材料科学
复合材料
增强碳-碳
抗弯强度
复合数
分层(地质)
碳纤维
热导率
极限抗拉强度
比强度
先进复合材料
抗压强度
摩擦学
比模量
古生物学
生物
俯冲
构造学
作者
Nilesh Agarwal,Aditya Rangamani,Kathan Bhavsar,Shreyash Santosh Virnodkar,Aldrin Antonio Agostinho Fernandes,Utkarsh Chadha,Divyansh Srivastava,Albert E. Patterson,Vezhavendhan Rajasekharan
标识
DOI:10.3389/fmats.2024.1374034
摘要
Carbon-carbon composites are advanced materials known for their high strength, high-temperature stability, and superior thermal conductivity. Mechanical properties such as tensile strength, flexural strength, and compressive strength are examined, as well as thermal properties like the coefficient of thermal expansion and thermal conductivity, to understand the characteristics of the composite. Carbon-carbon composites are ideal for the aerospace industry’s need for lightweight and high-performance materials. Tribological and surface properties are relevant to this discussion, given the use case of carbon-carbon composites in extreme conditions, the effect of exposing the composite to different fluids and the change in friction and wear properties. Coatings can protect the composite from environmental factors such as UV radiation, oxidation, and erosion. Self-healing composites that can repair themselves can increase the lifespan of structures while reducing maintenance costs. These have been used in aerospace applications such as airplane braking systems, rocket nozzles, and re-entry vehicle heat shields. Furthermore, researchers have recently addressed the problem of finishing and drilling without delamination and loss of properties, and this study looks into unconventional methods that can be adopted for the same. This study aims to provide an overview of the current state of carbon-carbon composite materials and their applications.
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