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OXIDATION-INDUCED STRESSES IN THERMAL BARRIER COATING SYSTEMS

机译:热障涂层系统中的氧化诱导应力

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摘要

Thermal barrier coating systems offer oxidation protection to alloy substrates under heat flux conditions. They consist of an yttria-stabilised zirconia top coat, of low thermal conductivity, bonded to the alloy substrate by an alumina-forming metallic layer. These systems develop considerable strain energy during cooling and are mechanically unstable. The failure by spallation of the top coat is a life-limiting event but its prediction has proved a difficult problem. The growth of the alumina layer on the bond coat surface has been implicated in the failure of the TBC system but complete understanding remains elusive. In this paper, finite-element computations are presented of the out-of-plane stresses that develop both isothermally and during cooling, as a result of oxide growth. A novel feature of the calculations is that oxide thickening and the associated volume expansion are modelled within the computation. It is shown that continuity strains can lead to the development of out-of-plane stresses at the base of the top coat at the oxidation temperature. These are associated with bond coat protuberances and their magnitude increases with surface roughness. The situation will be exacerbated if Al depletion is sufficient to trigger chemical failure and the formation of faster-growing Cr,Ni-rich oxides at bond coat protuberances. In this case, large (> 0.5 GPa) out-of-plane tensile stresses can develop.within the top coat at the test temperature for realistic surface roughnesses.
机译:热障涂层系统在热通量条件下为合金基材提供抗氧化保护。它们由低热导率的氧化钇稳定的氧化锆面漆组成,并通过形成氧化铝的金属层粘结到合金基材上。这些系统在冷却期间会产生相当大的应变能,并且机械不稳定。面漆剥落的破坏是一个限制寿命的事件,但其预测已证明是一个难题。胶粘剂涂层表面氧化铝层的生长与TBC系统的故障有关,但仍难以完全理解。在本文中,对由于氧化物生长而导致的等温和冷却过程中产生的平面外应力进行了有限元计算。计算的一个新颖特征是在计算中对氧化物增稠和相关的体积膨胀进行了建模。结果表明,在氧化温度下,连续应变会导致面涂层底面应力的产生。这些与粘结涂层的突起有关,并且它们的大小随表面粗糙度而增加。如果铝的耗竭足以引发化学失效,并在结合层突起处形成生长较快的富Cr,Ni的氧化物,则情况将更加恶化。在这种情况下,在测试温度下,面漆内可能会产生较大的(> 0.5 GPa)平面外拉应力,以获得真实的表面粗糙度。

著录项

  • 来源
  • 会议地点 Daytona Beach FL(US);Daytona Beach FL(US)
  • 作者

    Hugh E. Evans;

  • 作者单位

    School of Metallurgy and Materials The University of Birmingham Birmingham, B15 2TT, UK;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 陶瓷工业;
  • 关键词

  • 入库时间 2022-08-26 13:57:48

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