Zhang Xiangwen, Yang Deqing
State Key Laboratory of Ocean Engineering, Collaborative Innovation Center for Advanced Ship and Deep-Sea Exploration, School of Naval Architecture, Ocean and Civil Engineering, Shanghai Jiao Tong University, Shanghai 200240, China.
Materials (Basel). 2016 Nov 7;9(11):900. doi: 10.3390/ma9110900.
A preliminary study of the mechanical properties of auxetic cellular material consisting of re-entrant hexagonal honeycombs is presented. For different scales of the honeycombs, the finite element method (FEM) and experimental models are used to perform a parametric analysis on the effects of the Poisson's ratio (cell angle) and the relative density (cell thickness) of honeycombs on bearing capacity and dynamic performance of the auxetic material. The analysis demonstrates that the ultimate bearing capacity of the presented auxetic cellular material is scale-independent when the Poisson's ratio and the relative density are kept constant. The relationship between the geometric parameters and vibration level difference of the honeycombs is also revealed, which can be divided into two converse parts around the Poisson's ratio v = - 1.5 . When v is smaller than -1.5, increasing the cell thickness leads to an increase in the vibration level difference of the honeycombs. Moreover, the dynamic performance of thin-walled honeycombs is greatly influenced by the scale of the honeycombs, especially for the ones with small Poisson's ratio. These conclusions are verified by a frequency response test and a good agreement between the numerical results and experimental data is achieved.
本文对由内凹六边形蜂窝组成的拉胀多孔材料的力学性能进行了初步研究。针对不同尺寸的蜂窝,采用有限元方法(FEM)和实验模型,对蜂窝的泊松比(胞元角度)和相对密度(胞元厚度)对拉胀材料承载能力和动态性能的影响进行参数分析。分析表明,当泊松比和相对密度保持恒定时,所提出的拉胀多孔材料的极限承载能力与尺寸无关。还揭示了蜂窝几何参数与振动水平差之间的关系,该关系在泊松比v = - 1.5 附近可分为两个相反的部分。当v小于 -1.5时,增加胞元厚度会导致蜂窝振动水平差增大。此外,薄壁蜂窝的动态性能受蜂窝尺寸的影响很大,特别是对于泊松比小的蜂窝。这些结论通过频率响应测试得到验证,数值结果与实验数据之间取得了良好的一致性。