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research article

Covariant formulation of relativistic mechanics

Correia, Miguel  
April 25, 2022
Physical Review D

Accretion disks surrounding compact objects, and other environmental factors, deviate satellites from geodetic motion. Unfortunately, setting up the equations of motion for such relativistic trajectories is not as simple as in Newtonian mechanics. The principle of general (or Lorentz) covariance and the mass-shell constraint make it difficult to parametrize physically adequate 4-forces. Here, we propose a solution to this old problem. We apply our framework to several conservative and dissipative forces. In particular, we propose covariant formulations for Hooke???s law and the constant force and compute the drag due to gravitational and hard-sphere collisions in dust, gas, and radiation media. We recover and covariantly extend known forces such as Epstein drag, Chandrasekhar???s dynamical friction, and Poynting-Robertson drag. Variable-mass effects are also considered, namely, Hoyle-Lyttleton accretion and the variable-mass rocket. We conclude with two applications: (1) The free-falling spring, where we find that Hooke???s law corrects the deviation equation by an effective anti???de Sitter tidal force and (2) black hole infall with drag. We numerically compute some trajectories on a Schwarzschild background supporting a dustlike accretion disk.

  • Details
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Type
research article
DOI
10.1103/PhysRevD.105.084041
Web of Science ID

WOS:000811589100003

Author(s)
Correia, Miguel  
Date Issued

2022-04-25

Publisher

American Physical Society

Published in
Physical Review D
Volume

105

Issue

8

Article Number

084041

Subjects

Astronomy & Astrophysics

•

Physics, Particles & Fields

•

Physics

•

dynamical friction

•

radiation forces

•

small particles

•

solar-system

•

dust grains

•

black-hole

•

accretion

•

motion

•

drag

•

acceleration

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
FSL  
Available on Infoscience
July 4, 2022
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/188903
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