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Functionally graded concrete: Numerical design methods and experimental tests of mass-optimized structural components

机译:功能梯度混凝土:质量优化结构部件的数值设计方法和实验测试

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摘要

Functional gradation of concrete elements makes it possible to align the internal composition of structural components with specific structural and thermal performance requirements. This alignment is made possible by continuously altering the characteristics of the material, including its porosity, strength, or rigidity, in up to 3 spatial dimensions. This principle can be applied to minimize the mass of the element and to create multifunctional properties. Numerical design methods are used to develop the gradation layout that serves as a digital blueprint for such components. This paper describes tests performed on functionally graded beams. These tests have made it possible to derive conclusions with respect to the elements' structural behavior. These tests also allow for a precise assessment of the weight savings that can potentially be achieved compared with structural components made from normal concrete. Test results were subsequently replicated by numerical simulations. The models calibrated in this step have established the basis to develop numerical design methods that rely on the principle of topology optimization.
机译:混凝土元件的功能分级可以使结构组件的内部组成与特定的结构和热性能要求保持一致。通过连续更改材料的特性(包括其孔隙率,强度或刚度),最多可以在3个空间维度上进行对齐。可以应用此原理以最小化元素的质量并创建多功能属性。使用数值设计方法来开发渐变布局,该布局用作此类组件的数字化蓝图。本文介绍了对功能渐变梁进行的测试。这些测试使得有可能得出关于元素的结构行为的结论。与由普通混凝土制成的结构部件相比,这些测试还可以精确评估可能减轻的重量。随后通过数值模拟复制测试结果。在此步骤中校准的模型已建立了开发基于拓扑优化原理的数值设计方法的基础。

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