Combustion synthesis of refractory and hard materials: A review
Tài liệu tham khảo
Merzhanov, 1972, Self-propagating high-temperature synthesis of refractory inorganic compounds, Dokl Akad Nauk SSSR, 204, 366
Makino, 2001, Fundamental aspects of the heterogeneous flame in the self-propagating high-temperature synthesis process, Prog Energy Combust Sci, 27, 1, 10.1016/S0360-1285(00)00004-6
Filimonov, 2005, High-temperature combustion synthesis: generation of electromagnetic radiation and the effect of external electromagnetic fields, Combust Expl Shock Waves, 41, 639, 10.1007/s10573-005-0078-z
2007
Mukasyan, 2008, Discrete reaction waves: gasless combustion of solid powder mixtures, Prog Energy Combust Sci, 34, 377, 10.1016/j.pecs.2007.09.002
2010
Levashov, 2011, Advanced ceramic target materials produced by self-propagating high-temperature synthesis for deposition of functional nanostructured coatings, 3
Liu GH, Li JT, Chen KX. Review of melt-casting of bulk ceramics and glasses by high-gravity combustion synthesis. Adv Appl Ceram in press. http://dx.doi.org/10.1179/1743676112Y.0000000055
Liu, 2005, Effects of diluents and NH4F additive on the combustion synthesis of Yb α-SiAlON, J Eur Ceram Soc, 25, 3361, 10.1016/j.jeurceramsoc.2004.08.021
Liu GH, Chen KX, Li JT. Combustion synthesis of SiAlON ceramic powders: A review. Mater Manu Proc, available on-line, http://dx.doi.org/10.1080/10426914.2012.718471.
Nersisyan, 2005, Study of the combustion synthesis process of nanostructured WC and WC–Co, Mater Chem Phys, 94, 153, 10.1016/j.matchemphys.2005.04.024
Won, 2010, Combustion synthesis of nano-sized tungsten carbide powder and effects of sodium halides, J Nanopart Res, 12, 493, 10.1007/s11051-009-9736-5
Nersisyan, 2009, Combustion synthesis of nanostructured tungsten and its morphological study, Powder Technol, 189, 422, 10.1016/j.powtec.2008.07.002
Jiang, 2011, Fabrication of tungsten powder with sodium tungstate as raw material by SHS method, Mater Lett, 65, 2969, 10.1016/j.matlet.2011.02.019
Mukasyan, 1992, Structure formation in SHS nitrides, Int J SHS, 1, 55
Liu, 2008, Combustion synthesis of nanosized β-SiC powder on a large scale, J Phys Chem C, 112, 6285, 10.1021/jp710942m
Tsuchida, 1994, Self-combustion reactions induced by mechanical activation: formation of aluminum nitride from aluminum–graphite powder mixture, J Am Ceram Soc, 77, 3227, 10.1111/j.1151-2916.1994.tb04574.x
Shevchenko, 1999, Effect of conditions under which powdered lanthanum is heated on its interaction with air, Combust Expl Shock Waves, 35, 79, 10.1007/BF02674390
Ilin, 2000, End combustion products of mixtures of ultrafine aluminum with a zirconium-aluminum alloy in air, Combust Expl Shock Waves, 36, 209, 10.1007/BF02699362
Liu, 2007, Dynamically controlled formation of TiN by combustion of Ti in air, J Am Ceram Soc, 90, 2918, 10.1111/j.1551-2916.2007.01761.x
Li, 2009, Combustion synthesis of Si3N4 by selective reaction of silicon with nitrogen in air, J Am Ceram Soc, 92, 636, 10.1111/j.1551-2916.2009.02929.x
Liu, 2009, Hollow spherical Ti–Al–C clusters prepared by combustion synthesis, J Am Ceram Soc, 92, 2385, 10.1111/j.1551-2916.2009.03188.x
Miyamoto, 1984, High-pressure self-combustion sintering for ceramics, J Am Ceram Soc, 67, 224, 10.1111/j.1151-2916.1984.tb19488.x
Kunrath, 2002, Microstructural evolution of titanium carbide–chromium carbide composites produced via combustion synthesis, J Am Ceram Soc, 85, 1285, 10.1111/j.1151-2916.2002.tb00259.x
Horvitz, 2002, In-situ processing of dense Al2O3–Ti aluminide interpenetrating phase composites, J Eur Ceram Soc, 22, 947, 10.1016/S0955-2219(01)00396-X
Shon, 1996, Simultaneous synthesis and densification of MoSi2 by field-activated combustion, J Am Ceram Soc, 79, 1875, 10.1111/j.1151-2916.1996.tb08008.x
Shon, 1999, Simultaneous synthesis and densification of Ti5Si3 and Ti5Si3–20 vol% ZrO2 composites by field-activated and pressure-assisted combustion, Mater Sci Eng A, 269, 129, 10.1016/S0921-5093(99)00131-8
Shon, 2001, Dense WSi2 and WSi2–20 vol% ZrO2 composite synthesized by pressure-assisted field activated combustion, J Alloy Comp, 322, 120, 10.1016/S0925-8388(01)01167-7
Lee, 2002, Simultaneous synthesis and densification of NiAl and Ni3Al by pressure-assisted combustion, J Mater Sci, 37, 2435, 10.1023/A:1015466901903
Kim, 2004, Synthesis of WC and dense WC–xvol% Co hard materials by high-frequency induction heated combustion method, Int J Refract Metal Hard Mater, 22, 41, 10.1016/j.ijrmhm.2003.12.002
Kim, 2006, One step synthesis and densification of ultra-fine WC by high-frequency induction combustion, Int J Refract Metal Hard Mater, 24, 202, 10.1016/j.ijrmhm.2005.04.004
Ko, 2009, Pulsed current activated combustion synthesis and consolidation of ultrafine NbSi2 from mechanically activated powders, Met Mater Int, 15, 399, 10.1007/s12540-009-0399-7
Shon, 2009, Consolidation of nanostructured ZrSi2–Si3N4 synthesized from mechanically activated (4ZrN+11Si) powders by high frequency induction heated combustion synthesis, Mater Res Bull, 44, 1462, 10.1016/j.materresbull.2009.02.017
Ko, 2010, Rapid synthesis and consolidation of nanostructured TaSi2–SiC–Si3N4 composite from mechanically activated powders by high-frequency induction-heated combustion, J Alloy Comp, 504, 548, 10.1016/j.jallcom.2010.06.009
Ko, 2010, ZrSi2–SiC composite obtained from mechanically activated ZrC+3Si powders by pulsed current activated combustion synthesis, Ceram Int, 36, 817, 10.1016/j.ceramint.2009.09.046
Zhang, 2002, Self-propagating high temperature combustion synthesis of TiC/TiB2 ceramic-matrix composites, Compos Sci Technol, 62, 2037, 10.1016/S0266-3538(02)00155-0
Zhang, 2003, Self-propagating high temperature combustion synthesis of TiB/Ti composites, Mater Sci Eng A, 348, 41, 10.1016/S0921-5093(02)00635-4
Zhang, 2004, In-situ combustion synthesis of ultrafine TiB2 particles reinforced Cu matrix composite, J Mater Sci, 39, 4683, 10.1023/B:JMSC.0000034171.47412.7f
Zhang, 2007, Rapid fabrication of Ti3SiC2–SiC nanocomposite using the spark plasma sintering-reactive synthesis method, Scr Mater, 56, 241, 10.1016/j.scriptamat.2006.09.029
Morsi, 2007, Equal channel angular pressing followed by combustion synthesis of titanium aluminides, J Alloy Comp, 429, 1, 10.1016/j.jallcom.2006.04.015
Shu, 2011, Compression properties and work-hardening behavior of Ti2AlC/TiAl composites fabricated by combustion synthesis and hot press consolidation in the Ti–Al–Nb–C system, Mater Des, 32, 5061, 10.1016/j.matdes.2011.05.041
Shibuya, 2002, Simultaneous synthesis and densification of titanium nitride/titanium diboride composites by high nitrogen pressure combustion, J Am Ceram Soc, 85, 2965, 10.1111/j.1151-2916.2002.tb00564.x
Smirnov, 2003, Combustion synthesis of SiALON-based ceramic composites, Powder Metall Met Ceram, 42, 11, 10.1023/B:PMMC.0000022199.34054.90
Yang, 2004, Microstructure and properties of Fe3Al–Fe3AlC0.5 composites prepared by self-propagating high temperature synthesis casting, Mater Sci Eng A, 382, 8, 10.1016/j.msea.2004.03.095
Fu, 2009, Nanostructured hypoeutectic Fe–B alloy prepared by a self-propagating high temperature synthesis combining a rapid cooling technique, Nanoscale Res Lett, 4, 11, 10.1007/s11671-008-9195-4
Fu, 2009, Enhanced ductility of dendrite-ultrafine eutectic composite Fe3B alloy prepared by a self-propagating high-temperature synthesis, Adv Eng Mater, 11, 194, 10.1002/adem.200800178
Fu, 2010, Pressure-assisted combustion synthesis large-scale nanostructured Fe74Si24B2 alloy, Physica B, 405, 4497, 10.1016/j.physb.2010.08.023
Li, 2010, Combustion synthesis and characterization of bulk nanocrystalline Fe88Si12 alloy, IEEE Trans Nanotechnol, 9, 218, 10.1109/TNANO.2009.2028023
Fu, 2011, Microstructure and mechanical behaviour of (Fe88Si12)95Al5 alloy prepared by aluminothermics, Mater Sci Technol, 27, 1482, 10.1179/026708310X12815992418508
Fu, 2011, Microstructure and mechanical behavior of nanostructured composite Cu60Fe40 alloy, Phil Mag Lett, 91, 78, 10.1080/09500839.2010.533132
La, 2006, Bulk nanocrystalline Fe3Al-based material prepared by aluminothermic reaction, Adv Mater, 18, 733, 10.1002/adma.200501684
Zhao, 2005, Microstructures and mechanical properties of Al2O3/ZrO2 composite produced by combustion synthesis, Scr Mater, 53, 995, 10.1016/j.scriptamat.2005.06.016
Zhao, 2008, Al2O3/ZrO2 (Y2O3) self-growing composites prepared by combustion synthesis under high gravity, Scr Mater, 58, 207, 10.1016/j.scriptamat.2007.09.051
Liang, 2009, Fabrication of Al2O3/YAG/ZrO2 ternary eutectic by combustion synthesis melt-casting under ultra-high gravity, J Am Ceram Soc, 92, 549, 10.1111/j.1551-2916.2008.02911.x
Su, 2011, Large-bulk solidified Al2O3–ZrO2–Y2O3 prepared by self-pressure assisting combustion synthesis under high gravity, Adv Mater Res, 177, 394, 10.4028/www.scientific.net/AMR.177.394
Huang, 2011, TiB2–(Ti, W)C eutectic composite ceramics prepared by combustion synthesis under high gravity, Adv Mater Res, 177, 386, 10.4028/www.scientific.net/AMR.177.386
Song, 2010, Predicting the adiabatic temperature of transparent Y3Al5O12 prepared via combustion synthesis under ultra-high gravity, Mater Trans, 51, 2230, 10.2320/matertrans.M2010266
Liu, 2011, Melt-casting of YAG ceramics by combustion synthesis under high gravity with the addition of glass, J Alloy Comp, 509, 213, 10.1016/j.jallcom.2011.03.145
Liu, 2012, Melt-casting of translucent MgAl2O4 ceramics by combustion synthesis under high gravity, Mater Manu Proc, 27, 689, 10.1080/10426914.2011.593250
Liu, 2012, Preparing bulk ceramics by high-gravity combustion synthesis, Key Eng Mater, 512–515, 350, 10.4028/www.scientific.net/KEM.512-515.350
Liu, 2011, Melt-casting of Si–Al–Y–O glasses and glass-ceramics by combustion synthesis under high gravity, J Non-Cryst Solids, 357, 1764, 10.1016/j.jnoncrysol.2010.12.079
Yang, 2012, Preparation of transparent Y2O3–Al2O3–SiO2 glasses by high-gravity combustion synthesis with heating assistance, J Am Ceram Soc, 95, 1799, 10.1111/j.1551-2916.2012.05199.x
Liu, 2011, Fast fabrication of glass-ceramics by high-gravity combustion synthesis, Adv Appl Ceram, 110, 394, 10.1179/1743676111Y.0000000028
Mai, 2012, Preparation of Fe3Al intermetallics by combustion synthesis melt-casting under ultra-high gravity, Mater Manu Proc, 27, 486, 10.1080/10426914.2011.585504
Liu, 2012, Combustion synthesis of porous TiC/Ni composites under high gravity, Adv Appl Ceram, 111, 404, 10.1179/1743676112Y.0000000011
Wang, 2005, Fabrication of steel matrix composites locally reinforced with in situ TiB2 particulates using self-propagating high-temperature synthesis reaction of Ni–Ti–B system during casting, Adv Eng Mater, 7, 58, 10.1002/adem.200400145
Jiang, 2006, Fabrication of steel matrix composites locally reinforced with in situ TiB2–TiC particulates using self-propagating high-temperature synthesis reaction of Al–Ti–B4C system during casting, Composites Part A, 37, 133, 10.1016/j.compositesa.2005.03.011
Yang, 2007, Fabrication of steel matrix composites locally reinforced with different ratios of TiC/TiB2 particulates using SHS reactions of Ni–Ti–B4C and Ni–Ti–B4C–C systems during casting, Mater Sci Eng A, 445–446, 398, 10.1016/j.msea.2006.09.062
Yang, 2009, In situ TiC/TiB2 particulate locally reinforced steel matrix composites fabricated via the SHS reaction of Ni–Ti–B4C system, Int J Appl Ceram Technol, 6, 437, 10.1111/j.1744-7402.2008.02282.x
Zou, 2012, Shen Ping, Cao XQ, Jiang QC. The mechanism of thermal explosion (TE) synthesis of TiC–TiB2 particulate locally reinforced steel matrix composites from an Al–Ti–B4C system via a TE-casting route, Mater Chem Phys, 132, 51, 10.1016/j.matchemphys.2011.10.051
Biswas, 2004, Comparison between the microstructural evolutions of two modes of SHS of NiAl: key to a common reaction mechanism, Acta Mater, 52, 257, 10.1016/j.actamat.2003.08.018
Biswas, 2005, Porous NiTi by thermal explosion mode of SHS: processing, mechanism, and generation of single phase microstructure, Acta Mater, 53, 1415, 10.1016/j.actamat.2004.11.036
Liu, 2006, Fast shape evolution of TiN micro-crystals in combustion synthesis, Cryst Growth Des, 6, 2404, 10.1021/cg050333d
Liu, 2012, Growth mechanism of crystalline SiAlON microtubes prepared by combustion synthesis, CrystEngComm, 14, 5585, 10.1039/c2ce25525a
Zou, 2011, Reaction path of the synthesis of α-Al2O3–TiC–TiB2 in an Al–TiO2–B4C system, Int J Refract Metal Hard Mater, 29, 591, 10.1016/j.ijrmhm.2011.04.001
Contreras, 2004, Time-resolved XRD study of TiC–TiB2 composites obtained by SHS, Acta Mater, 52, 4783, 10.1016/j.actamat.2004.06.049
Mas-Guindal, 2008, Time-resolved neutron diffraction study of Ti–TiC–Al2O3 composites obtained by SHS, J Eur Ceram Soc, 28, 2975, 10.1016/j.jeurceramsoc.2008.05.001
Gennari, 2004, Combustion modes and reaction paths of the self-sustained high-temperature Synthesis of intermetallic compounds: a computer simulation study of the effect of exothermicity, J Phys Chem B, 108, 19550, 10.1021/jp046994n