TY - JOUR
T1 - Microstructure and mechanical properties of three-dimensional five-directional braided composites
AU - Li, Dian sen
AU - Lu, Zi xing
AU - Chen, Li
AU - Li, Jia lu
PY - 2009/9
Y1 - 2009/9
N2 - Three-dimensional (3D) five-directional braided composites are significant structural materials in the fields of astronauts and aeronautics. On the basis of the 3D five-directional braiding process, three types of microstructural unit cell models are established with respect to the interior, surface and corner regions. The mathematical relationships among the structural parameters, such as fiber orientation, fiber volume fraction, the yarn packing factor, are derived. By using these three unit cell models, a micromechanical prediction procedure is described to simulate the stiffness and strength properties of 3D five-directional braided composites. Only the in situ constituent fiber and matrix properties of the composites and the fiber volume proportion are required in the simulation. The stress states generated in the constituent fiber and matrix materials are explicitly correlated with the overall applied load on the composites. The predictive stiffness and strength are in good agreement with available experimental data, which demonstrates the applicability of the present analytical model.
AB - Three-dimensional (3D) five-directional braided composites are significant structural materials in the fields of astronauts and aeronautics. On the basis of the 3D five-directional braiding process, three types of microstructural unit cell models are established with respect to the interior, surface and corner regions. The mathematical relationships among the structural parameters, such as fiber orientation, fiber volume fraction, the yarn packing factor, are derived. By using these three unit cell models, a micromechanical prediction procedure is described to simulate the stiffness and strength properties of 3D five-directional braided composites. Only the in situ constituent fiber and matrix properties of the composites and the fiber volume proportion are required in the simulation. The stress states generated in the constituent fiber and matrix materials are explicitly correlated with the overall applied load on the composites. The predictive stiffness and strength are in good agreement with available experimental data, which demonstrates the applicability of the present analytical model.
KW - Composites
KW - Five-directional braiding
KW - Mechanical properties
KW - Microstructures
KW - Strength
KW - Three-dimensional reinforcement
UR - https://www.scopus.com/pages/publications/67649672095
U2 - 10.1016/j.ijsolstr.2009.05.013
DO - 10.1016/j.ijsolstr.2009.05.013
M3 - 文章
AN - SCOPUS:67649672095
SN - 0020-7683
VL - 46
SP - 3422
EP - 3432
JO - International Journal of Solids and Structures
JF - International Journal of Solids and Structures
IS - 18-19
ER -