TU Darmstadt / ULB / TUbiblio

A new approach for water crystallization in the kinetics-limited growth region

Criscione, Antonio ; Kintea, Daniel ; Roisman, Ilia V. ; Jakirlić, Suad ; Tropea, Cameron
Hrsg.: Criscione, Antonio ; Criscione Antonio (2013)
A new approach for water crystallization in the kinetics-limited growth region.
ICMF 2013, 8th International Conference on Multiphase Flow.
Konferenzveröffentlichung, Erstveröffentlichung

Kurzbeschreibung (Abstract)

The crystallization mechanism of pure water in a supercooled state is not well understood so far. There are many open-ended questions about the basic physics of crystallization. A new computational model using an appropriate level set formulation for the numerical capturing of the interface between the supercooled and the solidified liquid is applied. Mathematically, the phenomenon of solidification is modeled by utilizing a moving boundary problem. Recent numerical results of dendritic growth (Criscione et al. 2012) exhibit excellent qualitative and quantitative agreement with the Marginal Stability Theory (Langer & Müller Krumbhaar 1978a, 1978b, 1978c) as well as with the available experiments (Furukawa & Shimada 1993, Ohsaka & Trinh 1998, Shibkov et al. 2001, 2003, 2005) in the heat-diffusion-dominated region. At higher supercoolings (in the so-called kinetics-limited region), an explicit deviation from experiments is observed. In the published literature the kinetic effects are indicated as a possible reason for this deviation, approximating the kinetic undercooling as a linear function of the interface velocity. Based on this assumption, a new approach for the calculation of the kinetic undercooling term is derived. This model results in an approximation for the kinetic coefficient which establishes a non-linear dependency between the kinetic undercooling and the velocity of the solid-liquid interface. Furthermore, investigations concerning the growth of needles in an array indicate that surrounding needle-like dendrites influence considerably the steady-state tip velocity of an isolated needle. This phenomenon depends directly on the spacing between the needles. In the present work an attempt is undertaken to explain a new approach for the physical description of the crystallization mechanism at higher supercooling: the deviation between theory and experiments at higher deegres of supercooling is caused basically by the thermal influence of surrounding needle-like dendrites.

Typ des Eintrags: Konferenzveröffentlichung
Erschienen: 2013
Herausgeber: Criscione, Antonio
Autor(en): Criscione, Antonio ; Kintea, Daniel ; Roisman, Ilia V. ; Jakirlić, Suad ; Tropea, Cameron
Art des Eintrags: Erstveröffentlichung
Titel: A new approach for water crystallization in the kinetics-limited growth region
Sprache: Englisch
Publikationsjahr: Mai 2013
Veranstaltungstitel: ICMF 2013, 8th International Conference on Multiphase Flow
URL / URN: http://tuprints.ulb.tu-darmstadt.de/3344
Kurzbeschreibung (Abstract):

The crystallization mechanism of pure water in a supercooled state is not well understood so far. There are many open-ended questions about the basic physics of crystallization. A new computational model using an appropriate level set formulation for the numerical capturing of the interface between the supercooled and the solidified liquid is applied. Mathematically, the phenomenon of solidification is modeled by utilizing a moving boundary problem. Recent numerical results of dendritic growth (Criscione et al. 2012) exhibit excellent qualitative and quantitative agreement with the Marginal Stability Theory (Langer & Müller Krumbhaar 1978a, 1978b, 1978c) as well as with the available experiments (Furukawa & Shimada 1993, Ohsaka & Trinh 1998, Shibkov et al. 2001, 2003, 2005) in the heat-diffusion-dominated region. At higher supercoolings (in the so-called kinetics-limited region), an explicit deviation from experiments is observed. In the published literature the kinetic effects are indicated as a possible reason for this deviation, approximating the kinetic undercooling as a linear function of the interface velocity. Based on this assumption, a new approach for the calculation of the kinetic undercooling term is derived. This model results in an approximation for the kinetic coefficient which establishes a non-linear dependency between the kinetic undercooling and the velocity of the solid-liquid interface. Furthermore, investigations concerning the growth of needles in an array indicate that surrounding needle-like dendrites influence considerably the steady-state tip velocity of an isolated needle. This phenomenon depends directly on the spacing between the needles. In the present work an attempt is undertaken to explain a new approach for the physical description of the crystallization mechanism at higher supercooling: the deviation between theory and experiments at higher deegres of supercooling is caused basically by the thermal influence of surrounding needle-like dendrites.

URN: urn:nbn:de:tuda-tuprints-33449
Sachgruppe der Dewey Dezimalklassifikatin (DDC): 500 Naturwissenschaften und Mathematik > 500 Naturwissenschaften
500 Naturwissenschaften und Mathematik > 510 Mathematik
500 Naturwissenschaften und Mathematik > 530 Physik
500 Naturwissenschaften und Mathematik > 550 Geowissenschaften
Fachbereich(e)/-gebiet(e): 16 Fachbereich Maschinenbau
16 Fachbereich Maschinenbau > Fachgebiet Strömungslehre und Aerodynamik (SLA)
Hinterlegungsdatum: 26 Mai 2013 19:55
Letzte Änderung: 29 Mai 2016 21:18
PPN:
Export:
Suche nach Titel in: TUfind oder in Google
Frage zum Eintrag Frage zum Eintrag

Optionen (nur für Redakteure)
Redaktionelle Details anzeigen Redaktionelle Details anzeigen