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Multiscale analysis on the anisotropic thermal conduction of laminated fabrics by finite element method

  • D. Peijian
  • , C. Li
  • , D. Xiang
  • , X. Junbo
  • , L. Junling
  • , J. Wei
  • , D. Xu
  • , Z. Yifan
  • , G. Ziyue
  • , W. Xi
  • Tiangong University
  • School of Textile Science and Engineering
  • Key Laboratory of Advanced Textile Composite Materials
  • Deakin University

Research output: Contribution to journalArticlepeer-review

19   Link opens in a new tab Citations (SciVal)

Abstract

In this paper, we present a novel “Two-scale finite element method” (tFEM) based on virtual fiber models to investigate the heat conduction behavior of stacked quartz woven fabrics and predict their anisotropic thermal conductivity. Considering the random fiber distribution and the twisted characteristic of yarns, the yarn-scale model was established. Furthermore, the single-layer fabric was composed of interwoven virtual yarns, which are stacked to be the multi-laminate fabric-scale model. Both the yarn-scale model and the fabric-scale model were combined with air matrix to form the two-phase composite model. Hot-Disk thermal constant analyzer was used to measure the anisotropic thermal conductivity of yarns and woven fabrics. Excellent agreement between simulations and experiments is obtained, which indicates the multiscale finite element models in this paper is accurate. The innovations of the study are that not only the effects of fiber numbers and diameters on the thermal conductivity of twist yarns and quartz ply-fabrics are analyzed, but also the detailed heat flux distribution and temperature distribution between fibers and the air are simulated and analyzed. Moreover, the isotropic thermal conductivity of the yarn radial direction and the anisotropic thermal conductivity of quartz fabrics are illustrated.

Original languageEnglish
Article number115672
Number of pages19
JournalComposite Structures
Volume292
Early online date29 Apr 2022
DOIs
Publication statusPublished - 15 Jul 2022

Funding

This work was finally supported by the Scientific Research Project of Tianjin Education Commission [grant number 2017KJ066]; the Major science and technology projects of Tianjin [grant number 18ZXJMTG00190]; the Major science and technology projects of Shanxi Province [grant number 20181102022], University Innovation Team Training Plan of Tianjin [grant number TD13-5043] and Science and Technology Foundation of National Defense Key Laboratory of Advanced Composite Materials, China [grant number 61429040403]

Keywords

  • Anisotropic thermal conductivity
  • Heat flux distribution
  • Random fiber distribution
  • Temperature distribution
  • Two-scale finite element method
  • Virtual fiber model

ASJC Scopus subject areas

  • Ceramics and Composites
  • Civil and Structural Engineering

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