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Acoustic Radiation Force and Torque on Small Particles as Measures of the Canonical Momentum and Spin Densities

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abstract

We examine acoustic radiation force and torque on a small (subwavelength) absorbing isotropic particle immersed in a monochromatic (but generally inhomogeneous) sound-wave field. We show that by introducing the monopole and dipole polarizabilities of the particle, the problem can be treated in a way similar to the well-studied optical forces and torques on dipole Rayleigh particles. We derive simple analytical expressions for the acoustic force (including both the gradient and scattering forces) and torque. Importantly, these expressions reveal intimate relations to the fundamental field properties introduced recently for acoustic fields: the canonical momentum and spin angular momentum densities. We compare our analytical results with previous calculations and exact numerical simulations. We also consider an important example of a particle in an evanescent acoustic wave, which exhibits the mutually-orthogonal scattering (radiation-pressure) force, gradient force, and torque from the transverse spin of the field.

years

2019 1

verdicts

ACCEPT 1

representative citing papers

Acoustic vortex beams in synthetic magnetic fields

physics.class-ph · 2019-08-22 · accept · novelty 6.0

Acoustic vortex beams in rotating-fluid waveguides feel a synthetic magnetic field, and their pressure and velocity components respond differently to the relative sign of beam angular momentum and field, unlike scalar electron beams.

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  • Acoustic vortex beams in synthetic magnetic fields physics.class-ph · 2019-08-22 · accept · none · ref 27 · internal anchor

    Acoustic vortex beams in rotating-fluid waveguides feel a synthetic magnetic field, and their pressure and velocity components respond differently to the relative sign of beam angular momentum and field, unlike scalar electron beams.