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首页> 外文期刊>Journal of Thermal Spray Technology >The Sensitivity of Abradable Coating Residual Stresses to Varying Material Properties
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The Sensitivity of Abradable Coating Residual Stresses to Varying Material Properties

机译:耐磨涂层残余应力对材料性能变化的敏感性

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This paper reports recent research on abradable materials employed for aero-engine applications. Such thermal spray coatings are used extensively within the gas turbine, applied to the inner surface of compressor and turbine shroud sections, coating the periphery of the blade rotation path. The function of an abradable seal is to wear preferentially when rotating blades come into contact with it, while minimizing over-tip clearance and improving the efficiency of the engine. Thermal spraying of an abradable coating onto a substrate imparts two components of residual stress; rapid quenching stresses as the spray material cools on impact and stresses arising from differential thermal contraction. In-service thermal stresses are superimposed by the differential expansion of these bonded layers. The combination of the production and operation history will lead to thermal-mechanical fatigue damage within the abradable coating. The present paper will describe the numerical modeling and sensitivity analysis of the thermal spray process. The sensitivity of residual stresses (with varying material properties, coating/substrate thickness, Poisson’s ratio, and substrate temperature) predicted by the Tsui and Clyne progressive deposition model enabled identification of performance drivers to coating integrity. Selecting material properties that minimize in-service stresses is a crucial stage in advancing future abradable performance.
机译:本文报道了用于航空发动机应用的耐磨材料的最新研究。这种热喷涂层在燃气轮机内广泛使用,涂在压缩机和涡轮机罩段的内表面上,覆盖叶片旋转路径的外围。耐磨密封件的功能是在旋转叶片与之接触时优先磨损,同时最大程度地减小顶部间隙并提高发动机的效率。将可磨耗涂层热喷涂到基材上会产生两个残余应力分量;第二个是残余应力。喷涂材料在冲击时冷却时会产生快速的淬火应力,并且因热收缩差异而产生应力。这些结合层的差异膨胀会叠加使用中的热应力。生产和运行历史的结合将导致可磨损涂层内的热机械疲劳损坏。本文将描述热喷涂过程的数值模型和灵敏度分析。 Tsui和Clyne渐进式沉积模型预测的残余应力(具有变化的材料特性,涂层/基材厚度,泊松比和基材温度)的敏感性使得能够确定影响涂层完整性的性能驱动因素。选择材料特性以最大程度地减少使用压力是提高未来耐磨性能的关键阶段。

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