Rigid Body Dynamics in Ambient Fluids

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Padilla, Marcel, Segall, Aviv, Sorkine-Hornung, Olga
Format: Preprint
Published: 2026
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866917211715665920
author Padilla, Marcel
Segall, Aviv
Sorkine-Hornung, Olga
author_facet Padilla, Marcel
Segall, Aviv
Sorkine-Hornung, Olga
contents We present a novel framework for rigid body dynamics in ambient media, such as air or water, enabling accurate motion prediction of objects without requiring computational fluid dynamics simulations. Our method computes the added mass of the fluid and replaces heuristic models for shape-dependent lift and drag with a generalized estimate of flow separation and dynamic pressure. Our method is the first within the rigid body dynamics context to reproduce the full range of falling plate behaviors: fluttering, tumbling, chaotic and steady modes, as well as phenomena such as the Magnus effect and the flight dynamics of an American football (tight spiral pass paradox). The resulting algorithm is simple to implement, robust, does not rely on specialized integrators and incorporates seamlessly into existing physics engines for real-time simulation.
format Preprint
id arxiv_https___arxiv_org_abs_2601_13971
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Rigid Body Dynamics in Ambient Fluids
Padilla, Marcel
Segall, Aviv
Sorkine-Hornung, Olga
Fluid Dynamics
Numerical Analysis
I.3.5; I.3.7; I.6.8
We present a novel framework for rigid body dynamics in ambient media, such as air or water, enabling accurate motion prediction of objects without requiring computational fluid dynamics simulations. Our method computes the added mass of the fluid and replaces heuristic models for shape-dependent lift and drag with a generalized estimate of flow separation and dynamic pressure. Our method is the first within the rigid body dynamics context to reproduce the full range of falling plate behaviors: fluttering, tumbling, chaotic and steady modes, as well as phenomena such as the Magnus effect and the flight dynamics of an American football (tight spiral pass paradox). The resulting algorithm is simple to implement, robust, does not rely on specialized integrators and incorporates seamlessly into existing physics engines for real-time simulation.
title Rigid Body Dynamics in Ambient Fluids
topic Fluid Dynamics
Numerical Analysis
I.3.5; I.3.7; I.6.8
url https://arxiv.org/abs/2601.13971