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The dynamic excitation of a granular chain : contact mechanics finite element analysis and experimental validation

机译:颗粒链的动态激发:接触力学有限元分析和实验验证

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摘要

There is currently interest in transmitting acoustic signals along granular chains to produce waveforms of relevance to biomedical ultrasound applications. The study of such a transduction mechanism is greatly aided by the use of validated theoretical models. In view of this, a finite element analysis is presented in this paper. The dynamics of a granular chain of six, 1 mm diameter chrome steel spherical beads, was excited at one end using a sinusoidal displacement signal at 73 kHz, and terminated by a rigid support. Output from this model was compared with the solution provided by the equivalent discrete dynamics model, and good agreement obtained. An experimental configuration involving the same chain, but terminated by an annular support made of a liquid photopolymer resin was also simulated and the velocity of the last sphere obtained through simulation was compared with laser vibrometer measurement, with good agreement. This model was then extended whereby the granular chain was coupled to an acoustic medium with the properties of water, via a thin vitreous carbon cylinder. Finite element predictions of the acoustic pressure indicate that, for a 73 kHz excitation frequency, harmonic rich acoustic pulses with harmonic content close to 1 MHz are predicted.
机译:当前,人们关注沿颗粒链传输声信号以产生与生物医学超声应用相关的波形。通过使用经过验证的理论模型,可以极大地帮助研究这种转导机制。有鉴于此,本文提出了一种有限元分析方法。六个直径为1 mm的铬钢球形小珠的颗粒链的动力学在一端使用73 kHz的正弦位移信号进行激励,并由刚性支撑终止。该模型的输出与等效离散动力学模型提供的解决方案进行了比较,并获得了良好的一致性。还对包含相同链但由液态光聚合物树脂制成的环形支撑终止的实验构型进行了仿真,并将通过仿真获得的最后一个球体的速度与激光测振仪进行了比较,结果吻合良好。然后扩展该模型,从而通过薄的玻璃碳圆筒将颗粒链与具有水性质的声学介质耦合。声压的有限元预测表明,对于73 kHz的激励频率,可以预测谐波含量接近1 MHz的富谐波声脉冲。

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