首页> 外文会议>International Mechanical Engineering Congress and Exposition 2007 >MODELING THE SIZE AND INTERFACE EFFECTS IN THIN METAL FILM- SUBSTRATE SYSTEMS USING THE STRAIN GRADIENT PLASTICITY
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MODELING THE SIZE AND INTERFACE EFFECTS IN THIN METAL FILM- SUBSTRATE SYSTEMS USING THE STRAIN GRADIENT PLASTICITY

机译:利用应变梯度可塑性模拟薄金属薄膜基体系统的尺寸和界面效应

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It is well-known by now through intensive experimental studies that have been performed at the micron and nano length scales that the material mechanical properties strongly depend on the size of specimen and the microstructural features. The classical continuum mechanics fails to address this problem since no material length scale exists in its constitutive description. On the other hand, nonlocal continuum theories of integral-type or gradient-type have been to a good extent successful in predicting this type of size effect. However, they fail to predict size effects when strain gradients are minimal such as the Hall-Petch effect. This problem is the main focus of this work. The effect of the material microstructural interfaces increase as the surface-to-volume ratio increases. It is shown in this work that interfacial effects have a profound impact on the scale-dependent plasticity encountered in microano-systems. This is achieved by developing a higher-order gradient-dependent plasticity theory that enforces microscopic boundary conditions at interfaces and free surfaces. These nonstandard boundary conditions relate the microtraction stress at the interface to the interfacial energy. Application of the proposed framework to size effects in shear loading of a thin-film on an elastic substrate is presented. Three film-interface conditions are modeled: soft, intermediate, and hard interfaces.
机译:迄今为止,通过在微米和纳米长度尺度上进行的深入实验研究众所周知,材料的机械性能在很大程度上取决于样品的大小和微观结构特征。经典的连续体力学无法解决这个问题,因为在其本构描述中不存在材料长度尺度。另一方面,整数型或梯度型的非局部连续论在很大程度上已成功地预测了这种尺寸效应。但是,当应变梯度最小时,它们无法预测尺寸效应,例如Hall-Petch效应。这个问题是这项工作的主要重点。材料微结构界面的影响随着表面体积比的增加而增加。这项工作表明,界面效应对微观/纳米系统中遇到的与尺度有关的可塑性具有深远的影响。这是通过发展一种高阶梯度相关可塑性理论来实现的,该理论在界面和自由表面上施加了微观边界条件。这些非标准边界条件将界面处的微牵引应力与界面能相关联。提出了所提出的框架在弹性基材上薄膜的剪切载荷中的尺寸效应中的应用。对三种胶片界面条件进行了建模:软界面,中间界面和硬界面。

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