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Concurrent topology optimization for cellular structures with nonuniform microstructures based on the kriging metamodel

机译:基于Kriging Metomodel的非均匀微结构的蜂窝结构并发拓扑优化

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This paper proposes a novel multiscale concurrent topology optimization for cellular structures with continuously varying microstructures in space to obtain a superior structural performance at an affordable computation cost. At microscale, multiple prototype microstructures are topologically optimized to represent all the microstructures within macrostructure by incorporating a numerical homogenization approach into a parametric level set method (PLSM), whose connectivity is guaranteed by a kinematical connective constraint approach. A shape interpolation technology is developed to map these optimized prototype microstructures and generate a series of nonuniform microstructures, which are considered as sample points and used to construct a kriging metamodel. The built kriging metamodel is then employed to predict the effective properties of all the nonuniform microstructures within macrostructure. At macroscale, the variable thickness sheet (VTS) method is employed to generate an overall free material distribution patterns using the predicted effective properties of all the nonuniform microstructures. With the help of shape interpolation technology, all the nonuniform microstructures within macrostructure are well connected with each other due to the similar topological features at their interfaces. Using the proposed method, the macrostructural topology as well as the locations and configurations of the spatially varying nonuniform microstructures can be simultaneously optimized to ensure a sufficiently large multiscale design space. Numerical examples are provided to demonstrate the validity and advantages of the proposed method.
机译:本文提出了一种新型多尺度并发拓扑优化,用于蜂窝结构,在空间中连续变化的微观结构,以实惠的计算成本获得优越的结构性能。在Micross尺寸中,多个原型微结构在拓扑上优化,以通过将数值均匀化方法结合到参数级集合方法(PLSM)中来表示宏观结构中的所有微结构,其连接是通过运动连接约束方法保证的。开发了一种形状插值技术,用于映射这些优化的原型微结构并产生一系列非均匀微结构,其被认为是样品点并用于构造克里格化元模型。然后采用所构建的克里格化元模型来预测大脉结构内所有非均匀微观结构的有效性质。在Macroscale,使用可变厚度片(VTS)方法来使用所有非均匀微结构的预测有效性能产生整体自由材料分布图案。在形状插值技术的帮助下,由于其界面处的类似拓扑特征,宏观结构内的所有非均匀微结构相互连接。使用所提出的方法,可以同时优化宏观结构拓扑以及空间变化的非均匀微结构的位置和配置,以确保足够大的多尺度设计空间。提供数值示例以证明所提出的方法的有效性和优点。

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