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A diffusion–reaction scheme for modeling ignition and self-propagating reactions in Al/CuO multilayered thin films.

Authors :
Lahiner, Guillaume
Nicollet, Andrea
Zapata, James
Marín, Lorena
Richard, Nicolas
Rouhani, Mehdi Djafari
Rossi, Carole
Estève, Alain
Source :
Journal of Applied Physics. 10/21/2017, Vol. 122 Issue 15, p155105-1-155105-11. 11p. 1 Color Photograph, 1 Diagram, 1 Chart, 8 Graphs.
Publication Year :
2017

Abstract

Thermite multilayered films have the potential to be used as local high intensity heat sources for a variety of applications. Improving the ability of researchers to more rapidly develop Micro Electro Mechanical Systems devices based on thermite multilayer films requires predictive modeling in which an understanding of the relationship between the properties (ignition and flame propagation), the multilayer structure and composition (bilayer thicknesses, ratio of reactants, and nature of interfaces), and aspects related to integration (substrate conductivity and ignition apparatus) is achieved. Assembling all these aspects, this work proposes an original 2D diffusion-reaction modeling framework to predict the ignition threshold and reaction dynamics of Al/CuO multilayered thin films. This model takes into consideration that CuO first decomposes into Cu2O, and then, released oxygen diffuses across the Cu2O and Al2 O3 layers before reacting with pure Al to form Al2O3. This model is experimentally validated from ignition and flame velocity data acquired on Al/CuO multilayers deposited on a Kapton layer. This paper discusses, for the first time, the importance of determining the ceiling temperature above which the multilayers disintegrate, possibly before their complete combustion, thus severely impacting the reaction front velocity and energy release. This work provides a set of heating surface areas to obtain the best ignition conditions, i.e., with minimal ignition power, as a function of the substrate type. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00218979
Volume :
122
Issue :
15
Database :
Academic Search Index
Journal :
Journal of Applied Physics
Publication Type :
Academic Journal
Accession number :
125810513
Full Text :
https://doi.org/10.1063/1.5000312