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超声诱导的微粒在三维空间中的声泳运动。

Ultrasound-induced acoustophoretic motion of microparticles in three dimensions.

作者信息

Muller P B, Rossi M, Marín A G, Barnkob R, Augustsson P, Laurell T, Kähler C J, Bruus H

机构信息

Department of Physics, Technical University of Denmark, DTU Physics Building 309, DK-2800 Kongens Lyngby, Denmark.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2013 Aug;88(2):023006. doi: 10.1103/PhysRevE.88.023006. Epub 2013 Aug 8.

Abstract

We derive analytical expressions for the three-dimensional (3D) acoustophoretic motion of spherical microparticles in rectangular microchannels. The motion is generated by the acoustic radiation force and the acoustic streaming-induced drag force. In contrast to the classical theory of Rayleigh streaming in shallow, infinite, parallel-plate channels, our theory does include the effect of the microchannel side walls. The resulting predictions agree well with numerics and experimental measurements of the acoustophoretic motion of polystyrene spheres with nominal diameters of 0.537 and 5.33 μm. The 3D particle motion was recorded using astigmatism particle tracking velocimetry under controlled thermal and acoustic conditions in a long, straight, rectangular microchannel actuated in one of its transverse standing ultrasound-wave resonance modes with one or two half-wavelengths. The acoustic energy density is calibrated in situ based on measurements of the radiation dominated motion of large 5-μm-diameter particles, allowing for quantitative comparison between theoretical predictions and measurements of the streaming-induced motion of small 0.5-μm-diameter particles.

摘要

我们推导了矩形微通道中球形微粒三维(3D)声泳运动的解析表达式。该运动由声辐射力和声流诱导的拖曳力产生。与浅的、无限的平行板通道中瑞利流的经典理论不同,我们的理论确实考虑了微通道侧壁的影响。所得预测结果与标称直径为0.537和5.33μm的聚苯乙烯球体声泳运动的数值模拟和实验测量结果吻合良好。在受控的热和声条件下,在一个长的、直的矩形微通道中,利用像散粒子跟踪测速技术记录了3D粒子运动,该微通道以其一阶横向驻波共振模式(具有一个或两个半波长)驱动。基于对直径为5μm的大粒子的辐射主导运动的测量,原位校准了声能密度,从而能够对理论预测与直径为0.5μm的小粒子的流致运动测量结果进行定量比较。

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