TY - JOUR
T1 - A novel multiscale modeling strategy of the low-velocity impact behavior of plain woven composites
AU - Hou, Yuliang
AU - Meng, Liang
AU - Li, Guohong
AU - Xia, Liang
AU - Xu, Yingjie
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2021/10/15
Y1 - 2021/10/15
N2 - A novel multiscale modeling strategy is proposed to investigate the low-velocity impact (LVI) behavior of plain woven composites. Initially, the effective properties of the yarn are obtained from the microscale modeling, in which a microscopic representative volume element (RVE) is constructed by considering carbon fibers and resin matrix. Meanwhile, a mesoscopic RVE is established using the internal fabric structure. Combined with the effective properties of the yarn and continuum damage mechanics (CDM) approaches, the damage initiation and evolution are predicted for the mesoscale models subjected to various loading conditions. A local homogenization approach is developed to transfer the warp and fill yarns, as well as the resin, into 0° and 90° subcells, respectively. Moreover, an equivalent cross-ply laminate (ECPL) cell is constructed by assembling these subcells, to represent the internal fabric structure. Finally, the LVI behavior of plain woven composites is investigated using the macroscale model obtained by extending the ECPL cells. The numerical results are in good agreement with the experimental measurements, confirming the reliability of the multiscale modeling strategy. The LVI damage mechanisms of plain woven composites are analyzed using the numerical simulations, indicating that the delamination and matrix-based damages are the prevailing failure modes.
AB - A novel multiscale modeling strategy is proposed to investigate the low-velocity impact (LVI) behavior of plain woven composites. Initially, the effective properties of the yarn are obtained from the microscale modeling, in which a microscopic representative volume element (RVE) is constructed by considering carbon fibers and resin matrix. Meanwhile, a mesoscopic RVE is established using the internal fabric structure. Combined with the effective properties of the yarn and continuum damage mechanics (CDM) approaches, the damage initiation and evolution are predicted for the mesoscale models subjected to various loading conditions. A local homogenization approach is developed to transfer the warp and fill yarns, as well as the resin, into 0° and 90° subcells, respectively. Moreover, an equivalent cross-ply laminate (ECPL) cell is constructed by assembling these subcells, to represent the internal fabric structure. Finally, the LVI behavior of plain woven composites is investigated using the macroscale model obtained by extending the ECPL cells. The numerical results are in good agreement with the experimental measurements, confirming the reliability of the multiscale modeling strategy. The LVI damage mechanisms of plain woven composites are analyzed using the numerical simulations, indicating that the delamination and matrix-based damages are the prevailing failure modes.
KW - Equivalent cross-ply laminate (ECPL) cell
KW - Impact damage
KW - Low-velocity impact
KW - Multiscale modeling
KW - Plain woven composites
UR - http://www.scopus.com/inward/record.url?scp=85111243588&partnerID=8YFLogxK
U2 - 10.1016/j.compstruct.2021.114363
DO - 10.1016/j.compstruct.2021.114363
M3 - 文章
AN - SCOPUS:85111243588
SN - 0263-8223
VL - 274
JO - Composite Structures
JF - Composite Structures
M1 - 114363
ER -