用于自供电多传感应用的纳米结构玻璃钢复合材料

Lampros Koutsotolis, Angelos Voudouris Itskaras, George Karalis, Alkiviadis S. Paipetis
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引用次数: 0

摘要

复合材料是最广泛使用的结构材料,在减轻重量是至关重要的领域,因为它们利用高强度和刚度以及低密度。随着人们对可持续性和能源消耗的日益关注,下一代先进复合材料需要包含额外的功能。因此,多功能复合材料作为一个有前途的技术领域出现,使结构设计更轻,更高效,能够执行多种角色。本研究介绍了一种纳米结构玻璃纤维增强聚合物(GFRP)复合材料,该材料利用塞贝克效应,具有自供电多传感能力。热电发电机(TEG)启用层压板的设计范围实现特定的输出特性。该复合材料作为具有不同电阻的复合材料结构健康监测(SHM)的电源,显示了灵敏度对TEG输出特性的依赖性。此外,它能够响应环境刺激,包括温度变化,红外(IR)和紫外线(UV)辐射,使其成为各种传感应用的通用工具。由于响应是产生的电信号,因此传感过程本质上是自供电的。功能的合并标志着单个结构元素第一次同时展示了所有这些功能。这种方法揭示了智能复合材料结构发展的诱人方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A nano-enabled structural GFRP composite for self-powered multi-sensing applications

A nano-enabled structural GFRP composite for self-powered multi-sensing applications
Composites are the most widely used structural material in fields where weight reduction is crucial, since they capitalize on high strength and stiffness together with low density. With growing concerns around sustainability and energy consumption, the next generation of advanced composites needs to incorporate additional functionalities. Hence, multifunctional composites emerge as a promising technological area, enabling the design of structures that are lighter, more efficient, and capable of performing multiple roles. This study introduces a nano-enabled structural glass fiber-reinforced polymer (GFRP) composite that exhibits self-powered multi-sensing capabilities, utilizing the Seebeck effect. The Thermoelectric Generator (TEG)-enabled laminate was designed with the scope of achieving specific output characteristics. The composite functioned as a power supply for the Structural Health Monitoring (SHM) of composite coupons with various electrical resistances, showcasing the dependency of the sensitivity on the TEG output characteristics. Additionally, it was able to respond to environmental stimuli, including temperature changes, infrared (IR), and ultraviolet (UV) radiation, making it a versatile tool for various sensing applications. Since the response was a generated electrical signal, the sensing process was inherently self-powered. The amalgamation of functionalities marks the first time where a single structural element simultaneously exhibits all those capabilities. This approach reveals enticing aspects for the development of smart composite structures.
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