000 | 03045nla2a2200433 4500 | ||
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001 | 639142 | ||
005 | 20231030040309.0 | ||
035 | _a(RuTPU)RU\TPU\network\3546 | ||
035 | _aRU\TPU\network\3535 | ||
090 | _a639142 | ||
100 | _a20150224a2014 k y0engy50 ba | ||
101 | 0 | _aeng | |
105 | _aa z 101zy | ||
135 | _adrcn ---uucaa | ||
181 | 0 | _ai | |
182 | 0 | _ab | |
200 | 1 |
_aOptimization of the vacuum insulator stack of the MIG pulsed power generator _fG. Khamzakhan, S. A. Chaikovsky |
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203 |
_aText _celectronic |
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300 | _aTitle screen | ||
320 | _a[References: 16 tit.] | ||
330 | _aThe MIG multi-purpose pulsed power machine is intended to generate voltage pulses of amplitude up to 6 MV with electron-beam loads and current pulses of amplitude up to 2.5 MA and rise time '00 ns with inductive loads like Z pinches. The MIG generator is capable of producing a peak power of 2.5 TW. Its water transmission line is separated from the vacuum line by an insulator stack. In the existing design of the insulator, some malfunctions have been detected. The most serious problems revealed are the vacuum surface flashover occurring before the current peaks and the deep discharge traces on the water-polyethylene interface of the two rings placed closer to the ground. A comprehensive numerical simulation of the electric field distribution in the insulator of the MIG generator has been performed. It has been found that the chief drawbacks are nonuniform voltage grading across the insulator rings and significant enhancement of the electric field at anode triple junctions. An improved design of the insulator stack has been developed. It is expected that the proposed modification that requires no rearrangement of either the water line or the load-containing vacuum chamber will provide higher electric strength of the insulator. | ||
333 | _aРежим доступа: по договору с организацией-держателем ресурса | ||
461 | 1 |
_0(RuTPU)RU\TPU\network\3526 _tJournal of Physics: Conference Series |
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463 | 0 |
_0(RuTPU)RU\TPU\network\3527 _tVol. 552 : International Congress on Energy Fluxes and Radiation Effects (EFRE-2014), 21–26 September 2014, Tomsk, Russia _v[012016, 6 p.] _d2014 |
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610 | 1 | _aэлектронный ресурс | |
610 | 1 | _aтруды учёных ТПУ | |
610 | 1 | _aоптимизация | |
610 | 1 | _aизоляторы | |
610 | 1 | _aимпульсные генераторы | |
610 | 1 | _aгенерация | |
610 | 1 | _aэлектрические поля | |
610 | 1 | _aэлектрическая прочность | |
610 | 1 | _aдиэлектрики | |
700 | 1 |
_aKhamzakhan _bG. |
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701 | 1 |
_aChaikovsky _bS. A. |
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712 | 0 | 2 |
_aНациональный исследовательский Томский политехнический университет (ТПУ) _c(2009- ) _2stltpush _3(RuTPU)RU\TPU\col\15902 |
801 | 2 |
_aRU _b63413507 _c20161227 _gRCR |
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856 | 4 | _uhttp://iopscience.iop.org/1742-6596/552/1/012016 | |
942 | _cCF |