3Ds MAX到FEM的建筑热分布:一个案例研究

Zahra Pezeshki, A. Soleimani, A. Darabi
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引用次数: 3

摘要

建筑结构的复杂性,不规则的几何形状,不同的建筑材料,不同的形态,变化和损坏,对不同类型作用下的结构性能的数字建模和仿真提出了许多挑战。大多数的研究集中在三维几何数据的导入有限元方法(FEM)的应用。本文提出了一种创新的两步方法(3ds MAX-to-FEM),能够将三维工作室建模,动画和渲染软件/Autodesk (3ds MAX)文件转换为结构模拟的FEM。在这项研究中,3ds MAX文件是一个大型建筑,已经进行了精确的调查,整合了几何方面,元素互连和建筑方面的考虑。然后将其转换到COMSOL Multiphysics环境中进行热模拟测试,并进行几何合理化,以保留不规则性和异常,如垂直偏差和厚度变化。在设置了材料属性、载荷和边界条件后,结构模拟以尊重建筑独特性和真实性的详细模型运行。一个真实的案例研究说明和讨论,以证明一个严格的3ds MAX到FEM的工作流程可以生成一个精确的实用方法,用于COMSOL中热分布操作的3D可视化和模拟。为了考虑到建筑物的几何不规则性,我们使用3ds MAX文件导出的3D网格进行结构模拟。COMSOL Multiphysics是一种利用人工智能和软计算进行高速、高精度计算的软件工具,将不同类型的现象进行计算并显示在一起。本文将仿真结果与实际结果进行了比较。这里,说明了所提出的方法的优点和缺点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
3Ds MAX to FEM for building thermal distribution: A case study
The complication of building constructions, with irregular geometry, different building materials, variable morphology, alterations and damages, poses numerous challenges in the digital modeling and simulation of structural performances under different types of actions. Most of the research is focused on importing Three Dimension (3D) geometry data in a Finite Element Method (FEM) applications. This paper presents an innovative two-step methodology (3ds MAX-to-FEM) able to convert a Three Dimension Studio Modeling, Animation & Rendering Software/Autodesk (3ds MAX) file into a FEM for structural simulation. In this study, the 3ds MAX file is a large building, has been carried out with an accurate survey that integrates geometrical aspects, element interconnections, and architectural considerations. Then it is turned into COMSOL Multiphysics environment and tested thermal simulation with a geometric rationalization which preserves irregularities and anomalies, such as verticality deviation and variable thickness. After setting material properties, loads, and boundary conditions, the structural simulation is run with a detailed model that respects the uniqueness and authenticity of the building. A real case study is illustrated and discussed to prove that a rigorous 3ds MAX to FEM workflow allows the generation of an accurate practical methodology for 3D visualization and simulation for thermal distribution operation in COMSOL. Structural simulation was carried out with a 3D mesh derived from the 3ds MAX file in order to take into consideration the geometrical irregularity of a building. COMSOL Multiphysics is a software tool uses artificial intelligent and soft computing for doing computations with high speed and accuracy, and computes and shows different types of phenomenon together. In this study simulation results compare with the reality results. Here, the advantages and disadvantages of the proposed approach are illustrated.
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