Study on O2 Plasma Surface Modification of Aramid Fiber III

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The influence of low temperature plasma treatment on the interfacial performance of aramid fiber was studied. SEM and XPS were used to investigate the surface morphology and the chemical elements of the fiber before and after plasma treatment. The etching degree of the surface of aramid fiber was determined by wettability experiments and tensile/bending measurements before and after low temperature plasma treatment. The result showed that under the condition of 200W/10min/10Pa, the etching effect of the surface of aramid fiber was optimal.The wettability of fiber obviously improved and the bending intensity increased by about 30%.but the tensile performance of aramid fiber did not change much.

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936-939

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February 2012

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© 2012 Trans Tech Publications Ltd. All Rights Reserved

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[1] Wang Shanyuan, Zhang Ruguang, etc. Fiber Reinforced Composites, China Donghua University Press, Shanghai, 1998. 11.

Google Scholar

[2] C Lin, D C Prevosek. Ballistic Performance of Lightweight Spectra Composite Hard Arnlor. 33rd International SAMPE Symposium, 1988: 833-889.

Google Scholar

[3] Hao Yuankai, Xiao Jiayu. High Performance Composite Material Science[M]. Beijing: Chemical Industry Press, 2004.

Google Scholar

[4] Coffey A B, Brazier A, Tiereny M, etc. Development of Thin-walled Fiber—Reinforced Structures for Medical Applications[J]. Composite Part A, 2003, 34(6): 535—542.

Google Scholar

[5] Yeh W Y, Young R J. Molecular Deformation Processes in Aromatic High Modulus Polymer Fibers[J]. Polymer, 1999, 40(4): 857-870.

DOI: 10.1016/s0032-3861(98)00308-5

Google Scholar

[6] De Lange P J, Akker P G, Maas A J, et a1. Adhesion Activation of Twaron Aramid Fiber Studied with Low-energy Ion Scattering and X-ray Photoelectron Spectroscopy[J]. Surface and Interface Analysis, 2001, 31(12): 1079—1084.

DOI: 10.1002/sia.1147

Google Scholar

[7] Ma Xiaoguang, Liu Yue. Development of High Performance Fiber and its Application at Advanced Composite [J]. Fiber Composite, 2000, 17(4): 14-18.

Google Scholar

[8] Jiang Zhenhai. Broad Development Prospect of High Performance Aramid Fiber Market[J]. Aging and Application of Composite, 2008, 37(4): 51.

Google Scholar

[9] Tsai C L,Chiang C H.Characterization of the Hygric Behavior of Single Fibers[J]. Composites Science and Technology, 2000, 60(14): 2725—2729.

DOI: 10.1016/s0266-3538(00)00144-5

Google Scholar

[10] Gao Jianjun, Di Xiyan. Reinforced Fiber Material of Russia [J]. Chemical New Material. 2003, 31(1): 35-37.

Google Scholar

[11] Zhou Shigang, Yang Jiankui, Lei Haifeng, etc. Basic Mechanical Performance of APMOC Fiber [J]. Fiber Composite, 1997, 1(1): 1-6.

Google Scholar

[12] Nie Jiayang. Property of Aramid Fiber and Its Impact on Composite[C]. Symposium of the Fifth National Composite Academic Conference. 1988, 256-261.

Google Scholar