Parameterized finite element simulation calculation method of point-supported glass curtain wall for improving design efficiency and storage medium
By using parametric finite element simulation calculation methods, the modeling and analysis of point-supported glass curtain walls are automated, solving the problems of low efficiency, large errors, and numerous safety hazards in existing technologies, and achieving efficient, safe, and reliable structural design.
CN122087931APending Publication Date: 2026-05-26CHINA CONSTR DONGFANG DECORATION CO LTD
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- CHINA CONSTR DONGFANG DECORATION CO LTD
- Filing Date
- 2026-04-23
- Publication Date
- 2026-05-26
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Figure CN122087931A_ABST
Abstract
The invention relates to the technical field of building curtain wall design, in particular to a parameterized finite element simulation calculation method of a point-supported glass curtain wall for improving design efficiency and a storage medium, and the method comprises the following steps: defining an input parameter set, and setting the input parameter set as a global variable; obtaining a segmentation geometric model; unit and material characteristics are given to the segmentation geometric model; performing grid division on the segmented geometric model to generate a finite element grid, so that corresponding finite element nodes exist at the positions of the geometric key points; finite element nodes are recognized, displacement constraint is applied, and meanwhile evenly-distributed pressure loads are applied; mechanical response data are obtained, and when any variable is changed, modeling calculation is repeated based on the changed parameters; and extracting stress distribution, deformation and support counterforce data from a finite element solution calculation result. According to the invention, parameterized automatic simulation is realized, and stress concentration is accurately captured; the utilization of computing resources is optimized while the large deformation behavior of the brittle glass material is accurately simulated, and the design efficiency and the structural safety are improved.
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Citation Information
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