Computational singular perturbation (CSP) has been successfully used in the analysis of complex chemically reacting flows by systematically identifying the intrinsic timescales and slow invariant manifolds that capture the essential subprocesses driving the dynamics of the system. In this article, the analytical and computational framework is applied for the first time to analyze the Lagrangian droplets undergoing evaporation and dispersion in the surrounding gases. First, a rigorous mathematical formulation is derived to adapt the CSP tools into the droplet dynamics equations, including the formal definition of the tangential stretching rate (TSR) that represents the explosive/dissipative nature of the system. A steady ammonia and a falling water droplet studies are then conducted to demonstrate the utility of the CSP methodology in identifying various physical mechanisms driving the evolution of the system, such as the distinction of thermal-driven and mass-driven regimes. Various definitions of the importance indices are also examined to provide in-depth analysis of different subprocesses and their interactions in modifying the droplet dynamics.

Analysis of Droplet Evaporation Dynamics Using Computational Singular Perturbation and Tangential Stretching Rate / Angelilli, L.; Malpica Galassi, R.; Ciottoli, P. P.; Hernandez-Perez, F. E.; Valorani, M.; Im, H. G.. - In: FLOW TURBULENCE AND COMBUSTION. - ISSN 1386-6184. - 114:1(2025), pp. 275-298. [10.1007/s10494-024-00592-w]

Analysis of Droplet Evaporation Dynamics Using Computational Singular Perturbation and Tangential Stretching Rate

Malpica Galassi R.;Ciottoli P. P.;Valorani M.;
2025

Abstract

Computational singular perturbation (CSP) has been successfully used in the analysis of complex chemically reacting flows by systematically identifying the intrinsic timescales and slow invariant manifolds that capture the essential subprocesses driving the dynamics of the system. In this article, the analytical and computational framework is applied for the first time to analyze the Lagrangian droplets undergoing evaporation and dispersion in the surrounding gases. First, a rigorous mathematical formulation is derived to adapt the CSP tools into the droplet dynamics equations, including the formal definition of the tangential stretching rate (TSR) that represents the explosive/dissipative nature of the system. A steady ammonia and a falling water droplet studies are then conducted to demonstrate the utility of the CSP methodology in identifying various physical mechanisms driving the evolution of the system, such as the distinction of thermal-driven and mass-driven regimes. Various definitions of the importance indices are also examined to provide in-depth analysis of different subprocesses and their interactions in modifying the droplet dynamics.
2025
Spray; Evaporation; Tangential stretching rate; Multi-scale dynamical systems
01 Pubblicazione su rivista::01a Articolo in rivista
Analysis of Droplet Evaporation Dynamics Using Computational Singular Perturbation and Tangential Stretching Rate / Angelilli, L.; Malpica Galassi, R.; Ciottoli, P. P.; Hernandez-Perez, F. E.; Valorani, M.; Im, H. G.. - In: FLOW TURBULENCE AND COMBUSTION. - ISSN 1386-6184. - 114:1(2025), pp. 275-298. [10.1007/s10494-024-00592-w]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11573/1747432
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