A flying saucer type glass ball house
Patent Information
- Application Number
- CN202522232452.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-22
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2035-10-22
AI Technical Summary
[0004]有鉴于此,本实用新型旨在提供一种飞碟型玻璃球屋以至少在一定程度上解决现有技术中的玻璃球屋底部结构易腐蚀,缩短整个玻璃球屋的使用寿命,并且长期受日照加之雨雪侵蚀,玻璃球屋底部的密封结构容易失效,导致雨水及风进入屋内,影响屋内环境和使用体验的问题
[0022]1.球屋下部分采用环形主架作为主支撑,能够提高支撑力,上部分采用球面结构的半球面形顶架,能够有效避免雨雪等堆积,避免过大负载,减轻清洁负担,同时有利于降低风阻,提高结构的稳定性;环形的飘檐能够将下流的雨水向环形主架外周侧引导,避免雨水流至环形主架底部,造成环形主架的腐蚀、密封失效等问题,同时球屋整体呈飞碟式结构,造型独特,极具欣赏性和实用性。
Smart Images

Figure CN224741771U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of glass house technology, and more specifically to a flying saucer-shaped glass dome house. Background Technology
[0002] Currently, most commonly used glass domes are hemispherical or pyramidal structures, with a smaller top and a larger bottom. They have a relatively large internal space, and their outer walls are curved or sloping, which helps prevent rain and snow accumulation, reduces load, and extends service life. However, precisely because of this top-smaller-bottom-larger design, rain and snow tend to accumulate at the bottom of the glass dome, accelerating corrosion of the bottom structure, shortening the overall lifespan of the glass dome, and causing the sealing structure at the bottom to fail under prolonged exposure to sunlight and rain / snow erosion. This allows rainwater and wind to enter the dome, affecting the indoor environment and user experience.
[0003] Therefore, how to provide a glass dome with a stable structure and long service life is a problem that urgently needs to be solved by those skilled in the art. Utility Model Content
[0004] In view of this, the present invention aims to provide a flying saucer-shaped glass dome to at least partially solve the problems of easy corrosion of the bottom structure of the glass dome in the prior art, which shortens the service life of the entire glass dome, and the sealing structure of the bottom of the glass dome is prone to failure due to long-term exposure to sunlight and rain and snow erosion, resulting in rainwater and wind entering the house and affecting the indoor environment and user experience.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A flying saucer-shaped glass dome includes:
[0007] The dome-shaped frame includes a ring-shaped main frame, a hemispherical top frame, and a ring-shaped eaves. The ring-shaped main frame is supported on the ground, and its side wall has an opening for installing a door. The center of the hemispherical top frame is collinear with the axis of the ring-shaped main frame, and its large-diameter end is installed on the top of the ring-shaped main frame. The ring-shaped eaves are coaxial with the ring-shaped main frame and are installed on the outer ring wall of the ring-shaped main frame above the door opening.
[0008] The cover plate is provided with multiple pieces and correspondingly covers the outer wall surface of the annular main frame below the hemispherical top frame, the eaves, and the lower part of the eaves;
[0009] A door, which is installed inside the door mounting opening.
[0010] The beneficial effects that this utility model can achieve are as follows: The lower part of the dome adopts a ring-shaped main frame as the main support, which can improve the support force; the upper part adopts a hemispherical roof frame with a spherical structure, which can effectively prevent the accumulation of rain and snow, reduce the load, and at the same time help reduce wind resistance and improve the stability of the structure; the ring-shaped eaves can guide the rainwater flowing down to the outer periphery of the ring-shaped main frame, preventing rainwater from flowing to the bottom of the ring-shaped main frame and causing problems such as corrosion and sealing failure of the ring-shaped main frame. At the same time, the dome has a flying saucer-shaped structure, with a unique shape, which is both aesthetically pleasing and practical.
[0011] Preferably, a lighting lamp is installed at the bottom of the eaves.
[0012] Preferably, the outer ring diameter of the annular main frame gradually decreases from top to bottom.
[0013] Preferably, the annular main frame includes a plurality of first support frames and a plurality of first connecting rods. The frame surface of each first support frame is arranged along the radial direction of the annular main frame. The plurality of first support frames are arranged circumferentially at intervals and adjacent first support frames are fixed by the first connecting rods. The width of the first support frames gradually decreases from top to bottom to form the annular main frame with an outer ring diameter that gradually decreases from top to bottom.
[0014] Preferably, the first support frame includes a first upright, a first horizontal bar, a second upright, and a second horizontal bar. The first upright and the second upright are arranged parallel to the axis of the eaves. The first horizontal bar is arranged along the radial direction of the eaves and its two ends are respectively connected to the top of the first upright and the top of the second upright. One end of the second horizontal bar is connected to the top of the first upright, and the other end is inclined away from the axis of the eaves and fixed to the bottom of the second upright.
[0015] The door mounting opening is located on the outer ring wall of the annular main frame corresponding to the second horizontal bar; the eaves are fixed on the outer ring wall of the annular main frame corresponding to the second vertical bar.
[0016] Preferably, the eaves include multiple second support frames and multiple second connecting rods. The multiple second support frames correspond one-to-one with the multiple first support frames, and the frame surface of each second support frame is arranged coplanarly with the frame surface of the corresponding first support frame and fixed to the outer wall of the second upright of the corresponding first support frame. The multiple second support frames are fixedly connected by multiple second connecting rods to form the annular eaves.
[0017] Preferably, each of the second support frames includes a first support rod, a second support rod, and a third support rod. The first support rod is arranged parallel to the first upright and fixed on the side of the first upright away from the center of the annular main frame. One end of the second support rod is fixedly connected to the top end of the first support rod, and the other end slopes downward away from the second upright. The two ends of the third support rod are respectively connected to the bottom end of the first support rod and the other end of the second support rod. A plurality of second connecting rods are used to connect two second support rods in two adjacent second support frames and two third support rods in two adjacent second support frames.
[0018] Preferably, the third support rod is inclined upward at the end closest to the second support rod.
[0019] Preferably, the hemispherical top frame includes multiple annular weft coils and multiple arc-shaped warp rods. The multiple weft coils are arranged coaxially with the annular main frame and spaced apart along the height direction of the annular main frame. The outer diameter of the multiple annular weft coils decreases in the direction away from the annular main frame, and the bottom weft coils are fixed to the top of the inner annular wall of the annular main frame. Each warp rod connects multiple weft coils along the warp direction of the weft coils.
[0020] Preferably, the plurality of warp poles correspond one-to-one with the plurality of first upright poles, and each of the warp poles is arranged coplanarly with the frame surface of the corresponding first support frame.
[0021] As can be seen from the above technical solution, compared with the prior art, the present invention discloses a flying saucer-shaped glass dome, which has the following beneficial effects:
[0022] 1. The lower part of the dome uses a ring-shaped main frame as the main support, which can improve the support strength. The upper part uses a hemispherical roof frame with a spherical structure, which can effectively prevent the accumulation of rain and snow, avoid excessive load, reduce cleaning burden, and at the same time help reduce wind resistance and improve structural stability. The ring-shaped eaves can guide the rainwater flowing down to the outer perimeter of the ring-shaped main frame, preventing rainwater from flowing to the bottom of the ring-shaped main frame and causing problems such as corrosion and sealing failure. At the same time, the dome has a unique saucer-shaped structure, which is both aesthetically pleasing and practical.
[0023] 2. The modular assembly of the various structures of the dome helps to improve installation efficiency, shorten working time, and save costs. Attached Figure Description
[0024] 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.
[0025] Figure 1 A schematic diagram of the overall structure of a flying saucer-shaped glass dome provided by this utility model.
[0026] Figure 2 A schematic diagram of the first support frame structure provided by this utility model.
[0027] Figure 3 This is a structural diagram illustrating the installation process of the annular main frame provided by this utility model.
[0028] Figure 4 This is a schematic diagram of the structure of the annular main frame provided by this utility model after installation.
[0029] Figure 5 A schematic diagram of the second support frame structure provided by this utility model.
[0030] Figure 6 This is a structural diagram illustrating the installation process of the eaves provided by this utility model.
[0031] Figure 7 This is a schematic diagram of the structure of the eaves after installation, as provided by this utility model.
[0032] Figure 8 This is a schematic diagram of the structure of the hemispherical top frame provided by this utility model when the warp pole is first installed.
[0033] Figure 9 A schematic diagram of the structure of the hemispherical top frame provided by this utility model when the weft coil is first installed.
[0034] Figure 10 This is a schematic diagram of the structure of the hemispherical top frame provided by this utility model after installation.
[0035] Figure 11 A schematic diagram of the spherical roof frame structure provided by this utility model.
[0036] Figure 12 A schematic diagram of the structure for laying the cover plate on the hemispherical top frame provided by this utility model.
[0037] Figure 13 A schematic diagram of the structure for laying the cover plate on the hemispherical top frame provided by this utility model.
[0038] Figure 14A schematic diagram of the structure for laying the cover plate on the eaves provided by this utility model.
[0039] Figure 15 A schematic diagram of the structure for laying the cover plate on the eaves provided by this utility model.
[0040] In the diagram: 1. Sphere frame; 11. Circular main frame; 111. First support frame; 1111. First upright; 1112. First horizontal bar; 1113. Second upright; 1114. Second horizontal bar; 112. First connecting rod; 12. Hemispherical roof frame; 121. Latitude line; 122. Longitude line; 13. Eaves; 131. Second support frame; 1311. First support rod; 1312. Second support rod; 1313. Third support rod; 132. Second connecting rod; 2. Cover plate; 3. Door; 4. Lighting lamp. 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 1-11 This utility model discloses a flying saucer-shaped glass dome, including: a dome frame 1, a cover plate 2, and a door 3.
[0045] See Figure 11The dome-shaped frame 1 includes a ring-shaped main frame 11, a hemispherical top frame 12, and a ring-shaped eaves 13. The ring-shaped main frame 11 is supported on the ground, and its side walls have openings for door installation. The center of the hemispherical top frame 12 is collinear with the axis of the ring-shaped main frame 11, and its large-diameter end is installed on the top of the ring-shaped main frame 11. The ring-shaped eaves 13 are coaxial with the ring-shaped main frame 11 and are installed on the outer ring wall of the ring-shaped main frame 11 above the door installation openings. The dome-shaped frame 1 has an overall flying saucer-like shape, which can be applied to more distinctive application scenarios (such as the technology field, special-themed homestays, etc.), and is both aesthetically pleasing and practical. The lower part of the dome uses the ring-shaped main frame 11 as the main support, which can improve the support strength. The upper part uses the hemispherical top frame 12 with a spherical structure, which can effectively prevent the accumulation of rain and snow, avoid excessive load, reduce cleaning burden, and at the same time help reduce wind resistance and improve structural stability. The ring-shaped eaves 13 can guide the rainwater flowing down to the outer periphery of the ring-shaped main frame 11, preventing rainwater from flowing to the bottom of the ring-shaped main frame 11 and causing problems such as corrosion and sealing failure of the ring-shaped main frame 11.
[0046] See Figure 1 The cover plate 2 has multiple pieces that cover the outer wall of the annular main frame 11 below the hemispherical top frame 12, the eaves 13, and the lower part of the eaves 13. The cover plate 2 can be made of transparent glass, acrylic sheet, etc., depending on the lighting requirements.
[0047] Door 3 is installed inside the door mounting opening. Door 3 is also located below the eaves 13, which can reduce rainwater entering through door 3.
[0048] Specifically, multiple windows can be installed around the perimeter of the main ring frame 11 below the eaves 13 to facilitate ventilation.
[0049] Specifically, a lighting lamp 4 is installed at the bottom of the eaves 13. The lighting lamp 4 can be a light strip, spotlight, etc., to enhance the lighting effect and aesthetics. At the same time, the lighting lamp is installed at the bottom of the eaves 13 to avoid rainwater erosion.
[0050] Specifically, such as Figure 4 As shown, the outer diameter of the annular main frame 11 gradually decreases from top to bottom to form a structure that is smaller at the bottom and larger at the top. This structure is sturdy and reduces the floor space occupied. At the same time, it enhances the support for the hemispherical top frame 12 and the eaves 13. It also helps to increase the radial distance between the outer side of the eaves 13 and the bottom of the annular main frame 11, thus preventing rain and snow from approaching the bottom of the annular main frame 11.
[0051] Specifically, the annular main frame 11 includes multiple first support frames 111 and multiple first connecting rods 112. The frame surface of each first support frame 111 is arranged along the radial direction of the annular main frame 11. The multiple first support frames 111 are arranged circumferentially at intervals, and adjacent first support frames 111 are fixed by first connecting rods 112. The width of the first support frames 111 gradually decreases from top to bottom to form an annular main frame 11 with an outer ring diameter that gradually decreases from top to bottom. This facilitates the modular production of the annular main frame 11. The first support frames 111 and first connecting rods 112 of the corresponding dimensions can be prefabricated in the factory and then assembled on site, improving installation efficiency.
[0052] For details, see Figure 2 The first support frame 111 generally forms a trapezoidal frame structure, which includes at least a first upright 1111, a first horizontal bar 1112, a second upright 1113, and a second horizontal bar 1114. The first upright 1111 and the second upright 1113 are arranged parallel to the axis of the eaves 13. The first horizontal bar 1112 is arranged along the radial direction of the eaves 13 and its two ends are respectively connected to the top of the first upright 1111 and the top of the second upright 1113. One end of the second horizontal bar 1114 is connected to the top of the first upright 1111, and the other end is inclined away from the axis of the eaves 13 and fixed to the bottom of the second upright 1113.
[0053] The doorway is installed on the outer ring wall of the annular main frame 11 corresponding to the second horizontal bar 1114; the eaves 13 are fixed on the outer ring wall of the annular main frame 11 corresponding to the second vertical bar 1113. Thus, the annular main frame 11 forms a structure with a conical lower surface and a columnar upper surface, which enhances the supporting force and waterproof performance of the annular main frame 11.
[0054] Specifically, such as Figure 5 , Figure 6 The eaves 13 include multiple second support frames 131 and multiple second connecting rods 132. Each of the multiple second support frames 131 corresponds one-to-one with a multiple first support frame 111, and the frame surface of each second support frame 131 is coplanar with the frame surface of the corresponding first support frame 111 and fixed to the outer wall of the second upright 1113 of the corresponding first support frame 111. The multiple second support frames 131 are fixedly connected by multiple second connecting rods 132 to form a ring-shaped eaves 13. The eaves 13 can be formed by multiple modular second support frame 131 structures and multiple second connecting rods 132, facilitating assembly, improving installation efficiency, shortening working time, and making the structure more stable as the second support frames 131 are installed on the outer wall of the first support frame 111.
[0055] For details, see Figure 5Each second support frame 131 includes a first support rod 1311, a second support rod 1312, and a third support rod 1313. The first support rod 1311 is arranged parallel to the first upright 1111 and fixed to the side of the first upright away from the center of the annular main frame 11. One end of the second support rod 1312 is fixedly connected to the top of the first support rod 1311, and the other end slopes downward away from the second upright. The two ends of the third support rod 1313 are respectively connected to the bottom end of the first support rod 1311 and the other end of the second support rod 1312. Multiple second connecting rods are used to connect two second support rods 1312 in two adjacent second support frames and two third support rods 1313 in two adjacent second support frames. The downward slope design of the second support rod 1312 makes the outer edge of the upper eaves of the eaves 13 slope downward, which helps to guide rain, snow, and other impurities to flow downward and avoid accumulation on the surface of the eaves 13.
[0056] Specifically, the third support rod 1313 is inclined upward at the end near the second support rod 1312, so that the lower eaves surface of the eaves 13 is an upward-sloping surface. As a result, the second support frame 131 forms a more stable triangular frame structure, which helps to enhance its load-bearing capacity. At the same time, the inclined lower eaves surface works in conjunction with the outer conical wall surface of the annular main frame 11 to guide the airflow, which helps to reduce wind resistance and facilitates heat dissipation. When the area under the eaves 13 is exposed to wind or hot air, the airflow flows upward with the conical surface and diffuses outward under the guidance of the lower eaves surface, preventing the airflow from accumulating under the eaves.
[0057] Specifically, such as Figure 2 , Figure 5 Reinforcing rods 5 are provided on the inner frame surfaces of both the first support frame 111 and the second support frame 131. The number of reinforcing rods 5 is increased or decreased based on the overall dimensions of the frame to improve its stability. When setting the reinforcing rods 5, priority is given to constructing multiple stable triangular structures for the entire frame, further enhancing its stability and support.
[0058] For details, see Figures 9-11 The hemispherical top frame 12 includes multiple annular weft coils 121 and multiple arc-shaped warp rods 122. The multiple weft coils 121 are coaxially arranged with the annular main frame 11 and spaced apart along the height direction of the annular main frame 11. The outer diameter of the multiple annular weft coils 121 decreases in the direction away from the annular main frame 11, and the bottom weft coils 121 are fixed to the top of the inner annular wall of the annular main frame 11. Each warp rod 122 connects multiple weft coils 121 along the warp direction of the weft coils 121. This increases the overall strength of the hemispherical top frame 12, and the structure is more regular, which is conducive to mass production and installation.
[0059] Specifically, multiple meridian poles 122 correspond one-to-one with multiple first uprights 1111, and each meridian pole 122 is arranged coplanarly with the frame surface of the corresponding first support frame 111. This improves the overall strength and stability of the dome structure and extends its service life.
[0060] Specifically, the eaves 13, the ring-shaped main frame 11, and the hemispherical top frame 12 are all made of aluminum alloy profiles.
[0061] During factory processing, connection holes are pre-set at the connection points of the first support frame 111 and the first connecting rod 112, the connection points of the second support frame 131 and the second connecting rod 132, and the connection points of the warp rod 122 and the weft coil 121, so as to facilitate the connection of adjacent rods with bolts, thereby improving the efficiency and accuracy of on-site installation.
[0062] It should be noted that the spherical, toroidal, and other curved surface structures in this embodiment are not necessarily assembled from curved rods; they can also be formed by splicing straight rods into an approximate curved surface configuration. In practical use, it is preferred to use straight rods spliced into an approximate curved surface configuration, so that the cover plate 2 laid on the outer wall can be a flat cover plate, which is easy to process and saves costs.
[0063] The present invention provides a method for installing a flying saucer-shaped glass dome, comprising the following steps:
[0064] 1. Constructing the spherical roof frame 1: When constructing the spherical roof frame 1, it is constructed layer by layer from bottom to top. First, the circular main frame 11 is assembled, then the circular eaves are installed, and finally the hemispherical roof frame is installed.
[0065] Specifically, when installing the ring-shaped main frame 11, such as Figures 3-5 Multiple first support frames 111 are connected by first connecting rods 112 to form a ring main frame 11 structure, and the feet at the bottom of the first support frames 111 are fixed to the ground by anchor screws. When installing, a door installation opening needs to be reserved.
[0066] When installing the eaves 13, such as Figures 6-8 The second support frame 131 is fixed to the outer ring side of the first support frame 111 by bolts, and the adjacent second support frame 131 is fixed by the second connecting rod 132;
[0067] When installing the hemispherical top frame 12, if Figures 9-11 The first connecting rod 112 on the inner side of the top of the first support frame 111 is used as the bottom weft coil 121. Warp rods 122 are installed on the top of each first upright 1111. After the warp rods 122 are installed, the top weft coil 121 is installed on the top of the multiple warp rods 122. Then, the middle weft coils 121 are installed from bottom to top. This completes the installation of the entire dome frame 1.
[0068] 2. Laying cover plate 2: See Figure 1 , Figures 12-15 Cover plates 2 are laid on the outer wall of the entire spherical frame 1, and can be laid layer by layer from top to bottom.
[0069] 3. Install door 3; see Figure 1 Install door 3 in the reserved door installation opening to complete the installation of the entire glass dome.
[0070] After the glass dome is installed, the joints of the components can be sealed and other internal facilities (including lighting 4) can be installed as needed.
[0071] The glass dome provided by this utility model has the advantages of stable structure, strong load-bearing capacity, and that rain, snow and other impurities are not easy to accumulate on the surface of the dome and near the bottom perimeter of the dome.
[0072] 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 in the method section.
[0073] 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 flying saucer-shaped glass dome, characterized in that, include: A flying saucer-shaped dome frame (1) includes an annular main frame (11), a hemispherical top frame (12), and an annular eaves (13). The annular main frame (11) is supported on the ground and has a door installation opening on its side wall. The center of the hemispherical top frame (12) is arranged collinearly with the axis of the annular main frame (11), and its large-diameter end is installed on the top of the annular main frame (11). The annular eaves (13) are arranged coaxially with the annular main frame (11) and are installed on the outer ring wall of the annular main frame (11) above the door installation opening. Cover plate (2), the cover plate (2) is provided with multiple pieces and correspondingly covers the outer wall surface of the hemispherical top frame (12), the eaves (13) and the annular main frame (11) below the eaves (13); Door (3), which is installed in the door mounting opening.
2. A flying saucer type glass ball house according to claim 1, wherein A lighting lamp (4) is installed at the bottom of the eaves (13).
3. The flying saucer-shaped glass dome according to claim 1, characterized in that, The outer diameter of the annular main frame (11) gradually decreases from top to bottom.
4. The flying saucer-shaped glass dome according to claim 3, characterized in that, The annular main frame (11) includes a plurality of first support frames (111) and a plurality of first connecting rods (112). The frame surface of each first support frame (111) is arranged along the radial direction of the annular main frame (11). The plurality of first support frames (111) are arranged circumferentially at intervals, and adjacent first support frames (111) are fixed by the first connecting rods (112). The width of the first support frame (111) gradually decreases from top to bottom to form the annular main frame (11) with an outer ring diameter that gradually decreases from top to bottom.
5. A flying saucer-shaped glass dome according to claim 4, characterized in that, The first support frame (111) includes a first upright (1111), a first horizontal bar (1112), a second upright (1113), and a second horizontal bar (1114). The first upright (1111) and the second upright (1113) are arranged parallel to the axis of the eaves (13). The first horizontal bar (1112) is arranged along the radial direction of the eaves (13) and its two ends are respectively connected to the top of the first upright (1111) and the second upright (1113). One end of the second horizontal bar (1114) is connected to the top of the first upright (1111), and the other end is inclined away from the axis of the eaves (13) and fixed to the bottom of the second upright (1113). The door mounting opening is located on the outer ring wall of the annular main frame (11) corresponding to the second horizontal bar (1114); the eaves (13) are fixed on the outer ring wall of the annular main frame (11) corresponding to the second vertical bar (1113).
6. A flying saucer type glass bulb house according to claim 5, wherein The eaves (13) include multiple second support frames (131) and multiple second connecting rods (132). The multiple second support frames (131) correspond one-to-one with the multiple first support frames (111), and the frame surface of each second support frame (131) is arranged coplanarly with the frame surface of the corresponding first support frame (111) and fixed on the outer wall of the second upright (1113) of the corresponding first support frame (111). The multiple second support frames (131) are fixedly connected by multiple second connecting rods (132) to form the annular eaves (13).
7. A flying saucer-shaped glass dome according to claim 6, characterized in that, Each of the second support frames (131) includes a first support rod (1311), a second support rod (1312), and a third support rod (1313). The first support rod (1311) is arranged parallel to the first upright (1111) and fixed on the side of the first upright away from the center of the annular main frame (11). One end of the second support rod (1312) is fixedly connected to the top end of the first support rod (1311), and the other end slopes downward away from the second upright. The two ends of the third support rod (1313) are respectively connected to the bottom end of the first support rod (1311) and the other end of the second support rod (1312). A plurality of second connecting rods are used to connect two second support rods (1312) in two adjacent second support frames and two third support rods (1313) in two adjacent second support frames.
8. A flying saucer-shaped glass dome according to claim 7, characterized in that, The third support rod (1313) slopes upward at the end closest to the second support rod (1312).
9. A flying saucer-shaped glass dome according to claim 5, characterized in that, The hemispherical top frame (12) includes multiple annular weft coils (121) and multiple arc-shaped warp rods (122). The multiple weft coils (121) are arranged coaxially with the annular main frame (11) and spaced apart along the height direction of the annular main frame (11). The outer diameter of the multiple annular weft coils (121) decreases in the direction away from the annular main frame (11), and the bottom weft coils (121) are fixed to the top of the inner annular wall of the annular main frame (11). Each warp rod (122) connects multiple weft coils (121) along the warp direction of the weft coils (121).
10. A flying saucer type glass bulb house according to claim 9, wherein Each of the multiple warp rods (122) corresponds one-to-one with a multiple of the first uprights (1111), and each of the warp rods (122) is arranged coplanarly with the frame surface of the corresponding first support frame (111).