Passivation process for superfine aluminum powders obtained by electrical explosion of wires; Applied Surface Science; Vol. 211, iss. 1-4
| Parent link: | Applied Surface Science.— , 1985- Vol. 211, iss. 1-4.— 2003.— [P. 57–67] |
|---|---|
| Other Authors: | Kwon Y. S., Gromov A. A. Aleksandr Aleksandrovich, Ilyin A. P. Aleksandr Petrovich, Rim G. H. |
| Summary: | Title screen The process of passivation of superfine aluminum powders (SFAPs) (as=100 nm), obtained with the electrical explosion of wires (EEW) method, has been studied. The passivation coatings of different nature (oxides, stearic acid and aluminum diboride) were covered on the particle surface. The process of passivation and analysis of passivated powders was studied by X-ray photoelectron spectroscopy (XPS), XRD, TEM, infrared spectroscopy (IR), mass spectrometry (MS), thermocouple method and bomb calorimetry. After the comprehensive testing of coatings, a model of stabilization of the superfine aluminum particles was suggested, explaining the anomalous high content of aluminum metal in the electroexplosive powders. The main characteristic of the model is a formation of charged structures, which prevent metal oxidation. Режим доступа: по договору с организацией-держателем ресурса |
| Language: | English |
| Published: |
2003
|
| Subjects: | |
| Online Access: | http://dx.doi.org/10.1016/S0169-4332(03)00059-X |
| Format: | Electronic Book Chapter |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=649783 |
Similar Items
Particle Size Distribution of Aluminum Powders Obtained by Electric Explosion of Wires; Key Engineering Materials; Vol. 712 : Advanced Materials for Technical and Medical Purpose (AMTMP 2016)
Published: (2016)
Published: (2016)
Estimation of the reactivity of aluminum superfine powders for energetic applications; Combustion Science and Technology; Vol. 176, № 2
Published: (2004)
Published: (2004)
Optimal Modes for the Fabrication of Aluminum Nanopowders by the Electrical Explosion of Wires; Advances in Materials Science and Engineering; Vol. 2017
by: Pustovalov A. V. Aleksey Vitalievich
Published: (2017)
by: Pustovalov A. V. Aleksey Vitalievich
Published: (2017)
Process Conditions of Forming the Surface Layer of Aluminum Powder Product by Layer-by-layer Laser Sintering; IOP Conference Series: Materials Science and Engineering; Vol. 140 : Interdisciplinary Problems in Additive Technologies
Published: (2016)
Published: (2016)
Characterization of Aluminum powders I. Parameters of reactivityof Aluminum powders; Propellants, Explosives, Pyrotechnics; Vol. 27, № 6
Published: (2002)
Published: (2002)
Effect of a Small Amount of Aluminum Powder on the Combustion of the Waste-Derived Coal–Water Slurry; Energy and Fuels; Vol. 31, iss. 1
by: Valiullin T. R. Timur Radisovich
Published: (2017)
by: Valiullin T. R. Timur Radisovich
Published: (2017)
Microstructure of Modified Layer Produced Using Aluminum Oxy-Hydroxide Nanostructured Powders; IOP Conference Series: Materials Science and Engineering; Vol. 125 : Materials Treatment: Current Problems and Solutions
Published: (2016)
Published: (2016)
Production of Iron Nanopowders by the Electric Explosion of Wire; Applied Mechanics and Materials; Vol. 1097 : Nanomaterials and Surface Technologies, Materials Applications
by: Pustovalov A. V. Aleksey Vitalievich
Published: (2015)
by: Pustovalov A. V. Aleksey Vitalievich
Published: (2015)
Thermal and Chemical Stability of Micron Aluminum Powders Subjected to Gaseous Water; Key Engineering Materials; Vol. 712 : Advanced Materials for Technical and Medical Purpose (AMTMP 2016)
Published: (2016)
Published: (2016)
Production of nitride containing mixture in oxidation of aluminum powder in air; Glass and Ceramics; Vol. 55, iss. 3-4
Published: (1998)
Published: (1998)
Nanopowders production of al by electrical explosion of wires; Междисциплинарные проблемы аддитивных технологий
by: Dzhumanazarov I. I.
Published: (2017)
by: Dzhumanazarov I. I.
Published: (2017)
Electrical explosive synthesis of ultrafine powder of alloys and intermetallic compounds; Fizika i Khimiya Obrabotki Materialov; № 4
Published: (1997)
Published: (1997)
Combustion of agglomerated ultrafine aluminum powders in air; Combustion, Explosion, and Shock Waves; Vol. 38, № 6
Published: (2002)
Published: (2002)
The influence of ammonium perchlorate on the activity of aluminum powders of different particle size; Energy Fluxes and Radiation Effects (EFRE-2016)
Published: (2016)
Published: (2016)
Structural-Phase State and Morphology of a Composite Based on Magnesium Hydride and Nanosized Aluminum Powder Obtained by Electrical Explosion of Wires; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 18
by: Kudiyarov V. N. Victor Nikolaevich
Published: (2024)
by: Kudiyarov V. N. Victor Nikolaevich
Published: (2024)
Kinetics of powder layer shrinkage during electron-beam treatment; Journal of Physics: Conference Series; Vol. 754 : Thermophysics and Physical Hydrodynamics
by: Knyazeva A. G. Anna Georgievna
Published: (2016)
by: Knyazeva A. G. Anna Georgievna
Published: (2016)
Combustion of mixtures containing the activated aluminium powder; MATEC Web of Conferences; Vol. 194 : Heat and Mass Transfer in the Thermal Control System of Technical and Technological Energy Equipment (HMTTSC 2018)
by: Dubkova Ya. Yana
Published: (Les Ulis, EDP Sciences, 2018)
by: Dubkova Ya. Yana
Published: (Les Ulis, EDP Sciences, 2018)
Characterization of Aluminum Powders: II. AluminumNanopowders Passivated by Non-Inert Coatings; Propellants, Explosives, Pyrotechnics; Vol. 31, iss. 5
by: Gromov A. A. Aleksandr Aleksandrovich
Published: (2006)
by: Gromov A. A. Aleksandr Aleksandrovich
Published: (2006)
Synthesis of Al nanoparticles and Al/AlN composite nanoparticles by electrical explosion of aluminum wires in argon and nitrogen; Powder Technology; Vol. 295
Published: (2016)
Published: (2016)
Effect of synchrotron radiation on thermochemical properties of aluminum micro- and nanopowders; Materials Science and Engineering: B; Vol. 285
by: Mostovshchikov A. V. Andrey Vladimirovich
Published: (2022)
by: Mostovshchikov A. V. Andrey Vladimirovich
Published: (2022)
Passivation of metal nanopowders obtained by electric explosion of semiconductors; Bulletin of the Tomsk Polytechnic University; Vol. 310, № 2
by: Lerner M. I. Marat Izrailyevich
Published: (2007)
by: Lerner M. I. Marat Izrailyevich
Published: (2007)
Study of aluminum nitride formation by superfine aluminum powder combustion in air; Journal of the European Ceramic Society; Vol. 24, iss. 9
by: Gromov А. Alexander
Published: (2004)
by: Gromov А. Alexander
Published: (2004)
Effect of the Power-Frequency Electromagnetic Field on the Physicochemical Properties of Aluminum Micro- and Nanopowders; Technical Physics; Vol. 66, iss. 11
by: Mostovshchikov A. V. Andrey Vladimirovich
Published: (2021)
by: Mostovshchikov A. V. Andrey Vladimirovich
Published: (2021)
Features of thermal behavior and ignition of HEM with bimetal powders; MATEC Web of Conferences; Vol. 194 : Heat and Mass Transfer in the Thermal Control System of Technical and Technological Energy Equipment (HMTTSC 2018)
by: Korotkikh A. G. Aleksandr Gennadievich
Published: (Les Ulis, EDP Sciences, 2018)
by: Korotkikh A. G. Aleksandr Gennadievich
Published: (Les Ulis, EDP Sciences, 2018)
Структурные и технологические свойства спеченных алюминиевых порошков: пер. с итал.
Published: (Москва, Металлургия, 1967)
Published: (Москва, Металлургия, 1967)
Preparation and properties of composite material based on hafnium diboride and aluminum; IOP Conference Series: Materials Science and Engineering; Vol. 1019 : 14th International Forum on Strategic Technology (IFOST 2019)
Published: (2021)
Published: (2021)
Производство полуфабрикатов из спеченной алюминиевой пудры (САП)
Published: (Москва, 1965)
Published: (Москва, 1965)
Laser ignition of high-energy materials containing AlB[2] and AlB[12] powders; MATEC Web of Conferences; Vol. 110 : Heat and Mass Transfer in the Thermal Control System of Technical and Technological Energy Equipment (HMTTSC 2017)
Published: (2017)
Published: (2017)
Microstructure features of aluminum alloys welded joint obtained by friction stir welding; Advanced Materials Research; Vol. 872
Published: (2014)
Published: (2014)
Производство и применение алюминиевых порошков пудр
Published: (Москва, Металлургия, 1980)
Published: (Москва, Металлургия, 1980)
Trace Impurities Analysis of Aluminum Nanopowder and Its Air Combustion Product; AIP Conference Proceedings; Vol. 1938 : Isotopes: Technologies, Materials and Application (ITMA-2017)
Published: (2018)
Published: (2018)
Structural Phase State and Morphology of Composites Based on Magnesium Hydride and Nanoscale Nickel Powder Obtained by the Electrical Wire Explosion Method; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 18
by: Leonova E. S. Ekaterina Sergeevna
Published: (2024)
by: Leonova E. S. Ekaterina Sergeevna
Published: (2024)
Structural features of ultrafine powders, generated in conditions of wire electrical explosion; Korus 2000; Part 3 : Machine Parts and Materials Processing
Published: (2000)
Published: (2000)
Получение алюминиевых порошков в среде аргона и гелия; Химия и химическая технология в XXI веке
by: Титов М. Н.
Published: (2018)
by: Титов М. Н.
Published: (2018)
Properties of powders produced by electrical explosions of copper-nickel alloy wires; Materials Letters; Vol. 61, № 14-15
Published: (2007)
Published: (2007)
Study of the Energy Characteristics of Metallized Mixed Compositions Based on a Binary Oxidizer at Increased Pressures; Russian Physics Journal; Vol. 57, iss. 5
Published: (2014)
Published: (2014)
Effect of the passivating coating type, particle size, and storage time on oxidation and nitridation of aluminum powders; Combustion, Explosion and Shock Waves; Vol. 42, № 2
Published: (2006)
Published: (2006)
Способы нанесения защитных покрытий на поверхность микрочастиц алюминия АСД - 6М; Современные материалы и технологии новых поколений
by: Аллагулова Р. И.
Published: (2019)
by: Аллагулова Р. И.
Published: (2019)
Production and characterization of molybdenum nanopowders obtained by electrical explosion of wires; Optoelectronics and Advanced Materials, Rapid Communications; Vol. 4, № 6
Published: (2010)
Published: (2010)
Solid Energetic Material Based on Aluminum Micropowder Modified by Microwave Radiation; Crystals; Vol. 12, iss. 4
Published: (2022)
Published: (2022)
Similar Items
-
Particle Size Distribution of Aluminum Powders Obtained by Electric Explosion of Wires; Key Engineering Materials; Vol. 712 : Advanced Materials for Technical and Medical Purpose (AMTMP 2016)
Published: (2016) -
Estimation of the reactivity of aluminum superfine powders for energetic applications; Combustion Science and Technology; Vol. 176, № 2
Published: (2004) -
Optimal Modes for the Fabrication of Aluminum Nanopowders by the Electrical Explosion of Wires; Advances in Materials Science and Engineering; Vol. 2017
by: Pustovalov A. V. Aleksey Vitalievich
Published: (2017) -
Process Conditions of Forming the Surface Layer of Aluminum Powder Product by Layer-by-layer Laser Sintering; IOP Conference Series: Materials Science and Engineering; Vol. 140 : Interdisciplinary Problems in Additive Technologies
Published: (2016) -
Characterization of Aluminum powders I. Parameters of reactivityof Aluminum powders; Propellants, Explosives, Pyrotechnics; Vol. 27, № 6
Published: (2002)