首页> 外文期刊>Journal of Thermal Spray Technology >Thermal Spray Coatings Engineered from Nanostructured Ceramic Agglomerated Powders for Structural, Thermal Barrier and Biomedical Applications: A Review
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Thermal Spray Coatings Engineered from Nanostructured Ceramic Agglomerated Powders for Structural, Thermal Barrier and Biomedical Applications: A Review

机译:由纳米结构陶瓷团聚粉末设计的热喷涂涂层,用于结构,热障和生物医学应用:综述

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Thermal spray coatings produced from nanostructured ceramic agglomerated powders were tailored for different applications, some of which required almost completely opposite performance characteristics (e.g., anti-wear and abradable coatings). The influence of nanostructured materials on important areas, such as, thermal barrier coatings (TBCs) and biomedical coatings was also investigated. It was determined that by controlling the distribution and character of the semi-molten nanostructured agglomerated particles (i.e., nanozones) embedded in the coating microstructure, it was possible to engineer coatings that exhibited high toughness for anti-wear applications or highly friable for use as abradables, exhibiting abradability levels equivalent to those of metallic-based abradables. It is shown that nanozones, in addition to being very important for the mechanical behavior, may also play a key role in enhancing and controlling the bioactivity levels of biomedical coatings via biomimetism. This research demonstrates that these nanostructured coatings can be engineered to exhibit different properties and microstructures by spraying nanostructured ceramic agglomerated powders via air plasma spray (APS) or high velocity oxy-fuel (HVOF). Finally, in order to present readers with a broader view of the current achievements and future prospects in this area of research, a general overview is presented based on the main papers published on this subject in the scientific literature.
机译:由纳米结构陶瓷团聚粉末生产的热喷涂涂料是为不同的应用量身定制的,其中一些要求几乎完全相反的性能特征(例如,抗磨和耐磨涂料)。还研究了纳米结构材料对重要领域的影响,例如热障涂层(TBC)和生物医学涂层。已经确定,通过控制包埋在涂层微结构中的半熔融纳米结构团聚颗粒(即纳米区)的分布和特性,可以设计出在抗磨应用中显示出高韧性或在使用时易碎的高脆性涂层。耐磨材料,其耐磨性与金属基耐磨材料相当。结果表明,纳米带除了对机械性能非常重要外,还可以通过仿生作用在增强和控制生物医学涂层的生物活性水平方面发挥关键作用。这项研究表明,可以通过空气等离子喷涂(APS)或高速氧燃料(HVOF)喷涂纳米结构陶瓷团聚粉末,将这些纳米结构涂层设计成具有不同的性能和微观结构。最后,为了使读者对这一研究领域的当前成就和未来前景有更广阔的了解,在科学文献中有关该主题的主要论文的基础上,给出了总体概述。

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