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Data-driven intelligent optimisation of discontinuous composites

机译:无连续复合材料的数据驱动智能优化

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摘要

Fibre composites, and especially aligned discontinuous composites (ADCs), offer enormous versatility in composition, microstructure, and performance, but are difficult to optimise, due to their inherent variability and myriad permutations of microstructural design variables. This work combines an accurate yet efficient virtual testing framework (VTF) with a data-driven intelligent Bayesian optimisation routine, to maximise the mechanical performance of ADCs for a number of single- and multi-objective design cases. The use of a surrogate model helps to minimise the number of optimisation iterations, and provides a more accurate insight into the expected performance of materials which feature significant variability. Results from the single-objective optimisation study show that a wide range of structural properties can be achieved using ADCs, with a maximum stiffness of 505 GPa, maximum ultimate strain of 3.94%, or a maximum ultimate strength of 1.92 GPa all possible. A moderate trade-off in performance can be achieved when considering multi-objective optimisation design cases, such as an optimal ultimate strength & ultimate strain combination of 982 MPa and 3.27%, or an optimal combination of 720 MPa yield strength & 1.91% pseudo-ductile strain.
机译:纤维复合材料,特别是对齐的不连续复合材料(ADCS),在组成,微观结构和性能方面提供巨大的通用性,但由于它们的微观结构设计变量的固有变异性和无数序列,难以优化。这项工作与数据驱动的智能贝叶斯优化例程相结合了准确但有效的虚拟测试框架(VTF),以最大限度地提高ADC的机械性能,以获得许多单个和多目标设计案例。代理模型的使用有助于最大限度地减少优化迭代的数量,并提供更准确的洞察力,进入具有显着变化性的材料的预期性能。单目标优化研究结果表明,可以使用ADC实现各种结构性能,最大刚度为505GPa,最大终极应变为3.94%,或最大的最终强度为1.92GPa。在考虑多目标优化设计案例时,可以实现中等折衷的性能,例如最佳的最终强度和982MPa和3.27%的最佳菌株组合,或者最佳组合为720MPa屈服强度和1.91%伪韧性菌株。

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