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Main Authors: Corso, Nicholas, Lai, Dong
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2511.14932
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author Corso, Nicholas
Lai, Dong
author_facet Corso, Nicholas
Lai, Dong
contents Plasma-mediated interaction between astrophysical objects can play an important role and produce electromagnetic radiation in various binary systems, ranging from planet-moon and star-planet systems to binary compact objects. We perform 3D magnetohydrodynamic numerical simulations to study an ideal magnetized plasma flowing past an unmagnetized conducting sphere. Such flow generates magnetic disturbances and produces a drag force on the sphere, and we explore the corresponding drag coefficient as a function of the flow speed relative to Alfvén speed and the $β$ parameter of the background plasma. We find that the drag is generally well-described by the Alfvén wing model, but we also show that slow magnetosonic waves provide a correction through their own wing-like features. These give rise to a nontrivial dependence of the drag coefficient on the plasma $β$, as well as enhanced drag as the flow speed approaches the Alfvén speed.
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id arxiv_https___arxiv_org_abs_2511_14932
institution arXiv
publishDate 2025
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spellingShingle Simulations of a Conducting Sphere Moving through Magnetized Plasma: Alfvén Wings, Slow Magnetosonic Wings, and Drag Force
Corso, Nicholas
Lai, Dong
High Energy Astrophysical Phenomena
Plasma-mediated interaction between astrophysical objects can play an important role and produce electromagnetic radiation in various binary systems, ranging from planet-moon and star-planet systems to binary compact objects. We perform 3D magnetohydrodynamic numerical simulations to study an ideal magnetized plasma flowing past an unmagnetized conducting sphere. Such flow generates magnetic disturbances and produces a drag force on the sphere, and we explore the corresponding drag coefficient as a function of the flow speed relative to Alfvén speed and the $β$ parameter of the background plasma. We find that the drag is generally well-described by the Alfvén wing model, but we also show that slow magnetosonic waves provide a correction through their own wing-like features. These give rise to a nontrivial dependence of the drag coefficient on the plasma $β$, as well as enhanced drag as the flow speed approaches the Alfvén speed.
title Simulations of a Conducting Sphere Moving through Magnetized Plasma: Alfvén Wings, Slow Magnetosonic Wings, and Drag Force
topic High Energy Astrophysical Phenomena
url https://arxiv.org/abs/2511.14932