Plasma Forming Laboratory, Department of Mechanical and Materials Engineering, Florida International University , Miami, Florida 33174, United States.
ACS Appl Mater Interfaces. 2018 Feb 7;10(5):5022-5029. doi: 10.1021/acsami.7b18346. Epub 2018 Jan 26.
The adhesion of ice severely compromises the aerodynamic performance of aircrafts operating under critically low-temperature conditions to their surfaces. In this study, highly thermally and electrically conductive graphene foam (GrF) polymer composite is fabricated. GrF-polydimethylsiloxane (PDMS) deicing composite exhibits superior deicing efficiency of 477% and electrical conductivities of 500 S m with only 0.1 vol % graphene foam addition as compared to other nanocarbon-based deicing systems. The three-dimensional interconnected architecture of GrF allows the effective deicing of surfaces by employing low power densities (0.2 W cm). Electrothermal stability of the GrF-PDMS composite was proven after enduring 100 cycles of the dc loading-unloading current. Moreover, multifunctional GrF-PDMS deicing composite provides simultaneous mechanical reinforcement by the effective transfer and absorption of loads resulting in a 23% and 18% increase in elastic modulus and tensile strength, respectively, as compared to pure PDMS. The enhanced efficiency of the GrF-PDMS deicing composite is a novel alternative to current high-power consumption deicing systems.
冰的附着严重影响了在极低温度条件下工作的飞机的空气动力学性能。在这项研究中,制备了具有高热导率和高导电性的石墨烯泡沫(GrF)聚合物复合材料。与其他基于纳米碳的除冰系统相比,GrF-聚二甲基硅氧烷(PDMS)除冰复合材料仅添加 0.1 体积%的石墨烯泡沫,其除冰效率就提高了 477%,电导率达到 500 S m。GrF 的三维互连结构允许通过施加低功率密度(0.2 W cm)来有效除冰。GrF-PDMS 复合材料经过 100 次直流加载-卸载电流循环后,证明了其电热稳定性。此外,多功能 GrF-PDMS 除冰复合材料通过有效传递和吸收负载提供了机械增强,与纯 PDMS 相比,弹性模量和拉伸强度分别提高了 23%和 18%。GrF-PDMS 除冰复合材料的高效率为当前高功耗除冰系统提供了一种新的替代方案。