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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Acoustical pulling force of a limited-diffracting annular beam centered on a sphere
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Acoustical pulling force of a limited-diffracting annular beam centered on a sphere

机译:以球为中心的有限衍射环形梁的声拉力

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A rigorous method is developed to investigate the generation of a negative (attracting) force acting in the opposite direction of wave propagation using a limited-diffracting single annular piezo-ring transducer. Based on the Rayleigh??? Sommerfeld diffraction integral and the addition theorems for the Legendre and spherical wave functions, the expression for the incident velocity potential field (which is an exact solution of the Helmholtz equation) is derived analytically, and exact closed-form partial-wave series expansions for the incident and scattered fields are obtained without any approximations. The total (incident + scattered) field expression is used to evaluate the time-averaged acoustic radiation force (ARF) on a sphere centered on the beam's axis in a nonviscous fluid. Numerical predictions for the scattering and ARF performed with particular emphasis on the annular-ring's radial thickness, the distance separating the sphere from the acoustic source, the size of the transducer, as well as the sphere's elastic properties, reveal some conditions where a pulling axial ARF directed toward the annular ring-source surface arises. The simplicity and reliability of the annular-ring geometry demonstrated here provides a substantial solution with widespread applications in the experimental design of acoustical limited-diffracting beams operating over an extended axial depth-of-field for contactless and dexterous particle manipulation.
机译:开发了一种严格的方法来研究使用有限衍射的单个环形压电环换能器在波传播的相反方向上作用的负(吸引)力的产生。基于瑞利???解析得出Sommerfeld衍射积分以及勒让德和球面波函数的加法定理,入射速度势场的表达式(这是Helmholtz方程的精确解),并为无需任何近似即可获得入射场和散射场。总的(入射+散射)场表达式用于评估非粘性流体中以光束轴为中心的球体上的时均声辐射力(ARF)。对散射和ARF的数值预测特别着重于环形环的径向厚度,将球体与声源分开的距离,换能器的尺寸以及球体的弹性,揭示了一些条件,其中轴向拉力产生指向环形环源表面的ARF。此处展示的环形环几何形状的简单性和可靠性为在有限轴向声场上运行的有限衍射声束的实验设计提供了广泛的解决方案,可用于非接触式和灵巧的粒子处理。

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