2023/08/30 by Malte Döntgen, Döntgen, Malte, K. Alexander Heufer +1
Engineering · Mathematics · Physics and Astronomy · #Advanced Thermodynamics and Statistical Mechanics #Chemical Physics (physics.chem-ph) #FOS: Physical sciences #Gas Dynamics and Kinetic Theory #Phase Equilibria and Thermodynamics
paper · pdf · doi:10.48550/arxiv.2308.16087
openalex publication_date 2023/08/30 · openalex created_date 2023/09/02 · openalex updated_date 2026/07/28
The effect of non-Boltzmann energy distributions on the pressure, impingement rate, and heat flux of a monoatomic gas in contact with a solid surface is investigated via theory and simulation. First, microcanonical formulations of the pressure, impingement rate, and heat flux are derived from first principles and integrated with prototypical energy distributions. Second, atomistic molecular dynamics simulations of an iron nanowire in a low-pressure argon atmosphere are used to test the non-Boltzmann heat flux theory. While pressure is found to be unaffected by the energy distribution of the gas, the impingement rate increases by up to 8.5% in the non-Boltzmann case. Most intriguing, non-Boltzmann energy distributions can lead to a negative heat flux, meaning that heat flows from the cold solid to the hot gas. This non-Boltzmann heat flux effect is validated via the molecular dynamics simulations and the solid is found to be 46% colder than the gas in case of an hypothetical equilibrium for the upper limiting non-Boltzmann energy distributions. The present fundamental findings provide novel insights into the properties of non-Boltzmann gases and improve the understanding of non-equilibrium dynamics.