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首页> 外文期刊>Wear: an International Journal on the Science and Technology of Friction, Lubrication and Wear >Microstructural modeling of adaptive nanocomposite coatings for durability and wear
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Microstructural modeling of adaptive nanocomposite coatings for durability and wear

机译:适应性纳米复合涂料的耐久性和耐磨性的微观结构建模

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摘要

Adaptive thin-film nanocomposite coatings comprised of crystalline ductile phases of gold and molybdenum disulfide, and brittle phases of diamond like carbon (DLC) and ytrria stabilized zirconia (YSZ) have been investigated by specialized microstructurally based finite-element techniques. One of the major objectives is to determine optimal crystalline and amorphous compositions and behavior related to wear and durability over a wide range of thermo-mechanical conditions. The interrelated effects of microstructural characteristics such as grain shapes and sizes, local material behavior due to interfacial stresses and strains, varying amorphous and crystalline compositions, and transfer film adhesion on coating behavior have been studied. The computational predictions, consistent with experimental observations, indicate specific interfacial regions between DLC and ductile metal inclusions are critical regions of stress and strain accumulation that can be precursors to material failure and wear. It is shown by varying the composition, resulting in tradeoffs between lubrication, toughness, and strength, the effects of these critical stresses and strains can be controlled for desired behavior. A mechanistic model to account for experimentally observed transfer film adhesion modes was also developed, and based on these results, it was shown that transfer film bonding has a significant impact on stress and wear behavior.
机译:自适应薄膜纳米复合涂层由金和二硫化钼的结晶延性相以及类金刚石碳(DLC)和氧化钇稳定的氧化锆(YSZ)的脆性相组成,已通过专门的基于微结构的有限元技术进行了研究。主要目标之一是确定在广泛的热机械条件下与磨损和耐用性相关的最佳晶体和非晶成分以及性能。已经研究了微观结构特征(如晶粒形状和大小,由于界面应力和应变导致的局部材料行为,变化的非晶态和晶体组成以及转移膜粘附性)对涂层行为的相互影响。与实验观察结果一致的计算预测表明,DLC和延性金属夹杂物之间的特定界面区域是应力和应变累积的关键区域,可能是材料破坏和磨损的先兆。通过改变成分可以看出,在润滑,韧性和强度之间进行权衡,可以针对所需行为控制这些临界应力和应变的影响。还建立了一个机械模型来解释实验观察到的转移膜粘附模式,并且基于这些结果,表明转移膜的粘结对应力和磨损行为具有重大影响。

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