge member 10 is connected to the connecting component, and the other end is connected to the outside world, and the discharge member 10 has a discharge channel, so that when rainwater leaks into the fixed structure 1, the rainwater will flow into the accommodating cavity of the connecting component under the action of gravity, and because the connecting component is inclined, the rainwater in the accommodating cavity will flow into the guide channel through the opening under the action of gravity, so that after passing through several accommodating cavities and guide channels, the rainwater will flow into the discharge channel and flow out from the discharge channel to the outside, thereby avoiding the situation where rainwater leaks into the fixed structure 1 after leaking into the room and causing changes in the indoor environment, which is beneficial to improving the living experience of residents.
[0043] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, the connecting assembly includes a connecting member 121 and a drainage member 122. The connecting member 121 is connected to the fixing member 11, and the connecting member 121 abuts against the connecting wall so that the connecting member 121 is arranged at an angle, and both sides of the connecting member 121 have a receiving cavity; the drainage member 122 has an abutting wall and a drainage wall arranged opposite to each other, the abutting wall is suitable for connecting with the glass member 7, the drainage wall is connected to the connecting member 121, and a drainage portion connected to the receiving cavity is provided on the drainage member 122 between the abutting wall and the drainage wall; when rainwater leaks, the rainwater is suitable for falling onto the drainage wall under the action of gravity, and the rainwater on the drainage wall is suitable for flowing into the receiving cavity through the drainage portion under the action of gravity, so that the rainwater flows into the diversion channel in the receiving cavity and then flows out to the outside through the discharge channel.
[0044] The skylight system of the above structure includes a connecting member 121 and a drainage member 122 by setting a connecting component. The connecting member 121 is a double-slope aluminum alloy keel profile in this embodiment, and the drainage member 122 is an aluminum alloy auxiliary frame in this embodiment, wherein the connecting member 121 is connected to the fixing member 11 and is connected to the connecting wall of the fixing member 11, so that the connecting member 121 is set at an angle, and the glass member 7 connected to the connecting member 121 is set at an angle, and both sides of the connecting member 121 have a accommodating cavity, and the drainage member 122 has a relatively arranged abutment wall and a drainage wall, wherein the abutment wall can be connected to the glass member 7, and the drainage wall can be connected to the connecting member The connecting piece 121 is connected, and on the side wall between the abutting wall and the drainage wall, a drainage portion connected to the accommodating cavity is provided on the drainage piece 122. In this embodiment, the drainage portion is a drainage hole provided on the drainage piece 122, so that when rainwater leaks, the rainwater will fall onto the drainage wall under the action of gravity, and the rainwater on the drainage wall will flow into the accommodating cavity on both sides of the connecting piece 121 on the inclined connecting piece 121 under the action of gravity, and the rainwater in the accommodating cavity will flow into the diversion channel of the guide piece 2 under the action of gravity, and then the rainwater leaked into the fixed structure 1 will be discharged to the outside through the discharge channel to prevent rainwater from leaking into the room.
[0045] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, the connecting assembly also includes a accommodating member 123, which is arranged in the accommodating cavity. The accommodating member 123 has relatively arranged blocking walls, and any blocking wall is connected to the guide member 2 to connect the accommodating cavity with the guide channel, and when rainwater flows into the accommodating cavity, the two blocking walls block the rainwater so that the rainwater flows into the guide channel.
[0046] The skylight system of the above structure also includes a accommodating member 123 by setting a connecting component. The accommodating member 123 is a drainage trough in this embodiment. The accommodating member 123 is specifically arranged in the accommodating cavity, and the accommodating member 123 has relatively arranged blocking walls, and the two blocking walls are connected with the guide member 2, so that the accommodating cavity is connected with the guide channel. Then, when the accommodating member 123 is set in the accommodating cavity, the accommodating member 123 can block rainwater into the accommodating cavity, and make the rainwater flowing into the accommodating cavity flow into the guide channel, so as to avoid rainwater leakage in the accommodating cavity and thus leaking into the room.
[0047] Specifically, the container 123 and the guide member 2 are an integrally formed structure, which facilitates the production of the container 123 and the guide member 2 and avoids the separate production of the container 123 and the guide member 2. The container 123 and the guide member 2 are set as an integrally formed structure, which can avoid the presence of a gap at the connection between the container 123 and the guide member 2 when the container 123 and the guide member 2 are connected, so that when rainwater flows from the container cavity into the guide channel, rainwater will not leak.
[0048] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, an isolation member 3 is further included. The isolation member 3 is arranged on the connecting wall and between the connecting member 121 and the fixing member 11 to separate the connecting member 121 from the fixing member 11.
[0049] The skylight system of the above structure is provided with an isolation member 3 on the connecting wall. The isolation member 3 in this embodiment is an isolation gasket. The isolation member 3 is specifically provided between the connecting member 121 and the fixing member 11, thereby separating the connecting member 121 and the fixing member 11. When rainwater leaks, it prevents metal corrosion between the connecting member 121 and the fixing member 11 due to the action of rainwater when the rainwater leaks into the fixed structure 1.
[0050] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, a locking assembly 8 is further included. The locking assembly 8 includes a first locking member 81 . The first locking member 81 is suitable for penetrating the connecting member 121 and the fixing member 11 under the action of an external force to connect the connecting member 121 and the fixing member 11 .
[0051] The skylight system of the above structure is provided with a locking assembly 8 between the fixing member 11 and the connecting assembly. The locking assembly 8 specifically includes a first locking member 81. The first locking member 81 is a first screw in this embodiment. The first locking member 81 can penetrate the fixing member 11 and the connecting member 121 under the action of external force, thereby connecting the fixing member 11 and the connecting member 121 together, so that the connecting assembly can be installed on the steel structure 6 through the fixing member 11.
[0052] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, an anti-slip member 4 is also included. The anti-slip member 4 is arranged between the first locking member 81 and the fixing member 11 to prevent the first locking member 81 from moving after the first locking member 81 is connected to the fixing member 11.
[0053] The skylight system of the above structure is provided with an anti-slip member 4 between the first locking member 81 and the fixing member 11. The anti-slip member 4 is an anti-slip gasket in this embodiment. When the first locking member 81 passes through the connecting member 121 and the fixing member 11 and connects the connecting member 121 and the fixing member 11 together, the two ends of the anti-slip member 4 respectively abut against the first locking member 81 and the fixing member 11, thereby preventing the first locking member 81 from sliding on the side wall of the fixing member 11, thereby improving the locking ability of the first locking member 81.
[0054] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, the locking assembly 8 further includes a second locking member 82 , which is adapted to penetrate the connecting member 121 and the flow guiding member 122 under the action of an external force to connect the connecting member 121 and the flow guiding member 122 .
[0055] The skylight system of the above structure also includes a second locking member 82 by setting a locking assembly 8. The second locking member 82 is a second screw in this embodiment. The second locking member 82 is specifically arranged between the connecting member 121 and the drainage member 122, and under the action of external force, the second locking member 82 can pass through the connecting member 121 and the drainage member 122, thereby connecting the connecting member 121 and the drainage member 122 together.
[0056] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, a plurality of abutment members 5 are further included. One end of any abutment member 5 is adapted to be connected to the steel structure 6 , and the other end is adapted to abut against the glass member 7 to prevent the glass member 7 from moving.
[0057] The skylight system of the above structure is provided with an abutment member 5 between the steel structure 6 and the glass member 7. In this embodiment, the abutment member 5 is an aluminum alloy T-shaped support plate. One end of the abutment member 5 can be connected to the steel structure 6, and the other end can abut against the glass member 7, thereby providing a supporting force for the inclined glass member 7, thereby avoiding the situation where the inclined glass member 7 moves and falls to the ground and is damaged.
[0058] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, a sealing assembly 9 is further included. The sealing assembly 9 includes a first sealing member 91 . The first sealing member 91 is disposed between the glass member 7 and the guide member 122 to seal the gap between the glass member 7 and the guide member 122 .
[0059] The skylight system of the above structure is provided with a sealing structure between the glass member 7 and the fixed structure 1. The sealing structure specifically includes a first sealing member 91. The first sealing member 91 is a double-sided tape in this embodiment. The first sealing member 91 is specifically provided between the drainage member 122 and the glass member 7, thereby sealing the gap between the drainage member 122 and the glass member 7, thereby preventing rainwater from leaking only into the gap between the glass member 7 and the drainage member 122.
[0060] The skylight system provided in this embodiment is as follows: Figures 2 to 4 As shown, the sealing assembly 9 further includes a second sealing member 92 , which is disposed between the glass member 7 and the abutting member 5 to seal the gap between the glass member 7 and the abutting member 5 .
[0061] The skylight system of the above structure also includes a second sealing member 92 by setting a sealing structure. The second sealing member 92 is a sealant in this embodiment. The second sealing member 92 is specifically arranged between the glass member 7 and the abutment member 5, thereby sealing the gap between the glass member 7 and the abutment member 5, thereby preventing rainwater from leaking only into the gap between the glass member 7 and the abutment member 5.
[0062] The skylight system provided by the present invention is provided by a plurality of fixed structures 1 arranged on a steel structure 6 and a flow guide member 2 arranged between the fixed structures 1, wherein all the fixed structures 1 are arranged at intervals on the steel structure 6, and the fixed structure 1 specifically includes a fixing member 11 and a connecting assembly, wherein the fixing member 11 is suitable for connection to the steel structure 6, and a side wall of the fixing member 11 away from the steel structure 6 is set as an inclined connecting wall, so that after the connecting assembly is connected to the connecting wall of the fixing member 11, the connecting assembly can also be inclined. At the same time, the connecting assembly can also be connected to the glass member 7, and the glass member 7 can be inclined, thereby forming a skylight system. In addition, both sides of the connecting assembly have a accommodating cavity, which can accommodate water flow, and the flow guide member 2 is specifically arranged between two adjacent fixed structures 1, and the flow guide member 2 also has a cavity with openings at both ends. A diversion channel is set up, and the two ends of the diversion member 2 are respectively connected to the connecting components of the two adjacent fixed structures 1, so that the diversion channel can be connected to the accommodating cavity. In addition, among all the diversion members 2, one end of a diversion member 2 is connected to the connecting component, and the other end is connected to the outside world. Therefore, when rainwater leaks into the fixed structure 1, the rainwater will flow into the accommodating cavity of the connecting component under the action of gravity. Since the connecting component is set at an angle, the rainwater in the accommodating cavity will flow into the diversion channel through the opening under the action of gravity. After passing through several accommodating cavities and diversion channels, it will flow out to the outside from the diversion channel of the diversion member 2 whose two ends are respectively connected to the connecting component and the outside world, thereby avoiding the situation where rainwater leaks into the fixed structure 1 and then leaks into the room, causing changes in the indoor environment, which is beneficial to improving the living experience of residents.
[0063] Obviously, the above embodiments are merely examples for clarity of explanation and are not intended to limit the implementation methods. Those skilled in the art will readily appreciate that other variations or modifications based on the above descriptions are possible. It is not necessary and impossible to enumerate all implementation methods here. Obvious variations or modifications arising therefrom remain within the scope of protection of the present invention.
Claims
1. A skylight system, characterized in that: include: A plurality of fixed structures (1), all of which are arranged at intervals on a steel structure (6), the fixed structures (1) comprising a fixing member (11) and a connecting assembly, the fixing member (11) being connected to the steel structure (6), and the fixing member (11) being arranged at an angle away from a connecting wall of the steel structure (6), the connecting assembly being connected to the connecting wall, and the connecting assembly being suitable for connecting to a glass member (7), and having a receiving cavity on both sides thereof; A plurality of flow guide members (2), any one of the flow guide members (2) being arranged between two adjacent fixed structures (1), the flow guide member (2) having a flow guide channel with openings at both ends, and the two ends of the flow guide member (2) being respectively connected to one of the connection components so that the flow guide channel is in communication with the accommodating cavity; A discharge member (10), one end of the discharge member (10) is communicated with the accommodating cavity of the connecting assembly, and the other end is communicated with the outside world. The discharge member (10) has a discharge channel. When rainwater leaks, the rainwater is suitable for flowing into the accommodating cavity under the action of gravity. The rainwater in the accommodating cavity is suitable for flowing into the guide channel under the action of gravity, so as to flow into the discharge channel after passing through several accommodating cavities and the guide channels, and be discharged to the outside world in the discharge channel.
2. The skylight system according to claim 1, characterized in that: The connection component includes: A connecting member (121) is connected to the fixing member (11), and the connecting member (121) abuts against the connecting wall so that the connecting member (121) is arranged in an inclined manner, and both sides of the connecting member (121) have the accommodating cavity; A flow guide member (122), the flow guide member (122) having an abutting wall and a flow guide wall arranged opposite to each other, the abutting wall being suitable for connecting to the glass member (7), the flow guide wall being connected to the connecting member (121), and a flow guide portion communicating with the accommodating cavity being provided on the flow guide member (122) between the abutting wall and the flow guide wall; When the rainwater leaks, the rainwater is suitable for falling onto the drainage wall under the action of gravity, and the rainwater on the drainage wall is suitable for flowing into the accommodating cavity through the drainage part under the action of gravity, so that the rainwater flows into the diversion channel in the accommodating cavity and then flows out to the outside through the discharge channel.
3. The skylight system according to claim 2, characterized in that: The connecting assembly further comprises a receiving member (123), the receiving member (123) being arranged in the receiving cavity, the receiving member (123) having opposing blocking walls, any one of the blocking walls being connected to the flow guide member (2) so that the receiving cavity is in communication with the flow guide channel, and when the rainwater flows into the receiving cavity, the two blocking walls block the rainwater so that the rainwater flows into the flow guide channel.
4. The skylight system according to claim 3, characterized in that: It also includes an isolating member (3), which is arranged on the connecting wall and between the connecting member (121) and the fixing member (11) to separate the connecting member (121) from the fixing member (11).
5. The skylight system according to any one of claims 2 to 4, characterized in that: The invention also includes a locking assembly (8), wherein the locking assembly (8) includes a first locking member (81), and the first locking member (81) is suitable for penetrating the connecting member (121) and the fixing member (11) under the action of an external force to connect the connecting member (121) and the fixing member (11).
6. The skylight system according to claim 5, characterized in that: The invention also includes an anti-slip member (4), which is arranged between the first locking member (81) and the fixing member (11) to prevent the first locking member (81) from moving after the first locking member (81) is connected to the fixing member (11) and the connecting member (121).
7. The skylight system according to claim 6, characterized in that: The locking assembly (8) further includes a second locking member (82), which is adapted to penetrate the connecting member (121) and the flow guiding member (122) under the action of an external force to connect the connecting member (121) and the flow guiding member (122).
8. The skylight system according to claim 7, characterized in that: It also includes a plurality of abutment members (5), one end of any abutment member (5) is suitable for being connected to the steel structure (6), and the other end is suitable for abutting against the glass member (7) to prevent the glass member (7) from moving.
9. The skylight system according to claim 8, characterized in that: The invention also includes a sealing component (9), wherein the sealing component (9) includes a first sealing component (91), and the first sealing component (91) is arranged between the glass component (7) and the guide component (122) to seal the gap between the glass component (7) and the guide component (122).
10. The skylight system according to claim 9, characterized in that: The sealing assembly (9) further comprises a second sealing member (92), which is arranged between the glass member (7) and the abutting member (5) to seal the gap between the glass member (7) and the abutting member (5).