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Analytical approach for predicting vibration characteristics of an embedded elastic sphere in complex fluid

机译:用于预测复杂液中嵌入弹性球的振动特性的分析方法

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摘要

Vibration characteristics of elastic nanostructures embedded in fluid medium have been used for biological and mechanical sensing and also to investigate the materials mechanical properties. The fluid medium surrounding the nanostructure is typically modeled as a Newtonian fluid. A novel approach based on the exact theory has been developed in this paper, to accurately predict the various vibration scenarios of an elastic sphere, in a compressible viscous fluid. Then, the analysis is extended to a viscoelastic medium using the Maxwell fluid model. To demonstrate the accuracy of the present approach, a comparison is made with the published theoretical results in the literature in some particular cases, which shows a very good agreement. The effects of fluid compressibility and viscoelasticity are discussed in details, and we demonstrate that the fluid compressibility plays a significant role in the vibration modes of an elastic sphere. Results also show that the different vibration modes of a sphere trigger a viscoelastic response in water-glycerol mixtures similar to that of literature. In addition, the obtained results can serve as benchmark solution in design of liquid sensors.
机译:嵌入在流体介质中的弹性纳米结构的振动特性已经用于生物和机械传感,并研究了材料机械性能。围绕纳米结构的流体介质通常以牛顿液为模拟。本文开发了一种基于确切理论的新方法,以准确地预测可压缩粘性流体中的弹性球的各种振动场景。然后,分析延伸到使用麦克斯韦流体模型的粘弹性介质。为了展示本方法的准确性,在一些特定情况下,在文献中发表的理论结果进行了比较,这表明了非常良好的一致性。细节讨论了流体可压缩性和粘弹性的影响,并且我们证明流体压缩性在弹性球的振动模式中起着重要作用。结果还表明,球体的不同振动模式引发了与文学类似的水 - 甘油混合物中的粘弹性反应。此外,所获得的结果可以作为液体传感器设计的基准解决方案。

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