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Phase structure function and spatial coherence in underwater Rayleigh-Bénard turbulence: experimental
Summary
This study experimentally characterizes laser beam propagation through underwater turbulence. Results show turbulence is anisotropic and inhomogeneous, impacting beam coherence and validating oceanic turbulence models for optical communication.
Area of Science:
- Fluid Dynamics
- Optical Physics
- Oceanography
Background:
- Underwater optical communication faces challenges due to turbulence.
- Characterizing turbulence effects on laser beams is crucial for system design.
Purpose of the Study:
- To experimentally determine the phase structure function (PSF) and spatial coherence radius of laser beams in underwater Rayleigh-Bénard (RB) turbulence.
- To investigate the spatial variations and anisotropic/inhomogeneous nature of this turbulence.
Main Methods:
- Utilized a two-channel moiré-based wavefront sensor to analyze a laser beam (λ=532nm) in a controlled water tank.
- Induced RB turbulence via temperature differences and performed measurements at various vertical and lateral positions.
- Reconstructed wavefront phases and computed the PSF in orthogonal directions.
Main Results:
- Underwater RB turbulence was found to be anisotropic and inhomogeneous.
- Turbulence intensity increased with temperature difference, and PSF anisotropy was more pronounced at larger separation distances.
- Spatial coherence radius decreased with higher temperatures and was smaller near tank boundaries.
Conclusions:
- The experimental PSF results align well with the analytical oceanic turbulence optical power spectrum model.
- Findings validate underwater turbulence models and provide critical data for designing reliable underwater optical communication systems.
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