提高空间热电性能的碳纳米管复合材料研究进展

Dhaval A. Vartak, Yogesh Ghotekar, Pina M. Bhatt, Bharat Makwana, Hetalkumar Shah, J. A. Vadher, B. S. Munjal
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引用次数: 2

摘要

采用高比刚度材料设计空间载荷部件。这些组件应该在其整个生命周期内承受极端的环境条件,而不会出现故障。太空任务需要机械强度高、导热性和导电性高的轻质材料。碳纤维增强聚合物(CFRP)具有显著的质量节约和高强度,被广泛用于空间有效载荷部件。然而,由于其电导率低,在替代传统的空间合格材料方面存在局限性。碳纳米管(CNTs)具有较高的导电性和导热性。碳纳米管要想成为增强聚合物复合材料高强度、高导电性的有效增强材料,需要满足溶液混合法分散良好的标准。碳纳米管纳米复合材料的质量取决于几个参数,如碳纳米管的类型、纯度、纵横比、负载量、纳米管与聚合物之间的排列和界面粘附。CNT-CFRP复合材料的性能取决于加工技术的成功执行。这篇综述旨在强调复合材料的机械、热学和电学性能的增强,以及实现这一目标的挑战。本文尝试通过优化工艺参数来制造空间有效载荷部件,使其成为现有高密度材料的优良替代品。此外,这项审查研究是印度空间研究组织(ISRO)和美国国家航空航天局(NASA)等著名空间机构未来行星际任务的迫切需要,这些任务需要在不影响性能指标的情况下保持轻载荷重量。
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Carbon Nanotube Composites to Enhance Thermal and Electrical Properties for Space Applications - A Review
High specific stiffness materials are used to design the space payload components. These components should sustain the extreme environmental conditions throughout their life cycle, without failure. Space missions need lightweight materials which are mechanically strong with high thermal and electric conductivities. Carbon fiber reinforced polymer (CFRP) offers considerable mass saving and high strength, which is widely used for space payload components. However, it has limitations to replace the traditional space-qualified materials due to its low conductivity. Carbon Nanotubes (CNTs) are efficient with greater electrical and thermal conductivities. For CNTs to be seen as effective reinforcements for attaining high strength and conductivity of polymer composites, they need to meet the criteria of being well-dispersed by the solution mixing method. The quality of the CNT nanocomposite relies upon several parameters like the type of CNTs, purity, aspect ratio, amount of loading, alignment and interfacial adhesion between the nanotube and polymer. The performance of the CNT-CFRP composite depends on the successful execution of the processing technique. It has been intended in this review paper to highlight the enhancement of the mechanical, thermal and electrical properties of the composite, and the challenges in achieving it.  An attempt has been made to optimize the process parameters to fabricate space payload components which can be excellent alternatives to the existing high-density materials. Moreover, this review research is the need of the hour for prominent space agencies such as ISRO and NASA for their future inter-planetary missions, where payload weight needs to be kept light without making any compromise on the performance index.
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来源期刊
Journal of Water and Environmental Nanotechnology
Journal of Water and Environmental Nanotechnology Materials Science-Materials Science (miscellaneous)
CiteScore
2.40
自引率
0.00%
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0
审稿时长
8 weeks
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