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arXiv · 2601.08305

Ultra-low-frequency reflection mode conversion from compressional to shear waves enabled by periodic inclined slits

Abstract

A periodically patterned free surface with inclined slits can convert an incident compressional wave into a reflected shear wave with nearly complete efficiency at very low frequency. The system is described by two-dimensional in-plane linear elasticity, and the slits are treated as voids. The conversion is quantified by the ratio between the reflected shear-wave energy and the incident compressional-wave energy, obtained from mode decomposition and energy-flux evaluation below the surface. The results indicate that the inclined geometry introduces strong coupling between normal and tangential motions at the boundary, enabling suppression of the ordinary compressional reflection while redirecting the reflected energy into the shear channel. This simple, geometry-controlled mechanism provides a compact route for low-frequency elastic-wave polarization control.

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Kaifei Feng, Pai Peng. 2026-01-13. Ultra-low-frequency reflection mode conversion from compressional to shear waves enabled by periodic inclined slits. https://arxiv.org/abs/2601.08305

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