ANALYSIS OF FLEXURAL VIBRATION OF V-SHAPED BEAMS IMMERSED IN VISCOUS FLUIDS
HuLu, YanHan, ZhangWenming*,, PengZhike, MengGuang State Key Laboratory of Mechanical System and Vibration, Shanghai Jiao Tong University, Shanghai 200240, China; School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, China 中图分类号:O327 文献标识码:A
关键词:V型悬臂梁;流固耦合;水下振动;水动力函数;频响分析 Abstract V-shaped beams have been widely used in atomic force microscope (AFM) and micro-nano mechanical sensing applications.The structure is usually used for sophisticated detection, sensing and performance characterization in viscous fluids, thus making it complex to study the vibration characteristics of the structure by considering the fluid-structure interaction between the complicated geometry and viscous fluids.It is of fundamental importance to investigate the vibration characteristics of V-shaped beams submerged in viscous fluids owing to the fact that the vibration characteristics will directly affect the dynamic properties of the applications.In this paper, an underwater vibration model is developed to depict the dynamic characteristics of V-shaped beams immersed in viscous fluids by taking into account the fact that the cross-section and bending stiffness of the V-shaped beam are variable along the beam axis.A complex hydrodynamic function in terms of the gap to width ratio and the frequency parameter is developed to describe the hydrodynamic loading where the complex hydrodynamic function is derived from the modified hydrodynamic function based on the gap to width ratio in beams cross-section.Besides, the frequency response of V-shaped beams vibrating in viscous fluids is obtained theoretically.Moreover, the experimental verifications on flexural vibrations of several V-shaped beams with different geometrical sizes are carried out.It demonstrates that the experimental data is in good agreement with the theoretical results, thus validating the modified expression of hydrodynamic function and the underwater dynamic model.Besides, the effect of different fluid viscosities, angles of V-shaped beams and the scale of the geometry on the vibration characteristics of the coupling system is analyzed based on the proposed fluid-structure interaction model.
Keywords:V-shaped beams;fluid-structure interaction;underwater vibration;hydrodynamic function;frequency response -->0 PDF (9636KB)元数据多维度评价相关文章收藏文章 本文引用格式导出EndNoteRisBibtex收藏本文--> 胡璐, 闫寒, 张文明, 彭志科, 孟光. 黏性流体环境下V型悬臂梁结构流固耦合振动特性研究[J]. 力学学报, 2018, 50(3): 643-653 https://doi.org/10.6052/0459-1879-18-028 HuLu, YanHan, ZhangWenming, PengZhike, MengGuang. ANALYSIS OF FLEXURAL VIBRATION OF V-SHAPED BEAMS IMMERSED IN VISCOUS FLUIDS[J]. Chinese Journal of Theoretical and Applied Mechanics, 2018, 50(3): 643-653 https://doi.org/10.6052/0459-1879-18-028
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