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Original Articles

Combustion of Aluminum Particles in Carbon Dioxide

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Pages 209-237 | Received 05 May 2000, Accepted 30 Nov 2000, Published online: 27 Apr 2007

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Read on this site (5)

M. Schiemann, P. Fischer, J. Bergthorson, G. Schmid & D. Taroata. (2017) Combustion of Lithium Particles in N2—Reaction Rates. Combustion Science and Technology 189:1, pages 169-186.
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T. BAZYN, N. GLUMAC*H. KRIER, T. S. WARD, M. SCHOENITZ & E. L. DREIZIN. (2007) REFLECTED SHOCK IGNITION AND COMBUSTION OF ALUMINUM AND NANOCOMPOSITE THERMITE POWDERS. Combustion Science and Technology 179:3, pages 457-476.
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V. SAROU-KANIAN, J. C. RIFFLET, F. MILLOT, E. VERON, T. SAUVAGE & I. GÖKALP. (2005) ON THE ROLE OF CARBON DIOXIDE IN THE COMBUSTION OF ALUMINUM DROPLETS. Combustion Science and Technology 177:12, pages 2299-2326.
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NICK GLUMAC, HERMAN KRIER, TIM BAZYN & RYAN EYER. (2005) TEMPERATURE MEASUREMENTS OF ALUMINUM PARTICLES BURNING IN CARBON DIOXIDE. Combustion Science and Technology 177:3, pages 485-511.
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B.Z. EAPEN, V.K. HOFFMANN, M. SCHOENITZ & E.L. DREIZIN. (2004) COMBUSTION OF AEROSOLIZED SPHERICAL ALUMINUM POWDERS AND FLAKES IN AIR. Combustion Science and Technology 176:7, pages 1055-1069.
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Fan Peng, Hecong Liu & Weiwei Cai. (2023) Combustion diagnostics of metal particles: a review. Measurement Science and Technology 34:4, pages 042002.
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Rui G. Pinto, Jorge R. Frade & Aleksey A. Yaremchenko. (2022) Synthesis of cerium aluminate by the mechanical activation of aluminum and ceria precursors and firing in controlled atmospheres. Journal of the American Ceramic Society 106:2, pages 923-932.
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T. G. Akopdzhanyan & I. A. Studenikin. (2023) Boron Combustion in CO2 Atmosphere. International Journal of Self-Propagating High-Temperature Synthesis 31:4, pages 276-278.
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Qili Qiu, Yunan Zhou, Jianzhong Liu, Wei Shi & Weijuan Yang. (2021) Combustion of aluminum powder using CO2 laser in O2/CO2 atmosphere under different pressure conditions. Journal of Thermal Analysis and Calorimetry 147:8, pages 4959-4970.
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Hanxiao Wu, Kun Cai, Haiwang Li, Tiantong Xu, Weidong Fang, Wenbin Wang & Pengpeng Nie. (2021) A Review of Metal Powder-CO 2 Propulsion Technology . A Review of Metal Powder-CO 2 Propulsion Technology .
Wenhao Yu, Shipeng Li, Mengying Liu, Lei Han, Rui Song, Ningfei Wang & Zhe Deng. (2021) Effect of oxidant concentration on the combustion characteristics of aluminum particle-laden flow. Powder Technology 389, pages 235-242.
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Wenhao Yu, Shipeng Li, Mengying Liu, Rui Song, Junlong Wang, Ningfei Wang & Zhe Deng. (2021) Experimental investigation of ignition and combustion characteristics of aluminum particle-laden flow. Acta Astronautica 185, pages 14-24.
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Wei Shi, Yunlan Sun, Baozhong Zhu & Jianzhong Liu. (2021) Sodium fluoroaluminate promoting the combustion of micron-sized aluminum powder with different particle sizes in carbon dioxide. Energy 226, pages 120393.
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Stany Gallier, Alexandre Braconnier, Franck Godfroy, Fabien Halter & Christian Chauveau. (2021) The role of thermophoresis on aluminum oxide lobe formation. Combustion and Flame 228, pages 142-153.
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Alexandre Braconnier, Stany Gallier, Fabien Halter & Christian Chauveau. (2021) Aluminum combustion in CO2-CO-N2 mixtures. Proceedings of the Combustion Institute 38:3, pages 4355-4363.
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T. V. Barinova, V. Yu. Barinov, V. N. Semenova & I. D. Kovalev. (2020) SHS in the Si–CO2 System: Composition/Structure of Combustion Products. International Journal of Self-Propagating High-Temperature Synthesis 29:3, pages 138-142.
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Yunchao Feng, Zhixun Xia, Liya Huang & Likun Ma. (2018) Ignition and combustion of a single aluminum particle in hot gas flow. Combustion and Flame 196, pages 35-44.
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Pascal Maas, Martin Schiemann, Viktor Scherer, Peter Fischer, Dan Taroata & Günther Schmid. (2018) Lithium as energy carrier: CFD simulations of LI combustion in a 100 MW slag tap furnace. Applied Energy 227, pages 506-515.
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Hongtao Sui, Boyu Li & John Z. Wen. (2018) Interaction between Single-Walled Carbon Nanotubes and Reactive Nanoparticle Constituents in Multilayered Al/NiO Nanocomposite. ACS Applied Energy Materials.
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Jeffrey M. Bergthorson. (2018) Recyclable metal fuels for clean and compact zero-carbon power. Progress in Energy and Combustion Science 68, pages 169-196.
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Yunlan Sun, Qichang Wang, Yuxin Wu, Baozhong Zhu & Jianfeng Pan. (2017) Numerical simulation of the combustion of nano-aluminum in carbon dioxide. Acta Astronautica 139, pages 428-434.
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Dilip Sundaram, Vigor Yang & Richard A. Yetter. (2017) Metal-based nanoenergetic materials: Synthesis, properties, and applications. Progress in Energy and Combustion Science 61, pages 293-365.
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Baozhong Zhu, Qi Wang, Yunlan Sun & Tao Jia. (2016) Thermal reaction characterization of micron-sized aluminum powders in CO2. Russian Journal of Physical Chemistry B 10:4, pages 644-650.
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Yunlan Sun, Rong Sun, Baozhong Zhu, Keke Mao & Yuxin Wu. (2016) Thermal reaction mechanisms of nano- and micro-scale aluminum powders in carbon dioxide at low heating rate. Journal of Thermal Analysis and Calorimetry 124:3, pages 1727-1734.
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D. S. Sundaram, V. Yang & V. E. Zarko. (2015) Combustion of nano aluminum particles (Review). Combustion, Explosion, and Shock Waves 51:2, pages 173-196.
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Jian-Ying Zhao, Feng-Qi Zhao, Si-Yu Xu & Xue-Hai Ju. (2014) Theoretical study of the geometries and decomposition energies of CO2 on Al12X: Doping effect of Al12X. Journal of Molecular Graphics and Modelling 48, pages 9-17.
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Jennifer Mott Peuker, Patrick Lynch, Herman Krier & Nick Glumac. (2013) On AlO Emission Spectroscopy as a Diagnostic in Energetic Materials Testing. Propellants, Explosives, Pyrotechnics 38:4, pages 577-585.
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Haoyan Wei & Choong-Shik Yoo. (2012) Dynamic responses of reactive metallic structures under thermal and mechanical ignitions. Journal of Materials Research 27:21, pages 2705-2717.
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Robert J. Gill, Carlo Badiola & Edward L. Dreizin. (2010) Combustion times and emission profiles of micron-sized aluminum particles burning in different environments. Combustion and Flame 157:11, pages 2015-2023.
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Salil Mohan, Mikhaylo A. Trunov & Edward L. Dreizin. (2009) On possibility of vapor-phase combustion for fine aluminum particles. Combustion and Flame 156:11, pages 2213-2216.
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Robert J. Gill, Salil Mohan & Edward L. Dreizin. (2009) Sizing and burn time measurements of micron-sized metal powders. Review of Scientific Instruments 80:6.
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Katrina Brandstadt, David L. Frost & Janusz A. Kozinski. (2009) Preignition characteristics of nano- and micrometer-scale aluminum particles in Al–CO2 oxidation systems. Proceedings of the Combustion Institute 32:2, pages 1913-1919.
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Song Ye, Jing-He Wu, Mi-An Xue, Yan-Ping Wang, Dong Hu & Xiang-Dong Yang. (2008) Spectral investigations of the combustion of pseudo-nanoaluminized micro-cyclic-[CH 2 N(NO 2 )] 3 in a shock wave . Journal of Physics D: Applied Physics 41:23, pages 235501.
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Evgeny Shafirovich & Arvind Varma. (2008) Metal-CO2 Propulsion for Mars Missions: Current Status and Opportunities. Journal of Propulsion and Power 24:3, pages 385-394.
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Evgeny Shafirovich & Arvind Varma. (2007) Metal-CO2 Propulsion for Mars Missions: Current Status and Opportunities. Metal-CO2 Propulsion for Mars Missions: Current Status and Opportunities.
Tim Bazyn, Herman Krier & Nick Glumac. (2007) Evidence for the transition from the diffusion-limit in aluminum particle combustion. Proceedings of the Combustion Institute 31:2, pages 2021-2028.
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V. Sarou-Kanian, J.C. Rifflet, F. Millot & I. Gökalp. (2006) Aluminum combustion in wet and dry CO2: Consequences for surface reactions. Combustion and Flame 145:1-2, pages 220-230.
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Tim Bazyn, Nick Glumac & Herman Krier. (2005) The Combustion Characteristics of 10-Micron Aluminum Particles at Elevated Temperature and Pressure. The Combustion Characteristics of 10-Micron Aluminum Particles at Elevated Temperature and Pressure.
Tim Bazyn, Herman Krier & Nick Glumac. (2005) Oxidizer and Pressure Effects on the Combustion of 10-micron Aluminum Particles. Journal of Propulsion and Power 21:4, pages 577-582.
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V. Sarou-Kanian, J.C. Rifflet, F. Millot, G. Matzen & I. Gökalp. (2005) Influence of nitrogen in aluminum droplet combustion. Proceedings of the Combustion Institute 30:2, pages 2063-2070.
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T. Bazyn, R. Eyer, H. Krier & N. Glumac. (2004) Combustion Characteristics of Aluminum Hydride at Elevated Pressure and Temperature. Journal of Propulsion and Power 20:3, pages 427-431.
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Tim Bazyn, Ryan Eyer, Herman Krier & Nick Glumac. (2004) Dehydrogenation and Burning of Aluminum Hydride at Elevated Pressures. Dehydrogenation and Burning of Aluminum Hydride at Elevated Pressures.
Nick Glumac. (2004) A Review of the Spectroscopy of Gas-phase Flow: The Molecules and Modern Methods. A Review of the Spectroscopy of Gas-phase Flow: The Molecules and Modern Methods.

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