Three-dimensional regulation and control type building identification device
The three-dimensional adjustable building identification device addresses flexibility and corrosion issues by using foldable panels and a non-corrosive fastening system, enabling versatile and easy-to-maintain multi-angle information display.
Patent Information
- Application Number
- CN202421851290.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-01
- Publication Date
- 2025-07-15
- Estimated Expiration
- 2034-08-01
AI Technical Summary
Traditional logo devices are designed with standardized geometric shapes, which are difficult to adapt to different building environments. Fixed sizes and single planar display methods limit the angle and visual range of information, making it difficult to meet specific architectural features or design requirements.
The folding installation structure of multiple panels is adopted, and the marking plate is driven by the motor-driven gear to drive the signboard to rotate and unfold, and the embedded fixture is used to replace bolts for sealing, ensuring the flexible shape and size adjustment of the device in complex spaces and convenient maintenance.
It realizes multi-faceted display capabilities, enhances information transmission effect, attracts audience attention, and simplifies the maintenance process through embedded fixtures to avoid disassembly difficulties and safety risks caused by corrosion.
Smart Images

Figure CN223105670U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of building identification devices, in particular to a three-dimensional adjustable building identification device. Background Technique
[0002] With the vigorous development of the digitalization and industrialization of the construction industry, the industry's demand for the Model Based Definition (MBD) technology has been increasing day by day. The MBD technology can help realize the three-dimensional modeling and identification of buildings, providing more intuitive and accurate design and construction guidance. The real scene three-dimensional technology collects a large amount of point cloud data or pictures in the real environment and uses computer processing methods for registration, fusion and reconstruction to generate a highly accurate and realistic real scene three-dimensional model. This technology can provide a more real and intuitive visual experience and has more application scenarios and functions. The integration of the industrial Internet identification and resolution and the virtual reality industry has promoted the application of the identification technology in a wider range of fields. The identification technology can endow buildings with unique identifiers throughout the life cycle, construct a globally recognized "identity card", and realize the positioning, connection and dialogue between physical entities and virtual objects.
[0003] In the prior art, the design of traditional identification devices often adopts standardized geometric shapes, such as rectangles or circles, which limits their adaptability in different building environments. The fixed size also makes it difficult to adjust the identification signs according to actual needs, affecting their application in complex or irregular spaces. Traditional identification devices usually can only display information on a single plane, which limits the display angle and visible range of the information. In multi-view or multi-directional observations, the single-plane display method may lead to incomplete or difficult-to-identify information. Due to the limitations of the design and manufacturing processes, it is difficult for traditional identification devices to achieve flexible shape and size adjustments. This makes it difficult for traditional identification devices to meet the requirements when customization is needed according to specific building characteristics or design requirements. Content of the Utility Model
[0004] The purpose of the utility model is to propose a three-dimensional adjustable building identification device to solve the deficiencies existing in the prior art.
[0005] To achieve the above object, the present utility model adopts the following technical solutions: a three-dimensional adjustable building identification device, including a support base, a support column is fixed inside the support base, a support shaft is fixed on the upper end surface of the support column, a cylinder is fixed on the upper end surface of the support base, an identification plate is rotatably connected to the surface of the support shaft, a connecting rod is fixed at the front end of the cylinder, a connecting ring is rotatably connected to the front end of the connecting rod, a toothed disc is fixed at the front end of the connecting ring, a motor is provided inside the support column, an output gear is fixed at the output end of the motor, the output gear meshes with the toothed disc, the toothed disc is rotatably connected to the support shaft, the toothed disc is fixedly connected to the identification plate, a slide rail is provided on the surface of the identification plate, fixing grooves are provided on the surface of the slide rail, a spring disc is fixed inside the fixing grooves, an arc plate is fixed on the surface of the identification plate, a fixing column is slidably connected inside the arc plate. In the prior art, the design of traditional identification devices often adopts standardized geometric shapes, such as rectangles or circles, which limits their adaptability in different building environments. The fixed size also makes it difficult to adjust the identification signs according to actual needs, affecting their application in complex or irregular spaces. Traditional identification devices usually can only display information on one plane, which limits the display angle and visible range of the information. In multi-angle or multi-directional observations, the single-plane display method may lead to incomplete or difficult-to-identify information. Due to the limitations of design and manufacturing processes, it is difficult for traditional identification devices to achieve flexible shape and size adjustments. This makes it difficult for traditional identification devices to meet the requirements when customization is needed according to specific building features or design requirements. To address such problems, the present utility model adopts a folding installation with multiple panels. When the staff needs to display different identification advertisements on multiple screens for the three-dimensional adjustable building identification device, the staff starts the motor to drive the output gear to rotate. Then, the output gear drives the toothed disc to rotate, thereby driving the identification plate to rotate and unfold. When the arc plate slides to the other end of the slide rail of another identification plate, it drives another identification plate to rotate. After multiple identification plates have rotated, the staff starts to push the connecting rod to drive the connecting ring to move forward, so that the fixing columns of multiple identification plates are fastened inside the fixing grooves, thereby completing the unfolding and fixing, thus solving the problem that the three-dimensional adjustable identification plate cannot display multi-faceted identification information and at the same time providing the ability of multi-faceted display. This can display more advertisement content and information at the same time, enhance the information transmission effect, attract the attention of the audience, and provide a richer display experience.
[0006] Preferably, a sealing plate is detachably connected to the inner wall of the identification plate. A fixing table is fixed inside the sealing plate. A fixing knob is threadedly connected to the inner wall of the fixing table. A limiting ring is fixed inside the fixing knob. Fixing teeth are fixed inside the fixing table. Fixing pins are fixed inside the identification plate. In the prior art, bolts are usually used for sealing in three-dimensional adjustable building identification devices. However, in outdoor environments, due to the variability of weather conditions, bolts are prone to corrosion. Corrosion can cause changes in the structure and performance of bolts, making disassembly and replacement difficult. This corrosion problem has brought great trouble to subsequent maintenance work. When maintenance or replacement of the identification device is required, due to the corrosion of the bolts, the disassembly process may become extremely difficult. Corrosion may cause the connection between the bolts and the device to become firm, making disassembly require greater force and time. In addition, corrosion may also cause changes in the shape and size of the bolts, making the original tools inapplicable and requiring additional tools or equipment for disassembly. Moreover, due to the presence of corrosion, the reliability of the bolts is also affected. Corrosion will cause a decrease in the strength and durability of the bolts, making them prone to fracture or loosening when subjected to external forces or vibrations. This may affect the stability and safety of the identification device, posing potential risks to people's lives and property. To address such problems, in the present utility model, by adopting an embedded fixing device, after the staff installs the sealing plate of the three-dimensional adjustable building identification device, when the staff aligns the fixing table with the fixing pin and rotates the fixing knob, the fixing knob moves downward, so that the limiting ring inside the fixing knob contacts and presses the fixing teeth, causing the fixing teeth to clamp the fixing pin inward, and the installation is completed. At the same time, the staff can rotate the fixing knob in the future to disassemble the sealing plate for maintenance and replacement, thus making the subsequent replacement and maintenance of the three-dimensional adjustable building identification device more convenient and easier, and avoiding the problem that it is not easy to replace and maintain due to bolt wear caused by environmental problems.
[0007] Preferably, a trapezoidal slider is fixed to the front end of the connecting rod, and its stable guiding function ensures the accuracy of the movement trajectory, thereby improving the operation accuracy and reliability of the device.
[0008] Preferably, a rubber sleeve is sleeved on the surface of the fixing knob. The soft texture of the rubber sleeve can improve the hand feeling when pressing, providing a more comfortable and natural pressing experience, thereby further enhancing the user's hand feeling.
[0009] Preferably, anti-slip lines are provided on the surface of the fixing pin. The anti-slip lines can increase the friction between the fixing pin and the contact surface, improve the stability of the fixing pin, and prevent sliding or displacement when stressed.
[0010] Preferably, heat dissipation grooves are provided at the bottom of the support base, thereby enhancing the heat dissipation capacity of the device. At the same time, in a rainy environment, the design of the bottom heat dissipation grooves can reduce rainwater accumulation, prevent moisture from seeping into the device interior, and reduce the risks of corrosion and short circuit caused by dampness.
[0011] Beneficial effects
[0012] 1. In the prior art, the design of traditional identification devices often adopts standardized geometric shapes such as rectangles or circles, which limits their adaptability in different building environments. The fixed size also makes it difficult to adjust the sign according to actual needs, affecting its application in complex or irregular spaces. Traditional identification devices usually can only display information on one plane, which limits the display angle and visual range of the information. In multi-perspective or multi-directional observations, the single-plane display method may lead to incomplete or difficult-to-identify information. Due to limitations in design and manufacturing processes, it is difficult for traditional identification devices to achieve flexible shape and size adjustments. This makes it difficult for traditional identification devices to meet the requirements when customization according to specific building features or design requirements is needed. To address such problems, the present utility model adopts multiple panels for folding installation. When the staff needs to conduct multi-screen display of different identification advertisements for the three-dimensional adjustable building identification device, the staff starts the motor to drive the output gear to rotate, and then the output gear drives the toothed disc to rotate, thereby driving the identification plate to rotate and unfold. When the arc plate slides to the other end of the slide rail of another identification plate, it drives another identification plate to rotate. After multiple identification plates have rotated, the push connecting rod is started to drive the connecting ring to move forward, so that the fixing columns of the multiple identification plates are buckled into the fixing grooves, thereby completing the unfolding and fixing, thus achieving the solution that the three-dimensional adjustable identification plate cannot display multi-faceted identification information and at the same time providing the ability of multi-faceted display. In this way, more advertisement content and information can be displayed simultaneously, enhancing the information transmission effect, attracting the attention of the audience, and providing a richer display experience.
[0013] 2. In the prior art, three-dimensional controllable building identification devices are usually sealed with bolts. However, in outdoor environments, due to the variability of weather conditions, bolts are susceptible to corrosion. Corrosion can cause changes in the structure and performance of the bolts, making disassembly and replacement difficult. This corrosion problem has caused great trouble to subsequent maintenance work. When the identification device needs to be repaired or replaced, the disassembly process may become extremely difficult due to the corrosion of the bolts. Corrosion may cause the connection between the bolts and the device to become firm, making disassembly require greater force and time. In addition, corrosion may also cause changes in the shape and size of the bolts, making the original tools unable to adapt, and requiring additional tools or equipment for disassembly. In addition, due to the presence of corrosion, the reliability of the bolts will also be affected. Corrosion will cause the strength and durability of the bolts to decrease, making them prone to breakage or loosening when subjected to external forces or vibrations. This may affect the stability and safety of the identification device, posing potential risks to people's life and property safety. To address this problem, the utility model adopts an embedded fixing device. After the staff installs the sealing plate of the three-dimensional adjustable building identification device, the staff aligns the fixing platform with the fixing pin and rotates the fixing knob to move the fixing knob downward, so that the limit ring inside the fixing knob contacts the fixing teeth and presses the fixing teeth, so that the fixing teeth clamp the fixing pin inward, and the installation is completed. At the same time, the staff can remove the sealing plate by rotating the fixing knob in the future for maintenance and replacement, thereby making the replacement and maintenance of the three-dimensional adjustable building identification device more convenient and easy in the future, and avoiding the problem of bolt wear and difficulty in replacement and maintenance due to environmental problems. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 It is a three-dimensional structural schematic diagram of the utility model;
[0015] Figure 2 This is a schematic diagram of the internal structure of the utility model;
[0016] Figure 3 This is a schematic diagram of the back of the identification plate of the utility model;
[0017] Figure 4 It is a schematic diagram of the fixing structure of the utility model.
[0018] Legend:
[0019] 1. Support base; 101. Cylinder; 102. Connecting rod; 103. Connecting ring; 104. Support shaft; 105. Output gear; 2. Sealing plate; 201. Identification plate; 205. Slide rail; 206. Fixing groove; 207. Arc plate; 208. Fixing column; 3. Fixing knob; 301. Limiting ring; 302. Fixing pin; 303. Fixing platform; 304. Fixing tooth. DETAILED DESCRIPTION
[0020] In order to make the technical means, creative features, achieved purposes and effects realized by the present utility model easy to understand, the following further elaborates the present utility model in combination with specific embodiments and the accompanying drawings. However, the following embodiments are only the preferred embodiments of the present utility model, not all. Based on the embodiments in the implementation manners, other embodiments obtained by those skilled in the art without creative efforts all fall within the protection scope of the present utility model.
[0021] The following describes the specific embodiments of the present utility model in conjunction with the accompanying drawings. Specific embodiments:
[0023] Refer to Figures 1-4, A three-dimensional adjustable building identification device, comprising a support base 1. Inside the support base 1, there is a support column fixed. At the upper end face of the support column, there is a support shaft 104 fixed. At the upper end face of the support base 1, a cylinder 101 is fixed. The surface of the support shaft 104 is rotatably connected to an identification plate 201. At the front end of the cylinder 101, a connecting rod 102 is fixed. At the front end of the connecting rod 102, a connecting ring 103 is rotatably connected. At the front end of the connecting ring 103, a toothed disc is fixed. Inside the support column, there is a motor. At the output end of the motor, an output gear 105 is fixed. The output gear 105 meshes with the toothed disc. The toothed disc is rotatably connected to the support shaft 104, and the toothed disc is fixedly connected to the identification plate 201. On the surface of the identification plate 201, there are slide rails 205. On the surface of the slide rails 205, there are fixing grooves 206. Inside the fixing grooves 206, there are spring discs fixed. On the surface of the identification plate 201, there is an arc plate 207 fixed. Inside the arc plate 207, a fixing column 208 is slidably connected. In the prior art, the design of traditional identification devices often adopts standardized geometric shapes, such as rectangles or circles, which limits their adaptability in different building environments. The fixed size also makes it difficult to adjust the identification signs according to actual needs, affecting their application in complex or irregular spaces. Traditional identification devices usually can only display information on one plane, which limits the display angle and visible range of the information. In multi-perspective or multi-directional observations, the single-plane display method may lead to incomplete or difficult-to-identify information. Due to limitations in design and manufacturing processes, it is difficult for traditional identification devices to achieve flexible shape and size adjustments. This makes it difficult for traditional identification devices to meet the requirements when customization is needed according to specific building features or design requirements. To address such problems, the present utility model adopts multiple panels for folding installation. When the staff needs to conduct multi-screen display of different identification advertisements for the three-dimensional adjustable building identification device, the staff starts the motor to drive the output gear 105 to rotate. Then, the output gear 105 drives the toothed disc to rotate, thereby driving the identification plate 201 to rotate and unfold. When the arc plate 207 slides to the other end of the slide rail 205 of another identification plate 201, it drives another identification plate 201 to rotate. After multiple identification plates 201 have rotated, start to push the connecting rod 102 to drive the connecting ring 103 to move forward, so that the fixing columns 208 of multiple identification plates 201 are fastened inside the fixing grooves 206, thus completing the unfolding and fixing, thereby solving the problem that the three-dimensional adjustable identification plate 201 cannot display multi-faceted identification information and at the same time providing the ability of multi-faceted display. In this way, more advertisement content and information can be displayed simultaneously, enhancing the information transmission effect, attracting the attention of the audience, and providing a richer display experience.
[0024] The inner wall of the identification plate 201 is detachably connected with a sealing plate 2. A fixing platform 303 is fixed inside the sealing plate 2. A fixing knob 3 is threadedly connected to the inner wall of the fixing platform 303. A limiting ring 301 is fixed inside the fixing knob 3. A fixing tooth 304 is fixed inside the fixing platform 303. A fixing pin 302 is fixed inside the identification plate 201. A trapezoidal slider is fixed at the front end of the connecting rod 102. A rubber sleeve is sleeved on the surface of the fixing knob 3. Anti-slip lines are provided on the surface of the fixing pin 302. Heat dissipation grooves are provided at the bottom of the support base 1.
[0025] The working principle of the present utility model: When the staff needs to perform multi-screen display of different identification advertisements on the three-dimensional adjustable building identification device, the staff starts the motor to drive the output gear 105 to rotate. Then, the output gear 105 drives the toothed disc to rotate, thereby driving the identification plate 201 to rotate and unfold. When the arc plate 207 slides to the other end of the slide rail 205 of another identification plate 201, it drives another identification plate 201 to rotate. After multiple identification plates 201 are rotated, the staff starts to push the connecting rod 102 to drive the connecting ring 103 to move forward, so that the fixing columns 208 of multiple identification plates 201 are fastened inside the fixing grooves 206, thus completing the unfolding and fixing.
[0026] In the present utility model, unless otherwise clearly defined and limited, the first feature being "above" or "below" the second feature may include direct contact between the first and second features, or may include the first and second features not being in direct contact but in contact through additional features therebetween. Moreover, the first feature being "above", "over" and "on" the second feature includes the first feature being directly above and obliquely above the second feature, or merely indicating that the horizontal height of the first feature is higher than that of the second feature. The first feature being "below", "under" and "beneath" the second feature includes the first feature being directly below and obliquely below the second feature, or merely indicating that the horizontal height of the first feature is less than that of the second feature.
[0027] The above shows and describes the basic principles, main features and advantages of the present utility model. Those skilled in the art of this industry should understand that the present utility model is not limited by the above embodiments. The above embodiments and the descriptions in the specification are only preferred examples of the present utility model and are not used to limit the present utility model. Without departing from the spirit and scope of the present utility model, the present utility model will have various changes and improvements, and these changes and improvements all fall within the scope of the present utility model claimed. The scope of protection claimed by the present utility model is defined by the appended claims and their equivalents.
Claims
1. Three-dimensional adjustable building identification device, including a support base (1), a support column is fixed inside the support base (1), and a support shaft (104) is fixed on the upper end surface of the support column, characterized in that: On the upper end surface of the support base (1), a cylinder (101) is fixed. The surface of the support shaft (104) is rotatably connected to an identification plate (201). At the front end of the cylinder (101), a connecting rod (102) is fixed. The front end of the connecting rod (102) is rotatably connected to a connecting ring (103). At the front end of the connecting ring (103), a toothed disc is fixed. Inside the support column, there is a motor. The output end of the motor is fixed with an output gear (105). The output gear (105) meshes with the toothed disc. The toothed disc is rotatably connected to the support shaft (104). The toothed disc is fixedly connected to the identification plate (201). On the surface of the identification plate (201), a slide rail (205) is provided. In the slide rail (205), a fixing groove (206) is provided. Inside the fixing groove (206), a spring disc is fixed. On the surface of the identification plate (201), an arc plate (207) is fixed. Inside the arc plate (207), a fixing column (208) is slidably connected.
2. The three-dimensional adjustable building identification device according to claim 1, characterized in that: Inside the inner wall of the identification plate (201), a sealing plate (2) is detachably connected. Inside the sealing plate (2), a fixing platform (303) is fixed. Inside the inner wall of the fixing platform (303), a fixing knob (3) is threadedly connected. Inside the inner wall of the fixing knob (3), a limiting ring (301) is fixed. Inside the fixing platform (303), a fixing tooth (304) is fixed. Inside the identification plate (201), a fixing pin (302) is fixed.
3. The three-dimensional adjustable building identification device according to claim 1, wherein: At the front end of the connecting rod (102), a trapezoidal slider is fixed.
4. The three-dimensional adjustable building identification device according to claim 2, characterized in that: A rubber sleeve is sleeved on the surface of the fixing knob (3).
5. The three-dimensional adjustable building identification device according to claim 2, characterized in that: Anti-slip lines are provided on the surface of the fixing pin (302).
6. The three-dimensional adjustable building identification device according to claim 1, characterized in that: Heat dissipation grooves are provided at the bottom of the support base (1).