astrophysics

Viscously Stirring Particle Disks into Lorentzians and Gaussians to Infer Dynamical and Collisional Masses (ARKS XIII)

arXiv:2604.19743

summary

The paper models how viscous stirring of particles in debris disks creates Lorentzian vertical density profiles that evolve into Gaussian profiles as inclination and eccentricity reach equipartition, and uses this to constrain the sizes of unseen perturbers.

Abstract

Disks (Keplerian or otherwise, particulate or fluid) are often assumed to have densities that drop off vertically as Gaussians. Recent mm-wave imaging of circumstellar debris disks contradicts this assumption, revealing vertical profiles in dust that resemble Lorentzians. As part of the ARKS ALMA Large Program, we show how Lorentzians and Gaussians define an evolutionary sequence for disks of gravitationally scattering (viscously stirring) particles. When orbits are crossing and eccentricities inclinations , each scattering can change a particle's inclination by . A random walk with fixed steps in produces a thick, log normal tail at large that leads to Lorentzian tails in density. This result holds independent of the origin of the large eccentricities, which may characterize either the stirrers or the objects being stirred; what matters is that relative motions parallel to the disk midplane are faster than perpendicular motions, and that vertical displacements during encounters are smaller than horizontal displacements. After enough scatterings, comes into equipartition with , stops exponentiating, and the vertical density relaxes to a Gaussian. We identify four regimes of dispersion-dominated viscous stirring, three of which are out-of-equipartition and where is stirred faster than . The stirrers for ARKS debris disks may range from Pluto to a few times Mars in size, and be sufficiently few as to be collisionless. Or the stirrers may be even smaller, and be so numerous and collide so frequently that they source the collisional cascades that produce observable dust.

Final proofed version for ApJ. Differences between ARKS XII and this paper (ARKS XIII) clarified, plus style edits throughout

Topics & keywords

#debris disks#vertical density profile#viscous stirring#inclination dynamics#lorentzian distribution#planetary perturbersLorentzian tailsGaussian vertical profileviscous stirringinclination–eccentricity equipartitioncollisional cascadeALMA observations