Tungsten combustion in impact initiated W–Al composite based on W(Al) super-saturated solid solution
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S. Bai | Yu-ling Tang | Y. Ye | Li'an Zhu | Shun Li | Xiaodong Gu | K. Zhao | Xiao-hong Zhang
[1] E. Petrov,et al. Energetic Materials Based on W/PTFE/Al: Thermal and Shock-Wave Initiation of Exothermic Reactions , 2021, Metals.
[2] Pengwan Chen,et al. Research on the Ignition Height and Reaction Flame Temperature of PTFE/Al/Si/CuO with Different Mass Ratios of PTFE/Si , 2021, Materials.
[3] D. Andreev,et al. Reactive Ni–Al-Based Materials: Strength and Combustion Behavior , 2021, Metals.
[4] C. Aguilar,et al. Evolution of synthesis of FCC nanocrystalline solid solution and amorphous phase in the Ti-Ta based alloy by high milling energy , 2021 .
[5] Antonio Mario Locci,et al. Fabrication of nanocrystalline supersaturated W–Al alloys with enhanced thermal stability and high sinterability , 2021 .
[6] S. Bai,et al. Preparation of TiZrNbTa refractory high-entropy alloy powder by mechanical alloying with liquid process control agents , 2020 .
[7] S. Bai,et al. Enhancement of energy release performance of Al–Ni composites by adding CuO , 2020 .
[8] R. Liu,et al. Fabrication and characterization of the Ni–Al energetic structural material with high energy density and mechanical properties , 2020 .
[9] Qingming Zhang,et al. Influence of impact-induced reaction characteristics of reactive composites on hypervelocity impact resistance , 2020 .
[10] J. Ning,et al. Effect of temperature on the impact ignition behavior of the aluminum/polytetrafluoroethylene reactive material under multiple pulse loading , 2020 .
[11] Luyao Wang,et al. Improving the damage potential of W-Zr reactive structure material under extreme loading condition , 2020 .
[12] Z. Guan,et al. The shock-induced chemical reaction behaviour of Al/Ni composites by cold rolling and powder compaction , 2019, Journal of Materials Science.
[13] C. Schuh,et al. Nanocrystalline Ag-W alloys lose stability upon solute desegregation from grain boundaries , 2018, Acta Materialia.
[14] Xiaohui Zhao,et al. Enhanced Energetic Performances Based on Integration with the Al/PTFE Nanolaminates , 2018, Nanoscale Research Letters.
[15] E. Dreizin,et al. Reactive Structural Materials: Preparation and Characterization , 2018 .
[16] E. Dreizin,et al. High density reactive composite powders , 2018 .
[17] Bai Shuxin,et al. Quasi-static and impact-initiated response of Zr 55 Ni 5 Al 10 Cu 30 alloy , 2018 .
[18] S. Bai,et al. Microstructure, mechanical properties and energetic characteristics of a novel high-entropy alloy HfZrTiTa0.53 , 2017 .
[19] S. Son,et al. The role of fracture in the impact initiation of Ni-Al intermetallic composite reactives during dynamic loading , 2017 .
[20] Xuchao Pan,et al. Investigation on shock-induced reaction characteristics of an Al/Ni composite processed via accumulative roll-bonding , 2017 .
[21] Xianfeng Zhang,et al. The Energy Release Characteristics of Shock-Induced Chemical Reaction of Al/Ni Composites , 2016 .
[22] Zhongan Tao,et al. A crack-induced initiation mechanism of Al-PTFE under quasi-static compression and the investigation of influencing factors , 2016 .
[23] J. Ning,et al. Microstructure and mechanical properties of W-Zr reactive materials , 2016 .
[24] Qingming Zhang,et al. Potential space debris shield structure using impact-initiated energetic materials composed of polytetrafluoroethylene and aluminum , 2016 .
[25] Jin-Xu Liu,et al. Investigation on reaction energy, mechanical behavior and impact insensitivity of W–PTFE–Al composites with different W percentage , 2016 .
[26] S. Iyengar,et al. Reaction behavior and evolution of phases during the sintering of Ta–Al powder mixtures , 2016 .
[27] Xianfeng Zhang,et al. Influence of additives on microstructures, mechanical properties and shock-induced reaction characteristics of Al/Ni composites , 2015 .
[28] Chunlan Jiang,et al. Experimental study on impact-initiated characters of W/Zr energetic fragments , 2015 .
[29] Wei Zhang,et al. Initiation and energy release characteristics studies on polymer bonded explosive materials under high speed impact , 2015 .
[30] H. Krier,et al. Tungsten Combustion in Explosively Initiated W/Zr Mechanical Alloys , 2014 .
[31] Zheng Nan. High plasticity liner material of W-Cu-Zr amorphous alloy , 2014 .
[32] Jiang Wang,et al. Mobilities and diffusivities for bcc Nb–W, Nb–Ta, Zr–Mo and Zr–Hf alloys , 2013 .
[33] Z. Guan,et al. Experimental study on impact-initiated characters of multifunctional energetic structural materials , 2013 .
[34] Mark A. Atwater,et al. Thermodynamic feasibility of solid solubility extension of Nb in Cu and their thermal stability , 2012 .
[35] K. Vecchio,et al. Quasi-static and dynamic response of explosively consolidated metal–aluminum powder mixtures , 2012 .
[36] Zongwei Liu,et al. Impact-induced initiation and energy release behavior of reactive materials , 2011 .
[37] R. Scattergood,et al. Thermal stability of nanocrystalline Fe–Zr alloys , 2010 .
[38] N. Parvin,et al. Characterization and formation mechanism of nanocrystalline W–Al alloy prepared by mechanical alloying , 2010 .
[39] K. Vecchio,et al. Particle size effect on strength, failure, and shock behavior in polytetrafluoroethylene-Al-W granular composite materials , 2008, 0806.1775.
[40] William G. Proud,et al. Temperature–time response of a polymer bonded explosive in compression (EDC37) , 2008 .
[41] Dustin T. Osborne,et al. EFFECT OF AL PARTICLE SIZE ON THE THERMAL DEGRADATION OF AL/TEFLON MIXTURES , 2007 .
[42] E. Dreizin,et al. Exothermic reactions in Al–CuO nanocomposites , 2006 .
[43] Wei Zhao,et al. Synthesis, Microstructure and Mechanical Properties of Al40W60 Bulk Alloy Obtained by Mechanical Alloying and Hot‐Pressing , 2005 .
[44] A. Gash,et al. Combustion wave speeds of nanocomposite Al/Fe2O3: the effects of Fe2O3 particle synthesis technique , 2005 .
[45] R. Ames. Energy Release Characteristics of Impact-Initiated Energetic Materials , 2005 .
[46] X. F. Ma,et al. Processing, microstructure and mechanical properties of W50Al50 bulk alloy obtained by mechanical alloying and hot-pressing , 2004 .
[47] A. Gromov,et al. Features of passivation, oxidation and combustion of tungsten nanopowders by air , 2004 .
[48] J. Berg,et al. Ignition studies of Al/Fe2O3 energetic nanocomposites , 2004 .
[49] R. Hong,et al. Preparation of W-Al alloys by mechanical alloying , 2002 .
[50] Weiming Wu,et al. Extended solid solubility for Al-W binary system by mechanical alloying , 2000 .
[51] M. Grubelich,et al. A survey of combustible metals, thermites, and intermetallics for pyrotechnic applications , 1996 .
[52] Kenneth L. Cashdollar,et al. Metal dust combustion: Explosion limits, pressures, and temperatures , 1992 .