Recovery of Carbon Fiber from Waste Carbon Fiber Reinforced Plastics using Sodium Hydroxide

被引:0
作者
Takahashi J. [1 ]
Wajima T. [1 ]
机构
[1] Department of Urban Environment Systems, Graduate School of Science and Engineering, Chiba University, Chiba
关键词
Carbon Fiber Reinforced Plastics; Hydrolysis; Pyrolysis; Sodium Hydroxide;
D O I
10.5188/IJSMER.25.85
中图分类号
学科分类号
摘要
Carbon fiber reinforced plastic (CFRP) is a composite material made of carbon fibers and resin, and is widely used because of its light weight, corrosion resistance, and durability. However, its excellent properties make it diffi cult to recycle, and most of the CFRP waste is landfi lled. A new recycling technology to recover the carbon fiber from waste CFRP is desired. In this study, a new method to decompose the resin part by heating waste CFRP with sodium hydroxide (NaOH) to recover the carbon fibers with high strength was investigated. Waste CFRP was heated with NaOH under nitrogen atmosphere at 200-600°C for 0-90 min, then washed with distilled water, and sieved to recover the high- strength carbon fiber. By heating without NaOH, it is difficult to separate the fiber from resin. By heating with NaOH, carbon fiber with high strength can be recovered at 250-350°C by hydrolysis reaction of resin with NaOH and distilled water, while those with low strength at higher than 400°C, due to the pyrolysis reaction of resin and carbon fiber. By immersing the CFRP into NaOH at 300°C, long length carbon fiber with high strength can be recovered. ©2022 Soc. Mater. Eng. Resour. Japan.
引用
收藏
页码:85 / 89
页数:4
相关论文
共 50 条
  • [41] Crack development and deformation mechanisms of carbon-fiber-reinforced plastics at elevated temperatures
    Kubota, Yuki
    Fukuda, Kohei
    Hatta, Hiroshi
    Langhof, Nico
    Krenkel, Walter
    Kogo, Yasuo
    ENGINEERING FRACTURE MECHANICS, 2016, 153 : 244 - 258
  • [42] Characterization of Heat Affected Zone Generation in Laser Processing of Carbon Fiber Reinforced Plastics
    Woo, Seong Cheol
    Wang, Huan
    Kim, Ji Hun
    Kim, Joohan
    INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING, 2024, 25 (12) : 2479 - 2489
  • [43] Developing of a portable ultrasonic apparatus for void content of carbon-fiber reinforced plastics
    Li, L
    Zhou, XJ
    Hua, ZH
    Pan, XB
    Liu, SS
    ICEMI 2005: Conference Proceedings of the Seventh International Conference on Electronic Measurement & Instruments, Vol 5, 2005, : 653 - 656
  • [44] Study on the Temperature Field of Nanosecond Pulse Laser Processing Carbon Fiber Reinforced Plastics
    Zhou, Liao
    Long, Yuhong
    Qin, Ting
    Jiao, Hui
    Huang, Ping
    Huang, Yuxing
    Zhang, Guanghui
    Zhang, Zhenjie
    Zhou, Jia
    SEVENTH ASIA PACIFIC CONFERENCE ON OPTICS MANUFACTURE (APCOM 2021), 2022, 12166
  • [45] Experimental study on gas-assisted laser cutting carbon fiber reinforced plastics
    Ting Qin
    Zhixian Zhong
    Hui Jiao
    Liao Zhou
    Yuxing Huang
    Yuhong Long
    The International Journal of Advanced Manufacturing Technology, 2022, 119 : 6361 - 6370
  • [46] Laser-Based Surface Modification of Microstructure for Carbon Fiber-Reinforced Plastics
    Yang W.
    Sun T.
    Cao Y.
    Li S.
    Liu C.
    Tang Q.
    Lasers in Manufacturing and Materials Processing, 2018, 5 (2) : 168 - 181
  • [47] Estimation of the Heat-Affected Zone in Carbon Fiber Reinforced Plastics Exposed to CW Radiation of the Ytterbium Fiber Laser
    S. A. Kotov
    N. A. Lyabin
    M. A. Kazaryan
    Bulletin of the Lebedev Physics Institute, 2019, 46 : 75 - 79
  • [48] Estimation of the Heat-Affected Zone in Carbon Fiber Reinforced Plastics Exposed to CW Radiation of the Ytterbium Fiber Laser
    Kotov, S. A.
    Lyabin, N. A.
    Kazaryan, M. A.
    BULLETIN OF THE LEBEDEV PHYSICS INSTITUTE, 2019, 46 (02) : 75 - 79
  • [49] Improved strength in carbon fiber reinforced plastics due after electron beam irradiation
    Mizutani, A
    Nishi, Y
    MATERIALS TRANSACTIONS, 2003, 44 (09) : 1857 - 1860
  • [50] Delamination analysis of the helical milling of carbon fiber-reinforced plastics by using the artificial neural network model
    Xuda Qin
    Bin Wang
    Guofeng Wang
    Hao Li
    Yuedong Jiang
    Xinpei Zhang
    Journal of Mechanical Science and Technology, 2014, 28 : 713 - 719