An ALC wallboard deepening design calculation method, system and storage medium

By using BIM technology to refine the design of ALC wall panels and using the target wall model and node files for decomposition, the problems of delays and cost waste caused by the complexity of ALC wall panel design quantity calculation were solved, achieving more efficient and accurate engineering quantity calculation.

CN115391868BActive Publication Date: 2026-05-01ZHANGZHOU CITY INVESTMENT DESIGN CONSULTING GRP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ZHANGZHOU CITY INVESTMENT DESIGN CONSULTING GRP CO LTD
Filing Date
2021-07-16
Publication Date
2026-05-01

AI Technical Summary

Technical Problem

In engineering construction, the design and calculation of ALC wall panels are complex and prone to errors, leading to project delays and cost waste.

Method used

The target wall model and component parametric families are established using BIM technology. The model is split into parts by node files to generate a split model. The design is further refined using a pre-set drawing template, and the engineering quantity calculation details are exported.

Benefits of technology

It improves the efficiency of ALC wall panel design and the accuracy of engineering quantity calculation, reducing downtime and cost waste.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application relates to the field of architectural design, and in particular to a method and system for deepening design calculation of an ALC wallboard and a storage medium, which comprises the following steps: establishing a target wall body BIM model and a component BIM parameterized family; preparing a node file according to the component BIM parameterized family; splitting the target wall body BIM model by using the node file to obtain a split model; deepening design drawing by using a preset drawing template according to the split model; and exporting an engineering calculation quantity detail table by using the split model. The application can fully exert the application of BIM technology in ALC wallboard design, improve work efficiency, and improve the accuracy of engineering calculation quantity.
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Description

Technical Field

[0001] This invention relates to the field of architectural design, and in particular to a method, system, and storage medium for calculating quantities in the detailed design of ALC wall panels. Background Technology

[0002] ALC panels are porous concrete panels made primarily from silica sand, cement, lime, and steel bars, cured under high pressure with steam. They can be used as wall materials, roof panels, floor slabs, and decorative panels, making them a high-performance new type of building material.

[0003] During the construction process, there are various design methods for ALC wall panels. However, the more information that needs to be integrated, the more complex the design and quantity calculation of ALC wall panels will become. Often, due to the large amount of work involved, errors in the design and quantity calculation of ALC wall panels will occur, leading to a high probability of project delays, time constraints, and wasted costs. Summary of the Invention

[0004] To improve work efficiency and increase the accuracy of engineering quantity calculation, this application provides a method, system, and storage medium for ALC wall panel detailed design quantity calculation.

[0005] Firstly, this application provides a method for quantity calculation in the detailed design of ALC wall panels, employing the following technical solution:

[0006] A method for quantity calculation in detailed design of ALC wall panels includes the following steps:

[0007] Establish the target wall BIM model and component BIM parametric families;

[0008] Create node files based on the BIM parametric families of the components;

[0009] The target wall BIM model is split using the node file to obtain a split model;

[0010] Based on the split model, a preset drawing template is used to perform detailed design and drawing;

[0011] The detailed engineering quantity calculation table is derived using the aforementioned splitting model.

[0012] By adopting the above technical solutions, the application of BIM technology in ALC wall panel design can be fully utilized. Node files can be created based on the BIM parametric families of the components, and the target wall BIM model can be automatically split using the node files, thereby improving work efficiency and the accuracy of engineering quantity calculation.

[0013] Optionally, the component BIM parametric family includes the ALC wall panel BIM parametric family, which includes the relevant parameters and connection details of the ALC wall panel.

[0014] Optionally, creating node files based on the component BIM parametric family includes the following steps:

[0015] Import the target wall BIM model into Dynamo;

[0016] The imported target wall BIM model is converted into lines, lines are broken into points, and points are converted into coordinates.

[0017] Based on the ALC wall panel BIM parametric family, the ALC wall panels are inserted according to the coordinates to form the node file.

[0018] Optionally, the component BIM parametric family further includes a structural column BIM parametric family, which includes structural column-related parameters.

[0019] Optionally, creating node files based on the component BIM parametric family includes the following steps:

[0020] Import the target wall BIM model into Dynamo;

[0021] The imported target wall BIM model is converted into lines, lines are broken into points, and points are converted into coordinates.

[0022] Based on the ALC wall panel BIM parametric family and the structural column BIM parametric family, the ALC wall panel is inserted according to the coordinates, and the structural column is created according to the line outline to form the node file; wherein, the line segment length satisfies the insertion of the ALC wall panel, and the part that does not satisfy the length is inserted into the structural column.

[0023] Optionally, the step of using the node file to split the target wall BIM model to obtain a split model specifically includes: using the node file and adopting a preset splitting rule to split the target wall BIM model to obtain a split model.

[0024] Optionally, the preset splitting rules include: a splitting rule for an integer number of ALC wall panels, a splitting rule for an integer number of ALC wall panels with a structural column at one end, and a splitting rule for an integer number of ALC wall panels with structural columns at both ends.

[0025] Secondly, this application provides a system for calculating the quantity of ALC wall panel detailed design, which adopts the following technical solution:

[0026] A system for calculating the quantity of ALC wall panel detailed design includes a memory and a processor, wherein the memory stores a computer program that can be loaded by the processor and executed by any of the methods described above.

[0027] Thirdly, this application provides a computer-readable storage medium, which adopts the following technical solution:

[0028] A computer-readable storage medium storing a computer program that can be loaded by a processor and executed by any of the methods described above.

[0029] In summary, this application fully leverages BIM technology in the detailed design of ALC wall panels, improving work efficiency and enhancing the accuracy of engineering quantity calculations. Attached Figure Description

[0030] Figure 1 This is a schematic diagram of the method and flow for calculating the quantity of ALC wall panels in this application.

[0031] Figure 2 This is a schematic diagram of the first method of using pure wall panel splicing for the L-shaped wall in this application.

[0032] Figure 3 This is a schematic diagram of the second method of using pure wall panel splicing for the L-shaped wall in this application.

[0033] Figure 4 This is a schematic diagram of the first method of setting structural columns at the corner of the L-shaped wall in this application.

[0034] Figure 5 This is a schematic diagram of the second method for setting structural columns at the corner of the L-shaped wall in this application.

[0035] Figure 6 This is a flowchart illustrating how the target wall BIM model is split using node files, as described in this application. Detailed Implementation

[0036] To make the purpose, technical solution, and advantages of this application clearer, the following description is provided in conjunction with the appendix. Figure 1-6 The present application will be further described in detail below with reference to embodiments. It should be understood that the specific embodiments described herein are for illustrative purposes only and are not intended to limit the scope of the application.

[0037] Building Information Modeling (BIM) is a new tool in architecture, engineering, and civil engineering. The core of BIM is to create a virtual 3D model of a building project and, using digital technology, provide this model with a complete and accurate database of building information. This database includes not only geometric information, professional attributes, and status information describing building components, but also status information of non-component objects (such as spatial and movement behaviors). This 3D model containing building information significantly improves the level of information integration in building projects, thus providing a platform for information exchange and sharing among stakeholders in the project.

[0038] This application discloses a method for quantity calculation in the detailed design of ALC wall panels. (Refer to...) Figure 1 This application uses BIM technology to perform detailed design and quantity calculation for ALC wall panels. The method includes the following steps:

[0039] S01: Establish the target wall BIM model and component BIM parametric families;

[0040] Use Revit software to create a target wall BIM model and component BIM parametric families for quantity calculation in the detailed design of ALC wall panels; the component BIM parametric families are used to describe the parameters of the component characteristics, wherein the components include ALC wall panels and / or structural columns that make up the wall.

[0041] S02: Create node files based on the BIM parametric families of the components;

[0042] In one embodiment of this application, as an implementation method for creating node files, the component BIM parametric family includes the ALC wall panel BIM parametric family. The ALC wall panel BIM parametric family includes the length, width, height and other related parameters of the ALC wall panel and the connection details, wherein the connection details include the connection structure between adjacent ALC wall panels.

[0043] Specifically, creating node files based on the component BIM parametric families includes the following steps:

[0044] Import the target wall BIM model into Dynamo;

[0045] The imported target wall BIM model is converted into lines, lines are broken into points, and points are converted into coordinates.

[0046] Based on the ALC wall panel BIM parametric family, insert the ALC wall panels according to the above coordinates to form a node file.

[0047] As another implementation method for creating node files, the component BIM parametric family includes the ALC wall panel BIM parametric family and the structural column BIM parametric family. The ALC wall panel BIM parametric family includes the length, width, height and other related parameters of the ALC wall panel and the connection details. The structural column BIM parametric family includes the length, width, height and other related parameters of the structural column. The connection details include the connection structure between adjacent ALC wall panels and / or the connection structure between the ALC wall panel and the structural column.

[0048] Specifically, creating node files based on the component BIM parametric families includes the following steps:

[0049] Import the target wall BIM model into Dynamo;

[0050] The imported target wall BIM model is converted into lines, lines are broken into points, and points are converted into coordinates.

[0051] Based on the ALC wall panel BIM parametric family and the structural column BIM parametric family, the ALC wall panel is inserted according to the above coordinates, and the structural column is created according to the line outline of the above lines, forming a node file. Specifically, when the remaining line segment length is greater than the length of the ALC wall panel, the ALC wall panel is inserted; when the remaining line segment length is less than the length of the ALC wall panel, the structural column is inserted. The structural column size is generated according to the remaining line segment length. For example, assuming the target wall length is 10 meters and the ALC wall panel length is 3 meters, during the first insertion, the remaining line segment length is 10 meters, which is greater than the ALC wall panel length. The length of wall panel C is 3 meters. Therefore, wall panel ALC is inserted for the first time. When it is inserted for the second time, the remaining line segment length is 10-3=7 meters, which is greater than the length of wall panel ALC of 3 meters. Therefore, wall panel ALC is inserted for the second time. When it is inserted for the third time, the remaining line segment length is 7-3=4 meters, which is greater than the length of wall panel ALC of 3 meters. Therefore, wall panel ALC is inserted for the third time. When it is inserted for the fourth time, the remaining line segment length is 4-3=1 meter, which is less than the length of wall panel ALC of 3 meters. Therefore, structural column is inserted for the fourth time, and the size of structural column is generated according to the remaining line segment length of 1 meter.

[0052] S03: Use node files to split the target wall BIM model to obtain the split model;

[0053] Specifically, this includes: using node files and pre-defined splitting rules to split the target wall BIM model to obtain a split model.

[0054] The preset splitting rules include: splitting rules for an integer number of ALC wall panels, splitting rules for an integer number of ALC wall panels with a structural column at one end, and splitting rules for an integer number of ALC wall panels with structural columns at both ends.

[0055] Specifically, assuming the length of the ALC wall panel BIM parametric family is l and the thickness is d0, the structural column BIM parametric family is divided into structural column Z1: length a, width d1; structural column Z2: length b, width d2; the length of the target wall is L and the height is h; where d0=d1=d2; the specific rule for splitting an integer number of ALC wall panels is: L=nl, where n is a positive integer; the specific rule for splitting an integer number of ALC wall panels with a structural column at one end is: L=a+nl, where n is a positive integer; the specific rule for splitting an integer number of ALC wall panels with structural columns at both ends is: L=a+nl+b, where n is a positive integer.

[0056] In this embodiment of the application, the L-shaped wall also needs to be split up, for example:

[0057] 1. Reference Figure 2 The L-shaped wall is made of pure wall panel splicing, and the wall panels are connected by rivets. The wall thickness of the L-shaped wall is d, the long side A (including the wall thickness d) and the short side B (excluding the wall thickness d). The length of the ALC wall panel is l and the thickness is equal to the wall thickness d. Then the splitting rule is A=nl+x, B=nl+y, where n is a positive integer and x and y are the lengths of the wall panels to be cut.

[0058] 2. Reference Figure 3 The L-shaped wall is made of pure wall panel splicing, and the wall panels are connected by rivets. The wall thickness of the L-shaped wall is d, the long side is A (excluding the wall thickness d), the short side is B (including the wall thickness d), and the length of the ALC wall panel is l, and the thickness is equal to the wall thickness d. Then the splitting rule is A=nl+x, B=nl+y, where n is a positive integer, and x and y are the lengths of the wall panels to be cut.

[0059] 3. Reference Figure 4 A structural column is set at the corner of an L-shaped wall. The wall thickness is d, the long side is A (including wall thickness d), the short side is B (including wall thickness d), the length of the ALC wall panel is l, and the thickness is equal to the wall thickness d. The structural column is uniformly made of square steel with a side length equal to the wall thickness d. Then the splitting rule is A=nl+d+x, B=nl+d+y, where n is a positive integer, and x and y are the lengths of the wall panels to be cut.

[0060] 4. Reference Figure 5 A structural column is set at the corner of an L-shaped wall. The wall thickness is d, the long side is A (including the wall thickness d), the short side is B (including the side length a of the structural column), the length of the ALC wall panel is l, and the thickness is equal to the wall thickness d. The structural column is a custom-sized cast-in-place concrete with one side length a and the other side length equal to the wall thickness d. Then the splitting rule is A=nl+d+x, B=nl+a, where n is a positive integer, x is the length of the wall panel to be cut, and the side length a is generated according to the remaining line segment length of the target wall, for example, the remaining line segment length in the above example is 1 meter.

[0061] Reference Figure 6 In this embodiment, the target wall BIM model is split using node files to obtain a split model. Specifically, the steps include: First, the wall length parameter value is obtained using the "Element.GetParameterValueByName" node, where the wall length parameter value is generated by selecting the model element and the length code block; then, the "Get" node is used to combine the wall length parameter value and the ALC wall panel length l to calculate the number of ALC wall panels; next, the "Divisible" node is used to divide the obtained number of ALC wall panels and input it as a parameter in the ALC wall panel BIM parameter family into the "ALC wall panel length l" node; finally, the "Curve.PointAtParameter" node is used to calculate the number of ALC wall panels based on the "Select" node. The curve information obtained from the "Edge" node is used to segment the ALC wall panel BIM parametric family in the "ALC wall panel length l" node to obtain the corresponding points, which are then stored in the "List.Dropltems" node. Finally, the "FamilyInstance.ByPointAndLevel" node is used to perform a detailed layout design at the corresponding points based on the corresponding points stored in the "List.Dropltems" node and the structural column BIM parametric family obtained from the "Family Types" node, using the aforementioned preset splitting rules.

[0062] S04: Based on the split model, use the preset drawing template to carry out detailed design and drawing; reflect the plan, elevation, section and 3D model of the split ALC wall panel in the BIM drawings. The preset drawing template can be selected according to the specific project requirements.

[0063] S05: Use the split model to export the engineering quantity calculation details table, which is used for engineering material cutting. The engineering quantity calculation details table includes the ALC wall panel parameters and quantities, structural column parameters and quantities, and other engineering quantity calculations.

[0064] This application fully leverages BIM technology in ALC wall panel design, improving work efficiency and increasing the accuracy of engineering quantity calculations.

[0065] This application also provides a system for calculating the quantity of ALC wall panel detailed design, including a memory and a processor. The memory stores a computer program that can be loaded by the processor and executed by any of the above methods.

[0066] This application also provides a computer-readable storage medium storing a computer program that can be loaded by a processor and executed by any of the methods described above.

[0067] Computer-readable storage media include, for example, USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks, and other media capable of storing program code.

[0068] The above are all preferred embodiments of this application and are not intended to limit the scope of protection of this application. Any feature disclosed in this specification (including the abstract and drawings) may be replaced by other equivalent or similar features unless specifically stated otherwise. That is, unless specifically stated otherwise, each feature is only one example of a series of equivalent or similar features.

Claims

1. A method for quantity calculation in detailed design of ALC wall panels, characterized in that, Includes the following steps: Establish a BIM model of the target wall and a component BIM parametric family including an ALC wall panel BIM parametric family and a structural column BIM parametric family. The ALC wall panel BIM parametric family includes relevant parameters and connection details of the ALC wall panel, and the structural column BIM parametric family includes relevant parameters of the structural column. Create node files based on the component BIM parametric families; the creation of node files based on the component BIM parametric families includes: importing the target wall BIM model into Dynamo; converting the imported target wall BIM model into lines, splitting the lines into points, and converting the points into coordinates; inserting ALC wall panels according to the coordinates and creating structural columns according to the line outlines based on the ALC wall panel BIM parametric families and structural column BIM parametric families, forming the node files; wherein, when the remaining line segment length is greater than the length of the ALC wall panel, inserting an ALC wall panel; when the remaining line segment length is less than the length of the ALC wall panel, inserting a structural column; and generating the structural column dimensions according to the remaining line segment lengths. Using the node file, the target wall BIM model is split according to a preset splitting rule to obtain a split model; The preset splitting rules include the splitting rules for L-shaped walls. Structural columns are set at the corners of the L-shaped walls. The wall thickness of the L-shaped wall is d. The length of the ALC wall panel is l, and the thickness is equal to the wall thickness d. The structural columns are cast-in-place concrete of custom dimensions, with one side length being a and the other side length being equal to the wall thickness d. The L-shaped wall splitting rules include: the splitting length of the long side A is n times the wall panel length l plus the wall thickness d plus the length x of the wall panel to be cut; the splitting length of the short side B is n times the wall panel length l plus the side length a of the structural column, where n is a positive integer. The side length a of the structural column is generated according to the length of the remaining line segment. Based on the split model, a preset drawing template is used to perform detailed design and drawing; The detailed engineering quantity calculation table is derived using the aforementioned splitting model.

2. A system for calculating quantities in detailed design of ALC wall panels, characterized in that: It includes a memory and a processor, wherein the memory stores a computer program that can be loaded by the processor and executed as described in claim 1.

3. A computer-readable storage medium, characterized in that, The computer program is stored that can be loaded by a processor and executed as described in claim 1.