000 03503nlm1a2200505 4500
001 653475
005 20231030041221.0
035 _a(RuTPU)RU\TPU\network\18916
035 _aRU\TPU\network\18914
090 _a653475
100 _a20170303a2002 k y0engy50 ba
101 0 _aeng
135 _adrcn ---uucaa
181 0 _ai
182 0 _ab
200 1 _aDeuterium liner and multiparametric studies of the formation of an inverse Z-pinch
_fB. M. Bystritski [et al.]
203 _aText
_celectronic
300 _aTitle screen
320 _a[References: p. 1105 (16 tit.)]
330 _aA method and results of measurements are presented of the ion energy distribution in a deuterium liner accelerated in the inverse Z-pinch, in which the plasma is accelerated electrodynamically from the liner axis. Knowledge of the deuteron energy distribution is of primary importance for the correct interpretation of the experimental results from the study of the dd-reaction in the range of infralow energies with the use of a liner plasma. Experiments were carried out in a high-current pulsed accelerator (I=950 kA, t=80 ns) at the Institute of High-Current Electronics of the Siberian Division of the Russian Academy of Sciences (Tomsk, Russia). In the initial state, the liner is a supersonic hollow deuterium jet 32 mm in diameter and 20 mm in length. The liner parameters were measured with the help of optical detectors of Ha and HЯ deuterium lines and magnetic probes arranged in a radial direction (along the direction the liner expansion). In addition, scintillation spectrometers and BF3 counters were used to measure the intensity of the neutron flux produced in the d + d ? 3He + n reaction. The results obtained by simultaneously analyzing the data from magnetic probes, optical detectors, and neutron detectors point to the possibility of using a rather simple method for measuring the parameters of the liner accelerated up to energies of 3–6 keV.
333 _aРежим доступа: по договору с организацией-держателем ресурса
461 _tTechnical Physics Letters
_d1975-
463 _tVol. 47, iss. 9
_v[P. 1098-1105]
_d2002
610 1 _aэлектронный ресурс
610 1 _aтруды учёных ТПУ
610 1 _aZ-пинч
610 1 _aплазма
610 1 _aэнергия
701 1 _aBystritski
_bB. M.
701 1 _aBystritsky
_bV. M.
701 1 _aWozniak
_bJ.
701 1 _aGrebenyuk
_bV. M.
701 1 _aGula
_bE.
701 1 _aDudkin
_bG. N.
701 1 _aMesyats
_bG. A.
_crussian physicist
_cacademican, vice-president of RAS
_cgraduate of Tomsk Polytechnic Institute
_f1936-
_gGennady Andreyevich
_2stltpush
_3(RuTPU)RU\TPU\pers\28088
701 1 _aNechaev
_bB. A.
_cphysicist
_cleading engineer of Tomsk Polytechnic University
_f1945-
_gBoris Aleksandrovich
_2stltpush
_3(RuTPU)RU\TPU\pers\34601
701 1 _aPadalko
_bV. N.
_cphysicist
_cLeading engineer of Tomsk Polytechnic University
_f1949-
_gVladimir Nikolaevich
_2stltpush
_3(RuTPU)RU\TPU\pers\32978
701 1 _aParzhitski
_bS. S.
701 1 _aPen’kov
_bF. M.
701 1 _aRatakhin
_bN. A.
_cphysicist
_cHead of the Department of Tomsk Polytechnic University, Doctor of physical and mathematical sciences
_f1950-
_gNikolay Aleksandrovich
_2stltpush
_3(RuTPU)RU\TPU\pers\36686
701 1 _aSorokin
_bS. A.
701 1 _aStolupin
_bV. A.
801 2 _aRU
_b63413507
_c20170414
_gRCR
856 4 _uhttp://dx.doi.org/10.1134/1.1508073
942 _cCF