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Diffusive, Displacive Deformations and Local Phase Transformation Govern the Mechanics of Layered Crystals: The Case Study of Tobermorite

机译:弥散,位移变形和局部相变控制层状晶体的力学:以钨铁矿为例

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摘要

Understanding the deformation mechanisms underlying the mechanical behavior of materials is the key to fundamental and engineering advances in materials' performance. Herein, we focus on crystalline calcium-silicate-hydrates (C-S-H) as a model system with applications in cementitious materials, bone-tissue engineering, drug delivery and refractory materials, and use molecular dynamics simulation to investigate its loading geometry dependent mechanical properties. By comparing various conventional (e.g. shear, compression and tension) and nano-indentation loading geometries, our findings demonstrate that the former loading leads to size-independent mechanical properties while the latter results in size-dependent mechanical properties at the nanometer scales. We found three key mechanisms govern the deformation and thus mechanics of the layered C-S-H: diffusive-controlled and displacive-controlled deformation mechanisms, and strain gradient with local phase transformations. Together, these elaborately classified mechanisms provide deep fundamental understanding and new insights on the relationship between the macro-scale mechanical properties and underlying molecular deformations, providing new opportunities to control and tune the mechanics of layered crystals and other complex materials such as glassy C-S-H, natural composite structures, and manmade laminated structures.
机译:了解材料力学行为的变形机理是材料性能的基础和工程学进步的关键。本文中,我们重点研究晶体硅酸钙水合物(C-S-H)作为模型系统,其在胶结材料,骨组织工程,药物输送和耐火材料中的应用,并使用分子动力学模拟研究其依赖于加载几何的力学性能。通过比较各种常规的(例如,剪切,压缩和拉伸)和纳米压痕加载几何形状,我们的发现表明,前者加载导致尺寸无关的机械性能,而后者导致纳米级的尺寸依赖的机械性能。我们发现了控制层状C-S-H变形的三种关键机制,即力学:扩散控制和位移控制的变形机制,以及具有局部相变的应变梯度。这些精心分类的机制共同为宏观机械性能与潜在分子变形之间的关系提供了深刻的基础理解和新见识,为控制和调整层状晶体和其他复杂材料(如玻璃状CSH,天然)的力学提供了新机会。复合结构和人造层压结构。

著录项

  • 作者

    Tao Lei; Shahsavari Rouzbeh;

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  • 年度 2017
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  • 原文格式 PDF
  • 正文语种 eng
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