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Scatterless interferences: Delay of laminar-to-turbulent flow transition by a lattice of subsurface phonons

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arxiv 2503.18835 v4 pith:LFQ52466 submitted 2025-03-24 physics.flu-dyn

classification physics.flu-dyn
keywords flowlatticesubsurfaceinterferencescatterlessdesignlaminar-to-turbulentperturbations
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Wave interference has historically relied on scattering objects placed within the wave domain. Here, we introduce a fundamentally new mechanism: scatterless interference induced by a lattice of subsurface phonon motion beneath a smooth wall interfacing with a transitioning boundary-layer flow. The subsurface consists of a wall-parallel lattice of wall-normal frequency-dependent phononic structural units, each designed to respond to local flow perturbations in an out-of-phase manner, suppressing them at the point of interaction. Collectively, the lattice induces interference effects that cause the kinetic energy of flow instabilities to decay downstream, thereby delaying laminar-to-turbulent transition. To guide the design of the phononic subsurface lattice, a Bloch-wave unit-cell analysis is developed for the flow perturbations, and direct numerical simulations validate the concept. This work establishes scatterless interference as a distinct physical phenomenon and represents a paradigm shift in the design of aerodynamic and hydrodynamic surfaces--moving beyond streamlined shaping to leveraging subsurface phonon engineering for drag reduction and enhanced performance.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Super resonance: Breaking the bandwidth limit of resonant modes and its application to flow control

    physics.flu-dyn 2025-09 conditional novelty 5.0 of 10

    Coiling a phononic subsurface so that several internal pathways meet at one flow interface widens the out-of-phase resonance band about fivefold and suppresses four Tollmien-Schlichting waves in DNS.

  2. Metamaterials and Fluid Flows

    cond-mat.soft 2025-09 unverdicted novelty 1.0 of 10

    A review of metamaterial concepts for fluid-structure interaction, covering flow control, acoustic metamaterials, and exotic elastic mechanisms.

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