Crossref Citations
This article has been cited by the following publications. This list is generated based on data provided by
Crossref.
Zhang, Yangsheng
and
Stangle, Gregory C.
1994.
A micromechanistic model of the combustion synthesis process: Part II. Numerical simulation.
Journal of Materials Research,
Vol. 9,
Issue. 10,
p.
2605.
Zhang, Yangsheng
and
Stangle, Gregory C.
1995.
A micromechanistic model of the combined combustion synthesis-densification process.
Journal of Materials Research,
Vol. 10,
Issue. 7,
p.
1828.
Zhang, Yangsheng
and
Stangle, Gregory C.
1995.
A micromechanistic model of microstructure development during the combustion synthesis process.
Journal of Materials Research,
Vol. 10,
Issue. 4,
p.
962.
Stangle, Gregory C.
and
Miyamoto, Yoshinari
1995.
FGM Fabrication by Combustion Synthesis.
MRS Bulletin,
Vol. 20,
Issue. 1,
p.
52.
Arimondi, M.
Anselmi-Tamburini, U.
Gobetti, A.
Munir, Z. A.
and
Spinolo, G.
1997.
Chemical Mechanism of the Zr + O2 → ZrO2 Combustion Synthesis Reaction.
The Journal of Physical Chemistry B,
Vol. 101,
Issue. 41,
p.
8059.
DUMONT, A
SMITH, D
GAULT, C
and
BONNET, J
1998.
Preparation of MoSi/AlO Type composites by S.H.S..
Annales de Chimie Science des Mat�riaux,
Vol. 23,
Issue. 1-2,
p.
11.
He, Cheng
and
Stangle, Gregory C.
1998.
A micromechanistic model of the combustion synthesis process: Mechanism of ignition.
Journal of Materials Research,
Vol. 13,
Issue. 1,
p.
146.
He, Cheng
Blanchetiere, Chantal
and
Stangle, Gregory C.
1998.
A micromechanistic model of the combustion synthesis process: Influence of intrinsic kinetics.
Journal of Materials Research,
Vol. 13,
Issue. 8,
p.
2269.
He, Cheng
and
Stangle, Gregory C.
1998.
A micromechanistic model of the combustion synthesis process: Modes of ignition.
Journal of Materials Research,
Vol. 13,
Issue. 1,
p.
135.
Locci, A.M.
Cincotti, A.
Delogu, F.
Orrù, R.
and
Cao, G.
2004.
Advanced modelling of self-propagating high-temperature synthesis: the case of the Ti–C system.
Chemical Engineering Science,
Vol. 59,
Issue. 22-23,
p.
5121.
Ballas, M.
Song, H.
and
Ilegbusi, O. J.
2006.
Effect of thermal conductivity on reaction front propagation during combustion synthesis of intermetalics.
Journal of Materials Science,
Vol. 41,
Issue. 13,
p.
4169.
McCauley, J. W.
and
Puszynski, J. A.
2008.
Historical perspective and contribution of US researchers into the field of self-propagating high-temperature synthesis (SHS)/combustion synthesis (CS): Personal reflections.
International Journal of Self-Propagating High-Temperature Synthesis,
Vol. 17,
Issue. 1,
p.
58.
Li, Zhiliang
and
Ilegbusi, Olusegun J.
2012.
Experimental Study of Thermal and Flame Front Characteristics in Combustion Synthesis of Porous Ni-Ti Intermetallic Material.
Journal of Materials Engineering and Performance,
Vol. 21,
Issue. 7,
p.
1193.
Ballas, Matthew
Li, Zhiliang
and
Ilegbusi, Olusegun J.
2012.
Modeling Reaction Front Propagation and Porosity in Pressure-Assisted Combustion Synthesis of Porous NiTi Intermetallics.
Journal of Materials Engineering and Performance,
Vol. 21,
Issue. 3,
p.
298.
Chumakov, Yurii A.
and
Knyazeva, Anna G.
2023.
EFFECT OF THE RATIO OF COMPONENTS IN Ti-Al-C-Fe2O3 SYSTEM ON THE EVOLUTION OF THE SYNTHESIS PRODUCT COMPOSITION IN COMBUSTION MODE
.
High Temperature Material Processes An International Quarterly of High-Technology Plasma Processes,
Vol. 27,
Issue. 1,
p.
1.