Beam column structure and sunlight room with same

By combining the beams with the mounting and connecting components, the problem of welding aluminum alloy materials is solved, enabling simple and quick assembly and high-strength connection of the sunroom beams and columns, thus improving assembly efficiency and structural stability.

CN224078376UActive Publication Date: 2026-04-03ANHUI MIDEA HEKANG ELECTRIC POWER ENGINEERING CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-28
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

In existing sunrooms, the beams and columns are mostly connected by aluminum alloy, which cannot be welded, making connection difficult and assembly challenging.

Method used

The structure employs a combination of multiple beams, mounting components, and connectors. The beams and columns are connected to form a three-dimensional structure through the connectors, avoiding welding. The connectors include a first mounting component, a second mounting component, and a third mounting component, which are respectively connected to the beams, columns, and mounting walls to form a stable beam-column structure.

Benefits of technology

It enables simple and quick assembly of beam-column structures, enhances structural stability and reliability, reduces assembly difficulty, and improves connection strength and overall aesthetics.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a beam column structure and a sunlight room with the same, and relates to the technical field of sunlight rooms. In the multiple beam bodies, at least two adjacent beam bodies are different in extending direction, the two adjacent beam bodies different in extending direction are connected with at least one first installation piece through a connecting piece, the column body is connected with the corresponding second installation piece through a connecting piece, and each second installation piece is connected to the corresponding beam body through a connecting piece. The third mounting piece is connected with one end, far away from the beam body, of the corresponding column body through a connecting piece, and the third mounting piece is connected with the mounting wall through a connecting piece. A plurality of beam bodies and a plurality of column bodies can be connected into a three-dimensional beam column structure through a plurality of first mounting pieces, a plurality of second mounting pieces, a plurality of third mounting pieces and a plurality of connecting pieces, welding is not needed, the assembling process is simple, convenient and rapid, the assembling efficiency can be improved, connection is firm and reliable, and the structural stability and the use reliability of the beam column structure can be enhanced.
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Description

Technical Field

[0001] This utility model relates to the field of sunroom technology, and in particular to a beam-column structure and a sunroom having the same structure. Background Technology

[0002] In related technologies, sunrooms are composed of multiple beams and columns. Currently, the beams and columns are generally made of materials that cannot be welded, such as aluminum alloy, which makes it difficult to connect the beams and columns and makes assembly difficult. Utility Model Content

[0003] The present invention aims to solve at least one of the technical problems existing in the prior art. Therefore, one objective of the present invention is to provide a beam-column structure that has better connection strength and is simple to assemble.

[0004] This utility model further proposes a sunroom with the above-mentioned beam-column structure.

[0005] The beam-column structure according to an embodiment of the present utility model includes: a plurality of beams, wherein at least two adjacent beams extend in different directions; a plurality of mounting members and a plurality of connecting members, wherein the plurality of mounting members include: a plurality of first mounting members, a plurality of second mounting members, and a plurality of third mounting members, wherein two adjacent beams extending in different directions are connected to at least one first mounting member via the connecting member; a plurality of columns, wherein the plurality of second mounting members correspond one-to-one with the plurality of columns, the columns are connected to the corresponding second mounting members via the connecting member, and each second mounting member is connected to the beam via the connecting member; the plurality of third mounting members correspond one-to-one with the plurality of columns, the third mounting members are connected to the end of the corresponding column away from the beam via the connecting member, and the third mounting members are connected to a mounting wall via the connecting member.

[0006] According to the beam-column structure of this utility model embodiment, multiple beams and multiple columns can be connected into a three-dimensional beam-column structure by multiple first mounting parts, multiple second mounting parts, multiple third mounting parts, and multiple connectors. No welding is required, the assembly process is simple and quick, which helps to improve assembly efficiency. Moreover, the connection is firm and reliable, which can enhance the structural stability and reliability of the beam-column structure.

[0007] According to some embodiments of the present invention, the first mounting component includes: a first mounting body defining a receiving cavity; one of the two beams corresponding to the first mounting component being located outside the receiving cavity and connected to the first mounting body via the connector; and a portion of the other beam being received in the receiving cavity and connected to the first mounting body via the connector.

[0008] According to some embodiments of the present invention, the first mounting body includes: a plurality of first mounting plates, the plurality of first mounting plates being connected and jointly defining the receiving cavity, wherein one of the first mounting plates is connected to a beam located outside the receiving cavity via the connector, and at least one of the remaining first mounting plates is connected to the beam received in the receiving cavity via the connector.

[0009] According to some embodiments of the present invention, the first mounting component further includes: a first connecting flange, the first connecting flange being connected to the first mounting body, and the first connecting flange being connected to the beam located outside the receiving cavity via the connector.

[0010] According to some embodiments of the present invention, the first mounting component includes: two first plates connected together and having an included angle, and the two first plates are respectively connected to two corresponding beams through the connecting component.

[0011] According to some embodiments of the present invention, the beam has a mating groove that extends along the length of the beam, and the first plate is received in the mating groove of the corresponding beam.

[0012] According to some embodiments of the present invention, the mating groove has a bottom wall, a top wall, and two side walls. The bottom wall, the top wall, and the side walls all extend along the length direction of the beam. The top wall and the bottom wall are spaced apart along the depth direction of the mating groove. The two side walls are spaced apart along the width direction of the mating groove. The top wall includes two sub-top walls, which are spaced apart along the width direction of the mating groove. The first plate is received between the bottom wall, the top wall, and the side walls.

[0013] According to some embodiments of the present invention, the mating groove further has a partition wall, which is located between the bottom wall and the top wall and extends along the length direction of the beam. The partition wall includes two sub-partition walls, which are spaced apart along the width direction of the mating groove. The partition wall divides the mating groove into two sub-matting grooves, and the first plate is received in any one of the sub-matting grooves.

[0014] According to some embodiments of the present invention, the second mounting component includes a second mounting plate and a third mounting plate, the second mounting plate being connected to the third mounting plate and having an included angle, the second mounting plate being connected to the corresponding column through the connector, and the third mounting plate being connected to the beam through the connector.

[0015] According to some embodiments of the present invention, the third mounting plate is connected to the lower end of the corresponding beam body via the connector.

[0016] According to some embodiments of the present invention, there are multiple second mounting plates, which are respectively located on different sides of the corresponding column, and at least two second mounting plates are spaced apart and correspondingly arranged.

[0017] According to some embodiments of the present invention, the lower end of the column is sleeved and assembled with the third mounting component and connected to the third mounting component through the connector.

[0018] According to some embodiments of the present invention, the lower end of the column is sleeved on the outside of the third mounting component.

[0019] According to some embodiments of the present invention, the third mounting component includes a base plate and a side plate, the side plate being connected to the base plate and jointly defining an open cavity at the upper end, the base plate being adapted to be connected to the mounting wall via the connector, and the column being connected to the side plate via the connector.

[0020] The sunroom according to an embodiment of the present invention includes the aforementioned beam and column structure.

[0021] Additional aspects and advantages of this invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0022] The above and / or additional aspects and advantages of this utility model will become apparent and readily understood from the description of the embodiments taken in conjunction with the following drawings, in which:

[0023] Figure 1 This is a schematic diagram of a beam-column structure according to an embodiment of the present utility model;

[0024] Figure 2 This is a schematic diagram of the cooperation between the beam and the first mounting component according to an embodiment of the present utility model;

[0025] Figure 3 This is a schematic diagram of the first mounting component according to another embodiment of the present utility model;

[0026] Figure 4 This is a schematic diagram showing the cooperation between the beam body of this utility model and the first mounting component of another embodiment;

[0027] Figure 5 yes Figure 4 Enlarged view of point A in the middle;

[0028] Figure 6 This is a schematic diagram showing the cooperation of the beam, column, and second mounting component according to an embodiment of the present utility model;

[0029] Figure 7 This is a schematic diagram of the second mounting component according to an embodiment of the present utility model;

[0030] Figure 8 This is a schematic diagram showing that the column and the third mounting component are not fully connected according to an embodiment of the present utility model;

[0031] Figure 9 This is a schematic diagram showing the column and the third mounting component connected according to an embodiment of the present utility model;

[0032] Figure 10 This is a schematic diagram of the cooperation between the third mounting component and the mounting wall according to an embodiment of the present utility model;

[0033] Figure 11 This is a schematic diagram of the third mounting component according to an embodiment of the present utility model.

[0034] Figure label:

[0035] Beam body 1; mating groove 11; bottom wall 111; top wall 112; sub-top wall 1121; side wall 113; partition wall 115; sub-partition wall 1151; sub-mating groove 116;

[0036] Column 2; Connector 3;

[0037] First mounting component 4; First mounting body 41; First mounting plate 411; Receiving cavity 42; First connecting flange 43; First plate 44;

[0038] Second mounting component 5; Second mounting plate 51; Third mounting plate 52;

[0039] Third mounting component 6; base plate 61; side plate 62; cavity 63;

[0040] Beam-column structure 10; mounting wall 20. Detailed Implementation

[0041] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.

[0042] The beam-column structure 10 and the sunroom having the same structure according to an embodiment of the present invention are described below with reference to the accompanying drawings.

[0043] like Figures 1-11As shown, the beam-column structure 10 according to an embodiment of the present invention includes: multiple beams 1, multiple mounting components, multiple connectors 3, and multiple columns 2. Among the multiple beams 1, at least two adjacent beams 1 have different extension directions. The multiple mounting components include: multiple first mounting components 4, multiple second mounting components 5, and multiple third mounting components 6. Two adjacent beams 1 with different extension directions are connected to at least one first mounting component 4 through connectors 3. The multiple second mounting components 5 correspond one-to-one with the multiple columns 2. The columns 2 are connected to the corresponding second mounting components 5 through connectors 3, and each second mounting component 5 is connected to the beam 1 through a connector 3. The multiple third mounting components 6 correspond one-to-one with the multiple columns 2. The third mounting components 6 are connected to the end of the corresponding column 2 away from the beam 1 through connectors 3, and the third mounting components 6 are connected to the mounting wall 20 through connectors 3.

[0044] Among them, such as Figure 1 As shown, the beam-column structure 10 has multiple beams 1 and multiple columns 2. Among the multiple beams 1, at least two adjacent beams 1 extend in different directions. As some embodiments of this utility model, some beams 1 can extend along... Figure 1 Extending in the first direction as shown, another part of beam 1 can be along... Figure 1 Extending in the second direction as shown, multiple columns 2 can be along Figure 1 The third direction shown is perpendicular to each other, so that the beam-column structure 10 forms a three-dimensional structure to form an architectural space. The three-dimensional structure formed by the beam-column structure 10 has multiple surfaces, and at least one of the multiple surfaces formed by the beam-column structure 10 can be exposed to sunlight. Photovoltaic modules can be installed on the surface formed by the beam-column structure 10 to form a green photovoltaic sunroom. The green photovoltaic sunroom can not only be used as an architectural space, but also utilize green electricity to save energy and reduce emissions.

[0045] As some embodiments of this utility model, the multiple beams 1 and multiple columns 2 can all be made of aluminum alloy material. Aluminum alloy material has low density and high strength, which can improve the reliability of the beam-column structure 10.

[0046] like Figures 2-5As shown, among multiple beams 1, two adjacent beams 1 extending in different directions can be connected to at least one first mounting member 4 via a connector 3. Furthermore, the first mounting member 4 can be connected between two corresponding beams 1, and is fixedly connected to the two corresponding beams 1 via the connector 3. By setting multiple first mounting members 4, multiple beams 1 can be connected into a whole. As some embodiments of this utility model, multiple beams 1 can form a grid-like beam frame structure to form the roof or walls of a sunroom for load-bearing purposes. This structure has good strength, and photovoltaic modules can be installed on the beam frame structure to utilize solar energy, thus saving energy and reducing emissions.

[0047] like Figure 6 and Figure 7 As shown, multiple second mounting parts 5 correspond one-to-one with multiple columns 2. Each second mounting part 5 can be fixedly connected to the corresponding column 2 through a connector 3, and each second mounting part 5 is fixedly connected to the corresponding beam 1 through a connector 3, so that the corresponding beam 1 and column 2 are fixedly connected through the second mounting parts 5 and the connector 3.

[0048] like Figures 8-11 As shown, the third mounting component 6 is connected to the end of the corresponding column 2 away from the beam 1 via the connector 3. That is, one end of the column 2 is fixedly connected to the beam 1 via the second mounting component 5 and the connector 3, and the other end of the column 2 is fixedly connected to the third mounting component 6 via the connector 3. The third mounting component 6 is fixedly connected to the mounting wall 20 via the connector 3, thereby securing the end of the column 2 away from the beam 1 to the mounting wall 20. As some embodiments of this application, the mounting wall 20 can be constructed as a concrete roof, which can be a floor, wall, or roof. For example, when it is necessary to fix the end of the column 2 away from the beam 1 to the floor, the mounting wall 20 can be a pre-installed concrete surface on the floor, or the mounting wall 20 can be the roof of a villa. As some embodiments of this utility model, holes can be drilled in the mounting wall 20, and the connector 3 can pass through the mounting holes of the third mounting component 6 and the mounting wall 20 to secure the third mounting component 6 to the mounting wall 20.

[0049] As some embodiments of this utility model, the first mounting component 4, the second mounting component 5, and the third mounting component 6 can all be customized in the factory, which can reduce production time and reduce assembly difficulty.

[0050] As some embodiments of this utility model, the colors of the first mounting component 4, the second mounting component 5, and the third mounting component 6 are the same as the colors of the multiple beams 1 and the multiple columns 2. This makes it more aesthetically pleasing and less likely to be noticed by users, thereby improving the user experience and enhancing the market competitiveness of the beam-column structure 10.

[0051] It should be noted that the connector 3 can be constructed as a bolt, screw, self-drilling screw, etc. As some embodiments of this application, the connector 3 can be constructed as a bolt. The two beams 1 connected by the connector 3 (two adjacent beams 1 with different extension directions) or the beams 1 and column 2 connected by the connector 3 can be pre-drilled with threaded holes or through holes, etc. For example, the bolt can be passed through the first mounting part 4 and the through holes of the two beams 1 and fitted with a nut to fix the two beams 1 together. Alternatively, the bolt can be passed through the threaded holes of the first mounting part 4 and the two beams 1 to fix the two beams 1 together. As some embodiments of this application, the connector 3 can be constructed as a self-drilling screw, which can be passed through the first mounting part 4 and the two beams 1 in sequence to fix the two beams 1 together.

[0052] In the above embodiments, multiple beams 1 and multiple columns 2 can be connected into a three-dimensional beam-column structure 10 by multiple first mounting parts 4, multiple second mounting parts 5, multiple third mounting parts 6, and multiple connectors 3. No welding is required, the assembly process is simple and quick, which helps to improve assembly efficiency. Moreover, the connection is firm and reliable, which can enhance the structural stability and reliability of the beam-column structure 10.

[0053] In some embodiments of this utility model, such as Figure 2 As shown, the first mounting component 4 includes: a first mounting body 41, the first mounting body 41 defining a receiving cavity 42, and two beams 1 corresponding to the first mounting component 4, one of which is located outside the receiving cavity 42 and connected to the first mounting body 41 via a connector 3, and the other beam 1 is partially received in the receiving cavity 42 and connected to the first mounting body 41 via a connector 3.

[0054] The first mounting body 41 can define a receiving cavity 42. Of the two beams 1 connected to the first mounting member 4, one beam 1 can be located outside the receiving cavity 42, and part of the structure of the other beam 1 can be received in the receiving cavity 42. That is, the first mounting member 4 is connected between the two connected beams 1, and both beams 1 are fixedly connected to the first mounting member 4 through the connector 3, so that the two connected beams 1 are stably and reliably fixedly connected. By providing a first mounting component 4 with a receiving cavity 42, the installation area of ​​the beam 1 housed in the receiving cavity 42 and the first mounting component 4 can be increased. Connection points between the beam 1 housed in the receiving cavity 42 and the first mounting component 4 can be added according to installation needs, thereby improving the connection strength between the first mounting component 4 and the beam 1 housed in the receiving cavity 42, thus improving the structural stability of the beam-column structure 10. Furthermore, it is easier to connect the two beams 1 to the first mounting component 4, reducing assembly difficulty and improving assembly efficiency. In addition, the first mounting component 4 and the corresponding two beams 1 can be structurally integrated, making them less likely to be noticed by the user, thus improving the user experience and the overall integrity of the beam-column structure 10.

[0055] In some embodiments of this utility model, such as Figure 2 As shown, the first mounting body 41 includes: a plurality of first mounting plates 411, which are connected and together define a receiving cavity 42. One of the first mounting plates 411 is connected to the beam 1 located outside the receiving cavity 42 via a connector 3, and at least one of the remaining first mounting plates 411 is connected to the beam 1 received in the receiving cavity 42 via a connector 3.

[0056] Multiple first mounting plates 411 can be fixedly connected and jointly define a receiving cavity 42. The number of first mounting plates 411 can be three, four, five, etc. Among the multiple first mounting plates 411, one first mounting plate 411 can be fixedly connected to the beam 1 located outside the receiving cavity 42 via a connector 3. At least one of the remaining first mounting plates 411 can be connected to the beam 1 received in the receiving cavity 42 via a connector 3. Specifically, one of the remaining first mounting plates 411 is connected to the beam 1 received in the receiving cavity 42 via a connector 3, or multiple of the remaining first mounting plates 411 are connected to the beam 1 received in the receiving cavity 42 via connectors 3, so that two beams 1 are fixedly connected by the first mounting body 41, thereby enhancing the connection strength between the first mounting body 41 and the beam 1 received in the receiving cavity 42, and thus improving the structural stability of the beam-column structure 10.

[0057] As some embodiments of this application, such as Figure 2 As shown, multiple first mounting plates 411 are integrally formed and define a receiving cavity 42 with an open end. This arrangement facilitates the placement of a portion of the beam 1 within the receiving cavity 42. For example, the receiving cavity 42 is open towards one end of the beam 1 partially housed within the receiving cavity 42, and the upper end of the receiving cavity 42 is open. The first mounting plate 411 directly opposite the beam 1 housed within the receiving cavity 42 is fixedly connected to the beam 1 located outside the receiving cavity 42 via a connector 3. The first mounting plates 411 on the left and right sides of the beam 1 housed within the receiving cavity 42 are also fixedly connected to the beam 1 housed within the receiving cavity 42 via connectors 3. This arrangement ensures that the first mounting plate 411 is firmly connected to the corresponding two beams 1 and facilitates assembly. Furthermore, the receiving cavity 42 facilitates the installation of the connector 3 between the first mounting plate 411 and the beam 1 located outside the receiving cavity 42 by the installer.

[0058] In some embodiments of this utility model, such as Figure 2 As shown, the first mounting component 4 also includes: a first connecting flange 43, which is connected to the first mounting body 41, and the first connecting flange 43 is connected to the beam 1 located outside the receiving cavity 42 via a connector 3.

[0059] The first connecting flange 43 can be connected to the first mounting body 41. As some embodiments of this application, the first connecting flange 43 and the first mounting body 41 are integrally formed. The first connecting flange 43 can be fixedly connected to the beam 1 located outside the receiving cavity 42 through the connector 3, so that the beam 1 located outside the receiving cavity 42 can be fixedly connected to the first mounting member 4 through the first connecting flange 43 and one of the first mounting plates 411, thereby increasing the installation area of ​​the beam 1 located outside the receiving cavity 42 and the first mounting member 4. The connection point between the beam 1 located outside the receiving cavity 42 and the first mounting member 4 can be added according to the installation needs, so as to improve the connection strength between the first mounting member 4 and the beam 1 located outside the receiving cavity 42, thereby improving the structural stability of the beam-column structure 10.

[0060] As some embodiments of this application, such as Figure 2 As shown, multiple first mounting plates 411 are integrally formed and define a receiving cavity 42 with an open end. For example, the receiving cavity 42 is open towards one end of the beam 1 partially housed in the receiving cavity 42, and the upper end of the receiving cavity 42 is open. This arrangement facilitates the placement of a portion of the beam 1 within the receiving cavity 42. The first mounting plate 411 directly opposite the beam 1 housed in the receiving cavity 42 is fixedly connected to the beam 1 located outside the receiving cavity 42 via a connector 3. A first connecting flange 43 is connected to the first mounting plate 411 and has an included angle, the angle of which is the same as the angle of the corner of the beam 1, so that the beam 1 is adapted to the first mounting member 4. This arrangement helps to improve the connection strength between the first mounting member 4 and the beam 1 located outside the receiving cavity 42, and helps to improve the structural stability of the beam-column structure 10.

[0061] In other embodiments of this utility model, such as Figure 3 As shown, the first mounting component 4 includes two first plates 44 connected together and having an included angle, and the two first plates 44 are respectively connected to two corresponding beams 1 through connectors 3.

[0062] The two first plates 44 are fixedly connected and have an included angle. The included angle formed by the two first plates 44 is determined by the installation angle of the two corresponding beams 1. The included angle formed by the two first plates 44 can be set according to the actual installation needs to make the design of the first mounting component 4 more flexible. For example, the installation angle of the two beams 1 can be 90°, that is, the length direction of the two beams 1 is perpendicular. Then the angle formed by the two first plates 44 is 90°, so that the first mounting component 4 can cooperate with the two corresponding beams 1 at the same time. This allows the first mounting component 4 to be installed on the two beams 1 through the connector 3 to fix the two corresponding beams 1. This setting helps to reduce the assembly difficulty and improve the assembly efficiency. In addition, it can make the first mounting component 4 and the two corresponding beams 1 structurally integrated, not easily noticed by the user, improving the user experience and the integrity of the beam-column structure 10.

[0063] In other embodiments of this utility model, such as Figure 4 and Figure 5 As shown, the beam 1 has a mating groove 11, which extends along the length of the beam 1, and the first plate 44 is received in the mating groove 11 of the corresponding beam 1.

[0064] The beam 1 may have a mating groove 11, which extends along the length of the beam 1. A portion of the first plate 44 can be accommodated within the mating groove 11 of the corresponding beam 1. When the first plate 44 is installed in the mating groove 11, it is concealed, making it less noticeable and aesthetically pleasing, thus improving the user experience. Furthermore, the width of the mating groove 11 is adapted to the dimension of the first plate 44 along its extension direction, thereby limiting the angle at which the first mounting member 4 is installed in the mating groove 11 for easier assembly. Additionally, this design improves the connection stability between the first mounting member 4 and the corresponding beam 1, thereby enhancing the structural stability among multiple beams 1.

[0065] In other embodiments of this utility model, such as Figure 5 As shown, the mating groove 11 has a bottom wall 111, a top wall 112, and two side walls 113. The bottom wall 111, top wall 112, and side walls 113 all extend along the length direction of the beam 1. The top wall 112 and bottom wall 111 are spaced apart along the depth direction of the mating groove 11, and the two side walls 113 are spaced apart along the width direction of the mating groove 11. The top wall 112 includes two sub-top walls 1121, which are spaced apart along the width direction of the mating groove 11. The first plate 44 is housed between the bottom wall 111, top wall 112, and side walls 113.

[0066] The bottom wall 111, top wall 112, and side walls 113 of the mating groove 11 can all extend along the length of the beam 1. The two ends of the mating groove 11 along the length of the beam 1 can have slots, through which the first plate 44 can be moved into or out of the mating groove 11. The top wall 112 and bottom wall 111 can be spaced apart along the depth of the mating groove 11, and the two side walls 113 can be spaced apart along the width of the mating groove 11. The distance between the top wall 112 and bottom wall 111 is adapted to the thickness of the first plate 44, and the spacing between the two side walls 113 is adapted to the width of the first plate 44 along the width of the mating groove 11, so as to reduce the risk of the first plate 44 shaking in the mating groove 11, thereby reducing the assembly difficulty. Furthermore, the first plate 44 can be confined between the bottom wall 111, top wall 112, and side walls 113 of the corresponding mating groove 11, which can improve the connection stability between the first mounting part 4 and the corresponding beam 1.

[0067] As some embodiments of this utility model, before connecting two corresponding beams 1 through the first mounting member 4, the first mounting member 4 can be moved from the slot of one of the beams 1 into the mating slot 11, and the beam 1 can be fixedly connected to one of the first plates 44 of the first mounting member 4 through the connector 3. Then, the other first plate 44 of the first mounting member 4 can be moved into the mating slot 11 of the other beam 1, and the other first plate 44 can be fixedly connected to the other beam 1 through the connector 3 at a preset position, thereby achieving the effect of connecting two beams 1 through the first mounting member 4.

[0068] In other embodiments of this utility model, such as Figure 5 As shown, the mating groove 11 also has a partition wall 115, which is located between the bottom wall 111 and the top wall 112 and extends along the length direction of the beam 1. The partition wall 115 includes two sub-partition walls 1151, which are spaced apart along the width direction of the mating groove 11. The partition wall 115 divides the mating groove 11 into two sub-matting grooves 116, and the first plate 44 is accommodated in any one of the sub-matting grooves 116.

[0069] The partition wall 115 can be located between the bottom wall 111 and the top wall 112 and can extend along the length of the beam 1. The partition wall 115 can include two sub-partition walls 1151, which can be spaced apart along the width of the mating groove 11. The distance between the partition wall 115 and the bottom wall 111 and the top wall 112 is approximately equal, so as to divide the mating groove 11 into two approximately equal sub-matting grooves 116 along the depth of the mating groove 11. The first plate 44 can be accommodated in any one of the sub-matting grooves 116. It is understood that when the first plate 44 is accommodated in the inner sub-matting groove 116, the first plate 44 is limited to the bottom wall 111, the top wall 112, and the side wall 113 of the corresponding mating groove 11. When the first plate 44 is accommodated in the outer sub-matting groove 116, the first plate 44 is limited to the partition wall 115, the top wall 112, and the side wall 113 of the corresponding mating groove 11. This configuration allows the first plate 44 to be installed in any sub-groove 116 according to actual installation needs and the size of the first mounting component 4, which can increase the selectivity of the connection between the two beams 11 and reduce the installation difficulty.

[0070] In some embodiments of this utility model, such as Figure 6 and Figure 7 As shown, the second mounting component 5 includes a second mounting plate 51 and a third mounting plate 52. The second mounting plate 51 and the third mounting plate 52 are connected and have an included angle. The second mounting plate 51 is connected to the corresponding column 2 through a connector 3, and the third mounting plate 52 is connected to the beam 1 through a connector 3.

[0071] The second mounting plate 51 and the third mounting plate 52 can be fixedly connected and have an included angle. As some embodiments of this application, the second mounting plate 51 and the third mounting plate 52 are integrally formed. The included angle formed by the second mounting plate 51 and the third mounting plate 52 is determined by the installation angle of the corresponding connected beam 1 and column 2. For example, if the installation angle of the corresponding connected beam 1 and column 2 is 90°, then the angle formed by the second mounting plate 51 and the third mounting plate 52 is 90°, so that the second mounting plate 51 can fit with the corresponding column 2 and can be connected by the connector 3, and the third mounting plate 52 can fit with the corresponding beam 1 and can be connected by the connector 3. Thus, the corresponding beam 1 and column 2 can be firmly connected by the second mounting piece 5, improving the connection strength of the beam 1 and the corresponding column 2. In addition, this setting can make the second mounting piece 5 structurally integrated with the corresponding beam 1 and column 2, which is not easily noticed by the user, improving the user experience and the integrity of the beam and column structure 10.

[0072] In other embodiments of this utility model, such as Figure 6 As shown, the third mounting plate 52 is connected to the lower end of the corresponding beam 1 via the connector 3.

[0073] Among them, such as Figure 6 As shown in the vertical direction, which is the same as the third direction, the third mounting plate 52 can be located at the lower end of the beam 1, and the third mounting plate 52 is connected to the lower end of the corresponding beam 1 through the connector 3. That is to say, the third mounting plate 52 is connected between the corresponding beam 1 and the corresponding column 2. This setting allows the third mounting plate 52 to fit against the lower end of the beam 1, which helps to increase the connection points between the third mounting plate 52 and the beam 1, and can increase the connection strength between the third mounting plate 52 and the beam 1. In addition, this setting makes it easy to fix the second mounting plate 51 to the corresponding column 2. The structure is reasonable and can reduce the assembly difficulty. Moreover, it can hide part of the structure of the second mounting component 5 between the corresponding beam 1 and the column 2, making it difficult for the user to find, thus improving the user experience and the integrity of the beam-column structure 10.

[0074] In other embodiments of this utility model, such as Figure 6 and Figure 7 As shown, there are multiple second mounting plates 51, which are located on different sides of the corresponding column 2, and at least two second mounting plates 51 are spaced apart and correspondingly arranged.

[0075] The second mounting plate 51 can be multiple, and the number of second mounting plates 51 can be two, three, four, etc. The multiple second mounting plates 51 can be located on different sides of the corresponding column 2. The multiple second mounting plates 51 can be attached to different sides of the corresponding column 2 and fixedly connected by the connector 3 to increase the installation area of ​​the multiple second mounting plates 51 and the corresponding column 2, thereby increasing the number of connection points between the second mounting member 5 and the corresponding column 2, and improving the connection strength between the first mounting member 4 and the beam 1 housed in the receiving cavity 42. Furthermore, at least two second mounting plates 51 can be spaced apart and correspondingly arranged. This arrangement can make the multiple connection points between the second mounting member 5 and the corresponding column 2 more evenly distributed, thereby further improving the connection stability between the second mounting member 5 and the corresponding column 2, which is beneficial to improving the structural stability of the beam-column structure 10.

[0076] In other embodiments of this utility model, such as Figures 8-10 As shown, the lower end of the column 2 is fitted and assembled with the third mounting part 6 and connected to the third mounting part 6 through the connector 3.

[0077] Taking the vertical direction as an example, the lower end of the column 2 can be fitted and assembled with the third mounting member 6. As some embodiments of this utility model, the lower end of the column 2 can be fitted onto the outside of the third mounting member 6, or the third mounting member 6 can be fitted onto the outside of the lower end of the column 2. The fitting method can be reasonably set according to the actual situation. The lower end of the column 2 and the third mounting member 6 are fixedly connected by the connector 3 to ensure a stable connection between the column 2 and the third mounting member 6, thereby stably connecting the column 2 to the mounting wall 20 via the third mounting member 6.

[0078] By fitting the lower end of column 2 into the third mounting part 6, the connection between column 2 and the third mounting part 6 can be made very strong, which can reduce the risk of relative displacement between column 2 and the third mounting part 6. Furthermore, column 2 can be firmly installed on the mounting wall 20, which can improve the overall stability of the beam-column structure 10.

[0079] In other embodiments of this utility model, such as Figure 8 As shown, the lower end of column 2 is fitted onto the outside of the third mounting component 6. This arrangement ensures excellent connection strength between column 2 and the third mounting component 6. Furthermore, since the overall volume of column 2 is larger than that of the third mounting component 6, fitting the lower end of column 2 onto the outside of the third mounting component 6 simplifies assembly, reduces assembly difficulty, and improves assembly efficiency. Moreover, fitting the lower end of column 2 onto the outside of the third mounting component 6 allows the third mounting component 6 to be housed within column 2, protecting it. Additionally, this arrangement allows the third mounting component 6 to be hidden within column 2, making it less likely to be noticed by the user, thus enhancing the user experience and the overall integrity of the beam-column structure 10.

[0080] In other embodiments of this utility model, such as Figure 11 As shown, the third mounting component 6 includes a base plate 61 and a side plate 62. The side plate 62 is connected to the base plate 61 and together defines an open cavity 63 at the upper end. The base plate 61 is adapted to be connected to the mounting wall 20 via a connector 3. The column 2 is connected to the side plate 62 via the connector 3.

[0081] The base plate 61 can be located below the side plate 62. The side of the base plate 61 facing away from the side plate 62 can be fitted with the mounting wall 20. The base plate 61 can be fixedly connected to the mounting wall 20 through the connector 3. The side plate 62 and the base plate 61 can be fixedly connected. As some embodiments of this application, the side plate 62 and the base plate 61 are integrally formed. The side plate 62 and the base plate 61 together define an open cavity 63 at the upper end. The cavity 63 facilitates the installation of the connector 3 between the base plate 61 and the mounting wall 20 by the installer, which can reduce the installation difficulty.

[0082] As some embodiments of this utility model, the shape of the cavity 63 is adapted to the shape of the lower end of the column 2. The number of side plates 62 can be four. The four side walls 62 are connected in sequence to define the upper open cubic cavity 63 together with the bottom plate 61. The cross-sectional shape of the cavity 63 can be rectangular or square. The cross-sectional shape of the lower end of the column 2 can be set to be rectangular or square to match the cross-sectional shape of the cavity 63, so that the lower end of the column 2 can be reliably sleeved with the third mounting member 6 and is not easy to rotate relative to each other, thereby improving the connection stability. In addition, multiple side plates 62 are connected to the column 2 through connectors 3. By making the side plates 62 and the bottom plate 61 jointly define the cavity 63, it is easy for the connectors 3 to pass through the side plates 62, reducing the assembly difficulty.

[0083] As some embodiments of this utility model, the column 2, the third mounting component 6, and the connector 3 are all manufactured in the factory and transported to the installation site. During on-site construction, the positions of each connector 3 can be located first, and holes can be drilled at the corresponding positions on the mounting wall 20. Each third mounting component 6 is then installed on the mounting wall 20 through the connector 3. Then, the column 2 is fitted with the corresponding third mounting component 6 and fixedly connected through the connector 3, thus completing the installation operation of the column 2 and the third mounting component 6.

[0084] As some embodiments of the present invention, among the plurality of connectors 3, at least some connectors 3 can be constructed as bolts, and at least some connectors 3 can be constructed as self-drilling screws.

[0085] The sunroom according to an embodiment of the present invention includes the beam-column structure 10 described in the above embodiment. Multiple beams 1 and multiple columns 2 can be connected to form a three-dimensional beam-column structure 10 using multiple first mounting parts 4, multiple second mounting parts 5, multiple third mounting parts 6, and multiple connectors 3. No welding is required, the assembly process is simple and quick, which helps improve assembly efficiency. Furthermore, the connection is firm and reliable, enhancing the structural stability and reliability of the beam-column structure 10.

[0086] In the description of this utility model, it should be understood that the terms "center", "longitudinal", "transverse", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", "axial", "radial", "circumferential", etc., indicating the orientation or positional relationship are based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing this utility model and simplifying the description, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of this utility model.

[0087] In the description of this utility model, "first feature" and "second feature" may include one or more of the features.

[0088] In the description of this utility model, "multiple" means two or more.

[0089] In the description of this utility model, the first feature being "above" or "below" the second feature may include the first and second features being in direct contact, or it may include the first and second features not being in direct contact but being in contact through another feature between them.

[0090] In the description of this utility model, the terms "above", "over" and "on top" for the first feature and the second feature include the first feature being directly above or diagonally above the second feature, or simply indicate that the first feature is at a higher horizontal level than the second feature.

[0091] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "illustrative embodiment," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0092] Although embodiments of the present invention have been shown and described, those skilled in the art will understand that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the claims and their equivalents.

Claims

1. A beam column structure (10) characterized by, The utility model relates to a kind of beam body (1) and its installation structure, including: Multiple beam bodies (1), in multiple the beam body (1), the extension direction of at least two mutually adjacent beam bodies (1) is different; Multiple mounting and multiple connecting pieces (3), multiple the mounting includes: multiple first mounting (4), multiple second mounting (5), multiple third mounting (6), two mutually adjacent beam bodies (1) and at least one first mounting (4) are connected by connecting piece (3); Multiple columns (2), multiple the second mounting (5) and multiple the column (2) one to one, the column (2) and corresponding second mounting (5) are connected by connecting piece (3), and each second mounting (5) is connected to the beam body (1) by connecting piece (3), multiple third mounting (6) and multiple the column (2) one to one, the third mounting (6) is connected by connecting piece (3) with corresponding column (2) away from the one end of beam body (1), and the third mounting (6) is connected with installation wall (20) by connecting piece (3).

2. The beam-column structure (10) according to claim 1, characterized in that The first mounting (4) includes: first mounting main body (41), the first mounting main body (41) defines receiving cavity (42), two beam bodies (1) corresponding to the first mounting (4), wherein one of the beam bodies (1) is located outside the receiving cavity (42) and is connected to the first mounting main body (41) by the connecting piece (3), and another beam body (1) is partially received in the receiving cavity (42) and is connected to the first mounting main body (41) by the connecting piece (3).

3. The beam-column structure (10) according to claim 2, characterized in that The first mounting main body (41) includes: multiple first mounting plates (411), multiple the first mounting plate (411) is connected and jointly defines the receiving cavity (42), one of the first mounting plates (411) is connected to the beam body (1) located outside the receiving cavity (42) by the connecting piece (3), and at least one of the remaining first mounting plates (411) is connected to the beam body (1) received in the receiving cavity (42) by the connecting piece (3).

4. The beam-column structure (10) according to claim 2, characterized in that The first mounting (4) further includes: first connecting flange (43), the first connecting flange (43) is connected with the first mounting main body (41), and the first connecting flange (43) is connected to the beam body (1) located outside the receiving cavity (42) by the connecting piece (3).

5. The beam-column structure (10) according to claim 1, characterized in that, The first mounting (4) includes: two first plate bodies (44), two the first plate body (44) is connected and has included angle, two the first plate body (44) is connected by connecting piece (3) with corresponding two beam bodies (1) respectively.

6. The beam-column structure (10) according to claim 5, characterized in that The beam body (1) has a matching groove (11) extending along the length of the beam body (1), and the first plate body (44) is received in the matching groove (11) of the corresponding beam body (1).

7. The beam-column structure (10) according to claim 6, characterized in that The fitting groove (11) has a bottom wall (111), a top wall (112), and two side walls (113), the bottom wall (111), the top wall (112), and the side walls (113) extend along the length direction of the beam body (1), the top wall (112) and the bottom wall (111) are spaced apart along the depth direction of the fitting groove (11), and the two side walls (113) are spaced apart along the width direction of the fitting groove (11), the top wall (112) comprises two sub-top walls (1121), and the two sub-top walls (1121) are spaced apart along the width direction of the fitting groove (11), and the first plate body (44) is accommodated between the bottom wall (111), the top wall (112), and the side walls (113).

8. The beam-column structure (10) according to claim 7, characterized in that The fitting groove (11) further has a partition wall (115) located between the bottom wall (111) and the top wall (112) and extending along the length direction of the beam body (1), the partition wall (115) comprises two sub-partition walls (1151), and the two sub-partition walls (1151) are spaced apart along the width direction of the fitting groove (11), the partition wall (115) divides the fitting groove (11) into two sub-fitting grooves (116), and the first plate body (44) is accommodated in any one of the sub-fitting grooves (116).

9. The beam-column structure (10) according to any one of claims 1-8, characterized in that, The second mounting member (5) comprises a second mounting plate (51) and a third mounting plate (52), the second mounting plate (51) is connected with the third mounting plate (52) and has an included angle, the second mounting plate (51) is connected with the corresponding column body (2) through the connecting member (3), and the third mounting plate (52) is connected with the beam body (1) through the connecting member (3).

10. The beam-column structure (10) according to claim 9, characterized in that The third mounting plate (52) is connected to the lower end of the corresponding beam body (1) through the connecting member (3).

11. The beam-column structure (10) according to claim 9, characterized in that The second mounting plate (51) is provided on different sides of the corresponding column body (2), and at least two second mounting plates (51) are spaced apart and arranged correspondingly.

12. The beam-column structure (10) according to any one of claims 1-8, characterized in that, The lower end of the column body (2) is fitted with the third mounting member (6) and connected with the third mounting member (6) through the connecting member (3).

13. The beam-column structure (10) according to claim 12, characterized in that The lower end of the column body (2) is fitted outside the third mounting member (6).

14. The beam-column structure (10) according to claim 12, characterized in that The third mounting member (6) comprises a bottom plate (61) and a side plate (62), the side plate (62) is connected with the bottom plate (61) and together defines a cavity (63) with an open upper end, the bottom plate (61) is adapted to be connected with a mounting wall (20) through the connecting member (3), and the column body (2) is connected with the side plate (62) through the connecting member (3).

15. A conservatory characterised in that, The beam-column structure (10) according to any one of claims 1-14.