Zhang Yafei, Zhai Yuqing, Min Shiwei, Dou Yihua
School of Mechanical Engineering, Xi'an Shiyou University, Xi'an 710065, China.
Xi'an Key Laboratory of Wellbore Integrity Evaluation, Xi'an Shiyou University, Xi'an 710065, China.
Materials (Basel). 2023 Jul 10;16(14):4933. doi: 10.3390/ma16144933.
The performance of a multi-layer honeycomb skeleton can be significantly enhanced through tandem connection, while the structure's properties can be tailored by altering the layer stacking method of the honeycomb skeleton. To investigate the impact of layer stacking methods on the mechanical properties of multilayer honeycomb skeletons, 3D printing technology was used to prepare double-layer honeycomb skeleton tandem structures with different dislocation modes in compression testing. A finite element simulation model was established to conduct quasi-static simulation research. Compared to that of a single-layer honeycomb skeleton, the energy absorption of the honeycomb skeleton tandem structure increased. The optimal bearing capacity of the honeycomb skeleton was achieved when the upper and lower layers were precisely aligned. Once dislocation occurred, both the value of average platform stress and energy absorption decreased. Then, the bearing capacity of the honeycomb skeleton tandem structures increased with an enlargement of the dislocation, reaching its maximum at the half-dislocation period. An increase in the partition thickness and stiffness led to a reduction in the dislocation-induced effects on the mechanical properties. The research results can provide theoretical and data support for the engineering application of honeycomb skeleton tandem structures.
通过串联连接可以显著提高多层蜂窝骨架的性能,同时可以通过改变蜂窝骨架的层堆叠方式来调整结构的性能。为了研究层堆叠方式对多层蜂窝骨架力学性能的影响,在压缩试验中采用3D打印技术制备了具有不同错位模式的双层蜂窝骨架串联结构。建立了有限元模拟模型进行准静态模拟研究。与单层蜂窝骨架相比,蜂窝骨架串联结构的能量吸收增加。当上下层精确对准时,蜂窝骨架达到最佳承载能力。一旦发生错位,平均平台应力值和能量吸收都会降低。然后,蜂窝骨架串联结构的承载能力随着错位的增大而增加,在半错位周期达到最大值。隔板厚度和刚度的增加导致错位对力学性能的影响减小。研究结果可为蜂窝骨架串联结构的工程应用提供理论和数据支持。