Published April 2021 | Version Published
Journal Article Open

Macroscopic and microscopic stabilization mechanisms of unstable interface with interfacial mass flux

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon University of Western Australia

Abstract

Unstable interfaces are omnipresent in plasma processes in nature and technology at astrophysical and at molecular scales. This work investigates the interface dynamics with interfacial mass flux and focuses on the interplay of macroscopic and microscopic stabilization mechanisms, due to the inertial effect and the surface tension, respectively, with the destabilizing acceleration. We derive solutions for the interfacial dynamics conserving mass, momentum, and energy and find the critical values of the acceleration, density ratio, and surface tension separating the stable and unstable regimes. While the surface tension influences only the interface, its presence leads to the formation of vortical structures in the bulk. The vortical structures are energetic in nature, and the velocity field is shear free at the interface. We find that the conservative dynamics is unstable only when it is accelerated and when the acceleration value exceeds a threshold combining the contributions of macroscopic and microscopic mechanisms. In the unstable regime, the interface dynamics corresponds to the standing wave with the growing amplitude and has the growing interface velocity. For strong accelerations and weak surface tensions typical for high energy density plasmas, the unstable conservative dynamics is the fastest when compared to other instabilities; it has finite values of the initial perturbation wavelength at which the interface is stabilized and at which its growth is the fastest. We elaborate extensive theory benchmarks for experiments and simulations and outline its outcomes for application problems in nature and technology.

Additional Information

© 2021 Published under license by AIP Publishing. Submitted: 16 December 2020; Accepted: 28 February 2021; Published Online: 29 April 2021. The authors thank the University of Western Australia, AUS (Project Grant No. 10101047), and the National Science Foundation, USA (Award No. 1404449) for the support. The authors express their gratitude to Dr. Bruce A. Remington for inspiring discussions on high energy density plasma experiments. Authors' Contributions: The authors contributed to the work as follows: S.I.A. designed the research; D.V.I. and S.I.A. performed the research; D.V.I. and S.I.A. analyzed the data; D.V.I. and S.I.A. discussed the results; and D.V.I. and S.I.A. wrote the paper. Data Availability: The methods, the results, and the data presented in this work are freely available to the readers in the paper and on the request from the authors.

Attached Files

Published - 5.0040842.pdf

Files

5.0040842.pdf

Files (2.6 MB)

Name Size
md5:de92b07e573c8db3d2a58e3e83cd6fdd
2.6 MB Preview Download

Additional details

Identifiers

Eprint ID
110357
Resolver ID
CaltechAUTHORS:20210821-152642816

Funding

University of Western Australia
10101047
NSF
PHY-1404449

Dates

Created
2021-08-21
Created from EPrint's datestamp field
Updated
2022-07-05
Created from EPrint's last_modified field