Reactivity of aluminum, iron, and copper nanopowders in metalsulfur system; Materials Letters; Vol. 414
| Parent link: | Materials Letters.— .— Amsterdam: Elsevier Science Publishing Company Inc. Vol. 414.— 2026.— Article number 140535, 4 p. |
|---|---|
| Autor principal: | Amelkovich Yu. A. Yuliya Alexandrovna |
| Outros Autores: | Sechin A. A. Andrey Alexandrovich, Nazarenko O. B. Olga Bronislavovna |
| Resumo: | Title screen The combustion products in air of aluminum, iron, and copper nanopowders mixed with sulfur were studied. It was shown that aluminum nanopowder exhibited the lowest reactivity, while copper nanopowder exhibited the highest. The sulfide content in the combustion products of copper nanopowder mixed with sulfur was highest (100%). The combustion products of aluminum nanopowder mixed with sulfur contained only 60% sulfides. Iron nanopowder had intermediate reactivity; the content of sulfides in the combustion products of its mixture with sulfur was 82% Текстовый файл AM_Agreement |
| Idioma: | inglês |
| Publicado em: |
2026
|
| Assuntos: | |
| Acesso em linha: | https://doi.org/10.1016/j.matlet.2026.140535 |
| Formato: | Recurso Eletrônico Capítulo de Livro |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=686070 |
Registros relacionados
Heating copper and aluminium nanopowders in mixtures with aluminium and silicon oxides in air; Bulletin of the Tomsk Polytechnic University; Vol. 309, № 4
por: Amelkovich Yu. A. Yuliya Alexandrovna
Publicado em: (2006)
por: Amelkovich Yu. A. Yuliya Alexandrovna
Publicado em: (2006)
Activation of the Process of Layer Combustion of Coal with Iron Nitrate and Waste of Metal Rolling Production; Solid Fuel Chemistry; Vol. 58, iss. 3
por: Shuataev M. K. Merlan Kalkamanovich
Publicado em: (2024)
por: Shuataev M. K. Merlan Kalkamanovich
Publicado em: (2024)
Activation of the Process of Layer Combustion of Coal with Iron Nitrate and Waste of Metal Rolling Production; Solid Fuel Chemistry; Vol. 58, iss. 3
por: Shuataev M. K. Merlan Kalkamanovich
Publicado em: (2024)
por: Shuataev M. K. Merlan Kalkamanovich
Publicado em: (2024)
Flame propagation behavior of aluminum nanopowder in bulk layer; Journal of Loss Prevention in the Process Industries; Vol. 69
Publicado em: (2021)
Publicado em: (2021)
Carbide-nanopowders produced by electrical explosion of wires; Journal of optoelectronics and advanced materials; Vol. 9, № 5
por: Ilyin A. P. Aleksandr Petrovich
Publicado em: (2007)
por: Ilyin A. P. Aleksandr Petrovich
Publicado em: (2007)
A Two-Channel Laser Monitor for Observing Processes of High-Temperature Combustion of Metal Nanopowders; Technical Physics Letters; Vol. 47, iss. 4
Publicado em: (2021)
Publicado em: (2021)
A Laser Monitor with Independent Lighting and Brightness Amplification for Imaging High-Temperature Combustion of Metal Nanopowders; Technical Physics Letters; Vol. 47, iss. 5
Publicado em: (2021)
Publicado em: (2021)
Oxidation regularities of the electroexplosive metal nanopowders during heating in air after microwave irradiation; Journal of Thermal Analysis and Calorimetry; Vol. 150, iss. 4
Publicado em: (2025)
Publicado em: (2025)
Formation of filamentary crystals in intermediate combustion product of aluminium nanopowder and its mixtures with molybdenum and tungsten nanopowders in air; Bulletin of the Tomsk Polytechnic University; Vol. 310, № 2
por: Tolbanova L. O. Lyudmila Olegovna
Publicado em: (2007)
por: Tolbanova L. O. Lyudmila Olegovna
Publicado em: (2007)
On the Synthesis Mechanism of TiN, ZrN, and HfN During Combustion of Mixtures of Aluminum Nanopowder with TiO2, ZrO2, and HfO2; Refractories and Industrial Ceramics; Vol. 60, iss. 4
por: Root L. O. Lyudmila Olegovna
Publicado em: (2019)
por: Root L. O. Lyudmila Olegovna
Publicado em: (2019)
Scientific research on nanopowders diagnostics; The 6th International Forum on Strategic Technology (IFOST-2012), Aug. 22-24, 2011
Publicado em: (2011)
Publicado em: (2011)
Passivation of metal nanopowders obtained by electric explosion of semiconductors; Bulletin of the Tomsk Polytechnic University; Vol. 310, № 2
por: Lerner M. I. Marat Izrailyevich
Publicado em: (2007)
por: Lerner M. I. Marat Izrailyevich
Publicado em: (2007)
Получение нитридов титана, циркония и гафния при горении в воздухе нанопорошка алюминия в смесях с диоксидами; Известия Томского политехнического университета [Известия ТПУ]; Т. 323, № 3 : Химия
por: Шинкевич Е. В. Екатерина Викторовна
Publicado em: (2013)
por: Шинкевич Е. В. Екатерина Викторовна
Publicado em: (2013)
Thermooxidative Degradation of Composites Based on Epoxy Resin and Metal Nanopowders; Materials Science Forum; Vol. 942 : Modern Problems in Materials Processing, Manufacturing, Testing and Quality Assurance
por: Lipchansky D. S. Dmitry Sergeevich
Publicado em: (2019)
por: Lipchansky D. S. Dmitry Sergeevich
Publicado em: (2019)
Monitoring For Elemental Composition Of Particulate Matter Deposited In Snow Cover Around Coal-Fired Thermal Power Plant (Karaganda, Central Kazakhstan); Geography, Environment, Sustainability; Vol. 16, No. 4
por: Talovskaya A. V. Anna Valerievna
Publicado em: (2023)
por: Talovskaya A. V. Anna Valerievna
Publicado em: (2023)
Products of combustion of mixtures of aluminum and tungsten nanopowders in air; Combustion, Explosion, and Shock Waves; Vol. 43. № 4
por: Ilyin A. P. Aleksandr Petrovich
Publicado em: (2007)
por: Ilyin A. P. Aleksandr Petrovich
Publicado em: (2007)
Refining of metal melts by filtration method; Metalurgija; Vol. 58, № 3-4
Publicado em: (2019)
Publicado em: (2019)
Low temperature sintering of electroexplosive nanopowders; Bulletin of the Tomsk Polytechnic University; Vol. 309, № 4
Publicado em: (2006)
Publicado em: (2006)
Неокислительная конверсия метана на Мо-содержащих цеолитах; Известия Томского политехнического университета [Известия ТПУ]; Т. 325, № 3 : Химия и химические технологии
por: Коробицына Л. Л. Людмила Леонидовна
Publicado em: (2014)
por: Коробицына Л. Л. Людмила Леонидовна
Publicado em: (2014)
The influence of the electron beam treatment on aluminum and iron nanopowders; Бутаковские чтения
por: Badamasi N. M.
Publicado em: (2023)
por: Badamasi N. M.
Publicado em: (2023)
Effect of iron and boron ultrafine powders on combustion of aluminized solid propellants; Combustion and Flame; Vol. 178
Publicado em: (2017)
Publicado em: (2017)
Al–Cu Powder Oxidation Kinetics during Heating in Air; Combustion, Explosion, and Shock Waves; Vol. 58, iss. 2
por: Korotkikh A. G. Aleksandr Gennadievich
Publicado em: (2022)
por: Korotkikh A. G. Aleksandr Gennadievich
Publicado em: (2022)
Применение термического анализа для оценки влияния нанодисперсных порошков металлов на деструкцию моторного масла; Инновационные технологии в машиностроении
por: Задорожная Т. А. Татьяна Анатольевна
Publicado em: (2021)
por: Задорожная Т. А. Татьяна Анатольевна
Publicado em: (2021)
Metals
por: Романова Л. Г.
Publicado em: (Оренбург, ОГПУ, 2017)
por: Романова Л. Г.
Publicado em: (Оренбург, ОГПУ, 2017)
Combustion of High-Energy Compositions (HECs) Containing Al-B, Ti-B and Fe-B Ultrafine Powders (UFPs); Nanomaterials; Vol. 15, iss. 7
por: Pang Weiqiang
Publicado em: (2025)
por: Pang Weiqiang
Publicado em: (2025)
High-speed visualization of aluminum nanopowder combustion in air; Proceedings of SPIE; Vol. 11066 : Saratov Fall Meeting 2018: Laser Physics, Photonic Technologies, and Molecular Modeling
Publicado em: (2019)
Publicado em: (2019)
High-speed optical imaging technique for combusting metal nanopowders; Optics and Laser Technology; Vol. 159
por: Gubarev F. A. Fedor Aleksandrovich
Publicado em: (2023)
por: Gubarev F. A. Fedor Aleksandrovich
Publicado em: (2023)
Ignition of Forest Combustible Materials by a Group of Crystallizing Metal Particles; Journal of Engineering Physics and Thermophysics; Vol. 93, iss. 3
por: Baranovskiy N. V. Nikolay Viktorovich
Publicado em: (2020)
por: Baranovskiy N. V. Nikolay Viktorovich
Publicado em: (2020)
Activation of Combustion Process of Anthracite by Metal Nitrates; Combustion Science and Technology; Vol. XX, iss. X
Publicado em: (2022)
Publicado em: (2022)
Magnetron Deposition of Oxide Films in the Metallic Mode Enhanced by Radio-Frequency Inductively Coupled Plasma Source; Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques; Vol. 17, iss. 5
por: Sidelev D. V. Dmitry Vladimirovich
Publicado em: (2023)
por: Sidelev D. V. Dmitry Vladimirovich
Publicado em: (2023)
Изотопная характеристика серы арсенопирита из центральной части залежи месторождения Чертово Корыто (Патомское нагорье); Известия Томского политехнического университета [Известия ТПУ]. Инжиниринг георесурсов; Т. 333, № 1
por: Синкина Е. А. Екатерина Андреевна
Publicado em: (2022)
por: Синкина Е. А. Екатерина Андреевна
Publicado em: (2022)
Metalized solid propellant combustion under high-speed blowing flow; Journal of Mechanical Science and Technology (JMST); Vol. 34, iss. 5
Publicado em: (2020)
Publicado em: (2020)
Analysis of Anthropogenic Emissions during Direct Combustion of Oil Products and Oily Industrial Wastes; Chemical and Petroleum Engineering; Vol. 56
por: Akhmetshin M. R. Mark Rustamovich
Publicado em: (2021)
por: Akhmetshin M. R. Mark Rustamovich
Publicado em: (2021)
In situ nanopowder combustion visualization using laser systems with brightness amplification; Proceedings of the Combustion Institute; Vol. 38, iss. 1
Publicado em: (2021)
Publicado em: (2021)
Digital Transformation towards Smart Steel Manufacturing A Framework for Steel Enterprises in Poland /
por: Gajdzik, Bożena
Publicado em: (2025)
por: Gajdzik, Bożena
Publicado em: (2025)
Влияние атмосферы и биологической деятельности на формирование сульфидов архейского колчеданного Центрально-Вожминского месторождения (Карелия); Известия Томского политехнического университета [Известия ТПУ]. Инжиниринг георесурсов; Т. 335, № 7
Publicado em: (2024)
Publicado em: (2024)
Production of Iron Nanopowders by the Electric Explosion of Wire; Advanced Materials Research; Vol. 1097
por: Pustovalov A. V. Aleksey Vitalievich
Publicado em: (2015)
por: Pustovalov A. V. Aleksey Vitalievich
Publicado em: (2015)
Эколого-гидрогеохимические последствия отработки вольфрамовых и молибденовых месторождений Восточного Забайкалья; Известия Томского политехнического университета [Известия ТПУ]. Инжиниринг георесурсов; Т. 328, № 6
por: Чечель Л. П. Лариса Павловна
Publicado em: (2017)
por: Чечель Л. П. Лариса Павловна
Publicado em: (2017)
Extending the SHS combustion concentration limits in Ti + C + Fe powder mixtures by preliminary mechanical activation; Materials Today: Proceedings; Vol. 25, Pt. 3 : III All-Russian Conference (with International Participation) Hot Topics of Solid State Chemistry : From New Ideas to New Materials
Publicado em: (2020)
Publicado em: (2020)
Passivation of aluminum nanopowders for use in energetic materials; Combustion, Explosion, and Shock Waves; Vol. 9, iss. 1
Publicado em: (2015)
Publicado em: (2015)
Registros relacionados
-
Heating copper and aluminium nanopowders in mixtures with aluminium and silicon oxides in air; Bulletin of the Tomsk Polytechnic University; Vol. 309, № 4
por: Amelkovich Yu. A. Yuliya Alexandrovna
Publicado em: (2006) -
Activation of the Process of Layer Combustion of Coal with Iron Nitrate and Waste of Metal Rolling Production; Solid Fuel Chemistry; Vol. 58, iss. 3
por: Shuataev M. K. Merlan Kalkamanovich
Publicado em: (2024) -
Activation of the Process of Layer Combustion of Coal with Iron Nitrate and Waste of Metal Rolling Production; Solid Fuel Chemistry; Vol. 58, iss. 3
por: Shuataev M. K. Merlan Kalkamanovich
Publicado em: (2024) -
Flame propagation behavior of aluminum nanopowder in bulk layer; Journal of Loss Prevention in the Process Industries; Vol. 69
Publicado em: (2021) -
Carbide-nanopowders produced by electrical explosion of wires; Journal of optoelectronics and advanced materials; Vol. 9, № 5
por: Ilyin A. P. Aleksandr Petrovich
Publicado em: (2007)