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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Near-field acoustic resonance scattering of a finite bessel beam by an elastic sphere
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Near-field acoustic resonance scattering of a finite bessel beam by an elastic sphere

机译:弹性球体对有限贝塞尔光束的近场声共振散射

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The near-field acoustic scattering from a sphere centered on the axis of a finite Bessel acoustic beam is derived stemming from the Rayleigh-Sommerfeld diffraction surface integral and the addition theorems for the spherical wave and Legendre functions. The beam emerges from a finite circular disk vibrating according to one of its radial modes corresponding to the fundamental solution of a Bessel beam J0. The incident pressure field's expression is derived analytically as a partial-wave series expansion, taking into account the finite size and the distance from the center of the disk transducer. Initially, the scattered pressure by a rigid sphere is evaluated, and backscattering pressure moduli plots as well as 3-D directivity patterns for an elastic PMMA sphere centered on a finite Bessel beam with appropriate tuning of its half-cone angle reveal possible resonance suppression of the sphere only in the zone near the Bessel transducer. Moreover, the analysis is extended to derive the mean spatial incident and scattered pressures at the surface of a rigid circular receiver of infinitesimal thickness. The transducer, sphere, and receiver are assumed to be coaxial. Some applications can result from the present analysis because all physically realizable Bessel beam sources radiate finite sound beams as opposed to waves of infinite extent.
机译:来自有限贝塞尔声束轴中心的球体的近场声散射是根据瑞利-索默菲尔德衍射表面积分以及球面波和勒让德函数的加法定理得出的。光束从有限圆盘发出,该圆盘根据其贝塞尔光束J 0 的基本解的径向模式之一振动。考虑到有限大小和距磁盘换能器中心的距离,入射压力场的表达式可以通过分波级数展开进行解析得出。最初,对刚性球体的散射压力进行了评估,并针对以有限贝塞尔光束为中心的弹性PMMA球体的后向散射压力模量图以及3-D方向图,并对其半锥角进行了适当的调整,揭示了可能的共振抑制。仅在Bessel换能器附近的区域中球。此外,扩展了分析以得出具有最小厚度的刚性圆形接收器表面的平均空间入射和散射压力。假定换能器,球体和接收器是同轴的。本分析可以得出某些应用,因为所有可物理实现的贝塞尔光束源都发出有限的声束,而不是无限范围的波。

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