Numerical simulation and verification of adaptive shading modules with buckling as the driver for functionality

Yang Hu, M. Khezri, K. Rasmussen
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Abstract

In the conventional design paradigm, buckling of slender structural members is seen as a route toward failure and measures are taken to avoid its onset. In recent years, a new approach challenging this paradigm is emerging where the mechanical instability of slender elements is utilised to achieve novel modes of functionality. By adopting such a framework, the flexural-torsional buckling of frame geometries can be exploited as a driver to change the shape of slender structural frames to fulfil specific shading functionalities. This study is concerned with the numerical simulation of recently developed simple frames in which out-of-plane buckling of component members is judiciously harnessed to construct adaptive shading modules. Advanced numerical simulations are conducted using Abaqus software to gain a better understanding of the factors that affect the behaviour and performance of the proposed solutions. Building on the gained insight, a comprehensive search strategy is devised for finding optimum solutions for the governing geometrical and actuation parameters. Within the constructed search space, non-linear post buckling analyses are carried out to determine the resultant shading area and to quantify the influence of the governing parameters.
以屈曲为功能驱动的自适应遮光模块的数值模拟与验证
在传统的设计范式中,细长结构构件的屈曲被视为走向破坏的途径,并采取措施来避免其发生。近年来,一种挑战这种范式的新方法正在出现,其中细长元素的机械不稳定性被用来实现新的功能模式。通过采用这样的框架,框架几何形状的弯曲-扭转屈曲可以作为驱动程序来改变细长结构框架的形状,以实现特定的遮阳功能。本研究关注的是最近开发的简单框架的数值模拟,其中构件的面外屈曲被明智地利用来构建自适应遮光模块。使用Abaqus软件进行高级数值模拟,以更好地了解影响所提出的解决方案的行为和性能的因素。建立在获得的洞察力,一个全面的搜索策略是为寻找最优解决方案的控制几何和驱动参数设计。在构建的搜索空间内,进行非线性后屈曲分析,以确定所产生的阴影区域,并量化控制参数的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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