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Low conductivity thermal barrier coatings.

机译:低电导率热障涂层。

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摘要

The dissertation begins by exploring the growth of 7YSZ coatings at different rotation rates. The experiments show that as the rotation rate was increased, the texture changes from 111> to 100> and the total pore fraction slowly decreased. The intercolumnar pores perpendicular to the coating surface are very effective at strain accommodation during thermal cycling. The intra-columnar pores appear the most effective for the reduction of thermal conductivity of the coatings. The minimum thermal conductivity occurs at a low rotation rate and is 0.8 W/mK.;The failure modes and mechanisms of 7YSZ coatings during thermal cycling have been investigated. The primary mode of failure on rough bond coat surfaces involves delamination within the ceramic coating, just above the thermally-grown oxide (TGO). It was initiated by a bond coat rumpling mechanism. The delaminations were initiated preferentially at "corn kernel" growth defects in the coating. Ceramic coatings applied to polished bond coat surfaces had much longer spallation lifetimes and the delamination fracture shifted to the interface of TGO/bond coat. These delaminations were extended by a mechanism involving the formation and coalescence of interfacial voids. The enhanced coating life is shown to be a consequence of their lower density and hence, lower elastic modulus.;Rare earth zirconates appear to be a promising candidate due to their reported low intrinsic thermal conductivity, good phase stability and greater resistance to sintering and CMAS attack compared to 7YSZ. The SZO coatings had as-deposited conductivities of 0.5+/-0.1 W/mK. When these SZO coatings were subjected to thermal cycling, it was found to have a much shorter lifetime (on both rough and smooth bond coats) than similarly deposited 7YSZ material. It was also found that samaria tended to react with alumina to form a SmAlO 3 interphase of the TBC/TGO interface which appears to significantly lower the interface toughness.;To improve the durability of SZO coatings, 7YSZ/SZO bilayer coatings were grown by the DVD method so that a thin 7YSZ layer separated the SZO from the TGO layer. The SZO layer was found to thermochemically compatible with YSZ without the degradation during the cycling exposure. Sm was detectable near the TGO when the bilayer with 10 mum of 7YSZ was subjected to thermal cycling for more than 1000 hours.
机译:本文首先探讨了不同转速下7YSZ涂层的生长。实验表明,随着转速的增加,织构从<111>变为<100>,总孔隙率缓慢降低。垂直于涂层表面的柱间孔在热循环过程中对应变适应非常有效。柱内孔似乎对于降低涂层的导热性最有效。最小的热导率发生在低转速下,为0.8 W / mK。;研究了7YSZ涂层在热循环过程中的破坏模式和机理。在粗糙的粘合涂层表面上失效的主要方式包括在陶瓷涂层内,热生长氧化物(TGO)上方的分层。它是由粘合涂层起皱机制引发的。脱层优选在涂层中的“玉米粒”生长缺陷处开始。应用于抛光粘合涂层表面的陶瓷涂层具有更长的剥落寿命,并且分层断裂转移到TGO /粘合涂层的界面。这些分层是通过涉及界面空隙的形成和合并的机制而扩展的。涂层寿命的增加是由于其较低的密度和较低的弹性模量引起的。稀土锆酸盐由于其较低的固有热导率,良好的相稳定性以及对烧结和CMAS的更高耐受性而似乎是有前途的候选物攻击相比7YSZ。 SZO涂层的沉积电导率为0.5 +/- 0.1 W / mK。当对这些SZO涂层进行热循环时,发现其寿命(在粗糙和光滑的粘合涂层上)都比同样沉积的7YSZ材料要短得多。还发现,samaria趋于与氧化铝反应,形成TBC / TGO界面的SmAlO 3界面相,这似乎会显着降低界面韧性。为了提高SZO涂层的耐用性,在涂层中生长了7YSZ / SZO双层涂层。 DVD方法,使7YSZ薄层将SZO与TGO层分开。发现SZO层与YSZ热化学相容,并且在循环暴露期间不降解。当将具有10毫米7YSZ的双层进行热循环超过1000小时时,在TGO附近可检测到Sm。

著录项

  • 作者

    Zhao, Hengbei.;

  • 作者单位

    University of Virginia.;

  • 授予单位 University of Virginia.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

  • 入库时间 2022-08-17 11:37:44

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