石墨烯在航空航天领域的前沿:目前的应用、挑战和空间工程的未来方向。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Praveen Kumar Kanti, Prashantha Kumar H G, V. Vicki Wanatasanappan, Abhinav Kumar and Melkamu Biyana Regasa
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引用次数: 0

摘要

石墨烯因其单碳层具有优异的机械、电学和热特性而适用于航空航天和空间工程。石墨烯的抗拉强度超过钢铁100倍,再加上其高导电性和热稳定性,使其成为航天器系统的有效性能助推器。在本文中,我们研究了石墨烯如何服务于不同的天基功能,从增强支撑开始,到热应用和辐射安全,然后再研究储能方法。由于石墨烯的重量非常轻,因此可以作为降低航天器重量的优秀材料,从而提高燃料消耗和有效载荷运输。石墨烯在支持复合结构和控制关键系统的热量以适应复杂的空间操作条件方面显示出独特的优势。基于石墨烯的电力系统,从超级电容器到电池,为长期的太空任务提供高存储能量和长电池寿命。然而,许多障碍减缓了石墨烯的进展,包括在恶劣的空间条件下以低成本生产大量稳定的石墨烯。科学家们正在探索如何解决与石墨烯相关的挑战,同时结合复合材料来设计更好的航天器。由于石墨烯技术的进步已经制造出更好的抗损伤航天器材料,太空探索将进一步取得进展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Graphene's Frontier in aerospace: current applications, challenges, and future directions for space engineering

Graphene's Frontier in aerospace: current applications, challenges, and future directions for space engineering

Graphene is suitable for aerospace and space engineering because its single carbon layer exhibits excellent mechanical, electrical and thermal characteristics. Its tensile strength, which exceeds that of steel by 100 times, together with its high conductivity and thermal stability position graphene as an effective performance booster for spacecraft systems. Herein, we examine how graphene serves different space-based functions, starting with reinforcement supports and moving to thermal applications and radiative safety, before investigating energy storage methods. Since graphene has a very low weight, it serves as an excellent material to lower spacecraft weight, which consequently enhances fuel consumption and payload transportation. Graphene shows unique advantages by supporting composite structures and controlling heat in critical systems to adapt to the complex operating conditions in space. Graphene-based power systems, ranging from supercapacitors to batteries, provide high stored energy and long battery life for long space missions. However, many barriers slow the progress of graphene, including the production of large amounts at low cost with stability under harsh space conditions. Scientists are exploring ways to tackle the challenges associated with graphene while incorporating composite materials to design better spacecraft. Space exploration will progress further because improvements in graphene technology have created better spacecraft materials that resist damage.

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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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