Research of detonation products of RDX/Al from the perspective of composition
暂无分享,去创建一个
Shengbo Hou | Qi-jun Liu | Fu-sheng Liu | H. Pei | Xu Zhang | Xing-han Li | Zhiqi Yi | Ze-teng Zhang | Xianzhao Zheng | Fu-sheng Liu
[1] Kun Yang,et al. Reaction mechanism of aluminum nanoparticles in explosives under high temperature and high pressure by shock loading. , 2022, Physical chemistry chemical physics : PCCP.
[2] Gen Li,et al. A self-consistent method to research the influence of Al particle temperature on its post-detonation reaction , 2021, AIP Advances.
[3] H. Hng,et al. Effects of nano-sized aluminum on detonation characteristics and metal acceleration for RDX-based aluminized explosive , 2021 .
[4] Jian Liu,et al. The Early Responses of Air-backed plate subjected to underwater explosion with aluminized explosives , 2020, Defence Technology.
[5] Xian-xu Zheng,et al. Effect of Aluminum Particle Size on the Performance of Aluminized Explosives , 2020 .
[6] Cheng Wang,et al. Investigation on energy output structure of explosives near-ground explosion , 2020 .
[7] W. Weiguo,et al. Study on theoretical calculation of quasi-static pressure for explosion in confined space , 2020 .
[8] X. Ju,et al. Molecular dynamics simulation on the reaction of nano-aluminum with water: size and passivation effects , 2019, RSC advances.
[9] F. Huang,et al. A New Equation of State for Detonation Products of RDX‐Based Aluminized Explosives , 2019, Propellants, explosives, pyrotechnics.
[10] L. Fried,et al. Reactive flow modeling of the polymer bonded explosive LX-17 double shock experiments , 2018, Journal of Applied Physics.
[11] H. Pei,et al. A New Method for Predicting the Detonation Velocity of Explosives with Micrometer Aluminum Powders , 2018 .
[12] Qingming Zhang,et al. Effects of Al/O on pressure properties of confined explosion from aluminized explosives , 2017 .
[13] Wei Zhang,et al. Effect of the Al/O ratio on the Al reaction of aluminized RDX-based explosives , 2017 .
[14] Z. Ou,et al. Research on Equation of State For Detonation Products of Aluminized Explosive , 2017 .
[15] C. Tarver,et al. Effects of high shock pressures and pore morphology on hot spot mechanisms in HMX , 2017 .
[16] J. Rong,et al. Detonation Performance of Four Groups of Aluminized Explosives , 2016 .
[17] Fan Zhang,et al. Fragmentation of metal particles during heterogeneous explosion , 2015 .
[18] Z. Ou,et al. Effects of the aluminum content on the shock wave pressure and the acceleration ability of RDX-based aluminized explosives , 2014 .
[19] V. Rao,et al. Theoretical Prediction of Pressure and Temperature of an Aluminized High Explosive in Underwater Explosion , 2014 .
[20] Q. Jiao,et al. Study on the Detonation Parameters of Aluminized Explosives Based on a Disequilibrium Multiphase Model , 2014 .
[21] Wang Hao,et al. JWL Equation of State Parameters Prediction of RDX-Based Aluminized Explosive Based on KHT Code , 2013 .
[22] R. Sinha,et al. Evaluation of Plastic Bonded Explosive (PBX) Formulations Based on RDX, Aluminum, and HTPB for Underwater Applications , 2010 .
[23] M. Keshavarz,et al. A new computer code to evaluate detonation performance of high explosives and their thermochemical properties, part I. , 2009, Journal of hazardous materials.
[24] X. Long,et al. VLW equation of state of detonation products , 2009 .
[25] R. Sinha,et al. Cast aluminized explosives (review) , 2008 .
[26] D. Dattelbaum,et al. Hydrostatic Compression Curve for Triamino-Trinitrobenzene Determined to 13.0 GPa with Powder X-Ray Diffraction , 2008 .
[27] H. Krier,et al. Evidence for the transition from the diffusion-limit in aluminum particle combustion , 2007 .
[28] M. W. Beckstead,et al. Correlating Aluminum Burning Times , 2005 .
[29] Laurence E. Fried,et al. Explicit Gibbs free energy equation of state applied to the carbon phase diagram , 2000 .
[30] F. Ree. A statistical mechanical theory of chemically reacting multiphase mixtures: Application to the detonation properties of PETN , 1984 .
[31] Charles E. Anderson,et al. Quasi-static pressure, duration, and impulse for explosions (e.g. HE) in structures , 1983 .
[32] M. Ross. A high‐density fluid‐perturbation theory based on an inverse 12th‐power hard‐sphere reference system , 1979 .
[33] F. Mandel,et al. Numerical Solutions of the Percus–Yevick Equation for the Lennard‐Jones (6–12) and Hard‐Sphere Potentials , 1970 .
[34] D. Ornellas. Heat and products of detonation of cyclotetramethylenetetranitramine, 2,4,6-trinitrotoluene, nitromethane, and bis[2,2-dinitro-2-fluoroethyl]formal , 1968 .
[35] D. R. Stull. JANAF thermochemical tables , 1966 .