Simulation of the Reactivity of Energy Materials in the Technosphere; IOP Conference Series: Earth and Environmental Science; Vol. 224 : Ecology and safety in the technosphere: current problems and solutions (EST 2018)
| Parent link: | IOP Conference Series: Earth and Environmental Science Vol. 224 : Ecology and safety in the technosphere: current problems and solutions (EST 2018).— 2019.— [012018, 7 p.] |
|---|---|
| Körperschaft: | |
| Weitere Verfasser: | , , , |
| Zusammenfassung: | Title screen Methods are proposed for regulating the reactivity of energetic materials that circulate in the technosphere and are not rarely the cause of fires and explosions, both during storage and during transportation. As man-made factors that influence the stability of these materials magnetic and temperature fields and mechanical effects were used. The magnetic field (in the range from 0.01 T to 0.3 T) was used to intensify chemical processes, both at the stage of crystal growth (by the example of silver azide) and together with mechanical action (from 105 Pa to 107 Pa) in the finished crystals. The action of the magnetic field and mechanical stress leads to the stimulation of microplasticity and macroplasticity processes, which are accompanied by a slow decomposition of the samples and subsequent destruction. It was established experimentally that a slight change in storage temperature, as compared to room temperature, accelerates the aging process of samples (range of positive temperatures up to + 30°C), or leads to loss of plasticity (range of negative temperatures down to -20°C) resulting in loss of performance and in loss of useful properties of energy materials. |
| Sprache: | Englisch |
| Veröffentlicht: |
2019
|
| Schlagworte: | |
| Online-Zugang: | http://dx.doi.org/10.1088/1755-1315/224/1/012018 http://earchive.tpu.ru/handle/11683/55429 |
| Format: | Elektronisch Buchkapitel |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=660527 |
MARC
| LEADER | 00000nla2a2200000 4500 | ||
|---|---|---|---|
| 001 | 660527 | ||
| 005 | 20231224125339.0 | ||
| 035 | |a (RuTPU)RU\TPU\network\29995 | ||
| 035 | |a RU\TPU\network\29994 | ||
| 090 | |a 660527 | ||
| 100 | |a 20190722d2019 k y0engy50 ba | ||
| 101 | 0 | |a eng | |
| 102 | |a GB | ||
| 105 | |a y z 100zy | ||
| 135 | |a vrgn ---uucaa | ||
| 181 | 0 | |a i | |
| 182 | 0 | |a b | |
| 200 | 1 | |a Simulation of the Reactivity of Energy Materials in the Technosphere |f A. P. Rodzevich [et al.] | |
| 203 | |a Text |c electronic | ||
| 300 | |a Title screen | ||
| 320 | |a [References: 10 tit.] | ||
| 330 | |a Methods are proposed for regulating the reactivity of energetic materials that circulate in the technosphere and are not rarely the cause of fires and explosions, both during storage and during transportation. As man-made factors that influence the stability of these materials magnetic and temperature fields and mechanical effects were used. The magnetic field (in the range from 0.01 T to 0.3 T) was used to intensify chemical processes, both at the stage of crystal growth (by the example of silver azide) and together with mechanical action (from 105 Pa to 107 Pa) in the finished crystals. The action of the magnetic field and mechanical stress leads to the stimulation of microplasticity and macroplasticity processes, which are accompanied by a slow decomposition of the samples and subsequent destruction. It was established experimentally that a slight change in storage temperature, as compared to room temperature, accelerates the aging process of samples (range of positive temperatures up to + 30°C), or leads to loss of plasticity (range of negative temperatures down to -20°C) resulting in loss of performance and in loss of useful properties of energy materials. | ||
| 461 | 1 | |0 (RuTPU)RU\TPU\network\2499 |t IOP Conference Series: Earth and Environmental Science | |
| 463 | 1 | |0 (RuTPU)RU\TPU\network\29410 |t Vol. 224 : Ecology and safety in the technosphere: current problems and solutions (EST 2018) |o All-Russian research-to-practice conference, 22–24 November 2018, Yurga, Russian Federation |v [012018, 7 p.] |d 2019 | |
| 610 | 1 | |a электронный ресурс | |
| 610 | 1 | |a труды учёных ТПУ | |
| 610 | 1 | |a моделирование | |
| 610 | 1 | |a реактивность | |
| 610 | 1 | |a энергетические материалы | |
| 610 | 1 | |a техносфера | |
| 610 | 1 | |a техногенные факторы | |
| 610 | 1 | |a магнитные поля | |
| 610 | 1 | |a механические воздействия | |
| 610 | 1 | |a пластичность | |
| 701 | 1 | |a Rodzevich |b A. P. |c specialist in the field of mechanical engineering |c Associate Professor of Yurga technological Institute of Tomsk Polytechnic University, candidate of physical and mathematical sciences |f 1967- |g Aleksandr Pavlovich |3 (RuTPU)RU\TPU\pers\34525 |9 17906 | |
| 701 | 1 | |a Kuzmina |b L. V. | |
| 701 | 1 | |a Gazenaur |b E. G. | |
| 701 | 1 | |a Krasheninin |b V. I. | |
| 712 | 0 | 2 | |a Национальный исследовательский Томский политехнический университет |b Юргинский технологический институт (филиал) |b Отделение промышленных технологий |3 (RuTPU)RU\TPU\col\24717 |
| 801 | 1 | |a RU |b 63413507 |c 20150101 |g RCR | |
| 801 | 2 | |a RU |b 63413507 |c 20190807 |g RCR | |
| 856 | 4 | |u http://dx.doi.org/10.1088/1755-1315/224/1/012018 | |
| 856 | 4 | |u http://earchive.tpu.ru/handle/11683/55429 | |
| 942 | |c CF | ||