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Progress in SiC/SiC Ceramic Composite Development for Gas Turbine Hot-Section Components under NASA EPM and UEET Programs

机译:NASA EPM和UEET计划下的燃气轮机热截面部件SiC / SiC陶瓷复合材料的开发进展

摘要

The successful application of ceramic matrix composites as hot-section components in advanced gas turbine engines will require the development of constituent materials and processes that can provide the material systems with the key thermostructural properties required for long-term component service. Much initial progress in identifying these materials and processes was made under the former NASA Enabling Propulsion Materials Program using stoichiometric Sylramic (trademark) silicon-carbide (SiC) fibers, 2D (two dimensional)-woven fiber architectures, chemically vapor-infiltrated (CVI) BN fiber coatings (interphases), and SiC-based matrices containing CVI SiC interphase over-coatings, slurry-infiltrated SiC particulate, and melt-infiltrated (MI) silicon. The objective of this paper is to discuss the property benefits of this SiC/SiC composite system for high-temperature engine components and to elaborate on further progress in SiC/SiC development made under the new NASA Ultra Efficient Engine Technology Program. This progress stems from the recent development of advanced constituent materials and manufacturing processes, including specific treatments at NASA that improve the creep, rupture, and environmental resistance of the Sylramic fiber as well as the thermal conductivity and creep resistance of the CVI SiC over-coatings. Also discussed are recent observations concerning the detrimental effects of inadvertent carbon in the fiber-BN interfacial region and the beneficial effects of certain 2D-architectures for thin-walled SiC/SiC panels.
机译:陶瓷基复合材料作为热截面部件在成功的燃气涡轮发动机中的成功应用将需要开发组成材料和工艺,这些材料和工艺可以为材料系统提供长期部件服务所需的关键热结构特性。在以前的美国航空航天局授权推进材料计划下,使用化学计量的Sylramic(商标)碳化硅(SiC)纤维,二维(二维)编织纤维结构,化学气相渗透(CVI)技术在识别这些材料和过程方面取得了许多初步进展。 BN纤维涂层(相间)和SiC基基质,其中包含CVI SiC相间外涂层,浆料渗透的SiC颗粒和熔融渗透的(MI)硅。本文的目的是讨论用于高温发动机部件的SiC / SiC复合系统的性能优势,并详细阐述在新的NASA超高效发动机技术计划下SiC / SiC开发的进一步进展。这一进步源于先进成分材料和制造工艺的最新发展,包括在NASA进行的特殊处理,这些处理可改善Sylramic纤维的蠕变,断裂和环境耐受性,以及CVI SiC外涂层的导热性和抗蠕变性。还讨论了有关纤维-BN界面区域中无意碳的有害影响以及某些2D结构对薄壁SiC / SiC面板的有益影响的最新观察结果。

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