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首页> 外文期刊>Journal of Multiscale Modelling >PARAMETERIZED FINITE ELEMENT MODELING OF THE SURFACE SYSTEMS WITH COATINGS WHICH CONSIDERS THE CRACKING OF THE COATINGS AND INFLUENCES OF THE CASE-HARDENING OF THE SUBSTRATE
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PARAMETERIZED FINITE ELEMENT MODELING OF THE SURFACE SYSTEMS WITH COATINGS WHICH CONSIDERS THE CRACKING OF THE COATINGS AND INFLUENCES OF THE CASE-HARDENING OF THE SUBSTRATE

机译:考虑涂层开裂的基体表面系统的参数化有限元建模以及对基体进行硬化处理的影响

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摘要

Accurately predicting the failure of multilayered surface systems, including coatings on tools or products, is of significance for all of the parties concerned within the chain of design, manufacturing and use of a product. Previous modeling work has, however, been focused largely on the effect of individual parameters rather than on the performance of a multilayered system as a whole. Design and manufacture of multilayered surface systems, currently, still relies largely on experiments and failure tests. A parameterized approach which considers geometrical, material, interfacial and loading variables, processing history, thermal effects, surface-failure modeling, etc, has therefore been developed to address the situation in order to be able to improve the efficiency and accuracy of the analysis and design of multilayered coating-systems. Material property values for the hardened case of the substrate are described with a function of the hardened depth and defined with a field method. Initial residual stresses calculated using a newly developed theoretical model are incorporated into the model as initial stress conditions. Thermo-mechanical coupled modeling is incorporated into the model so as to be able to consider temperature effects. These are associated with a cohesive-element modeling approach, which has been used to predict indentation-induced crack initiation and propagation within the coating layer. The comparison of experimental results with those of numerical modeling affords excellent agreement. The parameterized modeling method developed allows for the parameters to be changed easily during a series analysis. Combined with the capability of the prediction of cracking of the coatings, the developed method/model provides an efficient way for investigating the effects of these parameters on the behavior of multilayered systems, which is demonstrated by the analysis of three cases of the coated tool steels (H11): (i) a substrate without being pre-heat-treated; and (ii) two substrates with a shallow and a deep hardened-case, respectively, (both are treated by plasma-nitriding). The results showed that the case-hardening of a substrate has a significant influence on the performance of the surface system with coating, especially on its load-bearing capacity and the cracking of the coating.
机译:准确预测多层表面系统的故障,包括工具或产品上的涂层,对于产品设计,制造和使用链中的所有相关方都具有重要意义。但是,以前的建模工作主要集中在单个参数的效果上,而不是整个多层系统的性能上。目前,多层表面系统的设计和制造仍主要依靠实验和故障测试。因此,开发了一种考虑几何,材料,界面和载荷变量,加工历史,热效应,表面破坏建模等的参数化方法,以解决这种情况,从而能够提高分析的效率和准确性,多层涂料系统的设计。用硬化深度的函数描述基板硬化情况的材料属性值,并通过现场方法进行定义。使用新开发的理论模型计算的初始残余应力作为初始应力条件并入模型。将热力耦合建模纳入模型中,以便能够考虑温度影响。这些与内聚元素建模方法相关,该方法已用于预测压痕引起的裂纹萌生和在涂层内扩展。实验结果与数值模拟结果的比较提供了很好的一致性。开发的参数化建模方法允许在系列分析过程中轻松更改参数。结合预测涂层开裂的能力,开发的方法/模型为研究这些参数对多层体系行为的影响提供了一种有效的方法,这通过对三种涂覆工具钢的分析得到了证明。 (H11):(i)未经预处理的基板; (ii)分别具有较浅和较深硬化层的两个基板(均通过等离子体氮化处理)。结果表明,基体的表面硬化对带有涂层的表面体系的性能有重要影响,特别是对其承重能力和涂层的开裂有很大影响。

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