Universal joint connection spherical building capable of intelligently adjusting light and temperature
The spherical building is connected by a universal joint that intelligently adjusts the light temperature. The light sensor and PDLC liquid crystal film are used to realize the automatic adjustment of light. Combined with drive components and support components, it solves the problem of cumbersome lighting adjustment in traditional buildings and improves the flexibility of environmental control and the adaptability of buildings.
Patent Information
- Application Number
- CN202511752708.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-26
- Publication Date
- 2026-01-27
AI Technical Summary
Traditional building lighting adjustment relies on cumbersome manual operation and cannot dynamically adapt to real-time external light intensity and indoor needs, resulting in a lack of flexibility in environmental control and difficulty in meeting the personalized usage needs of different scenarios.
The spherical building is connected by a universal joint that intelligently regulates light temperature. The light intensity is sensed in real time by a light sensor, and the control system adjusts the energization state of the conductive electrodes. Combined with a PDLC liquid crystal film, the light transmittance is automatically adjusted. The building can be flexibly rotated and stably supported by drive components and support parts.
It achieves intelligent light adjustment, improves the flexibility and ease of use of environmental control, meets the personalized needs of different scenarios, and enhances the flexibility and stability of buildings to adapt to the diverse usage requirements of complex environments.
Smart Images

Figure CN121407660A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of building engineering technology, specifically to a universal joint-connected spherical building with intelligent light temperature regulation. Background Technology
[0002] As an architectural form that breaks through traditional geometric shapes, the history of spherical buildings can be traced back to the early practices of ancient dome structures and astronomical observatories. From a structural perspective, it has unique mechanical advantages: its geometric shape is close to that of an ideal compression body, and its surface area is reduced by about 30% compared to traditional box-shaped buildings for the same building area. This can effectively reduce wind load and material usage. At the same time, the column-free interior space and 360-degree panoramic view provide unobstructed functional areas for exhibitions, sightseeing, scientific research and other scenarios.
[0003] Traditional buildings rely mainly on curtains, blinds, and other facilities for lighting control. This not only requires manual operation, which is time-consuming and labor-intensive, but also cannot dynamically adapt the lighting according to the real-time intensity of external light and the needs of indoor activities. As a result, environmental control lacks flexibility and is difficult to meet the personalized usage needs of different scenarios such as office, rest, and reading. Summary of the Invention
[0004] The purpose of this invention is to provide a universal joint connecting spherical building that can intelligently adjust the temperature of light, so as to solve the problem of cumbersome manual operation in adjusting lighting in traditional buildings.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a universal joint connecting spherical building with intelligent light temperature adjustment, comprising a base steel billet;
[0006] A support ring is installed on the top of the base steel billet;
[0007] The hemispherical chamber is mounted on the top of the supporting bottom ring via bearings;
[0008] Multiple solar panels are installed on the top of the hemispherical house;
[0009] Multiple rotating mechanisms are installed on the lower inner wall of the hemispherical room;
[0010] The hemispherical room includes multiple first electrically controlled glass panels and multiple second electrically controlled glass panels. The hemispherical room is assembled into a whole by an aluminum alloy keel frame.
[0011] The second electronically controlled glass includes a dimming film layer, two adhesive sealing layers, two glass substrates, two light sensors, and two conductive electrodes. The two adhesive sealing layers are respectively installed on the inner and outer sides of the dimming film layer. The two glass substrates are respectively installed on the side of the two adhesive sealing layers away from the dimming film layer. The two light sensors are both installed on the outer wall of the outer glass substrate. The two conductive electrodes are respectively disposed on one side of one end of the dimming film layer.
[0012] Furthermore, the rotating mechanism includes a fixed frame, a support member, a drive assembly, and a drive gear. The support member is installed on one side of the top of the fixed frame, and the other end of the support member is installed on the inner wall of the hemispherical chamber. The drive assembly is installed on the other side of the top of the fixed frame. The drive gear is installed between the inner walls of both sides of the fixed frame via bearings. The output end of the drive assembly is installed on the top of the drive gear.
[0013] Furthermore, the rotating mechanism also includes four moving wheels, a limiting slider, multiple storage slots, and multiple ball bearings. The four moving wheels are respectively installed at the four corners of the bottom of the fixed frame, the limiting slider is installed at the middle of the bottom of the fixed frame, the multiple storage slots are all opened at the bottom of the limiting slider, and the multiple ball bearings are respectively installed inside the multiple storage slots.
[0014] Furthermore, the support includes a hydraulic damper, a ball joint, a universal joint body, and a mounting plate. The ball joint is mounted on the bottom end of the hydraulic damper, and the bottom end of the ball joint is mounted on the top end of the fixed frame. The universal joint body is mounted on the top end of the hydraulic damper, and the mounting plate is mounted on the other end of the universal joint body.
[0015] Furthermore, a door frame is provided on the lower side of the outer wall of the hemispherical room, and a door body is installed on the outer wall of the door frame via hinges. A limit slide rail is embedded in the top of the base steel billet, and multiple toothed grooves are opened on the inner side of the supporting bottom ring.
[0016] Furthermore, the first electrically controlled glass is configured as a pentagonal structure, the second electrically controlled glass is configured as a hexagonal structure, and the layered structure of the second electrically controlled glass is consistent with the layered structure of the first electrically controlled glass.
[0017] Furthermore, the dimming film layer is set as a PDLC liquid crystal film, the adhesive sealing layer is made of EVA or PVB film, and both the dimming film layer and the light sensor are electrically connected to the control system.
[0018] Furthermore, the drive gear meshes with multiple tooth grooves, the moving wheel contacts the limiting slide rail, the limiting slider is slidably connected to the limiting slide rail, and the limiting slider is configured with a convex structure.
[0019] Furthermore, the hydraulic damper and drive assembly are both electrically connected to the control system, and the mounting plate is installed on the aluminum alloy keel frame of the hemispherical house.
[0020] Furthermore, the top surface of the limiting slide rail is flush with the top surface of the base steel billet, and the limiting slide rail is configured as a ring structure.
[0021] Compared with the prior art, the beneficial effects of the present invention are:
[0022] (1) This invention effectively solves the problem of cumbersome manual operation of traditional building lighting adjustment by working together with the dimming film layer, adhesive sealing layer, glass substrate, light sensor and conductive electrode. The light sensor can sense the intensity of external light in real time and transmit the signal to the control system. The control system controls the energization of the conductive electrode according to the signal of the light sensor, thereby adjusting the light transmittance of the dimming film layer, realizing intelligent light adjustment, providing a suitable lighting environment for the room, improving the flexibility of environmental control and the convenience of use, and meeting the personalized use needs of different scenarios such as office, rest, and reading.
[0023] (2) The present invention enables the flexible rotation of the hemispherical house through the coordinated work of components such as the fixed frame, support, drive assembly and drive gear, which brings more convenience to the use of the building. The control system controls the drive assembly to work, and drives the hemispherical house to rotate through the meshing transmission between the drive gear and multiple tooth grooves, so that the hemispherical house can adjust its direction as needed to meet the requirements of building orientation in different scenarios.
[0024] (3) The present invention provides stable and flexible support for the hemispherical house through the coordinated work of hydraulic damper, ball hinge, universal joint body and mounting plate. The hydraulic damper can play the role of buffering and shock absorption. When the hemispherical house is subjected to external forces, such as wind and earthquakes, the hydraulic damper can absorb and consume some energy. The combination of ball hinge and universal joint body gives the support component multiple degrees of rotational freedom, which can adapt to the rotation and deformation of the hemispherical house in different directions and improve the flexibility of the building. Attached Figure Description
[0025] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this invention. For those skilled in the art, other drawings can be obtained based on these drawings.
[0026] Figure 1 This is a schematic diagram of the overall structure provided for an embodiment of the present invention;
[0027] Figure 2A schematic diagram of the base steel billet is provided for embodiments of the present invention;
[0028] Figure 3 Provided for embodiments of the present invention Figure 2 Enlarged view of the structure of A in the middle;
[0029] Figure 4 A schematic diagram of the structure of the first electro-controlled glass and the second electro-controlled glass is provided for embodiments of the present invention;
[0030] Figure 5 A layered structural diagram of the second electrically controlled glass is provided for embodiments of the present invention;
[0031] Figure 6 A schematic diagram of the rotating mechanism is provided for an embodiment of the present invention;
[0032] Figure 7 A schematic diagram of the limiting slider is provided for an embodiment of the present invention;
[0033] Figure 8 A structural schematic diagram of the support member is provided for an embodiment of the present invention.
[0034] Explanation of reference numerals in the attached figures:
[0035] 1. Base steel billet; 2. Supporting bottom ring; 3. Hemispherical house; 4. Door frame; 5. Door body; 6. Solar panel; 7. Limiting slide rail; 8. Rotating mechanism; 9. Gear groove; 31. First electro-controlled glass; 32. Second electro-controlled glass; 321. Dimming film layer; 322. Adhesive sealing layer; 323. Glass substrate; 324. Light sensor; 325. Conductive electrode; 81. Fixing frame; 82. Support component; 83. Drive assembly; 84. Drive gear; 85. Moving wheel; 86. Limiting slider; 87. Storage slot; 88. Ball bearing; 821. Hydraulic damper; 822. Ball hinge; 823. Universal joint body; 824. Mounting plate. Detailed Implementation
[0036] To enable those skilled in the art to better understand the technical solution of the present invention, the present invention will be further described in detail below with reference to the accompanying drawings.
[0037] As attached Figure 1 To be continued Figure 8 As shown:
[0038] Example 1:
[0039] This invention provides a universal joint-connected spherical building with intelligent light temperature adjustment, including a base steel billet 1. The base steel billet 1 is integrally cast from high-strength carbon steel, and an annular mounting groove adapted to the limiting slide rail 7 is opened at the top. The inner wall of the annular mounting groove is provided with an anti-corrosion and wear-resistant coating.
[0040] The support bottom ring 2 is installed on the top of the base steel billet 1. The support bottom ring 2 is forged from stainless steel.
[0041] The hemispherical room 3 is mounted on the top of the supporting bottom ring 2 via bearings. The bearings are high-precision thrust bearings to ensure that the hemispherical room 3 can rotate smoothly 360°.
[0042] Multiple solar panels 6 are installed on the top of the hemispherical house 3. The solar panels 6 are flexible thin-film photovoltaic modules.
[0043] Multiple rotating mechanisms 8 are installed on the lower inner wall of the hemispherical room 3;
[0044] The hemispherical room 3 includes multiple first electrically controlled glass 31 and multiple second electrically controlled glass 32. The hemispherical room 3 is spliced together with multiple first electrically controlled glass 31 and multiple second electrically controlled glass 32 into a whole by an aluminum alloy keel frame. The aluminum alloy keel frame includes longitudinal support keel and transverse connecting keel, which are detachably fixed by angle brackets and bolts.
[0045] The second electronically controlled glass 32 includes a dimming film layer 321, two adhesive sealing layers 322, two glass substrates 323, two light sensors 324, and two conductive electrodes 325. The two adhesive sealing layers 322 are respectively installed on the inner and outer sides of the dimming film layer 321. The two glass substrates 323 are respectively installed on the side of the two adhesive sealing layers 322 away from the dimming film layer 321. The glass substrates 323 are made of ultra-white laminated tempered glass, which has impact resistance and UV protection performance. The two light sensors 324 are both installed on the outer wall of the outer glass substrate 323, which can collect ambient light intensity data in real time. The two conductive electrodes 325 are respectively set on one side of one end of the dimming film layer 321. The conductive electrodes 325 are connected to the power supply and control system through wires.
[0046] The first electrically controlled glass 31 is set as a pentagonal structure, and the second electrically controlled glass 32 is set as a hexagonal structure. The seamless fitting of the hemispherical building is achieved through the triangular splicing compensation principle. The layered structure of the second electrically controlled glass 32 is consistent with the layered structure of the first electrically controlled glass 31. The two have the same working principle, only different shapes.
[0047] The dimming film layer 321 is set as a PDLC liquid crystal film. The haze range of the PDLC liquid crystal film is 0% to 95%, and the response time is ≤20ms, which can realize stepless dimming. The adhesive sealing layer 322 is made of EVA or PVB film, which has good bonding strength and aging resistance. The dimming film layer 321 and the light sensor 324 are electrically connected to the control system. The control system includes a microcontroller, a wireless communication module and a power management module, which can realize manual and automatic control switching through a mobile APP or local control panel.
[0048] Working Principle: During use, the overall structure of the hemispherical room 3 is formed by splicing the pentagonal first electrically controlled glass 31 and the hexagonal second electrically controlled glass 32 with an aluminum alloy keel. Both types of electrically controlled glass adopt a consistent layered structure design to ensure seamless fitting and overall stability of the spherical building. A light sensor 324 installed on the outer wall of the outer glass substrate 323 collects ambient light intensity data in real time and transmits it to the control system. Based on the received signal, the control system adjusts the energization state of the dimming film layer 321 through the conductive electrode 325, achieving stepless dimming within the range of 0% to 95%. Furthermore, by changing the light transmittance of the dimming film layer 321, the system can intelligently control the indoor light brightness and temperature, providing a suitable indoor environment. The suitable lighting environment effectively enhances the flexibility and ease of use of environmental control. At the same time, the solar panels 6 installed on the top of the hemispherical room 3 can efficiently absorb solar energy and convert it into electrical energy, providing stable energy support for the control system, the dimming film layer 321 and subsequent possible supporting electrical equipment. This enables the automatic adjustment of light and temperature in the spherical building and efficient energy utilization. This design deeply integrates the intelligent dimming function of the dimming film layer 321 with the energy collection function of the solar panels 6. Combined with the splicing structure of pentagonal and hexagonal electrically controlled glass, it not only makes full use of the spatial advantages of the spherical building, but also achieves intelligent and integrated environmental regulation and energy utilization, which can meet the personalized use needs of different scenarios such as office, rest, and reading.
[0049] Example 2:
[0050] This embodiment is basically the same as the previous embodiment, except that the rotating mechanism 8 includes a fixed frame 81, a support member 82, a drive assembly 83, and a drive gear 84. The support member 82 is installed on one side of the top of the fixed frame 81, and the other end of the support member 82 is installed on the inner wall of the hemispherical room 3. The drive assembly 83 is installed on the other side of the top of the fixed frame 81. The drive assembly 83 is a motor or driver, which can provide driving force for the rotation of the drive gear 84. The drive gear 84 is installed between the inner walls of both sides of the fixed frame 81 through bearings. The tooth surface of the drive gear 84 is carburized and quenched to improve wear resistance. The output end of the drive assembly 83 is installed on the top of the drive gear 84.
[0051] The rotating mechanism 8 also includes four movable wheels 85, a limiting slider 86, multiple storage slots 87, and multiple ball bearings 88. The four movable wheels 85 are respectively installed at the four corners of the bottom of the fixed frame 81. The movable wheels 85 are made of polyurethane and are wrapped with anti-slip rubber rings to reduce noise during rotation. The limiting slider 86 is installed in the middle of the bottom of the fixed frame 81. Multiple storage slots 87 are all opened at the bottom of the limiting slider 86. Multiple ball bearings 88 are respectively installed inside the multiple storage slots 87. The ball bearings 88 are made of GCr15 bearing steel to reduce sliding friction resistance.
[0052] A door frame 4 is provided on the lower side of the outer wall of the hemispherical room 3. The door frame 4 is made of stainless steel and is welded and fixed to the aluminum alloy keel of the hemispherical room 3. Waterproof sealing grooves are provided around the door frame, and water-swellable water-stop strips are built in. The door body 5 is installed on the outer wall of the door frame 4 through hinges. A limit slide rail 7 is embedded in the top of the base steel billet 1. The limit slide rail 7 is made of wear-resistant cast iron and the surface is treated with high frequency quenching. Multiple tooth grooves 9 are opened on the inner side of the support bottom ring 2. The tooth grooves 9 are precisely meshed with the drive gear 84.
[0053] The drive gear 84 meshes with multiple toothed grooves 9 to ensure transmission accuracy and stability. The moving wheel 85 contacts the limiting slide rail 7, so that the moving wheel 85 supports the fixed frame 81. The limiting slider 86 is slidably connected to the limiting slide rail 7 to improve stability during rotation. The limiting slider 86 is set with a convex structure so that the limiting slider 86 will not detach from the limiting slide rail 7.
[0054] The top surface of the limiting slide rail 7 is flush with the top surface of the base steel billet 1, ensuring that the moving wheel 85 and the limiting slider 86 can move smoothly on the limiting slide rail 7 without causing bumps or instability due to height differences. The limiting slide rail 7 is set as a ring structure, which provides a clear movement path for the rotating mechanism 8, ensuring that the hemispherical house 3 can rotate according to the predetermined trajectory without deviating from the direction.
[0055] Working principle: When the hemispherical house 3 needs to be rotated, the control system controls the drive component 83 to work, driving the drive gear 84 to rotate. Through the meshing of the drive gear 84 with multiple tooth grooves 9 on the support bottom ring 2, the fixed frame 81 is driven to rotate synchronously with the hemispherical house 3. This allows the hemispherical house 3 to flexibly adjust its direction according to usage needs and adapt to the orientation requirements of different scenarios. For example, in an exhibition scenario, the orientation can be adjusted according to the needs of exhibit display to obtain the best display effect. In a viewing scenario, the orientation can be adjusted according to the landscape location to provide users with a better viewing experience. During the rotation adjustment process, the convex structure limiting slider 86 slides and is limited within the annular limiting slide rail 7. The multiple balls 88 in the storage groove 87 at its bottom effectively reduce the sliding friction. At the same time, the moving wheel 85 rolls on the limiting slide rail 7, playing an auxiliary support and guiding role. The two work together to ensure the smooth and stable rotation of the hemispherical house 3, allowing the building to flexibly adapt to diverse usage needs, bringing more convenience to users and significantly enhancing the practicality and adaptability of the building.
[0056] Example 3:
[0057] This embodiment is basically the same as the previous embodiment, except that the support member 82 includes a hydraulic damper 821, a ball joint 822, a universal joint body 823, and a mounting plate 824. The ball joint 822 is installed at the bottom end of the hydraulic damper 821. The hydraulic damper 821 can effectively buffer the impact of wind load and seismic waves. The bottom end of the ball joint 822 is installed at the top end of the fixed frame 81. The ball joint 822 can adapt to the small deformation of the hemispherical room 3. The universal joint body 823 is installed at the top end of the hydraulic damper 821. The universal joint body 823 adopts a cross shaft structure and has multi-directional angle compensation function to ensure uniform force transmission. The mounting plate 824 is installed at the other end of the universal joint body 823. The mounting plate 824 has a waist-shaped mounting hole for easy fine adjustment of the installation position.
[0058] Both the hydraulic damper 821 and the drive assembly 83 are electrically connected to the control system. The control system can automatically adjust the damping coefficient of the hydraulic damper 821 and the start / stop state of the drive assembly 83 according to the data collected by the light sensor 324 to achieve building steering. The mounting plate 824 is installed on the aluminum alloy keel frame of the hemispherical house 3. The bolt connection is equipped with anti-loosening washers and anti-corrosion sealant to ensure long-term reliability.
[0059] Working Principle: During use, the support component 82 provides stable and flexible support for the hemispherical house 3, effectively enhancing the overall stability and environmental adaptability of the building. Through the ball hinge 822, the hydraulic damper 821 can achieve small rotation in multiple directions. When the hemispherical house 3 is subjected to external forces such as wind and earthquakes, the hydraulic damper 821 can absorb and dissipate the impact energy with its own damping characteristics, playing a buffering and shock absorption role, reducing the impact of external forces on the building, and ensuring structural stability. At the same time, the combined design of the ball hinge 822 and the universal joint body 823 allows the support component 82 to rotate freely in multiple directions. The system can adapt to the minute deformations and angular deviations of the hemispherical house 3 during rotation, ensuring that the support remains stable. This not only improves the building's mobility but also enhances its adaptability to complex environments. In addition, the hydraulic damper 821 and the drive assembly 83 are electrically connected to the control system. The control system can precisely adjust the damping force of the hydraulic damper 821 and control the drive parameters of the drive assembly 83 based on the building's real-time status and external environmental data, enabling the hemispherical house 3 to rotate stably and flexibly, fully meeting the dual requirements of building orientation and structural stability in different scenarios.
[0060] The foregoing has only described certain exemplary embodiments of the present invention by way of illustration. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the foregoing drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A universal joint connecting a spherical building with intelligent light temperature regulation, characterized in that, include: Base steel billet (1); A support ring (2) is installed on the top of the base steel billet (1); The hemispherical chamber (3) is mounted on the top of the supporting bottom ring (2) via bearings; Multiple solar panels (6) are installed on the top of the hemispherical house (3); Multiple rotating mechanisms (8) are installed on the lower inner wall of the hemispherical room (3); The hemispherical room (3) includes multiple first electrically controlled glass (31) and multiple second electrically controlled glass (32). The hemispherical room (3) is spliced together as a whole by an aluminum alloy keel frame. The second electro-optical glass (32) includes a dimming film layer (321), two adhesive sealing layers (322), two glass substrates (323), two light sensors (324), and two conductive electrodes (325). The two adhesive sealing layers (322) are respectively installed on the inner and outer sides of the dimming film layer (321). The two glass substrates (323) are respectively installed on the side of the two adhesive sealing layers (322) away from the dimming film layer (321). The two light sensors (324) are both installed on the outer wall of the outer glass substrate (323). The two conductive electrodes (325) are respectively disposed on one side of the dimming film layer (321).
2. The universal joint-connected spherical building with intelligent light temperature adjustment according to claim 1, characterized in that, The rotating mechanism (8) includes a fixed frame (81), a support member (82), a drive assembly (83), and a drive gear (84). The support member (82) is installed on one side of the top of the fixed frame (81), and the other end of the support member (82) is installed on the inner wall of the hemispherical room (3). The drive assembly (83) is installed on the other side of the top of the fixed frame (81). The drive gear (84) is installed between the inner walls of both sides of the fixed frame (81) through a bearing. The output end of the drive assembly (83) is installed on the top of the drive gear (84).
3. A gimbal-connected spherical building with intelligent light temperature adjustment according to claim 2, characterized in that, The rotating mechanism (8) also includes four moving wheels (85), a limiting slider (86), multiple storage slots (87) and multiple balls (88). The four moving wheels (85) are respectively installed at the four corners of the bottom of the fixed frame (81). The limiting slider (86) is installed at the middle of the bottom of the fixed frame (81). The multiple storage slots (87) are all opened at the bottom of the limiting slider (86). The multiple balls (88) are respectively installed inside the multiple storage slots (87).
4. A gimbal-connected spherical building with intelligent light temperature adjustment according to claim 2, characterized in that, The support member (82) includes a hydraulic damper (821), a ball joint (822), a universal joint body (823), and a mounting plate (824). The ball joint (822) is mounted on the bottom end of the hydraulic damper (821), and the bottom end of the ball joint (822) is mounted on the top end of the fixing frame (81). The universal joint body (823) is mounted on the top end of the hydraulic damper (821), and the mounting plate (824) is mounted on the other end of the universal joint body (823).
5. A gimbal-connected spherical building with intelligent light temperature adjustment according to claim 3, characterized in that, The lower side of the outer wall of the hemispherical room (3) is provided with a door frame (4), and the door body (5) is installed on the outer wall of the door frame (4) by a hinge. The top of the base steel billet (1) is embedded with a limit slide rail (7), and the inner side of the support bottom ring (2) is provided with multiple tooth grooves (9).
6. A gimbal-connected spherical building with intelligent light temperature adjustment according to claim 1, characterized in that, The first electronically controlled glass (31) is configured as a pentagonal structure, and the second electronically controlled glass (32) is configured as a hexagonal structure. The layered structure of the second electronically controlled glass (32) is consistent with the layered structure of the first electronically controlled glass (31).
7. A gimbal-connected spherical building with intelligent light temperature adjustment according to claim 1, characterized in that, The dimming film layer (321) is a PDLC liquid crystal film, the adhesive sealing layer (322) is an EVA or PVB film, and the dimming film layer (321) and the light sensor (324) are both electrically connected to the control system.
8. A gimbal-connected spherical building with intelligent light temperature adjustment according to claim 5, characterized in that, The drive gear (84) meshes with multiple tooth grooves (9), the moving wheel (85) contacts the limiting slide rail (7), the limiting slider (86) is slidably connected to the limiting slide rail (7), and the limiting slider (86) is configured as a convex structure.
9. A universal joint-connected spherical building with intelligent light temperature adjustment according to claim 4, characterized in that, The hydraulic damper (821) and drive assembly (83) are both electrically connected to the control system, and the mounting plate (824) is mounted on the aluminum alloy keel frame of the hemispherical house (3).
10. A gimbal-connected spherical building with intelligent light temperature adjustment according to claim 5, characterized in that, The top surface of the limiting slide rail (7) is flush with the top surface of the base steel billet (1), and the limiting slide rail (7) is set as a ring structure.