A pyramid-shaped glass house frame structure capable of being quickly assembled

CN224769549UActive Publication Date: 2026-09-18GUANGDONG RUIDENG CONSTR TECH CO LTD
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Patent Information

Application Number
CN202522000199.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-17
Publication Date
2026-09-18
Estimated Expiration
2035-09-17

AI Technical Summary

Technical Problem

[0004]有鉴于此,本实用新型旨在提供一种可快速拼装的金字塔形玻璃屋框架结构以至少在一定程度上解决现有玻璃屋稳定性差且组装复杂,搭建速度慢的问题

Benefits of technology

[0007]The beneficial effects that this utility model can achieve are: adopting a pyramid-shaped main frame structure with a large bottom space, which is suitable for use in exhibitions and other activities, and its structure has strong stability. The sloping design facilitates the sliding of rain, snow and dust, which are not easy to accumulate on the outer surface of the glass house, reducing the overall load on the glass house and further enhancing its stability; the internal support components adopt multi-modal assembly, which can improve the efficiency of disassembly and assembly.

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Abstract

The utility model discloses a kind of pyramid-shaped glass house frame structures of quick assembly, relate to glass house product technical field.The utility model includes: the main frame of pyramid shape, main frame includes top corner connecting piece, diagonal brace and ground beam, top corner connecting piece is four pyramid structure, four diagonal braces are respectively arranged along the extension direction of four edges of top corner connecting piece and all top end connection top corner connecting piece;Four ground beams are respectively arranged parallel to the four bottom edges of top corner connecting piece and the both ends of each ground beam are respectively fixedly connected with the bottom end of adjacent two diagonal braces;Inner support frame assembly;Door frame.Pyramid-shaped main frame structure is adopted, bottom space is big, suitable for exhibition display etc. Activity uses, and its structural stability is strong, slope design is convenient for rain and snow dust etc. Sliding, not easy to deposit on the outer surface of glass house, reduce the overall load of glass house, further enhance stability;Inner support assembly adopts multi-modular assembly, can improve dismounting efficiency.
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Description

Technical Field

[0001] This utility model relates to the field of glass house products technology, and more specifically to a pyramid-shaped glass house frame structure that can be quickly assembled. Background Technology

[0002] In the exhibition and event industry, many companies use transparent glass houses to attract foot traffic and ensure their products reach a wider audience outdoors. Since glass houses are significantly more expensive than ordinary dome houses, the market demands that they offer longer lifespans, safer structures, and more aesthetically pleasing designs. Common glass houses are mostly square or spherical. Square glass houses are prone to accumulating dust and snow, increasing their load, and are difficult to clean. They also have low space utilization, making them more suitable for applications requiring vertical space, such as planting. Spherical glass houses are formed by assembling multiple polygonal modular units layer by layer. However, they still suffer from poor wind resistance and drainage, affecting structural stability. Furthermore, they require layer-by-layer assembly, making assembly complex and slow.

[0003] Therefore, there is an urgent need for a pyramid-shaped glass dome that can be quickly assembled and disassembled, is highly stable, and has a long service life. Utility Model Content

[0004] In view of this, the present invention aims to provide a pyramid-shaped glass house frame structure that can be quickly assembled to at least partially solve the problems of poor stability, complex assembly, and slow construction speed of existing glass houses.

[0005] To achieve the above objectives, the present invention adopts the following technical solution:

[0006] A pyramid-shaped glass house frame structure that can be quickly assembled includes: The main frame is pyramidal in shape, including a apex connector, diagonal braces, and ground beams. The apex connector is a four-sided pyramid structure. The four diagonal braces are arranged along the extension direction of the four edges of the apex connector and are all connected to the apex connector at their top ends. The four ground beams are arranged parallel to the four bottom edges of the apex connector, and the two ends of each ground beam are fixedly connected to the bottom ends of the two adjacent diagonal braces. The internal support frame assembly comprises four sets, each set of which is fixed within the frame cavity formed by two adjacent diagonal braces, the corresponding ground beam, and the top corner connector. At least one set of the internal support frame assembly has a door frame mounting opening. Each set of the internal support frame assembly includes multiple trapezoidal inner frames sequentially spliced ​​along the length of the diagonal braces. A glass cover plate covers the outer surface of the trapezoidal inner frames. A door frame, which is fixed inside the door frame mounting opening.

[0007] The beneficial effects that this utility model can achieve are: adopting a pyramid-shaped main frame structure with a large bottom space, which is suitable for use in exhibitions and other activities, and its structure has strong stability. The sloping design facilitates the sliding of rain, snow and dust, which are not easy to accumulate on the outer surface of the glass house, reducing the overall load on the glass house and further enhancing its stability; the internal support components adopt multi-modal assembly, which can improve the efficiency of disassembly and assembly.

[0008] Preferably, the diagonal brace is a hollow pentagonal profile, comprising a first interior panel and two first splicing panels and two first exterior panels symmetrically arranged on both sides of the vertical line of the first interior panel. The two first splicing panels are arranged perpendicularly to the side wall of the top corner connector and one end is fixedly connected to both ends of the first interior panel. The two first exterior panels are arranged parallel to the side wall of the top corner connector and one end is fixedly connected to the other end of the corresponding first splicing panel, and the other ends are close to each other and connected. The outer peripheral wall of the trapezoidal inner frame abuts against the outer wall of the corresponding first splicing panel and is fixed by a first locking member.

[0009] The beneficial effects of adopting the above technical solution are: it facilitates the assembly of the diagonal brace, the top corner connector, and the internal support components, and improves the aesthetics.

[0010] Preferably, the diagonal brace further includes a diagonal brace reinforcement structure placed in the inner cavity of the hollow pentagonal profile. The diagonal brace reinforcement structure includes a first reinforcing plate and two second reinforcing plates. The two ends of the first reinforcing plate are respectively connected to the connection points of the two first splicing panels and the first outer decorative panel. The two second reinforcing plates are arranged perpendicular to the first reinforcing plate, with one end connected to the first reinforcing plate and the other end respectively connected to the connection points of the two second reinforcing plates and the first reinforcing plate.

[0011] The beneficial effects that can be achieved by adopting the above technical solution are: by reinforcing the structure to form multiple triangular structures, the stability and load-bearing capacity of the diagonal bracing are enhanced.

[0012] Preferably, the ground beam is a hollow trapezoidal profile, which includes a second interior panel, a grounding panel, a second exterior panel, and a second splicing panel connected in sequence around the circumference. The second interior panel and the second exterior panel are arranged parallel to the corresponding side wall of the top corner connector. The grounding panel is parallel to the ground and supported on the ground. The second splicing panel is arranged perpendicular to the second interior panel, and its outer wall abuts against the outer peripheral wall of the corresponding trapezoidal inner frame and is fixed by a second locking member.

[0013] The beneficial effects of adopting the above technical solution are: easy splicing and assembly, improved disassembly and assembly efficiency, and reduced assembly time.

[0014] Preferably, the ground beam further includes a plurality of ground beam reinforcing plates, which are arranged at intervals along the surface direction of the second splicing panel. Each ground beam reinforcing plate is arranged perpendicular to the second splicing panel and its two ends are respectively connected to the grounding panel and the inner wall surface of the second splicing panel.

[0015] The beneficial effect that can be achieved by adopting the above technical solution is to enhance the load-bearing capacity of the ground beam.

[0016] Preferably, each trapezoidal inner frame is formed by multiple hollow rectangular profiles, and each rectangular profile includes a third interior panel, a connecting panel, a third exterior panel and a third splicing panel connected in sequence around the periphery, wherein the third splicing panel is spliced ​​with the corresponding first splicing panel and second splicing panel.

[0017] The beneficial effects that can be achieved by adopting the above technical solution are: easy assembly.

[0018] Preferably, the rectangular profile further includes an inner reinforcing plate, which is arranged parallel to the third splicing panel and its two ends are respectively connected to the inner wall surfaces of the third interior panel and the third exterior panel.

[0019] The beneficial effects that can be achieved by adopting the above technical solution are: enhancing the load-bearing capacity of the trapezoidal inner frame.

[0020] Preferably, the first splicing panel, the second splicing panel, and the third splicing panel are all provided with anti-slip teeth, and the anti-slip teeth on the first splicing panel and the third splicing panel that abut against each other, the anti-slip teeth on the second outer trim panel and the first splicing panel, and the anti-slip teeth on the third splicing panel adjacent to the trapezoidal inner frame are all engaged with each other.

[0021] The beneficial effects that can be achieved by adopting the above technical solution are: enhancing the connection strength of each unit after assembly, and avoiding misalignment caused by relative sliding at the connection point, which would affect the stability of the structure.

[0022] Preferably, each of the diagonal braces is provided with a support corner seat at its bottom. One end of the support corner seat is connected to the bottom of the first interior panel of the diagonal brace, and the other end is provided with a plurality of mounting holes for installing floor nails.

[0023] The beneficial effects that can be achieved by adopting the above technical solution are: enhanced connection strength with the ground and improved wind resistance.

[0024] Preferably, the bottom of the corner connector is further provided with a top reinforcing plate, which has a V-shaped structure and its two ends are respectively connected to the trapezoidal inner frame of the top layer and the bottom wall of the corner connector.

[0025] The beneficial effects that can be achieved by adopting the above technical solution are: enhancing the connection strength between the trapezoidal inner frame and the top corner connector, and strengthening the stability of the structure.

[0026] As can be seen from the above technical solution, compared with the prior art, the present invention discloses a pyramid-shaped glass house frame structure that can be quickly assembled. Not only can the pyramid shape improve the overall stability, but each unit is also made of high load-bearing and high-stability profiles, which makes the glass house structure have a long service life, a safer structure, and a more beautiful product. At the same time, each unit adopts a modular design, which is convenient for assembly and improves the efficiency of disassembly and assembly. Attached Figure Description

[0027] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on the provided drawings without creative effort.

[0028] Figure 1 A schematic diagram of a pyramid-shaped glass roof frame structure with an outwardly convex door frame, which can be quickly assembled, provided for this utility model.

[0029] Figure 2 A schematic diagram of the structure of the diagonal brace and the trapezoidal inner frame splicing part on both sides provided by this utility model.

[0030] Figure 3 A schematic diagram of the structure of the splicing part of the ground beam and the trapezoidal inner frame provided by this utility model.

[0031] Figure 4 This is a schematic diagram of the structure of the splicing part of two adjacent trapezoidal inner frames provided by this utility model.

[0032] Figure 5 A schematic diagram of the cross-section of the diagonal brace provided by this utility model.

[0033] Figure 6 A schematic diagram of the cross-section of the ground beam provided by this utility model.

[0034] Figure 7 This is a schematic diagram of the cross-section of the rectangular profile provided by this utility model.

[0035] Figure 8 An exploded structural diagram of a set of internal support frame components provided by this utility model.

[0036] Figure 9 for Figure 1 Enlarged structural diagram of section A.

[0037] Figure 10 An exploded view of a pyramid-shaped glass roof frame structure that can be quickly assembled, as provided in this utility model.

[0038] Figure 11 for Figure 10 Enlarged structural diagram of section B.

[0039] Figure 12 A schematic diagram of a pyramid-shaped glass roof frame structure with an embedded door frame that can be quickly assembled, provided for this utility model.

[0040] In the diagram: 1. Main frame; 11. Top corner connector; 12. Diagonal brace; 121. First interior trim panel; 122. First spliced ​​panel; 123. First exterior trim panel; 124. First reinforcing plate; 125. Second reinforcing plate; 13. Ground beam; 131. Second interior trim panel; 132. Grounding panel; 133. Second exterior trim panel; 134. Second spliced ​​panel; 135. Ground beam reinforcing plate; 2. Internal support frame assembly; 21. Trapezoidal internal frame; 21-a. First layer trapezoidal inner frame, 21-b, First layer trapezoidal inner frame, 21-c, First layer trapezoidal inner frame, 21-d, First layer trapezoidal inner frame, 211, Third interior panel, 212, Connecting panel, 213, Third exterior panel, 214, Third splicing panel, 215, Profile inner reinforcing plate, 3, Door frame, 4, Limiting bracket, 5, Anti-slip teeth, 6, Support corner seat, 61, Mounting hole, 62, Reinforcing rib, 7, Top reinforcing plate, 8, First locking component. Detailed Implementation

[0041] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0042] In the description of this utility model, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0043] In this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," "joining," and "fixing," etc., should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral part; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; they can refer to the internal communication of two components or the interaction between two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.

[0044] Please see Figures 1-12 This utility model discloses a pyramid-shaped glass roof frame structure that can be quickly assembled, including: a pyramid-shaped main frame 1, an internal support frame assembly 2, and a door frame 3. The main frame 1 includes a corner connector 11, diagonal braces 12, and ground beams 13. The corner connector 11 is a four-sided pyramid structure. Four diagonal braces 12 are arranged along the extension directions of the four edges of the corner connector 11, and their top ends are connected to the corner connector 11. Four ground beams 13 are arranged parallel to the four bottom edges of the corner connector 11, and the two ends of each ground beam 13 are fixedly connected to the bottom ends of the two adjacent diagonal braces 12. The corner connector 11 is formed by connecting four side plates and one bottom plate. The corner connector 11 facilitates the positioning and connection of the diagonal braces 12 and the ground beams 13 to form a complete pyramid-shaped main frame 1, which speeds up the assembly efficiency and improves the stability and aesthetics of the overall structure.

[0045] The internal support frame assembly 2 consists of four sets. Each set of internal support frame assemblies 2 is fixed within the frame cavity formed by two adjacent diagonal braces 12, the corresponding ground beam 13, and the corner connector 11. At least one set of internal support frame assemblies 2 has a door frame mounting opening. Each set of internal support frame assemblies 2 includes multiple trapezoidal inner frames 21 sequentially spliced ​​along the length of the diagonal braces 12. A glass cover plate covers the outer surface of the trapezoidal inner frames 21. The use of trapezoidal inner frames 21 facilitates connection and fastening with the corner connector 11, diagonal braces 12, and ground beam 13, enhancing load-bearing capacity, strengthening structural stability, and extending service life.

[0046] The door frame 3 is fixed inside the door frame installation opening. The door frame 3 can be a protruding or recessed door frame.

[0047] Each trapezoidal inner frame 21 has a cover plate limiting ring fixed on its outer surface; a glass cover plate or a transparent cover plate of other materials with a suitable shape and size is attached to the outer surface of the trapezoidal inner frame 21 of the corresponding cover plate limiting ring by double-sided adhesive sealing cotton strips.

[0048] For details, see Figure 5The diagonal brace 12 is a hollow pentagonal profile, comprising a first interior panel 121 and two first splicing panels 122 and two first exterior panels 123 symmetrically arranged on both sides of the vertical line of the first interior panel 121. The two first splicing panels 122 are perpendicular to the side wall of the corresponding corner connector 11, with one end fixedly connected to both ends of the first interior panel 121. The two first exterior panels 123 are parallel to the side wall of the corresponding corner connector 11, with one end fixedly connected to the other end of the corresponding first splicing panel 122, and the other ends are interconnected. The outer peripheral wall of the trapezoidal inner frame 21 abuts against the outer wall of the corresponding first splicing panel 122 and is fixed by the first locking member 8. The diagonal brace 12 adopts a pentagonal structure, with its two first exterior surfaces flush with the side wall of the corner connector 11, and the interior surface being flat, making it more aesthetically pleasing. The first splicing panels 122 are easy to position and splice with the trapezoidal inner frame 21, improving assembly efficiency.

[0049] To further optimize the above technical solution, the diagonal brace 12 also includes a diagonal brace reinforcement structure placed inside the hollow pentagonal profile cavity. The diagonal brace reinforcement structure includes a first reinforcing plate 124 and two second reinforcing plates 125. The first reinforcing plate 124 is connected at both ends to the connection points of the two first splicing panels 122 and the first outer decorative panel 123, respectively. The two second reinforcing plates 125 are arranged perpendicular to the first reinforcing plate 124, with one end connected to the first reinforcing plate 124 and the other end connected to the connection points of the two second reinforcing plates 125 and the first reinforcing plate 124, respectively. This forms multiple triangular structures, enhancing the structural stability of the diagonal brace 12 and increasing its supporting force.

[0050] To further optimize the above technical solution, see [link / reference]. Figure 6 The ground beam 13 is a hollow trapezoidal profile, which includes a second interior panel 131, a grounding panel 132, a second exterior panel 133, and a second splicing panel 134 connected in sequence around the circumference. The second interior panel 131 and the second exterior panel 133 are arranged parallel to the corresponding side wall of the top corner connector 11. The grounding panel 132 is parallel to the ground and supported on the ground. The second splicing panel 134 is arranged perpendicular to the second interior panel 131, and its outer wall abuts against the outer peripheral wall of the corresponding trapezoidal inner frame 21 and is fixed by the second locking member, which improves aesthetics and stability while making it easy to assemble.

[0051] To further optimize the above technical solution, the ground beam 13 also includes multiple ground beam reinforcing plates 135. These reinforcing plates 135 are spaced apart along the surface of the second splicing panel 134. Each reinforcing plate 135 is perpendicular to the second splicing panel 134 and its two ends are respectively connected to the grounding panel 132 and the inner wall of the second splicing panel 134. The main load-bearing surface of the ground beam 13 is the second splicing panel 134; therefore, the reinforcing plates 135 enhance its supporting force and stability.

[0052] To further optimize the above technical solution, see [link / reference]. Figure 7 Each trapezoidal inner frame 21 is formed by multiple hollow rectangular profiles. Each rectangular profile includes a third interior panel 211, a connecting panel 212, a third exterior panel 213, and a third splicing panel 214 connected in circumferential direction. The third splicing panel 214 is spliced ​​with the corresponding first splicing panel 122 and second splicing panel 134.

[0053] To further optimize the above technical solution, anti-slip teeth 5 are provided on the first splicing panel 122, the second splicing panel 134 and the third splicing panel 214. The anti-slip teeth 5 on the first splicing panel 122 and the third splicing panel 214, the anti-slip teeth 5 on the second outer trim panel 133 and the first splicing panel 122, and the anti-slip teeth 5 on the third splicing panel 214 of the adjacent trapezoidal inner frame 21 are all interlocked, which facilitates positioning and can enhance the connection strength after splicing, while also enhancing the sealing effect at the connection.

[0054] To further optimize the above technical solution, since the dimensions of the trapezoidal inner frame 21 increase sequentially from top to bottom, longitudinally arranged reinforcing rods 22 can be installed inside the trapezoidal inner frame 21 to enhance its supporting strength. The reinforcing rods 22 preferably use the same rectangular profile as the trapezoidal inner frame 21.

[0055] To further optimize the above technical solution, each trapezoidal inner frame 21 can be formed by splicing multiple frame units, adopting a modular assembly design. Each frame unit has a cover plate limiting ring on its outer surface that matches its shape and size. This enhances structural support while correspondingly reducing the size of the glass cover plate, facilitating installation. Figure 8 As shown, the pyramid in this embodiment is six meters high, with four trapezoidal inner frames 21 arranged sequentially from top to bottom. The first trapezoidal inner frame 21-a contains a smaller isosceles trapezoidal frame unit. The second trapezoidal inner frame 21-b contains a larger isosceles trapezoidal frame unit and has internal reinforcing rods 22. The third trapezoidal inner frame 21-c is composed of two smaller right-angled trapezoidal frame units and a rectangular frame unit to form a complete trapezoidal inner frame 21. The fourth trapezoidal inner frame 21-d is composed of two larger right-angled trapezoidal frame units and a rectangular frame unit to form a complete trapezoidal inner frame 21. The rectangular frame unit has the same width as the rectangular frame unit in the third trapezoidal inner frame, and its right-angled trapezoidal frame unit needs to be equipped with reinforcing rods 22. The structure is stable, has strong support, and is easy to assemble. At the same time, in this embodiment, the corresponding rectangular frame unit can be removed at the location where the door frame installation opening is required to reserve the door frame installation opening, making the structural assembly more convenient.

[0056] To further optimize the above technical solution, a limiting plate 4 is fixed on the outer wall of the third outer panel 213 of each rectangular profile in each independent frame unit. Multiple limiting plates 41 on the multiple third outer panels 213 arranged circumferentially inside the frame unit can be spliced ​​together to form a cover plate limiting ring. The glass cover plate covers the frame unit outer surface inside the cover plate limiting ring. The cover plate limiting ring plays the role of supporting the glass cover plate and enhancing the stability of the glass.

[0057] To further optimize the above technical solution, each diagonal brace 12 is provided with a support corner seat 6 at its bottom. One end of the support corner seat 6 is connected to the bottom of the first interior panel 121 of the diagonal brace 12, and the other end is provided with multiple mounting holes 61 for installing ground nails, so as to enhance the connection strength with the ground and improve the wind resistance.

[0058] To further optimize the above technical solution, the support corner bracket 6 also includes a reinforcing rib 62, with both ends of the reinforcing rib 62 connected to the first interior panel 121 of the corresponding diagonal brace 12 and the support corner bracket 6, respectively. This strengthens the connection between the support corner bracket 6 and the diagonal brace 12.

[0059] To further optimize the above technical solution, a top reinforcing plate 7 is also provided. The top reinforcing plate 7 has a V-shaped structure. Its middle part is fixed to the top of the trapezoidal inner frame 21 of the top layer by bolts, and its two ends are supported at the bottom of the corner connector 11 to enhance the connection stability between the corner connector 11 and the trapezoidal inner frame 21.

[0060] To further optimize the above technical solution, the door frame 3 is formed by splicing together multiple hollow rectangular profiles with the same structure as the trapezoidal inner frame 21, and it can be formed by splicing together multiple door frame units. Each door frame unit has a cover plate limiting ring 4 on its outer surface to facilitate the installation of the glass cover plate.

[0061] This embodiment provides a pyramid-shaped glass roof frame structure that can be quickly assembled. The pyramid shape has strong stability, and its inclined outer wall is not prone to the accumulation of snow, rainwater, or other impurities, thus avoiding additional load. Each module unit is easy to position and assemble, improving installation efficiency. Each unit profile is made of structurally stable and strong supporting materials, which improves the overall strength of the glass roof and extends its service life.

[0062] The various embodiments in this specification are described in a progressive manner, with each embodiment focusing on its differences from other embodiments. Similar or identical parts between embodiments can be referred to interchangeably. For the apparatus disclosed in the embodiments, since they correspond to the methods disclosed in the embodiments, the description is relatively simple; relevant parts can be referred to the method section.

[0063] The above description of the disclosed embodiments enables those skilled in the art to make or use the present invention. Various modifications to these embodiments will be readily apparent to those skilled in the art, and the general principles defined herein may be implemented in other embodiments without departing from the spirit or scope of the present invention. Therefore, the present invention is not to be limited to the embodiments shown herein, but is to be accorded the widest scope consistent with the principles and novel features disclosed herein.

Claims

1. A pyramid-shaped glass roof frame structure that can be quickly assembled, characterized in that, include: The main frame (1) is in the shape of a pyramid. The main frame (1) includes a corner connector (11), diagonal braces (12) and a ground beam (13). The corner connector (11) is a four-sided pyramid structure. The four diagonal braces (12) are arranged along the extension direction of the four edges of the corner connector (11) and are all connected to the corner connector (11) at their top ends. The four ground beams (13) are arranged parallel to the four bottom edges of the corner connector (11) and the two ends of each ground beam (13) are fixedly connected to the bottom ends of the two adjacent diagonal braces (12). The inner support frame assembly (2) is provided in four groups. Each group of the inner support frame assembly (2) is fixed in the inner cavity of the frame formed by two adjacent diagonal braces (12), the corresponding ground beam (13), and the top corner connector (11). At least one group of the inner support frame assembly (2) is provided with a door frame installation opening. Each group of the inner support frame assembly (2) includes multiple trapezoidal inner frames (21) that are sequentially spliced ​​along the length direction of the diagonal brace (12). A glass cover plate covers the outer surface of the trapezoidal inner frame (21). Door frame (3), the door frame (3) is fixed inside the door frame mounting opening.

2. The pyramid-shaped glass roof frame structure that can be quickly assembled according to claim 1, characterized in that, The diagonal brace (12) is a hollow pentagonal profile, which includes a first interior panel (121) and two first splicing panels (122) and two first exterior panels (123) symmetrically arranged on both sides of the vertical line of the first interior panel (121). The two first splicing panels (122) are arranged perpendicularly to the side wall of the top corner connector (11) and one end is fixedly connected to both ends of the first interior panel (121). The two first exterior panels (123) are arranged parallel to the side wall of the top corner connector (11) and one end is fixedly connected to the other end of the corresponding first splicing panel (122), and the other ends are close to each other and connected. The outer peripheral wall of the trapezoidal inner frame (21) abuts against the outer wall of the corresponding first splicing panel (122) and is fixed by the first locking member (8).

3. The pyramid-shaped glass roof frame structure that can be quickly assembled according to claim 2, characterized in that, The diagonal brace (12) also includes a diagonal brace reinforcement structure placed in the inner cavity of the hollow pentagonal profile. The diagonal brace reinforcement structure includes a first reinforcing plate (124) and two second reinforcing plates (125). The two ends of the first reinforcing plate (124) are respectively connected to the connection points of the two first splicing panels (122) and the first outer decorative panel (123). The two second reinforcing plates (125) are arranged perpendicular to the first reinforcing plate (124), and one end is connected to the first reinforcing plate (124), and the other end is respectively connected to the connection points of the two second reinforcing plates (125) and the first reinforcing plate (124).

4. The pyramid-shaped glass roof frame structure that can be quickly assembled according to claim 2, characterized in that, The ground beam (13) is a hollow trapezoidal profile, which includes a second interior panel (131), a grounding panel (132), a second exterior panel (133), and a second splicing panel (134) connected in sequence around the perimeter. The second interior panel (131) and the second exterior panel (133) are arranged parallel to the corresponding side wall of the top corner connector (11). The grounding panel (132) is parallel to the ground and supported on the ground. The second splicing panel (134) is arranged perpendicular to the second interior panel (131), and its outer wall abuts against the outer peripheral wall of the corresponding trapezoidal inner frame (21) and is fixed by the second locking member.

5. The pyramid-shaped glass roof frame structure that can be quickly assembled according to claim 4, characterized in that, The ground beam (13) also includes a plurality of ground beam reinforcing plates (135), which are arranged at intervals along the surface direction of the second splicing panel (134). Each ground beam reinforcing plate (135) is arranged perpendicular to the second splicing panel (134) and its two ends are respectively connected to the grounding panel (132) and the inner wall surface of the second splicing panel (134).

6. The pyramid-shaped glass roof frame structure that can be quickly assembled according to claim 4, characterized in that, Each of the trapezoidal inner frames (21) is formed by multiple hollow rectangular profiles. Each of the rectangular profiles includes a third interior panel (211), a connecting panel (212), a third exterior panel (213), and a third splicing panel (214) connected in sequence around the perimeter. The third splicing panel (214) is spliced ​​with the corresponding first splicing panel (122) and second splicing panel (134).

7. A pyramid-shaped glass roof frame structure that can be quickly assembled according to claim 6, characterized in that, The rectangular profile also includes an inner reinforcing plate (215), which is arranged parallel to the third splicing panel (214) and its two ends are respectively connected to the inner wall surfaces of the third interior panel (211) and the third exterior panel (213).

8. A pyramid-shaped glass roof frame structure that can be quickly assembled according to claim 6, characterized in that, The first splicing panel (122), the second splicing panel (134) and the third splicing panel (214) are all provided with anti-slip teeth (5). The anti-slip teeth (5) on the first splicing panel (122) and the third splicing panel (214) that abut against each other, the anti-slip teeth (5) on the second outer decorative panel (133) and the first splicing panel (122) and the anti-slip teeth (5) on the third splicing panel (214) of the adjacent trapezoidal inner frame (21) are all engaged with each other.

9. A pyramid-shaped glass roof frame structure that can be quickly assembled according to any one of claims 2-8, characterized in that, Each of the diagonal braces (12) is provided with a support corner seat (6) at the bottom. One end of the support corner seat (6) is connected to the bottom of the first interior panel (121) of the diagonal brace (12), and the other end is provided with a plurality of mounting holes (61) for installing ground nails.

10. A pyramid-shaped glass roof frame structure that can be quickly assembled according to any one of claims 1-8, characterized in that, The bottom of the corner connector is also provided with a top reinforcing plate (7), which has a V-shaped structure and its two ends are respectively connected to the trapezoidal inner frame (21) of the top layer and the bottom wall of the corner connector (11).