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Developments in Processing of Ceramic Top Coats of EB-PVD Thermal Barrier Coatings

机译:加工陶瓷顶层EB-PVD热阻挡涂层的发展

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Partially Yttria Stabilized Zirconia (PYSZ) based Thermal Barrier Coatings (TBC) manufactured by EB-PVD process are a crucial part of a system, which protects the turbine blades situated at the high pressure sector of aero engines and stationary gas turbines under severe service conditions. These materials show a high strain tolerance relying on their unique coating morphology, which is represented by weakly bonded columns. The porosity present in ceramic top coats affects the thermal conductivity by reducing the cross sectional area through which the heat flows. The increase in thermal conductivity after heat-treatment relates to the alteration of the shape of the pores rather than the reduction of their surface-area at the cross section. The studies carried out by the authors demonstrate that the variation of the parameters during the EB-PVD processing of PYSZ based top-coats alters the columnar morphology of the coatings. Consequently, these morphological changes affect primarily the thermal conductivity and eventually the Young' Modulus which are the key physical properties of this material group. New ceramic compositions covering zirconia coatings stabilized with alternative oxides, pyrochlores and hexaluminates are addressed. Failures occurring in ceramic top coats mark the lifetime of TBC system and therefore, it is necessary that their performance should go beyond that of the-state-of-the-art materials. This context summarizes the research and developments devoted to future generation ceramic top coats of EB-PVD TBCs.
机译:由EB-PVD工艺制造的部分钇稳定的氧化锆(PYSZ)的热障涂层(TBC)是系统的关键部分,其在严重的服务条件下保护位于航空发动机高压扇区和固定燃气轮机的涡轮机叶片。这些材料显示出高应变耐受性,依赖于其独特的涂层形态,其由弱粘合的柱表示。陶瓷顶部涂层中存在的孔隙率通过减小热流的横截面积来影响导热率。热处理后导热率的增加涉及孔的形状而不是在横截面处减少其表面积的改变。作者进行的研究表明,Pyz基顶部涂层的EB-PVD加工过程中参数的变化改变了涂层的柱状形态。因此,这些形态变化主要影响导热率,最终是杨氏模量,这是该材料组的关键物理性质。覆盖含有替代氧化物,烧火和六烷醇的氧化锆涂层的新型陶瓷组合物进行了解决。在陶瓷顶部外套中发生的故障标志着TBC系统的寿命,因此,它们的性能应该超出最先进的材料。这方面总结了致力于未来一代陶瓷顶层EB-PVD TBC的研发。

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