Microscopic field theory for active Brownian particles with translational and rotational inertia

Abstract While active matter physics has traditionally focused on particles with overdamped dynamics, recent years have seen an increase of experimental and theoretical work on active systems with inertia. This also leads to an increased need for theoretical models that describe inertial active dynamics. Here, we present a microscopic derivation for a general continuum model describing the nonequilibrium thermodynamics of inertial active matter that generalizes several previously existing works. It applies to particles with translational and rotational inertia and contains particle density, velocity, angular velocity, temperature, polarization, velocity polarization, and angular velocity polarization as dynamical variables. We moreover discuss to which extent commonly used approximations (factorization and local equilibrium) used in the derivation of hydrodynamic models are applicable to inertial active matter.

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Publication Details

Journal
Journal of Non-Equilibrium Thermodynamics
Published
2026-09-18
DOI
https://doi.org/10.1515/jnet-2026-0024
Primary Topic
Micro and Nano Robotics
Type
article
Field-Weighted Citation Impact
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Microscopic field theory for active Brownian particles with translational and rotational inertia

Michael te Vrugt
Journal of Non-Equilibrium Thermodynamics
Micro and Nano Robotics
article

Microscopic field theory for active Brownian particles with translational and rotational inertia

Michael te Vrugt
article en

Abstract

Abstract While active matter physics has traditionally focused on particles with overdamped dynamics, recent years have seen an increase of experimental and theoretical work on active systems with inertia. This also leads to an increased need for theoretical models that describe inertial active dynamics. Here, we present a microscopic derivation for a general continuum model describing the nonequilibrium thermodynamics of inertial active matter that generalizes several previously existing works. It applies to particles with translational and rotational inertia and contains particle density, velocity, angular velocity, temperature, polarization, velocity polarization, and angular velocity polarization as dynamical variables. We moreover discuss to which extent commonly used approximations (factorization and local equilibrium) used in the derivation of hydrodynamic models are applicable to inertial active matter.

Journal of Non-Equilibrium Thermodynamics
Johannes Gutenberg University Mainz (DE)
Openalex Percentile: Top 17%
Micro and Nano Robotics
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Microscopic field theory for active Brownian particles with translational and rotational inertia — Michael te Vrugt · Journal of Non-Equilibrium Thermodynamics (2026) | TGRS Research Map | TGRS