BIM building model for building engineering design
By designing adjustable column structures in the BIM building model, the problems of column assembly stability and inconvenient adjustment were solved, enabling flexible adjustment of column position and height, and improving the efficiency and stability of building model construction.
Patent Information
- Application Number
- CN202422822925.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-19
- Publication Date
- 2025-11-25
- Estimated Expiration
- 2034-11-19
AI Technical Summary
The existing BIM building models have insufficient assembly stability of columns, and the adjustment of column position and height is inconvenient, which affects the building model's assembly efficiency and stability.
Design an adjustable building model column structure. The position and height of the column can be adjusted by combining sliding grooves, sliding parts and adjusting parts, and a buffer structure can be used to prevent vibration damage.
It improves the ease of adjusting the columns and the stability of the building model, prevents the columns from being misaligned, reduces vibration damage, and improves the efficiency and quality of building model construction.
Smart Images

Figure CN223598337U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of architectural engineering design technology, and in particular to a BIM building model for architectural engineering design. Background Technology
[0002] BIM, or Building Information Modeling, is a complete information model that integrates engineering information, processes, and resources at different stages throughout the entire lifecycle of a project into a single model, making it convenient for all project stakeholders to use. By simulating the real information of a building through 3D digital technology, BIM provides a coordinated and internally consistent information model for engineering design and construction. BIM achieves the integration of design and construction, enabling collaborative work among various disciplines, thereby reducing engineering production costs, effectively improving collaborative efficiency, and providing traceability of responsibility.
[0003] BIM building model is a building information model. It can be used to display the structure of a building at a reduced scale and to perform appropriate inspections. However, it is not fast enough to assemble and connect the steel structure of the entire building. Moreover, after the columns of the building model are fixed, the position and height of the columns cannot be adjusted, which increases the workload of column adjustment.
[0004] In conclusion, the existing technology obviously has inconveniences and defects in practical use, so it is necessary to improve it. Utility Model Content
[0005] To address the aforementioned shortcomings, the purpose of this utility model is to provide a BIM building model for architectural engineering design. This model can be equipped with an adjustable column structure, which allows for easy adjustment of the column position by loosening the fasteners on the column and the platform when adjustments are needed. Simultaneously, the model can buffer the vibration of the column during use, preventing damage to the building model from vibration.
[0006] To achieve the above objectives, this utility model provides a BIM building model for architectural engineering design, comprising: an operating platform with a plurality of evenly arranged sliding grooves on its top; and a support assembly for supporting the building model, slidably connected inside the sliding grooves. The support assembly includes a sliding member slidably connected inside the sliding grooves and a column disposed on the sliding member. The column is provided with an adjusting member for adjusting the height of the column, and the adjusting member rotates to adjust the position of the column on the sliding member.
[0007] According to the BIM building model for architectural engineering design of this utility model, the sliding member is provided with a control axis, the control axis is slidably and rotatably connected to the sliding member, the control axis extends from the bottom of the sliding member to the top of the sliding member, and the column is slidably connected to the control axis.
[0008] According to the BIM building model for architectural engineering design of this utility model, the bottom of the control axis is provided with a buffer hole, and an abutment shaft extending to the bottom of the control axis is slidably connected inside the buffer hole. A thrust spring is provided between the abutment shaft and the bottom of the buffer hole. The abutment shaft cooperates with the bottom of the sliding groove to fix the position of the sliding member.
[0009] According to the BIM building model for architectural engineering design of this utility model, the sliding member is provided with a sliding hole, and the sliding hole is provided with mating grooves on both sides. The side wall of the control shaft is provided with a mating protrusion corresponding to the mating groove. The bottom side wall of the sliding hole is provided with a snap-fit groove corresponding to the mating protrusion. When the mating protrusion is snapped into the snap-fit groove, the position of the control shaft and the sliding member is fixed.
[0010] According to the BIM building model for architectural engineering design of this utility model, one end of the adjusting member is rotatably connected to the control shaft, and the other end is screwed to the column and extends to the top of the column.
[0011] According to the BIM building model for architectural engineering design of this utility model, the sliding member includes two symmetrically arranged mating plates, which are slidably connected to both sides of the sliding groove.
[0012] This utility model provides a BIM building model for architectural engineering design, comprising: an operating platform with a plurality of evenly arranged sliding grooves on its top. The multiple sliding grooves work together to ensure that the support components can be adjusted to different positions during installation and adjustment, thus adapting to the construction of different building models; and support components slidably connected inside the sliding grooves to support the building model. The support components include sliding members slidably connected inside the sliding grooves and columns disposed on the sliding members. Multiple different mounting points can be provided on the columns to install and fix different beams, thereby ensuring the construction of the building model. The column is equipped with an adjustable component to adjust its height. This adjustable component rotates to adjust the column's position on the sliding component, allowing for height adjustment during model construction. This prevents misalignment of the column during model building, which could affect the model's construction. In summary, the technical advantage of this invention is that by providing an adjustable architectural model column structure, adjustments can be made to the fasteners on the column to loosen the connection between the column and the platform, further adjusting the column's position. Simultaneously, the structure buffers vibrations during use, preventing damage to the architectural model from vibrations. Attached Figure Description
[0013] Figure 1 This is a three-dimensional structural schematic diagram of the present invention;
[0014] Figure 2 This is a schematic cross-sectional view of the support component of this utility model;
[0015] Figure 3 This is a three-dimensional structural diagram of the sliding component of this utility model;
[0016] Figure 4 This is a three-dimensional structural diagram of the control shaft of this utility model;
[0017] In the figure, 1-operating platform, 2-sliding groove, 3-adjusting component, 4-column, 5-sliding component, 51-snap groove, 52-fitting groove, 53-sliding hole, 54-fitting plate, 6-control shaft, 61-fitting protrusion, 63-buffer hole, 7-thrust spring, 8-abutment shaft. Detailed Implementation
[0018] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely for explaining the present utility model and are not intended to limit the present utility model.
[0019] See Figures 1-4This utility model provides a BIM building model for architectural engineering design. The BIM building model includes an operating platform 1 with several evenly spaced sliding grooves 2 on its top. By using multiple sliding grooves 2 in coordination, the different positions of the support components can be adjusted during installation and adjustment, thus adapting to the construction of different building models. Support components slidably connected inside the sliding grooves 2 support the building model. Each support component includes a sliding member 5 slidably connected inside the sliding grooves 2 and a column 4 mounted on the sliding member 5. Multiple different mounting points can be set on the column 4 to install and fix different beams, ensuring the construction of the building model. An adjusting member 3 is provided on the column 4 to adjust its height. The adjusting member 3 rotates to adjust the position of the column 4 on the sliding member 5, allowing for adjustment of the column 4's height during model construction and preventing misalignment of the column 4, which could affect the construction of the building model.
[0020] Preferably, the sliding member 5 of this utility model is provided with a control shaft 6, which is slidably and rotatably connected to the sliding member 5. The control shaft 6 extends from the bottom to the top of the sliding member 5. The column 4 is slidably connected to the control shaft 6. The bottom of the control shaft 6 is provided with a buffer hole 63. An abutment shaft 8 extending to the bottom of the control shaft 6 is slidably connected inside the buffer hole 63. A thrust spring 7 is provided between the abutment shaft 8 and the bottom of the buffer hole 63. The abutment shaft 8 cooperates with the bottom of the sliding groove 2 to fix the position of the sliding member 5. By pressing the control shaft 6, the abutment shaft 8 is pressed against the inside of the sliding groove 2. At this time, the abutment shaft 8 is pressed to the bottom under the action of the thrust spring 7. Then, under the action of the friction between the abutment shaft 8 and the bottom surface of the sliding groove 2, the position of the control shaft 6 is fixed, thereby fixing the position of the column 4 at the top of the control shaft 6.
[0021] Furthermore, the sliding member 5 of this utility model is provided with a sliding hole 53, and the sliding hole 53 is provided with mating grooves 52 on both sides. The side wall of the control shaft 6 is provided with a mating protrusion 61 corresponding to the mating groove 52. The bottom side wall of the sliding hole 53 is provided with a snap-fit groove 51 corresponding to the mating protrusion 61. When the mating protrusion 61 is snapped into the snap-fit groove 51, the position of the control shaft 6 and the sliding member 5 is fixed. During the fixing, by pressing down the control shaft 6 and then pressing the mating protrusion 61 to the bottom of the mating plate 54, the control shaft 6 compresses the thrust spring 7 and then rotates the control shaft 6 to snap the mating protrusion 61 into the snap-fit groove 51, thereby completing the snap-fit fixing of the position of the control shaft 6 and preventing the control shaft 6 from shifting, which would affect the abutment friction between the abutment shaft 8 and the bottom surface of the sliding groove 2.
[0022] Even better, one end of the adjusting member 3 of this utility model is rotatably connected to the control shaft 6, and the other end is screwed to the column 4 and extends to the top of the column 4. The sliding member 5 includes two symmetrically arranged mating plates 54, which are slidably connected to both sides of the sliding groove 2 to ensure the sliding of the sliding member 5 and the sliding groove 2, thereby facilitating the adjustment of the position of the column 4.
[0023] In this embodiment, combined with Figures 1-4 In use, the sliding plate is slidably connected to the inside of the slide groove. When the sliding plate is moved to the appropriate position, the column 4 is pressed, and the column 4 drives the control shaft 6 to slide downward. When the mating protrusion 61 is slid to the bottom of the mating plate 54, the column 4 is rotated to engage the mating protrusion 61 of the mouthpiece shaft into the snap-fit groove 51. At this time, the abutment shaft 8 is pressed against the bottom surface of the slide groove 2 by the force of the thrust spring 7. When the position of the column 4 needs to be adjusted, the height between the column 4 and the control shaft 6 is adjusted by rotating the adjusting piece 3, thereby adjusting the height of the column 4.
[0024] In summary, this utility model provides a BIM building model for architectural engineering design, comprising: an operating platform with a plurality of evenly arranged sliding grooves on its top. The use of multiple sliding grooves ensures that the positions of the support components can be adjusted during installation and adjustment, thus accommodating the construction of different building models; and support components slidably connected within the sliding grooves to support the building model. Each support component includes a sliding member slidably connected within the sliding groove and a column mounted on the sliding member. The column can be provided with multiple different mounting points, allowing for the installation and fixation of different beams, thereby ensuring the successful construction of the building model. The column is equipped with an adjusting component for height adjustment. The adjusting component rotates to adjust the position of the column on the sliding component, thereby allowing for height adjustment during model construction. This prevents misalignment of the column during model building, which could affect the construction process. In summary, the technical effect of this invention is that by providing an adjustable architectural model column structure, adjustments can be made to the fasteners on the column to loosen the connection between the column and the platform, further adjusting the column's position. Simultaneously, the column's vibration can be buffered during use, preventing damage to the architectural model.
[0025] Of course, there may be other embodiments of this utility model. Without departing from the spirit and essence of this utility model, those skilled in the art can make various corresponding changes and modifications based on this utility model, but these corresponding changes and modifications should all fall within the protection scope of the appended claims of this utility model.
[0026] In the description of this utility model, it should be understood that the terms "center," "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicating orientation or positional relationships based on the orientation or positional relationships shown in the accompanying drawings, 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, and therefore should not be construed as a limitation of this utility model. Furthermore, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of indicated technical features. Thus, features defined with "first," "second," etc., may explicitly or implicitly include one or more of that feature. In the description of this utility model, unless otherwise stated, "a plurality of" means two or more.
Claims
1. A BIM building model for construction engineering design, characterized in that, Include: Operation platform, top is equipped with several uniform setting sliding groove; Slidingly connected to the inside of the sliding groove of the building model supporting support assembly, the support assembly includes slidingly connected to the inside of the sliding groove of the sliding member and the setting on the sliding member of the column, the column is equipped with the height of the column adjusting adjusting member, the adjusting member rotates to adjust the position of the column on the sliding member.
2. The BIM building model for construction engineering design according to claim 1, characterized in that, The sliding member is provided with a control shaft, the control shaft is slidingly and rotationally connected to the sliding member, the control shaft extends from the bottom of the sliding member to the top of the sliding member, and the column is slidingly connected to the control shaft.
3. The BIM building model for construction engineering design according to claim 2, characterized in that, The bottom of the control shaft is provided with a buffer hole, the inside of the buffer hole is slidingly connected with an abutting shaft extending to the bottom of the control shaft, the abutting shaft and the bottom of the buffer hole are provided with a thrust spring, the abutting shaft and the bottom of the sliding groove cooperate to fix the position of the sliding member.
4. The BIM building model for construction engineering design according to claim 2 or 3, characterized in that, The sliding member is provided with a sliding hole, the two sides of the sliding hole are provided with a matching groove, the side wall of the control shaft is provided with a matching convex edge corresponding to the matching groove, the bottom side wall of the sliding hole is provided with a clamping groove corresponding to the matching convex edge, and the matching convex edge is clamped in the clamping groove. When the control shaft and the position of the sliding member are fixed.
5. The BIM building model for construction engineering design according to claim 4, characterized in that, One end of the adjusting member is rotationally connected to the control shaft, the other end is screwed to the column and extends to the top of the column.
6. The BIM building model for construction engineering design according to claim 5, characterized in that, The sliding member includes two symmetrically arranged matching plates, and the two matching plates are slidingly connected to the two sides of the sliding groove.