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Microstructure and mechanical properties of ceramic and metallic thermal spray coatings.

机译:陶瓷和金属热喷涂涂层的微观结构和力学性能。

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摘要

Within the present work microstructure and mechanical properties of thermal spray coatings will be discussed with an emphasis on thermal barrier coating applications. Yttria stabilized zirconia is a commonly used material for thermal barrier coatings. The potential of a novel nanostructured feedstock material was investigated and the properties compared to a conventional feedstock material.; Thermal spray coatings consist of a complex structure of interlocked particles, pores and cracks and the coating microstructure directly influences the mechanical properties. It is necessary for the coating to be tolerant to strain that is evolving, for example, from thermal expansion mismatch. Porous microstructures lower coating stiffness and also increase the ability to endure irreversible deformation by microcracking. The novel nanostructured feedstock microstructure consists of partially molten particles that form agglomerates where a large fraction of the pores are of size less than 1 mum in diameter.; The effect of the deposition process and its parameters on the microstructure and hardness was studied. The porosity was determined by image analysis and correlated to the measured hardness. Selected samples were extensively studied using a depth sensitive indentation technique. Elastic modulus and hardness were primarily investigated; however, also fracture behavior is reported and discussed.; Coating mechanical properties are directly associated with the resistance to damage caused by mechanical forces. The processes that primarily damage the coating surface include abrasion, erosion, and sliding wear as well as cavitation. However, mechanical interaction with the surface also affects the material to a depth that is related to the extent of the stress field. Mechanical processes, such as plastic deformation associated with Hertzian spherical contact, may initiate failure under the surface. Mechanical stresses that act within the coating originate from external mechanical loading, thermal expansion mismatch or thermal gradient, and residual stress.; As well, other non-mechanical effects are related to mechanical properties. A significant part of the residual stress is a result of oxidation growth and can cause cracking and delamination. Cracking, in turn, enhances penetration of corrosive substances, thereby influencing high temperature stability and overall corrosion resistance. Chemical processes are usually enhanced by high temperature and include oxidation, phase reaction and formation of new phases, which is controlled primarily by diffusion. Diffusion processes at high temperature cause grain boundary movement and grain growth. These processes lead to high temperature, time-dependent deformation and material densification via sintering. (Abstract shortened by UMI.)
机译:在本工作范围内,将重点讨论热喷涂涂层的微观结构和机械性能。氧化钇稳定的氧化锆是热障涂层的常用材料。研究了新型纳米结构原料的潜力,并与常规原料进行了比较。热喷涂涂层由互锁的颗粒,孔隙和裂纹的复杂结构组成,涂层的微观结构直接影响机械性能。涂层必须能够承受由于例如热膨胀失配引起的应变。多孔微结构降低了涂层的刚度,并且还提高了通过微裂纹承受不可逆变形的能力。新颖的纳米结构的原料微结构由部分熔融的颗粒组成,这些颗粒形成附聚物,其中大部分孔的直径小于1μm。研究了沉积工艺及其参数对显微组织和硬度的影响。孔隙率通过图像分析确定,并与测得的硬度相关。使用深度敏感压痕技术对选定的样品进行了广泛的研究。主要研究了弹性模量和硬度。但是,也有关于断裂行为的报道和讨论。涂层的机械性能与机械力引起的损坏的抵抗力直接相关。主要损坏涂层表面的过程包括磨损,腐蚀,滑动磨损以及气蚀。但是,与表面的机械相互作用也将材料影响到与应力场范围有关的深度。机械过程,例如与赫兹球形接触相关的塑性变形,可能会引发表面下的破坏。涂层内的机械应力来自外部机械载荷,热膨胀失配或热梯度以及残余应力。同样,其他非机械作用也与机械性能有关。残余应力的很大一部分是氧化增长的结果,并且可能导致开裂和分层。裂纹继而增强了腐蚀性物质的渗透,从而影响了高温稳定性和整体耐蚀性。化学过程通常通过高温来增强,包括氧化,相反应和新相的形成,这主要是通过扩散来控制的。高温下的扩散过程会引起晶界移动和晶粒长大。这些过程通过烧结导致高温,随时间变化的变形和材料致密化。 (摘要由UMI缩短。)

著录项

  • 作者

    Racek, Ondrej.;

  • 作者单位

    State University of New York at Stony Brook.;

  • 授予单位 State University of New York at Stony Brook.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 174 p.
  • 总页数 174
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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