Modeling of heterogeneous site energy distributions in precipitate nucleation

Author:

Kahlenberg RobertORCID,Falkinger GeorgORCID,Milkereit BenjaminORCID,Kozeschnik ErnstORCID

Abstract

Abstract The simulation of heat changes resulting from phase transitions can help to interpret differential scanning calorimetry (DSC) measurements, e.g. of metallic alloy systems in which multiple reactions overlap during non-isothermal heat treatments. So far, simulated DSC curves mostly exhibit sharp reaction peaks as commonly just one mean energy value for a certain type of nucleation site is assumed. This work proposes an efficient model for treating heterogeneous nucleation site energy variations within the framework of classical nucleation theory (CNT). The site energies are assumed to vary according to a Rayleigh distribution and a scaling function. The effect on the nucleation behavior of precipitates is studied. A consideration of the distribution of heterogeneous site energies has the potential to significantly smoothen the numerical treatment of precipitation processes compared to the non-distributed case. The comparison to previously published simulations of DSC curves during the cooling of an AA6005 aluminum alloy demonstrates the advantages of this extension, especially for slow cooling rates.

Funder

Österreichische Forschungsförderungsgesellschaft

Bundesministerium für Klimaschutz, Umwelt, Energie, Mobilität, Innovation und Technologie

Bundesministerium für Arbeit und Wirtschaft

Land Tirol

Land Oberösterreich

Land Steiermark

Publisher

IOP Publishing

Subject

Computer Science Applications,Mechanics of Materials,Condensed Matter Physics,General Materials Science,Modeling and Simulation

Reference39 articles.

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2. Kinetische Behandlung der Keimbildung in übersättigten Dämpfen;Becker;Ann. Phys.,1935

3. Nucleation in solids: the induction and steady state effects;Russell;Adv. Colloid Interface Sci.,1980

4. Keimbildung in übersättigten Gebilden;Volmer;Z. Phys. Chem.,1926

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