A condensed phase model of the initial Al/CuO reaction stage to interpret experimental findings
Publication type: Journal Article
Publication date: 2019-01-16
scimago Q2
wos Q3
SJR: 0.580
CiteScore: 5.1
Impact factor: 2.5
ISSN: 00218979, 10897550
General Physics and Astronomy
Abstract
A model based uniquely on condensed phase reactions coupled with the thermal equation is developed to study the initiation and early stage of the redox reaction in Al/CuO nanothermites. It considers the effect of a wetting contact angle between Al and CuO particles, which may be induced by sintering mechanisms and/or the synthesis method. In order to validate the model, two published experiments are reproduced in silico. Results provide the first quantification of: (i) how sintering affects the initiation of Al/CuO nanoparticle mixtures, depending on experimental conditions, (ii) the extent to which condensed phase mechanisms dominate gas-mediated reactions in the initiation process, two subjects that have been highly debated in the literature. It was found that initiation appears more strongly affected by sintering when particles are exposed to an ultra-short and intense heat pulse (∼1011 K s−1) than those exposed to a lower heating rate (∼105 K s−1). Additionally, calculations show that sintering may cause a drastic decrease in the initiation delay (down to the ns regime) when using CuO nanoparticles below 50 nm in diameter that can be brought to melting temperature through optical absorption. Finally, the role of gas-surface versus condensed phase reactions in the Al/CuO initiation process is evaluated theoretically. Initiation through condensed phase reactions, while slightly faster and more efficient, exhibits a comparable timescale (∼1–2 ms) to initiation through gas-surface reactions, providing clear evidence for the contribution of both during the initiation phase.A model based uniquely on condensed phase reactions coupled with the thermal equation is developed to study the initiation and early stage of the redox reaction in Al/CuO nanothermites. It considers the effect of a wetting contact angle between Al and CuO particles, which may be induced by sintering mechanisms and/or the synthesis method. In order to validate the model, two published experiments are reproduced in silico. Results provide the first quantification of: (i) how sintering affects the initiation of Al/CuO nanoparticle mixtures, depending on experimental conditions, (ii) the extent to which condensed phase mechanisms dominate gas-mediated reactions in the initiation process, two subjects that have been highly debated in the literature. It was found that initiation appears more strongly affected by sintering when particles are exposed to an ultra-short and intense heat pulse (∼1011 K s−1) than those exposed to a lower heating rate (∼105 K s−1). Additionally, calculations show that sintering may ca...
Found
Nothing found, try to update filter.
Found
Nothing found, try to update filter.
Top-30
Journals
|
1
|
|
|
Applied Physics Letters
1 publication, 6.67%
|
|
|
Applied Sciences (Switzerland)
1 publication, 6.67%
|
|
|
Molecules
1 publication, 6.67%
|
|
|
Thermochimica Acta
1 publication, 6.67%
|
|
|
Intermetallics
1 publication, 6.67%
|
|
|
Chemical Engineering Journal
1 publication, 6.67%
|
|
|
Combustion and Flame
1 publication, 6.67%
|
|
|
Propellants, Explosives, Pyrotechnics
1 publication, 6.67%
|
|
|
ACS applied materials & interfaces
1 publication, 6.67%
|
|
|
Continuum Mechanics and Thermodynamics
1 publication, 6.67%
|
|
|
International Communications in Heat and Mass Transfer
1 publication, 6.67%
|
|
|
Russian Chemical Reviews
1 publication, 6.67%
|
|
|
Nanoscience and Technology
1 publication, 6.67%
|
|
|
Applied Thermal Engineering
1 publication, 6.67%
|
|
|
Applications in Energy and Combustion Science
1 publication, 6.67%
|
|
|
1
|
Publishers
|
1
2
3
4
5
6
7
|
|
|
Elsevier
7 publications, 46.67%
|
|
|
MDPI
2 publications, 13.33%
|
|
|
AIP Publishing
1 publication, 6.67%
|
|
|
Wiley
1 publication, 6.67%
|
|
|
American Chemical Society (ACS)
1 publication, 6.67%
|
|
|
Springer Nature
1 publication, 6.67%
|
|
|
Autonomous Non-profit Organization Editorial Board of the journal Uspekhi Khimii
1 publication, 6.67%
|
|
|
Begell House
1 publication, 6.67%
|
|
|
1
2
3
4
5
6
7
|
- We do not take into account publications without a DOI.
- Statistics recalculated weekly.
Are you a researcher?
Create a profile to get free access to personal recommendations for colleagues and new articles.
Metrics
15
Total citations:
15
Citations from 2024:
4
(26.67%)
Cite this
GOST |
RIS |
BibTex |
MLA
Cite this
GOST
Copy
Brotman S. et al. A condensed phase model of the initial Al/CuO reaction stage to interpret experimental findings // Journal of Applied Physics. 2019. Vol. 125. No. 3. p. 35102.
GOST all authors (up to 50)
Copy
Brotman S., Rouhani M. D., Rossi C., Estève A. A condensed phase model of the initial Al/CuO reaction stage to interpret experimental findings // Journal of Applied Physics. 2019. Vol. 125. No. 3. p. 35102.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1063/1.5063285
UR - https://doi.org/10.1063/1.5063285
TI - A condensed phase model of the initial Al/CuO reaction stage to interpret experimental findings
T2 - Journal of Applied Physics
AU - Brotman, Sarah
AU - Rouhani, Mehdi Djafari
AU - Rossi, Carole
AU - Estève, Alain
PY - 2019
DA - 2019/01/16
PB - AIP Publishing
SP - 35102
IS - 3
VL - 125
SN - 0021-8979
SN - 1089-7550
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2019_Brotman,
author = {Sarah Brotman and Mehdi Djafari Rouhani and Carole Rossi and Alain Estève},
title = {A condensed phase model of the initial Al/CuO reaction stage to interpret experimental findings},
journal = {Journal of Applied Physics},
year = {2019},
volume = {125},
publisher = {AIP Publishing},
month = {jan},
url = {https://doi.org/10.1063/1.5063285},
number = {3},
pages = {35102},
doi = {10.1063/1.5063285}
}
Cite this
MLA
Copy
Brotman, Sarah, et al. “A condensed phase model of the initial Al/CuO reaction stage to interpret experimental findings.” Journal of Applied Physics, vol. 125, no. 3, Jan. 2019, p. 35102. https://doi.org/10.1063/1.5063285.