TY - JOUR
T1 - Investigations on the compressive behavior of 3D random fibrous materials at elevated temperatures
AU - Li, Datao
AU - Xia, Wei
AU - Yu, Wenshan
AU - Fang, Qinzhi
AU - Shen, Shengping
N1 - Publisher Copyright:
© 2017 Elsevier Ltd and Techna Group S.r.l.
PY - 2017/4/15
Y1 - 2017/4/15
N2 - By means of the experimental method, micromechanical model and Finite Element Method (FEM), this paper studied the compressive behaviors of the three-dimensional random fibrous (3D RF) material in the through-the-thickness (TTT) and in-plane (IP) directions at elevated temperatures. The compressive experiments showed that the fracture strength and Young's modulus of the 3D RF material in the TTT and IP directions decrease as increasing temperature. The specimens fracture through breaking the fibers under the bending deformation, while almost all the bonding zones keep intact. A simple micromechanical model and a FEM model are developed to simulate the mechanical properties of the 3D RF material. The micromechanical model ignores the randomness of the fibers, while in the FEM model special attention is drawn to the influence of the morphological characteristic. Numerical results from the micromechanical model and FEM model agree well with the observations from the compressive experiments.
AB - By means of the experimental method, micromechanical model and Finite Element Method (FEM), this paper studied the compressive behaviors of the three-dimensional random fibrous (3D RF) material in the through-the-thickness (TTT) and in-plane (IP) directions at elevated temperatures. The compressive experiments showed that the fracture strength and Young's modulus of the 3D RF material in the TTT and IP directions decrease as increasing temperature. The specimens fracture through breaking the fibers under the bending deformation, while almost all the bonding zones keep intact. A simple micromechanical model and a FEM model are developed to simulate the mechanical properties of the 3D RF material. The micromechanical model ignores the randomness of the fibers, while in the FEM model special attention is drawn to the influence of the morphological characteristic. Numerical results from the micromechanical model and FEM model agree well with the observations from the compressive experiments.
KW - Compressive strength
KW - Elevated temperature
KW - FEM model
KW - Micromechanical model
KW - Random fibrous materials (RF materials)
UR - https://www.scopus.com/pages/publications/85009443585
U2 - 10.1016/j.ceramint.2017.01.044
DO - 10.1016/j.ceramint.2017.01.044
M3 - 文章
AN - SCOPUS:85009443585
SN - 0272-8842
VL - 43
SP - 5195
EP - 5203
JO - Ceramics International
JF - Ceramics International
IS - 6
ER -