Zhang Shuming, Zhu Ziqian, Li Shuaijun, Yu Fei, Tian Chunping, Yao Lu
Wuhan Secondary Ship Design & Research Institute, Wuhan 430064, China.
China Ship Development & Design Center, Wuhan 430060, China.
Materials (Basel). 2022 Oct 10;15(19):7030. doi: 10.3390/ma15197030.
The energy-absorption mechanism of nanofluidic systems is being investigated under dynamic cases, represented by the split Hopkinson pressure bar experiment. However, the cost of this cannot be ignored. Therefore, numerical simulation is playing an increasingly important role in optimizing the split Hopkinson pressure bar experimental technology and analyzing its accuracy. In this paper, a three-dimensional finite element simulation model of the split Hopkinson pressure bar experimental devices was proposed to analyze the energy-absorption capabilities of nanofluidic-system-filled tubes. The reliability of this methodology was discussed in terms of model construction, model validation and potential application, indicating the simulation methodology is applicable to further investigation and can provide a reference for engineering practice. The simulation results showed that the infiltration pressure and the mass ratio of solid to liquid determine the post-buckling compression stress and the effective compression stroke, respectively.
纳米流体系统的能量吸收机制正在动态情况下进行研究,以分离式霍普金森压杆实验为代表。然而,这方面的成本不容忽视。因此,数值模拟在优化分离式霍普金森压杆实验技术及其精度分析中发挥着越来越重要的作用。本文提出了分离式霍普金森压杆实验装置的三维有限元模拟模型,以分析填充纳米流体系统的管子的能量吸收能力。从模型构建、模型验证和潜在应用等方面讨论了该方法的可靠性,表明该模拟方法适用于进一步研究,并可为工程实践提供参考。模拟结果表明,渗透压力和固液质量比分别决定了屈曲后压缩应力和有效压缩行程。