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Theory-Guided Materials Design of Multi-Phase Ti-Nb Alloys with Bone-Matching Elastic Properties

机译:具有骨匹配弹性的多相Ti-Nb合金的理论指导材料设计

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We present a scale-bridging approach for modeling the integral elastic response of polycrystalline composite that is based on a multi-disciplinary combination of (i) parameter-free first-principles calculations of thermodynamic phase stability and single-crystal elastic stiffness; and (ii) homogenization schemes developed for polycrystalline aggregates and composites. The modeling is used as a theory-guided bottom-up materials design strategy and applied to Ti-Nb alloys as promising candidates for biomedical implant applications. The theoretical results (i) show an excellent agreement with experimental data and (ii) reveal a decisive influence of the multi-phase character of the polycrystalline composites on their integral elastic properties. The study shows that the results based on the density functional theory calculations at the atomistic level can be directly used for predictions at the macroscopic scale, effectively scale-jumping several orders of magnitude without using any empirical parameters.
机译:我们提出了一种基于尺度的桥接方法来建模多晶复合材料的整体弹性响应,该方法基于以下多个学科的组合:(i)热力学相稳定性和单晶弹性刚度的无参数第一性原理计算; (ii)为多晶骨料和复合材料开发的均质方案。该模型被用作理论指导的自下而上的材料设计策略,并被应用于Ti-Nb合金,作为生物医学植入物应用的有希望的候选者。理论结果(i)与实验数据非常吻合,并且(ii)显示了多晶复合材料的多相特性对其整体弹性的决定性影响。研究表明,基于原子级密度泛函理论计算的结果可直接用于宏观尺度的预测,无需使用任何经验参数即可有效地将尺度跳跃几个数量级。

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