Dynamical properties of constrained drops

In this communication we analyze the behavior of excited drops contained in spherical volumes. We study different properties of the dynamical systems, i.e. the maximum Lyapunov exponent MLE, the asymptotic distance in momentum space d∞, and the normalized variance of the maximum fragment. It is show...

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Autores principales: Ison, M., Balenzuela, P., Bonasera, A., Dorso, C.O.
Formato: JOUR
Acceso en línea:http://hdl.handle.net/20.500.12110/paper_14346001_v14_n4_p451_Ison
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spelling todo:paper_14346001_v14_n4_p451_Ison2023-10-03T16:14:27Z Dynamical properties of constrained drops Ison, M. Balenzuela, P. Bonasera, A. Dorso, C.O. In this communication we analyze the behavior of excited drops contained in spherical volumes. We study different properties of the dynamical systems, i.e. the maximum Lyapunov exponent MLE, the asymptotic distance in momentum space d∞, and the normalized variance of the maximum fragment. It is shown that the constrained system behaves as undergoing a first-order phase transition at low densities while as a second-order one at high densities. The transition from liquid-like to vapor-like behavior is signaled both by the caloric curves, the thermal response functions and the MLE. The relationship between the MLE, d∞, and the caloric curve is explored. JOUR info:eu-repo/semantics/openAccess http://creativecommons.org/licenses/by/2.5/ar http://hdl.handle.net/20.500.12110/paper_14346001_v14_n4_p451_Ison
institution Universidad de Buenos Aires
institution_str I-28
repository_str R-134
collection Biblioteca Digital - Facultad de Ciencias Exactas y Naturales (UBA)
description In this communication we analyze the behavior of excited drops contained in spherical volumes. We study different properties of the dynamical systems, i.e. the maximum Lyapunov exponent MLE, the asymptotic distance in momentum space d∞, and the normalized variance of the maximum fragment. It is shown that the constrained system behaves as undergoing a first-order phase transition at low densities while as a second-order one at high densities. The transition from liquid-like to vapor-like behavior is signaled both by the caloric curves, the thermal response functions and the MLE. The relationship between the MLE, d∞, and the caloric curve is explored.
format JOUR
author Ison, M.
Balenzuela, P.
Bonasera, A.
Dorso, C.O.
spellingShingle Ison, M.
Balenzuela, P.
Bonasera, A.
Dorso, C.O.
Dynamical properties of constrained drops
author_facet Ison, M.
Balenzuela, P.
Bonasera, A.
Dorso, C.O.
author_sort Ison, M.
title Dynamical properties of constrained drops
title_short Dynamical properties of constrained drops
title_full Dynamical properties of constrained drops
title_fullStr Dynamical properties of constrained drops
title_full_unstemmed Dynamical properties of constrained drops
title_sort dynamical properties of constrained drops
url http://hdl.handle.net/20.500.12110/paper_14346001_v14_n4_p451_Ison
work_keys_str_mv AT isonm dynamicalpropertiesofconstraineddrops
AT balenzuelap dynamicalpropertiesofconstraineddrops
AT bonaseraa dynamicalpropertiesofconstraineddrops
AT dorsoco dynamicalpropertiesofconstraineddrops
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