Simulation of mechanical properties and residual stress of nanostructural coatings based on transition metals nitrides

A. Danilyuk, V. Shaposhnikov, A. Filonov, V. M. Anischik, V. Uglov, Аndrew K. Kuleshov, Мaxim A. Danilyuk
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Abstract

Physical properties of novel nanostructural coatings, formed by ion-plasmous flux from solid solutions of transition and refractory metals (Ti, Zr, Cr) have been intensively studied to enhance characteristics of tool materials. We have developed the modeling technique for effective predictions of internal stresses and calculation of elastic properties of nanostructural coatings composed of metal nitrides. Quantum-mechanical modeling of microstructure, elastic constants, bulk modulus and residual stress for binary and ternary metal nitride clusters have been performed. The dependences of these characteristics on the crystal structure deformations have been investigated. The essential modification of elastic constants and bulk moduli with changes in lattice constants and stoichiometric composition has been observed. The influence of elastically stressed state of sample on X-ray diffraction intensity has been examined by using the exponential model. The model of residual stress distribution identifying in depth of wear-resistant nanostructural coating from the data of diffraction experiments has been developed.
过渡金属氮化物纳米结构涂层的力学性能和残余应力模拟
新型纳米结构涂层是由过渡金属和难熔金属(Ti, Zr, Cr)固溶体中的离子等离子体通量形成的,其物理性质得到了深入的研究,以提高刀具材料的性能。我们开发了有效预测金属氮化物纳米结构涂层内应力和弹性性能的建模技术。对二元和三元金属氮化物簇的微观结构、弹性常数、体积模量和残余应力进行了量子力学建模。研究了这些特性与晶体结构变形的关系。观察到弹性常数和体模量随晶格常数和化学计量组成的变化而发生本质的变化。用指数模型考察了试样的弹性应力状态对x射线衍射强度的影响。建立了基于衍射实验数据的耐磨纳米结构涂层内部残余应力分布识别模型。
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