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Direct design to stress mapping for cellular structures

机译:直接设计到细胞结构的应力映射

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This paper aims toinstantlypredict withinanyaccuracy the stress distribution of cellular structures under parametric design, including the shapes or distributions of the cell geometries, or the magnitudes of external loadings. A classical model reduction technique has to balance the simulation accuracy and interaction speed, and has difficulty achieving this goal. We achieve this by computing offline adesign-to-stress mappingthat ultimately expresses the stress distribution as an explicit function in terms of its design parameters. The mapping is determined as a solution to an extended finite element analysis problem in a high-dimension space, including both the spatial coordinates and the design parameters. The well-known curse of dimensionality intrinsic to the high-dimension problem is (partly) resolved through a spatial separation using two main techniques. First, the target mapping takes a reduced form as a sum of the products of separated one-variable functions, extending the proper generalized decomposition technique. Second, the simulation problem in a varied computation domain is reformulated as that in a fixed-domain, taking an integration function as the sum of the products of separated one-variable functions, in combination with high-order singular value decomposition. Extensive 2D and 3D examples are shown to demonstrate the approach’s performance.
机译:本文旨在即时预测参数设计下细胞结构的应力分布,包括细胞几何形状或分布,或外部载荷的大小。经典的模型约简技术必须平衡仿真精度和交互速度,并且难以实现此目标。我们通过计算脱机设计到应力映射来实现此目的,该映射最终将应力分布表示为根据其设计参数的显式函数。确定映射是解决高维空间中扩展的有限元分析问题(包括空间坐标和设计参数)的解决方案。高维问题固有的众所周知的维数诅咒(部分)通过使用两种主要技术的空间分离来解决。首先,目标映射采用简化形式,作为分离的单变量函数乘积的总和,从而扩展了适当的广义分解技术。其次,将积分函数作为分离的一元函数乘积之和,再结合高阶奇异值分解,将可变计算域中的仿真问题重新公式化为固定域中的仿真问题。展示了广泛的2D和3D示例,以演示该方法的性能。

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