Carbon nanofiber paper for lightning strike protection of composite materials

被引:153
作者
Gou, Jihua [1 ]
Tang, Yong [1 ]
Liang, Fei [1 ]
Zhao, Zhongfu [1 ]
Firsich, David [2 ]
Fielding, Jennifer [3 ]
机构
[1] Univ Cent Florida, Dept Mech Mat & Aerosp Engn, Orlando, FL 32816 USA
[2] Inorgan Specialists Inc, Miamisburg, OH 45343 USA
[3] USAF, Mat & Mfg Directorate, Res Lab, Wright Patterson AFB, OH 45433 USA
关键词
Polymer-matrix composites (PMCs); Electrical properties; Resin transfer molding (RTM); ELECTRICAL-CONDUCTIVITY; MECHANICAL-PROPERTIES;
D O I
10.1016/j.compositesb.2009.06.009
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Carbon fiber reinforced polymer matrix composites have been increasingly used for aircraft structures. Such relatively low-conductivity composite materials need to be engineered with lightning strike protection to achieve lightning tolerance comparable to metallic components. This study developed a specialty paper made of carbon nanofibers and nickel nanostrands as a surface layer on the composite panels and explored potential replacement for existing lightning strike protection materials. The porous, flexible, non-woven papers of nanofibers and nanostrands were first prepared by the papermaking process. They were then incorporated onto the surface of carbon fiber reinforced polymer composites through resin transfer molding process. A method of applying a temporary surface barrier on the paper was developed to prevent the infused resin from breaching the paper's surface. This minimized the resin on the composite panel's surface and allowed its surface conductivity to remain high. The lightning strike tests conducted on these composite panels showed that lightning strike tolerance correlated to the surface conductivities of composite panels. (C) 2009 Elsevier Ltd. All rights reserved.
引用
收藏
页码:192 / 198
页数:7
相关论文
共 20 条
[11]   ELECTRICAL-CONDUCTIVITY OF VAPOR-GROWN CARBON-FIBERS [J].
HEREMANS, J .
CARBON, 1985, 23 (04) :431-436
[12]   Electrical conductivity and electromagnetic interference shielding of multiwalled carbon nanotube composites containing Fe catalyst [J].
Kim, HM ;
Kim, K ;
Lee, CY ;
Joo, J ;
Cho, SJ ;
Yoon, HS ;
Pejakovic, DA ;
Yoo, JW ;
Epstein, AJ .
APPLIED PHYSICS LETTERS, 2004, 84 (04) :589-591
[13]   Single-wall carbon nanotube/conjugated polymer photovoltaic devices [J].
Kymakis, E ;
Amaratunga, GAJ .
APPLIED PHYSICS LETTERS, 2002, 80 (01) :112-114
[14]   Voltage drop along a lightning channel during strikes to aircraft [J].
Larsson, A ;
Delannoy, A ;
Lalande, P .
ATMOSPHERIC RESEARCH, 2005, 76 (1-4) :377-385
[15]   Carbon nanotube/PMMA composite thin films for gas-sensing applications [J].
Philip, B ;
Abraham, JK ;
Chandrasekhar, A ;
Varadan, VK .
SMART MATERIALS & STRUCTURES, 2003, 12 (06) :935-939
[16]   Mechanical and electrical properties of vapor-grown carbon fiber thermoplastic composites [J].
Tibbetts, GG ;
Finegan, IC ;
Kwag, C .
MOLECULAR CRYSTALS AND LIQUID CRYSTALS, 2002, 387 :353-357
[17]   Preparation, electrical and mechanical properties of vapor grown carbon fiber (VGCF)/vinyl ester composites [J].
Xu, J ;
Donohoe, JP ;
Pittman, CU .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2004, 35 (06) :693-701
[18]   Electromagnetic interference shielding effectiveness of carbon nanofiber/LCP composites [J].
Yang, SY ;
Lozano, K ;
Lomeli, A ;
Foltz, HD ;
Jones, R .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2005, 36 (05) :691-697
[19]   Conductive carbon nanoriber-polymer foam structures [J].
Yang, YL ;
Gupta, MC ;
Dudley, KL ;
Lawrence, RW .
ADVANCED MATERIALS, 2005, 17 (16) :1999-+
[20]   Processing and Structure of Carbon Nanofiber Paper [J].
Zhao, Zhongfu ;
Gou, Jihua ;
Khan, Aurangzeb .
JOURNAL OF NANOMATERIALS, 2009, 2009