Works matching DE "ALUMINUM powder"
Results: 792
Effect of sizing on the corrosion behaviour of Alumix 123 P/M alloy in 3.5 wt-% NaCl solution.
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- Corrosion Engineering, Science & Technology, 2017, v. 52, n. 1, p. 29, doi. 10.1080/1478422X.2016.1179845
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- Article
A fine cobalt-toughened Al2O3-TiC ceramic and its wear resistance.
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- Journal of Materials Science, 1998, v. 33, n. 23, p. 5677, doi. 10.1023/A:1004440921088
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Preparation of autoclaved-aerated concrete with waste ash of petroleum coke gasification.
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- Materials Research Innovations, 2024, v. 28, n. 6, p. 433, doi. 10.1080/14328917.2024.2304953
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- Article
Experimental study on dynamic response of micron aluminum powder.
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- Granular Matter, 2022, v. 24, n. 3, p. 1, doi. 10.1007/s10035-022-01248-0
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Experimental and Numerical Investigation on Nonideal Detonation of Aluminized Emulsion Explosives.
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- Combustion, Explosion, & Shock Waves, 2024, v. 60, n. 5, p. 676, doi. 10.1134/S0010508224050137
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Detonation Velocity of an Aluminized Emulsion Explosive in a Flat Layer.
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- Combustion, Explosion, & Shock Waves, 2024, v. 60, n. 5, p. 659, doi. 10.1134/S0010508224050113
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Thermal Explosion in a Powder Mixture of Aluminum with Nickel Preactivated in a Low-Energy Laboratory Mill.
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- Combustion, Explosion, & Shock Waves, 2024, v. 60, n. 1, p. 102, doi. 10.1134/S001050822401012X
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Effect of Ultrafine Al/B, Ti/B, and Fe/B Powders on the Ignition and Combustion Characteristics of High-Energy Materials.
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- Combustion, Explosion, & Shock Waves, 2023, v. 59, n. 6, p. 716, doi. 10.1134/S0010508223060072
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Deflagration-to-Detonation Characteristics and Detonation Wave Structure of the Flake Aluminum Powder–Air Mixture.
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- Combustion, Explosion, & Shock Waves, 2023, v. 59, n. 5, p. 647, doi. 10.1134/S0010508223050143
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Induction Period of a Thermal Explosion in Titanium and Aluminum Powder Mixtures.
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- Combustion, Explosion, & Shock Waves, 2023, v. 59, n. 4, p. 447, doi. 10.1134/S001050822304007X
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Electric-Spark Initiation of Nanothermites.
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- Combustion, Explosion, & Shock Waves, 2023, v. 59, n. 4, p. 471, doi. 10.1134/S001050822304010X
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Experimental Study of Unsteady Burning Rate of High-Energy Materials under Depressurization.
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- Combustion, Explosion, & Shock Waves, 2023, v. 59, n. 2, p. 244, doi. 10.1134/S0010508223020168
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- Article
Gasless Combustion of Ti–C–Al Reaction Mixtures in a Thermal Explosion.
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- Combustion, Explosion, & Shock Waves, 2023, v. 59, n. 1, p. 64, doi. 10.1134/S0010508223010070
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Laser Ignition of Aluminum and Boron Based Powder Systems.
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- Combustion, Explosion, & Shock Waves, 2022, v. 58, n. 4, p. 422, doi. 10.1134/S0010508222040049
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Impact of a Relativistic Electron Beam on Cast Aluminized Energetic Condensed Systems.
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- Combustion, Explosion, & Shock Waves, 2022, v. 58, n. 2, p. 206, doi. 10.1134/S0010508222020101
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Effect of Binders on Combustion of the Aluminum Powder.
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- Combustion, Explosion, & Shock Waves, 2022, v. 58, n. 2, p. 190, doi. 10.1134/S0010508222020083
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Effect of Aluminum Additive on the Detonation Velocity and Acceleration Ability of an Emulsion Explosive.
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- Combustion, Explosion, & Shock Waves, 2021, v. 57, n. 6, p. 719, doi. 10.1134/S0010508221060113
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Augmentation of Aluminum and Boron Ignition.
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- Combustion, Explosion, & Shock Waves, 2021, v. 57, n. 2, p. 190, doi. 10.1134/S0010508221020076
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Preparation and Properties of a Flake Aluminum Powder in an Ammonium-Perchlorate-Based Composite Modified Double-Base Propellant.
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- Combustion, Explosion, & Shock Waves, 2020, v. 56, n. 6, p. 691, doi. 10.1134/S0010508220060088
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Effect of the Aluminum Particle Size, Solid Content, and Aluminum/Oxygen Ratio on the Underwater Explosion Performance of Aluminum-Based Explosives.
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- Combustion, Explosion, & Shock Waves, 2020, v. 56, n. 5, p. 576, doi. 10.1134/S0010508220050093
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Influence of the Amount of Fe2O3Modifier on the Oxidation Rate of ASD-4 Micron-Sized Powder.
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- Combustion, Explosion, & Shock Waves, 2020, v. 56, n. 2, p. 156, doi. 10.1134/S0010508220020069
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Sound Velocity in Shock-Compressed Samples from a Mixture of Micro- and Nanodispersed Nickel and Aluminum Powders.
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- Combustion, Explosion, & Shock Waves, 2019, v. 55, n. 6, p. 732, doi. 10.1134/S0010508219060157
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Modeling of Cellular Detonation in Gas Suspensions of Submicron and Nano-Sized Aluminum Particles.
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- Combustion, Explosion, & Shock Waves, 2019, v. 55, n. 5, p. 580, doi. 10.1134/S0010508219050095
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Critical Conditions of Spark Ignition of a Bidisperse Aluminum Powder in Air.
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- Combustion, Explosion, & Shock Waves, 2019, v. 55, n. 4, p. 395, doi. 10.1134/S001050821904004X
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Combustion of Aluminum and Boron Agglomerates Free Falling in Air. I. Experimental Approach.
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- Combustion, Explosion, & Shock Waves, 2019, v. 55, n. 3, p. 335, doi. 10.1134/S0010508219030110
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Dielecric Relaxation in Energy Condensed Systems on the Basis of Polyefirretane Elastomer. II. Temperature Dependence and Ignition.
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- Combustion, Explosion, & Shock Waves, 2019, v. 55, n. 2, p. 220, doi. 10.1134/S0010508219020114
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Mathematical Modeling of the Combustion of an Overfueled Aluminum-Air Mixture Based on the Nonequilibrium Thermodynamics of the Process.
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- Combustion, Explosion, & Shock Waves, 2018, v. 54, n. 1, p. 35, doi. 10.1134/S0010508218010070
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Oxidation of ASD-4 Powder Modified by V<sub>2</sub>O<sub>5</sub>.
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- Combustion, Explosion, & Shock Waves, 2018, v. 54, n. 1, p. 58, doi. 10.1134/S0010508218010094
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Ignition of a metallized composite solid propellant by a group of hot particles.
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- Combustion, Explosion, & Shock Waves, 2016, v. 52, n. 6, p. 694, doi. 10.1134/S0010508216060095
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Effect of VO on the oxidation mechanism of ASD-4 powder.
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- Combustion, Explosion, & Shock Waves, 2015, v. 51, n. 5, p. 572, doi. 10.1134/S0010508215050081
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Phase formation sequence in combustion of pressed aluminum nanopowder in air studied by synchrotron radiation.
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- Combustion, Explosion, & Shock Waves, 2013, v. 49, n. 3, p. 320, doi. 10.1134/S0010508213030088
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Electrical conductivity of copper powders under shock compression.
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- Combustion, Explosion, & Shock Waves, 2013, v. 49, n. 3, p. 359, doi. 10.1134/S0010508213030131
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Effect of addition of potassium carbonate to aluminum powder on the grain size of AlO nanoparticles formed in the laminar dusty flame.
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- Combustion, Explosion, & Shock Waves, 2013, v. 49, n. 1, p. 26, doi. 10.1134/S0010508213010048
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Influence of aluminum particle size on ignition and nonstationary combustion of heterogeneous condensed systems.
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- Combustion, Explosion, & Shock Waves, 2012, v. 48, n. 5, p. 625, doi. 10.1134/S0010508212050140
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Effect of catalytic additives and aluminum particle size on the combustion of mixed compositions with a chlorine-free oxidizer.
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- Combustion, Explosion, & Shock Waves, 2012, v. 48, n. 5, p. 642, doi. 10.1134/S0010508212050164
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Experimental study of the acoustic admittance of the burning surface of composite solid propellants.
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- Combustion, Explosion, & Shock Waves, 2011, v. 47, n. 2, p. 193, doi. 10.1134/S0010508211020080
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Experimental investigation on explosion characteristics of nano-aluminum powder-air mixtures.
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- Combustion, Explosion, & Shock Waves, 2010, v. 46, n. 6, p. 678, doi. 10.1007/s10573-010-0089-2
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Effect of ultrafine aluminum on the combustion of composite solid propellants at subatmospheric pressures.
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- Combustion, Explosion, & Shock Waves, 2009, v. 45, n. 1, p. 40, doi. 10.1007/s10573-009-0006-8
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Effect of the addition of ultrafine aluminum powders on the rheological properties and burning rate of energetic condensed systems.
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- Combustion, Explosion, & Shock Waves, 2007, v. 43, n. 1, p. 46, doi. 10.1007/s10573-007-0007-4
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Effect of the passivating coating type, particle size, and storage time on oxidation and nitridation of aluminum powders.
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- Combustion, Explosion, & Shock Waves, 2006, v. 42, n. 2, p. 177, doi. 10.1007/s10573-006-0036-4
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Dynamic Features of Combustion of Polydisperse Aluminum Powders in a Gas.
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- Combustion, Explosion, & Shock Waves, 2005, v. 41, n. 4, p. 430, doi. 10.1007/s10573-005-0053-8
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Experimental Study of the Disperse Composition of Condensed Products of Aluminum‐Particle Combustion in Air.
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- Combustion, Explosion, & Shock Waves, 2004, v. 40, n. 2, p. 154, doi. 10.1023/B:CESW.0000020136.06031.c6
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Metallochemical Analysis of the Reaction in a Mixture of Nickel and Aluminum Powders.
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- Combustion, Explosion, & Shock Waves, 2004, v. 40, n. 2, p. 172, doi. 10.1023/B:CESW.0000020139.07061.9e
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- Article
Features of Ignition of Thermite Mixture Al/CuO by Electric Discharge.
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- Theoretical Foundations of Chemical Engineering, 2024, v. 58, n. 3, p. 936, doi. 10.1134/S0040579524601675
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Kinetics of bayerite microstructure formation from powdered aluminum.
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- Colloid Journal, 2008, v. 70, n. 2, p. 210, doi. 10.1134/S1061933X08020142
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Colloidal properties of aqueous dispersions of ultradispersed Al<sub>2</sub>O<sub>3</sub> prepared by explosion synthesis.
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- Colloid Journal, 2005, v. 67, n. 1, p. 117, doi. 10.1007/s10595-005-0014-7
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铜合金与低碳钢异种材质焊接研究.
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- Metal Working (1674-165X), 2024, n. 10, p. 61
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Research on the preparation technology of ultra-high performance concrete for foamed concrete.
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- New Building Materials / Xinxing Jianzhu Cailiao, 2023, n. 6, p. 100
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- Article
钢渣-矿渣加气混凝土导热系数的 实验研究.
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- New Building Materials / Xinxing Jianzhu Cailiao, 2022, n. 7, p. 53
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- Article
高效减水剂对蒸压加气混凝土 流变和力学性能的影响.
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- New Building Materials / Xinxing Jianzhu Cailiao, 2022, n. 5, p. 70
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- Article