Ribbans Brian, Li Yujie, Tan Ting
Civil and Environmental Engineering, the University of Vermont, Burlington, VT 05405, USA.
Civil and Environmental Engineering, the University of Vermont, Burlington, VT 05405, USA.
J Mech Behav Biomed Mater. 2016 Mar;56:57-67. doi: 10.1016/j.jmbbm.2015.11.004. Epub 2015 Nov 18.
Helicoidal fibril structures are identified in many natural animals and plants. This research uses an integrated experimental and modeling approach to study the interlaminar shear resistance of bioinspired helicoidal fiber structures. First, helicoidal fiber-reinforced polymeric composites were created using 3D printed fiber cores and polymeric matrices, including plain, ring and helix reinforced helicoidal specimens. Then, monotonic torsional tests were performed to characterize the composite failure under interlaminar shear stresses, and fractographic characterization was conducted to elucidate corresponding fracture mechanisms in each specimen type. Finally, finite element modeling was performed to explore the critical factors on the interlaminar shear resistance of helicoidal fiber structures. The results showed that fiber-matrix modulus ratios and pitch angles of helix reinforcements played important roles on the interlaminar shear resistance of helicoidal fiber structures.
在许多天然动植物中都能发现螺旋状纤维结构。本研究采用实验与建模相结合的方法,研究仿生螺旋状纤维结构的层间剪切阻力。首先,使用3D打印的纤维芯和聚合物基体制造螺旋状纤维增强聚合物复合材料,包括平纹、环形和螺旋增强的螺旋状试样。然后,进行单调扭转试验以表征层间剪切应力作用下的复合材料破坏,并进行断口形貌表征以阐明每种试样类型中相应的断裂机制。最后,进行有限元建模以探索影响螺旋状纤维结构层间剪切阻力的关键因素。结果表明,纤维-基体模量比和螺旋增强材料的螺距角对螺旋状纤维结构的层间剪切阻力起着重要作用。