The impact of large-eddy simulation grid resolution on electromagnetic wave propagation in the presence of a cloudy boundary layer

In this work, the propagation of electromagnetic waves in realistic turbulent media is studied. Combining large eddy simulation (LES) for generating the largest scales of the medium – the resolved scales – and stochastic processes for the smallest scales – the sub-grid scales – extended LES (X-LES) allows to generate large and realistic domains of turbulent atmosphere. In this work, we focus on the size of the smallest resolved scales and its impact on an X-band electromagnetic wave propagating in the medium. This impact is studied via numerical simulations of a 10-GHz spherical wave propagating through 95 km of turbulent media generated with X-LES and for different resolved scales. The considered medium is a convective marine layer for which turbulence is known to be strong. Our study shows that the choice of the resolved scale for this type of medium has a significant impact on the expected wave attenuation, despite the fact that the total spectrum of the turbulent medium does not depend on this parameter.

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Publication Details

Journal
Waves in Random and Complex Media
Published
2026-09-15
DOI
https://doi.org/10.1080/17455030.2026.2730458
Primary Topic
Radio Wave Propagation Studies
Type
article
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article

The impact of large-eddy simulation grid resolution on electromagnetic wave propagation in the presence of a cloudy boundary layer

R. Douvenot, V. Darchy, S. Jamme, H. Galiègue
Waves in Random and Complex Media
Radio Wave Propagation Studies
article

The impact of large-eddy simulation grid resolution on electromagnetic wave propagation in the presence of a cloudy boundary layer

R. Douvenot, V. Darchy, S. Jamme, H. Galiègue
article en

Abstract

In this work, the propagation of electromagnetic waves in realistic turbulent media is studied. Combining large eddy simulation (LES) for generating the largest scales of the medium – the resolved scales – and stochastic processes for the smallest scales – the sub-grid scales – extended LES (X-LES) allows to generate large and realistic domains of turbulent atmosphere. In this work, we focus on the size of the smallest resolved scales and its impact on an X-band electromagnetic wave propagating in the medium. This impact is studied via numerical simulations of a 10-GHz spherical wave propagating through 95 km of turbulent media generated with X-LES and for different resolved scales. The considered medium is a convective marine layer for which turbulence is known to be strong. Our study shows that the choice of the resolved scale for this type of medium has a significant impact on the expected wave attenuation, despite the fact that the total spectrum of the turbulent medium does not depend on this parameter.

Waves in Random and Complex Media
École Nationale de l’Aviation Civile (FR)
Life below water
Openalex Percentile: Top 7%
Radio Wave Propagation Studies
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