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Finite element analysis and optimization of a single-axis acoustic levitator

机译:单轴声悬浮器的有限元分析与优化

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摘要

A finite element analysis and a parametric optimization of single-axis acoustic levitators are presented. The finite element method is used to simulate a levitator consisting of a Langevin ultrasonic transducer with a plane radiating surface and a plane reflector. The transducer electrical impedance, the transducer face displacement, and the acoustic radiation potential that acts on small spheres are determined by the finite element method. The numerical electrical impedance is compared with that acquired experimentally by an impedance analyzer, and the predicted displacement is compared with that obtained by a fiber-optic vibration sensor. The numerical acoustic radiation potential is verified experimentally by placing small spheres in the levitator. The same procedure is used to optimize a levitator consisting of a curved reflector and a concave-faced transducer. The numerical results show that the acoustic radiation force in the new levitator is enhanced 604 times compared with the levitator consisting of a plane transducer and a plane reflector. The optimized levitator is able to levitate 3, 2.5-mm diameter steel spheres with a power consumption of only 0.9 W.
机译:提出了单轴声悬浮器的有限元分析和参数优化。有限元法被用来模拟悬浮体,该悬浮体由具有平面辐射表面和平面反射器的兰格文超声换能器组成。换能器的电阻抗,换能器的面位移和作用在小球体上的声辐射电势是通过有限元方法确定的。将数值电阻与通过阻抗分析仪实验获得的数值进行比较,并将预测的位移与通过光纤振动传感器获得的数值进行比较。通过在悬浮器中放置小球体,实验验证了数值声辐射电势。使用相同的过程来优化由弯曲反射器和凹面换能器组成的悬浮器。数值结果表明,与由平面换能器和平面反射器组成的悬浮体相比,新型悬浮体的声辐射力提高了604倍。经过优化的悬浮器能够悬浮3个直径为2.5毫米的钢球,而功耗仅为0.9W。

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