Energy storage in aluminum nanopowder in stress-strain state of crystal lattice

When transforming metals into nanodispersed state nanopowders acquire new properties, including the storage of energy by nonopowders. The increasing interest to aluminum powders and nanopowders is caused by their application as a high-energy additive in rocket fuels and pyrotechnic mixtures. Thus, t...

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Main Authors: Andrey Vladimirovich Mostovshchikov, Aleksandr Petrovich Ilyin, Margarita Anatolievna Zakharova
Format: Article
Language:Russian
Published: Tomsk Polytechnic University 2017-09-01
Series:Известия Томского политехнического университета: Инжиниринг георесурсов
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Online Access:http://izvestiya-tpu.ru/archive/article/view/1710
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author Andrey Vladimirovich Mostovshchikov
Aleksandr Petrovich Ilyin
Margarita Anatolievna Zakharova
author_facet Andrey Vladimirovich Mostovshchikov
Aleksandr Petrovich Ilyin
Margarita Anatolievna Zakharova
author_sort Andrey Vladimirovich Mostovshchikov
collection DOAJ
description When transforming metals into nanodispersed state nanopowders acquire new properties, including the storage of energy by nonopowders. The increasing interest to aluminum powders and nanopowders is caused by their application as a high-energy additive in rocket fuels and pyrotechnic mixtures. Thus, the investigation of energy storage in Al nanopowder is of great importance. Besides, it is not easy to determine the amount of stored energy in Al nanopowder. The authors have used the aluminum nanopowder obtained by electrical explosion of aluminum wire in argon, using UDP-4D installation developed in Tomsk Polytechnic University. The main aim of the study is to asses experimentally the value of energy, stored in the form of stress-strain state of the crystal lattice of Al nanopowder and to compare the obtained value to a general value of stored energy. The methods used in the study are the X-Ray diffraction, differential thermal analysis. It was ascertained that the crystal lattice is in stressed state in air-passivated electroexplosive aluminum nanopowder. The modified Lorenz function was used as a profile function; crystalline microdistortions, calculated by the approximation technique, amount to 8,66 x 10[-4]. The value of energy, stored in the stress-strain state of the crystal lattice of electroexplosive aluminum nanopowder, is 0,385 J/g, while the value of stored energy, determined by means of differential thermal analysis, is 348 J/g. Thus, the most feasible mechanism of storing significant energy in aluminum nanopowder is the formation of more energy-saturated structures in solid (the formation of a double electric layer with pseudocapacity during passivation).
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spelling doaj.art-5c342a9ddcce41728dfa11072134186a2023-06-03T21:11:44ZrusTomsk Polytechnic UniversityИзвестия Томского политехнического университета: Инжиниринг георесурсов2500-10192413-18302017-09-013272Energy storage in aluminum nanopowder in stress-strain state of crystal latticeAndrey Vladimirovich MostovshchikovAleksandr Petrovich IlyinMargarita Anatolievna ZakharovaWhen transforming metals into nanodispersed state nanopowders acquire new properties, including the storage of energy by nonopowders. The increasing interest to aluminum powders and nanopowders is caused by their application as a high-energy additive in rocket fuels and pyrotechnic mixtures. Thus, the investigation of energy storage in Al nanopowder is of great importance. Besides, it is not easy to determine the amount of stored energy in Al nanopowder. The authors have used the aluminum nanopowder obtained by electrical explosion of aluminum wire in argon, using UDP-4D installation developed in Tomsk Polytechnic University. The main aim of the study is to asses experimentally the value of energy, stored in the form of stress-strain state of the crystal lattice of Al nanopowder and to compare the obtained value to a general value of stored energy. The methods used in the study are the X-Ray diffraction, differential thermal analysis. It was ascertained that the crystal lattice is in stressed state in air-passivated electroexplosive aluminum nanopowder. The modified Lorenz function was used as a profile function; crystalline microdistortions, calculated by the approximation technique, amount to 8,66 x 10[-4]. The value of energy, stored in the stress-strain state of the crystal lattice of electroexplosive aluminum nanopowder, is 0,385 J/g, while the value of stored energy, determined by means of differential thermal analysis, is 348 J/g. Thus, the most feasible mechanism of storing significant energy in aluminum nanopowder is the formation of more energy-saturated structures in solid (the formation of a double electric layer with pseudocapacity during passivation).http://izvestiya-tpu.ru/archive/article/view/1710aluminum nanopowderstored energyX-Ray diffractiondouble electric layermicrostrainstress-strain state
spellingShingle Andrey Vladimirovich Mostovshchikov
Aleksandr Petrovich Ilyin
Margarita Anatolievna Zakharova
Energy storage in aluminum nanopowder in stress-strain state of crystal lattice
Известия Томского политехнического университета: Инжиниринг георесурсов
aluminum nanopowder
stored energy
X-Ray diffraction
double electric layer
microstrain
stress-strain state
title Energy storage in aluminum nanopowder in stress-strain state of crystal lattice
title_full Energy storage in aluminum nanopowder in stress-strain state of crystal lattice
title_fullStr Energy storage in aluminum nanopowder in stress-strain state of crystal lattice
title_full_unstemmed Energy storage in aluminum nanopowder in stress-strain state of crystal lattice
title_short Energy storage in aluminum nanopowder in stress-strain state of crystal lattice
title_sort energy storage in aluminum nanopowder in stress strain state of crystal lattice
topic aluminum nanopowder
stored energy
X-Ray diffraction
double electric layer
microstrain
stress-strain state
url http://izvestiya-tpu.ru/archive/article/view/1710
work_keys_str_mv AT andreyvladimirovichmostovshchikov energystorageinaluminumnanopowderinstressstrainstateofcrystallattice
AT aleksandrpetrovichilyin energystorageinaluminumnanopowderinstressstrainstateofcrystallattice
AT margaritaanatolievnazakharova energystorageinaluminumnanopowderinstressstrainstateofcrystallattice