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Rupture of alumina coatings on C35 steel: A numerical simulation

机译:C35钢上的氧化铝涂层破裂:数值模拟

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摘要

The knowledge of the rupture mechanism of multilayer systems is necessary for improving the bonding of materials, particularly for the ceramic-to-metal junctions, and especially in the case of the ceramic coatings on metallic substrates. For this purpose, coupling experimental measurements of macroscopic interfacial adhesions with numerical tools of fracture mechanics allow understanding how the stress distribution and the cracking mechanisms are influenced by the local environment. This brings an explanation to the cracks initiation and propagation and to the role of local characteristics of the interfacial zone. The present work illustrates this, in the case of alumina coatings strongly bonded to C35 steel substrates previously pre-oxidized in CO2. The experimental tool is based on the "silver print test". It consists in covering the central part of the samples with a thin layer of silver paint before coating in order to create a defect zone. Concerning the numerical part, the finite element method is used as a powerful tool to describe the mechanical phenomena at the local scale influencing the crack propagation. The obtained numerical results show a good agreement with the experimental observations and they allow a local description of the phenomena influencing the cracking mechanism. Moreover, they lead to a concrete proposition for improving the coatings adherence.
机译:多层系统的破裂机制的知识是改善材料的粘合所必需的,特别是对于陶瓷 - 金属连接,特别是在金属衬底上的陶瓷涂层的情况下。为此目的,利用裂缝力学的数值工具耦合实验测量宏观界面粘连,允许了解应力分布和裂缝机制是如何受到当地环境的影响。这为裂缝启动和传播带来了解释以及界面区域的局部特征的作用。本作者说明了这一点,在氧化铝涂层的情况下,氧化铝涂层强粘合到预先在CO 2中预先预先氧化的C35钢基材。实验工具基于“银印刷试验”。它包括在涂覆前用薄的银色涂料覆盖样品的中心部分,以便形成缺陷区域。关于数值部分,有限元方法用作能力的工具,以描述当地规模的机械现象,影响裂缝繁殖。获得的数值结果表明,与实验观察结果良好,它们允许局部描述影响裂化机制的现象。此外,它们导致了一种改善涂层粘附的具体主张。

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