Naseri Iman, Ziaee Morteza, Nilsson Zach N, Lustig Danielle R, Yourdkhani Mostafa
Department of Mechanical Engineering, Colorado State University, Fort Collins, Colorado 80523, United States.
Department of Chemistry, Colorado State University, Fort Collins, Colorado 80523, United States.
ACS Omega. 2022 Jan 20;7(4):3746-3757. doi: 10.1021/acsomega.1c06572. eCollection 2022 Feb 1.
Nanostructured heaters based on laser-induced graphene (LIG) are promising for heat generation and temperature control in a variety of applications due to their high efficiency as well as a fast, facile, and highly scalable fabrication process. While recent studies have shown that LIG can be written on a wide range of precursors, the reports on LIG-based heaters are mainly limited to polyimide film substrates. Here, we develop and characterize nanostructured heaters by direct writing of laser-induced graphene on nonuniform and structurally porous aramid woven fabric. The synthesis and writing of graphene on aramid fabric is conducted using a 10.6 μm CO laser. The quality of laser-induced graphene and electrical properties of the heater fabric is tuned by controlling the lasing process parameters. Produced heaters exhibit good electrothermal efficiency with steady-state temperatures up to 170 °C when subjected to an input power density of 1.5 W cm. In addition, the permeable texture of LIG-aramid fabric heaters allows for easy impregnation with thermosetting resins. We demonstrate the encapsulation of fabric heaters with two different types of thermosetting resins to develop both flexible and stiff composites. A flexible heater is produced by the impregnation of LIG-aramid fabric by silicone rubber. While the flexible composite heater exhibits inferior electrothermal performance compared to neat LIG-aramid fabric, it shows consistent electrothermal performance under various electrical and mechanical loading conditions. A multifunctional fiber-reinforced composite panel with integrated de-icing functionality is also manufactured using one ply of LIG-aramid fabric heater as part of the composite layup. The results of de-icing experiments show excellent de-icing capability, where a 5 mm thick piece of ice is completely melted away within 2 min using an input power of 12.8 W.
基于激光诱导石墨烯(LIG)的纳米结构加热器因其高效以及快速、简便且高度可扩展的制造工艺,在各种应用中的发热和温度控制方面具有广阔前景。虽然最近的研究表明LIG可以在多种前驱体上写入,但关于基于LIG的加热器的报道主要限于聚酰亚胺薄膜基板。在此,我们通过在不均匀且结构多孔的芳纶机织织物上直接写入激光诱导石墨烯来开发和表征纳米结构加热器。使用10.6μm的CO激光在芳纶织物上进行石墨烯的合成和写入。通过控制激光加工参数来调整激光诱导石墨烯的质量和加热器织物的电学性能。当输入功率密度为1.5W/cm时,所制备的加热器表现出良好的电热效率,稳态温度高达170°C。此外,LIG-芳纶织物加热器的可渗透纹理便于用热固性树脂浸渍。我们展示了用两种不同类型的热固性树脂对织物加热器进行封装,以开发柔性和刚性复合材料。通过用硅橡胶浸渍LIG-芳纶织物制备了柔性加热器。虽然柔性复合加热器的电热性能比纯LIG-芳纶织物差,但它在各种电气和机械负载条件下表现出一致的电热性能。还使用一层LIG-芳纶织物加热器作为复合材料叠层的一部分制造了具有集成除冰功能的多功能纤维增强复合板。除冰实验结果显示出优异的除冰能力,使用12.8W的输入功率,一块5mm厚的冰在2分钟内完全融化。