Modeling thermal conductivity of polymer/carbon fiber composites prepared by SCFNA method

被引:1
|
作者
He, Xiaoxiang [1 ,3 ]
He, Zhiyuan [1 ]
Ou, Dan [1 ]
Ma, Ying [1 ]
Li, Linjie [1 ]
Luo, Yue [1 ,2 ]
Zhang, Hehui [1 ]
Wu, Shuying [1 ,3 ]
机构
[1] Xiangtan Univ, Sch Mech Engn & Mech, Xiangtan, Peoples R China
[2] Xiangtan Univ, Foshan Green Intelligent Mfg Res Inst, Foshan, Peoples R China
[3] Xiangtan Univ, Sch Mech Engn & Mech, Xiangtan 411105, Peoples R China
关键词
modeling; polymer composites; SCFNA method; thermal conductivity; NETWORK;
D O I
10.1002/pc.27884
中图分类号
TB33 [复合材料];
学科分类号
摘要
The spatial confining forced network assembly (SCFNA) has proven to be a promising method for greatly improving the thermal conductivity (TC) of polymer composites via transforming self-assembled networks into force-assembled networks in polymer matrices. Most of the models currently in use were derived to predict the TC of polymer composites with self-assembled networks; however, these are not suitable for predicting the TC of polymer composites with force-assembled networks. To address this issue, a TC prediction model for polymer/carbon fiber (CF) composites obtained using the SCFNA method was developed. First, a literature TC prediction model, built by abstracting a representative volume element (RVE) from a CF self-assembled network, was utilized to determine the key parameters related to the CF distance. Thereafter, a modified RVE model was constructed based on the morphological characteristics of the force-assembled network of CFs. In conjunction with the thermal resistance method, the TC values of the polymer composites were calculated and successfully validated using experimental data obtained by the SCFNA method. In this model, the compression ratio (epsilon) and a fitting coefficient f were applied to describe the relationship between self-assembled and force-assembled networks, and furthermore, the actual filler content in the force-assembled network was calculated. It was found that as the epsilon value and filler content increased, f accordingly decreased; however, the calculated actual filler volume content in the force-assembled network increased. These results possibly reflect the evolution of the CF microstructure obtained by the SCFNA method.
引用
收藏
页码:1715 / 1725
页数:11
相关论文
共 50 条
  • [31] Improved thermal conductivity of polydimethylsiloxane/short carbon fiber composites prepared by spatial confining forced network assembly
    He, Xiaoxiang
    Huang, Yao
    Liu, Ying
    Zheng, Xiuting
    Kormakov, Semen
    Sun, Jingyao
    Zhuang, Jian
    Gao, Xiaolong
    Wu, Daming
    [J]. JOURNAL OF MATERIALS SCIENCE, 2018, 53 (20) : 14299 - 14310
  • [32] Improved thermal conductivity of polydimethylsiloxane/short carbon fiber composites prepared by spatial confining forced network assembly
    Xiaoxiang He
    Yao Huang
    Ying Liu
    Xiuting Zheng
    Semen Kormakov
    Jingyao Sun
    Jian Zhuang
    Xiaolong Gao
    Daming Wu
    [J]. Journal of Materials Science, 2018, 53 : 14299 - 14310
  • [33] Electrical conductivity and rheology of carbon fiber/liquid crystal polymer composites
    King, Julia A.
    Keith, Jason M.
    Smith, Ryan C.
    Morrison, Faith A.
    [J]. POLYMER COMPOSITES, 2007, 28 (02) : 168 - 174
  • [34] Experiments and modeling for thermal conductivity of graphite nanoplatelets/carbon composites
    Yue, Qi
    Jin, Shuangling
    Guo, Chenting
    Gao, Qian
    Zhang, Rui
    Jin, Minglin
    [J]. FULLERENES NANOTUBES AND CARBON NANOSTRUCTURES, 2016, 24 (12) : 762 - 768
  • [35] A genetic fuzzy based modeling of effective thermal conductivity for polymer composites
    Nandi, Arup Kumar
    Deb, Kalyanmoy
    Datta, Shubhabrata
    Orkas, Juhani
    [J]. JOURNAL OF INTELLIGENT & FUZZY SYSTEMS, 2013, 25 (02) : 259 - 270
  • [36] Progressive modeling of transverse thermal conductivity of unidirectional natural fiber composites
    Zhao, Xiaoyu
    Tu, Wenqiong
    Chen, Qiang
    Wang, Guannan
    [J]. INTERNATIONAL JOURNAL OF THERMAL SCIENCES, 2021, 162
  • [37] Thermal conductivity of carbon nanotube and hexagonal boron nitride polymer composites
    TabkhPaz, Majid
    Shajari, Shaghayegh
    Mahmoodi, Mehdi
    Park, Dong-Yeob
    Suresh, Hamsini
    Park, Simon S.
    [J]. COMPOSITES PART B-ENGINEERING, 2016, 100 : 19 - 30
  • [38] Microstructure and thermal conductivity of high thermal conductivity carbon/carbon composites
    Yao Yu-min
    Li Hong
    Liu Zheng-qi
    Yang Min
    Ren Mu-su
    Sun Jin-liang
    [J]. CAILIAO GONGCHENG-JOURNAL OF MATERIALS ENGINEERING, 2020, 48 (11): : 155 - 161
  • [39] Through-thickness thermal conductivity enhancement and tensile response of carbon fiber-reinforced polymer composites
    Zhang, Shangda
    Gao, Liang
    Han, Jincheng
    Li, Zhaoxin
    Zu, Guoqing
    Ran, Xu
    Sun, Yuguo
    [J]. COMPOSITES PART B-ENGINEERING, 2019, 165 : 183 - 192
  • [40] Compression-enhanced thermal conductivity of carbon loaded polymer composites
    Ohayon-Lavi, Avia
    Buzaglo, Matat
    Ligati, Shani
    Peretz-Damari, Sivan
    Shachar, Gal
    Pinsk, Noam
    Riskin, Michael
    Schatzberg, Yotam
    Genish, Isaschar
    Regev, Oren
    [J]. CARBON, 2020, 163 : 333 - 340