Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/113594
Title: Ab initio intermolecular interactions mediate thermochemically real-fluid effects that affect system reactivity : the first application of high-order Virial EoS and first-principles multi-body potentials in trans-/super-critical autoignition modelling
Authors: Wang, M 
Tang, R 
Ren, X 
Cui, Y 
Li, MMJ 
Leu, SY 
Lin, CSK
Cheng, S 
Issue Date: Feb-2025
Source: Combustion and flame, Feb. 2025, v. 272, 113844
Abstract: The properties of supercritical fluids are dictated by intermolecular interactions that involve two or more molecules. Such intermolecular interactions were described via intermolecular potentials in historical supercritical combustion modeling studies, but have been treated empirically and with no consideration of radical interactions or multi-body interactions involving more than two molecules. This approach has been adopted long ago, assuming sufficient characterization of real-fluid effects during supercritical combustion. Here, with data from ab initio multi-body intermolecular potentials, non-empirical high-order Virial Equation of State (EoS), and real-fluid thermochemical and kinetic simulations, we reveal that empirical intermolecular potentials can lead to significant errors in representing supercritical fluids under common combustion situations, which can be impressively described by ab initio intermolecular potentials. These interactions are also found to greatly influence autoignition delay times, a common measure of global reactivity, with significant contributions from radical interactions and multi-body interactions. It is therefore of necessity to incorporate ab initio intermolecular interactions in studying supercritical combustion and various dynamic systems involving supercritical fluids, which has now been enabled through the new framework developed in the present study.
Keywords: Ab initio intermolecular potential
Ignition delay time
Partial molar property
Supercritical combustion
Virial equation of state
Publisher: Elsevier Inc.
Journal: Combustion and flame 
ISSN: 0010-2180
EISSN: 1556-2921
DOI: 10.1016/j.combustflame.2024.113844
Appears in Collections:Journal/Magazine Article

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