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Gradient stiffening induced interfacial cracking and strain tolerant design in thermal barrier coatings

机译:热障涂层中梯度加强诱导界面裂缝和应变耐力设计

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Strain tolerant structures endow thermal barrier coatings (TBCs) with exceptional capability to bear various strains generated during service. However, the strain tolerance of TBCs inevitably degrades when stiffening occurs at high temperatures. Herein, we tailored a strain tolerant structure to resist degradation based on an understanding of the unique stiffening behavior and consequent failure mechanism of TBCs. The degree of gradient stiffening across the thickness of TBCs is caused by temperature-dependent sintering kinetics of ceramic coatings. As a result, vertical and in-plane cracks are formed in a scale-progressive way. Simulation results reveal that the differential degree of stiffening is a main cause of interfacial cracking. Subsequently, we proposed a strain tolerant structure that is tailored by lowering the stiffening rate of regions exposed to higher temperatures. Due to the weakened differential stiffening effect, the driving force that extends the interfacial cracks was significantly lowered. Thus, this strain tolerant TBC is expected to be able to resist degradation caused by sintering. These results will guide advanced design of TBCs for future applications.
机译:应变耐受结构赋予热阻挡涂层(TBC),其具有卓越的能力,以承受在服务期间产生的各种菌株。然而,当在高温下发生加固时,TBC的应变耐受性不可避免地降解。这里,我们根据对TBC的独特加强行为和随之的故障机制而定制了应变耐受性结构以抵抗劣化。 TBC厚度横跨TBC厚度的梯度变化程度是由陶瓷涂层的温度依赖性烧结动力学引起的。结果,以规模逐渐的方式形成垂直和面内裂缝。仿真结果表明,差动加强程度是界面裂缝的主要原因。随后,我们提出了一种应变耐受性结构,其通过降低暴露于较高温度的区域的加强速率而定制。由于差动加强效应疲软,延伸界面裂缝的驱动力显着降低。因此,预计该应变耐受性TBC能够抵抗由烧结引起的降解。这些结果将引导TBC的先进设计以供未来的应用。

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