BIM green low-carbon building construction simulation device
By introducing a foldable extension plate structure into the BIM green and low-carbon building construction simulation device, the problems of the existing device's single function and insufficient protection are solved, and the equipment is stably protected and conveniently operated when idle, thereby improving the equipment's practicality and protection.
Patent Information
- Application Number
- CN202511026092.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-07-24
- Publication Date
- 2025-09-16
AI Technical Summary
Existing construction simulation devices have single functions, complex operations, and insufficient protection, making it difficult to effectively demonstrate the implementation effects of green and low-carbon construction technologies. In addition, the equipment is easily damaged during idleness or transportation, which increases the cost of use and the difficulty of maintenance.
A BIM green and low-carbon building construction simulation device was designed. It adopts a foldable extension plate structure, which can be used as a table to provide office space and as a sunshade to provide shading function. The device is firmly fixed through a limiting structure and screw connection, enhancing the practicality and flexibility of the device.
It achieves stable protection and convenient operation of the equipment when it is idle, improves the practicality and protection of the equipment, provides a comfortable outdoor working environment, and reduces equipment damage and maintenance costs.
Smart Images

Figure CN120643023A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of simulation display screens, and in particular to a BIM green and low-carbon building construction simulation device. Background Art
[0002] In the field of construction, BIM (Building Information Modeling) technology, as an innovative approach, is gradually being integrated into green and low-carbon construction concepts, bringing unprecedented changes to the construction industry. BIM technology digitally integrates information from the entire life cycle of a construction project into a three-dimensional model, enabling seamless integration and efficient collaboration across all stages of design, construction, operation, and maintenance. However, in actual construction, efficient and safe construction process simulation, especially for green and low-carbon construction techniques, has become a pressing issue.
[0003] Traditional construction simulation methods often rely on two-dimensional drawings or simple three-dimensional models. These methods are inadequate for depicting complex construction scenarios, especially the details of green and low-carbon technologies. They struggle to intuitively display key information such as the application of energy-saving materials, the layout and operation of energy systems, and carbon emission control during construction. This limits construction teams' in-depth understanding and effective application of green and low-carbon construction technologies.
[0004] To this end, a variety of construction simulators have emerged on the market, aiming to assist construction teams in simulation and decision-making through more intuitive and interactive methods. However, most existing construction simulators suffer from limited functionality, complex operation, and insufficient protection. For example, some devices only demonstrate simple construction processes and fail to fully simulate the implementation effects of green and low-carbon technologies. Others lack effective protection mechanisms, making the equipment susceptible to damage during idle time or transportation, increasing operational costs and maintenance difficulties. Summary of the Invention
[0005] The purpose of the present invention is to provide a BIM green and low-carbon building construction simulation device to solve the problems raised in the above background technology.
[0006] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a BIM green and low-carbon building construction simulation device, comprising a construction simulation display screen, wherein the construction simulation display screen is inserted between two protective plates, both protective plates are fixed on the bottom plate of the support frame, a support plate is slidably connected between the two protective plates, the support plate is located below the construction simulation display screen, a limiting structure is provided between the support plate and the side plate of the support frame, a cover plate is fixed on the top of the construction simulation display screen, extension plates are hinged on both sides of the cover plate, a long-handled screw is screwed on one side of the extension plate, and one end of the long-handled screw passes through the extension plate and is screwed to the surface of the cover plate.
[0007] Preferably, the support frame is in a "U"-shaped plate structure, and pads are fixed at the bottoms of the two parallel side plates of the support frame.
[0008] Preferably, the height of the protection plate is less than the distance from the top surface of the bottom plate of the support frame to the top surface of the side plate of the support frame, and the sum of the heights of the construction simulation display screen and the support plate is equal to the height of the protection plate.
[0009] Preferably, chutes are provided on the surfaces of the two parallel side plates of the support frame, a screw rod is slidably connected inside the chutes, one end of the screw rod is fixed at the end of the support plate, and a nut is sleeved and screwed at the other end of the screw rod.
[0010] Preferably, rubber pads are fixed on the surfaces of the two parallel side plates of the support frame. The rubber pads are in an annular plate structure, the inner ring opening size of the rubber pads is larger than the slot opening size of the chutes, and the rubber pads are clamped after the nut and the screw rod are locked.
[0011] Preferably, two limiting frames are fixed on the top surface of the support plate. The limiting frames are in a "C"-shaped plate structure, the two limiting frames are symmetrically distributed with respect to the construction simulation display screen, and a clamping screw rod is screwed on the side plate of the limiting frame to clamp the construction simulation display screen.
[0012] Preferably, two notch grooves are provided on both sides of the cover plate, a limiting shaft is fixed between the two parallel side walls of the notch grooves, the limiting shaft movably penetrates through the traction handle, and one end of the traction handle is fixed on the surface of the extension plate.
[0013] Preferably, connection pieces are fixed on both sides at the end of the extension plate away from the cover plate, connection screw rods are screwed on the surfaces of the connection pieces, positioning screw holes are provided on the front and back sides of the two parallel side plates of the support frame, and after the extension plate is folded down, one end of the connection screw rod penetrates through the connection piece and is screwed in the positioning screw hole.
[0014] Compared with the prior art, the beneficial effects of the present invention are as follows:
[0015] The BIM green low-carbon building construction simulation device proposed by the present invention, with the extension plate as a major innovation point of the device, realizes the dual functions of a table board and a sunshade awning. In the idle state, the extension plate can be adjusted to a horizontal position and jointly form a stable desktop platform with the cover plate, providing a convenient office and meeting space for the construction team. When the construction simulation display screen is lifted, the extension plate is transformed into a sunshade awning, providing a comfortable outdoor working environment for the construction team. In addition, the extension plate can also be connected to the positioning screw holes on the side plates of the support frame through the connection screw rods, realizing stable fixation and protection, further enhancing the practicability and flexibility of the device. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a schematic structural diagram of the present invention;
[0017] Figure 2 It is a top view of the structure of the present invention;
[0018] Figure 3 for Figure 2 Structural cross-section view at AA in the middle;
[0019] Figure 4 for Figure 2 Structural cross-section view at the middle BB;
[0020] Figure 5 This is a schematic diagram of the structure of the construction simulation display screen after it is lifted;
[0021] Figure 6 This is a schematic diagram of the connection structure of the construction simulation display screen and the support plate of the present invention;
[0022] Figure 7 This is a schematic diagram of the structure of the extension plate of the present invention after folding downward;
[0023] Figure 8 This is a schematic diagram of the extension plate structure of the present invention.
[0024] In the figure: support frame 1, pad 2, protective plate 3, slide 4, support plate 5, screw 6, nut 7, rubber pad 8, limit frame 9, construction simulation display screen 10, clamping screw 11, cover plate 12, slot 13, traction handle 14, limit shaft 15, extension plate 16, long-handled screw 17, connecting piece 18, connecting screw 19, positioning screw hole 20. DETAILED DESCRIPTION
[0025] In order to clearly and completely describe the objectives and technical solutions of the present invention and make the advantages more clearly understood, the embodiments of the present invention are further described in detail below with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are part of the embodiments of the present invention, not all of them, and are only used to explain the embodiments of the present invention, not to limit the embodiments of the present invention. All other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0026] See also Figures 1 to 8, the present invention provides a technical solution: a BIM green and low-carbon building construction simulation device, including a construction simulation display screen 10. The construction simulation display screen 10 is plugged between two protective plates 3, and both of the two protective plates 3 are fixed on the bottom plate of the support frame 1. The support frame 1 is in a "U"-shaped plate structure, and two parallel side plates of the support frame 1 are both fixed with cushion blocks 2 at the bottom end. A support plate 5 is slidably connected between the two protective plates 3. The support plate 5 is located below the construction simulation display screen 10. The height of the protective plate 3 is less than the distance from the top surface of the bottom plate of the support frame 1 to the top surface of the side plate of the support frame 1. The sum of the heights of the construction simulation display screen 10 and the support plate 5 is equal to the height of the protective plate 3; two limiting frames 9 are fixed on the top surface of the support plate 5. The limiting frames 9 are in a "匚"-shaped plate structure, and the two limiting frames 9 are symmetrically distributed with respect to the construction simulation display screen 10. A clamping screw 11 is screwed on the side plate of the limiting frame 9, and the clamping screw 11 clamps the construction simulation display screen 10. First, insert the bottom end of the construction simulation display screen 10 between the two limiting frames 9, then screw the clamping screw 11 to clamp the construction simulation display screen 10, and then insert the support plate 5 together with the construction simulation display screen 10 between the two protective plates 3 until the cover plate 12 at the top of the construction simulation display screen 10 overlaps on the protective plate 3. At this time, the cover plate 12 and the protective plate 3 together protect the idle construction simulation display screen 10.
[0027] The limiting component includes a chute 4, a screw 6 and a nut 7. Chutes 4 are opened on the surfaces of two parallel side plates of the support frame 1. A screw 6 is slidably connected inside the chute 4. One end of the screw 6 is fixed at the end of the support plate 5, and a nut 7 is sleeved and screwed on the other end of the screw 6. Rubber pads 8 are fixed on the surfaces of two parallel side plates of the support frame 1. The rubber pads 8 are in an annular plate structure, and the inner ring opening size of the rubber pads 8 is larger than the slot opening size of the chute 4. After the nut 7 and the screw 6 are locked, the rubber pads 8 are clamped. After the support plate 5 is placed on the top surface of the bottom plate of the support frame 1, the two screws 6 are respectively passed through the two side plates of the support frame 1 and welded to both ends of the support plate 5. When the construction simulation display screen 10 needs to be used, lift the cover plate 12 upwards to pull the construction simulation display screen 10 to lift until the screw 6 is blocked by the top surface of the chute 4, and then screw the nut 7 to clamp the rubber pad 8 to brake the support plate 5 and prevent the construction simulation display screen 10 from falling off.
[0028] A limiting structure is provided between the support plate 5 and the side panels of the support frame 1. A cover plate 12 is fixed to the top of the construction simulation display screen 10. Extension plates 16 are hingedly connected on both sides of the cover plate 12. A long-handled screw 17 is screwed to one side of the extension plate 16. One end of the long-handled screw 17 passes through the extension plate 16 and is screwed to the surface of the cover plate 12. Two slots 13 are provided on both sides of the cover plate 12. A limiting shaft 15 is fixed between the two parallel side walls of the slot 13. The limiting shaft 15 movably passes through the traction handle 14, one end of which is fixed to the surface of the extension plate 16. Connecting pieces 18 are fixed to both sides of the end of the extension plate 16 away from the cover plate 12. Connecting screws 19 are screwed to the surface of the connecting piece 18. Positioning screw holes 20 are provided on the front and rear sides of the two parallel side panels of the support frame 1. After the extension plate 16 is folded down, one end of the connecting screw 19 passes through the connecting piece 18 and is screwed to the positioning screw hole 20. When the construction simulation display screen 10 is idle and stored between the two protective plates 3, adjust the extension plate 16 and the cover plate 12 to be level, and then screw the long-handled screw 17 to insert it into the reserved hole on the surface of the cover plate 12. At this time, the extension plate 16 is used as a table top; when the construction simulation display screen 10 is lifted, the extension plate 16 is used as a sunshade; when the construction simulation display screen 10 is idle and stored between the two protective plates 3, loosen the long-handled screw 17 to disengage it from the surface of the cover plate 12, and move the extension plate 16 to drive the traction handle 14 to swing down with the limiting axis 15 as the center axis until the extension plate 16 leans against one side of the protective plate 3. At this time, screw the connecting screw 19 into the positioning screw hole 20 to prevent the extension plate 16 from swinging. At this time, the extension plate 16 cooperates with the protective plate 3 to protect the idle construction simulation display screen 10; that is, the extension plate 16 has multiple uses.
[0029] The use process of BIM green and low-carbon building construction simulation device:
[0030] Insert the bottom end of the construction simulation display screen 10 between the two limit frames 9 in advance, and the limit frames 9 are fixed to the top surface of the support plate 5. Screw the clamping screw 11 to clamp the construction simulation display screen 10 to complete the initial fixation. Insert the support plate 5 together with the construction simulation display screen 10 between the two protective plates 3, and the protective plates 3 are fixed to the bottom plate of the support frame 1. Keep pushing until the cover plate 12 on the top of the construction simulation display screen 10 overlaps the protective plate 3. At this time, the cover plate 12 and the protective plate 3 together play a protective role for the idle construction simulation display screen 10. Loosen the long-handled screw 17 to detach it from the surface of the cover plate 12. Move the extension plate 16 to drive the traction handle 14 to swing down with the limit axis 15 as the center axis until the extension plate 16 rests on one side of the protective plate 3. Tighten the connecting screw 19 so that it passes through the connecting piece 18 and is then screwed into the positioning screw hole 20 of the side panel of the support frame 1 to prevent the extension plate 16 from swinging. At this time, the extension plate 16 cooperates with the protective plate 3 to fully protect the idle construction simulation display screen 10. Pull the cover plate 12 upwards to pull the construction simulation display screen 10 up. When the screw 6 is blocked by the top surface of the slide 4, stop pulling. Tighten the nut 7 so that it clamps the rubber pad 8. The rubber pad 8 is fixed to the surface of the side panel of the support frame 1 to brake the support plate 5 and prevent the construction simulation display screen 10 from falling off. When the construction simulation display screen 10 is idle and stored between the two protective plates 3, adjust the extension plate 16 and the cover plate 12 to a horizontal state. Tighten the long-handled screw 17 so that one end of it passes through the extension plate 16 and is then screwed into the reserved hole on the surface of the cover plate 12. At this time, the extension plate 16 acts as a table top. Ensure that the construction simulation display screen 10 has been lifted to the working state, and the support plate 5 is braked by the nut 7 and the rubber pad 8. As needed, unfold the extension plate 16 to a suitable angle so that it can be used as a sunshade to provide shading for the operating area of the construction simulation display screen 10. After use, loosen the nut 7 to release the brake on the support plate 5. Slowly lower the construction simulation display screen 10 so that its bottom end is reinserted between the two limit frames 9. According to the extension plate fixing steps in the idle state, adjust the extension plate 16 to lean against the side of the protective plate 3, and screw the connecting screw 19 into the positioning screw hole 20 to ensure that the extension plate 16 cooperates with the protective plate 3 to fully protect the construction simulation display screen 10.
[0031] While embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions, and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is defined by the appended claims and their equivalents.
Claims
1. A BIM green and low-carbon building construction simulation device, comprising a construction simulation display screen (10), characterized in that: The construction simulation display screen (10) is plugged between two protective plates (3). Both of the two protective plates (3) are fixed on the bottom plate of the support frame (1). A support plate (5) is slidably connected between the two protective plates (3). The support plate (5) is located below the construction simulation display screen (10). A limiting structure is provided between the support plate (5) and the side plate of the support frame (1). A cover plate (12) is fixed on the top of the construction simulation display screen (10). Extension plates (16) are hinged on both sides of the cover plate (12). A long-handled screw (17) is screwed on one side of the extension plate (16). One end of the long-handled screw (17) penetrates through the extension plate (16) and is screwed on the surface of the cover plate (12).
2. A BIM green and low-carbon building construction simulation device according to claim 1, characterized in that: The support frame (1) is in a "U"-shaped plate structure. Padding plates (2) are fixed at the bottom ends of the two parallel side plates of the support frame (1).
3. A BIM green and low-carbon building construction simulation device according to claim 1, characterized in that: The height of the protective plate (3) is less than the distance from the top surface of the bottom plate of the support frame (1) to the top surface of the side plate of the support frame (1). The sum of the heights of the construction simulation display screen (10) and the support plate (5) is equal to the height of the protective plate (3).
4. A BIM green and low-carbon building construction simulation device according to claim 1, characterized in that: The limiting component includes a chute (4), a screw (6) and a nut (7). Chutes (4) are provided on the surfaces of the two parallel side plates of the support frame (1). The screw (6) is slidably connected inside the chute (4). One end of the screw (6) is fixed at the end of the support plate (5). A nut (7) is sleeved and screwed on the other end of the screw (6).
5. A BIM green and low-carbon building construction simulation device according to claim 4, characterized in that: Rubber pads (8) are fixed on the surfaces of the two parallel side plates of the support frame (1). The rubber pads (8) are in an annular plate structure. The inner ring opening size of the rubber pad (8) is larger than the notch size of the chute (4). The rubber pad (8) is clamped after the nut (7) and the screw (6) are locked.
6. A BIM green and low-carbon building construction simulation device according to claim 1, characterized in that: Two limiting frames (9) are fixed on the top surface of the support plate (5). The limiting frames (9) are in a "C"-shaped plate structure. The two limiting frames (9) are symmetrically distributed with respect to the construction simulation display screen (10). A clamping screw (11) is screwed on the side plate of the limiting frame (9). The clamping screw (11) clamps the construction simulation display screen (10).
7. A BIM green and low-carbon building construction simulation device according to claim 1, characterized in that: Two notch grooves (13) are provided on both sides of the cover plate (12). A limiting shaft (15) is fixed between the two parallel side walls of the notch groove (13). The limiting shaft (15) movably penetrates through the traction handle (14). One end of the traction handle (14) is fixed on the surface of the extension plate (16).
8. A BIM green and low-carbon building construction simulation device according to claim 1, characterized in that: Connection pieces (18) are fixed on both sides at the end of the extension plate (16) far from the cover plate (12). A connection screw (19) is screwed on the surface of the connection piece (18). Positioning screw holes (20) are provided on the front and back sides of the two parallel side plates of the support frame (1). After the extension plate (16) is folded downwards, one end of the connection screw (19) penetrates through the connection piece (18) and is screwed into the positioning screw hole (20).