Pulse operation mode of inertial electrostatic plasma confinement devices

被引:0
|
作者
Prokuratov I.A. [1 ]
Mikhailov Y.V. [1 ]
Andreev D.A. [1 ]
Golikov A.V. [1 ]
Lemeshko B.D. [1 ,2 ]
Maslennikov S.P. [1 ,2 ]
机构
[1] Dukhov Research Institute of Automatics (VNIIA), Shushevskaya 22, Moscow
[2] National Research Nuclear University MEPhI, Kashirskoe Shosse 31, Moscow
关键词
Fusion neutrons; IEC device; Inertial electrostatic plasma confinement; Neutron emission; Neutron source;
D O I
10.1016/j.anucene.2024.110520
中图分类号
学科分类号
摘要
The paper discusses the operation features of the inertial electrostatic plasma confinement (IEC) devices in the pulsed high voltage mode. The pulse operation mode offers significant advantages in IEC devices, which are associated with high discharge currents that are inaccessible for continuous operating modes. However, the implementation of such operating modes is associated with a number of physical limitations and technical difficulties. A stand with an IEC chamber powered by a high-voltage pulse transformer and a unit for gas preliminary ionization in the IEC chamber has been developed. In the chamber, ions are accelerated from a background glow discharge. A study of the burning background discharge in the IEC chamber, background discharge current Ipre influence on the duration of current and voltage pulses of the main discharge and the delay between them was carried out. The results of the neutron yield measuring in an IEC chamber operating in pulsed mode are presented at a charging voltage up to 105 kV, a discharge current amplitude of several tens of amperes, a preionization current of 8 mA, and a pulse repetition rate from single to 300 Hz. A stable neutron flux with an energy of 2.5 MeV at a level of 106 neutrons/s was experimentally obtained. © 2024 Elsevier Ltd
引用
收藏
相关论文
共 50 条
  • [1] Pulse operation mode of inertial electrostatic plasma confinement devices
    Prokuratov, I. A.
    Mikhailov, Yu. V.
    Andreev, D. A.
    Golikov, A. V.
    Lemeshko, B. D.
    Maslennikov, S. P.
    ANNALS OF NUCLEAR ENERGY, 2024, 203
  • [2] Pulse operation mode of inertial electrostatic plasma confinement devices
    Prokuratov, I. A.
    Mikhailov, Yu. V.
    Andreev, D. A.
    Golikov, A. V.
    Lemeshko, B. D.
    Maslennikov, S. P.
    ANNALS OF NUCLEAR ENERGY, 2024, 203
  • [3] Composition of the source region plasma in inertial electrostatic confinement devices
    Boris, D. R.
    Emmert, G. A.
    PHYSICS OF PLASMAS, 2008, 15 (08)
  • [4] ON THE INERTIAL-ELECTROSTATIC CONFINEMENT OF A PLASMA
    ELMORE, WC
    TUCK, JL
    WATSON, KM
    PHYSICS OF FLUIDS, 1959, 2 (03) : 239 - 246
  • [5] ELECTROSTATIC-INERTIAL PLASMA CONFINEMENT
    DOLAN, TJ
    VERDEYEN, JT
    CHERRING.BE
    MEEKER, DJ
    JOURNAL OF APPLIED PHYSICS, 1972, 43 (04) : 1590 - &
  • [6] Deuterium anions in inertial electrostatic confinement devices
    Boris, D. R.
    Alderson, E.
    Becerra, G.
    Donovan, D. C.
    Egle, B.
    Emmert, G. A.
    Garrison, L.
    Kulcinski, G. L.
    Santarius, J. F.
    Schuff, C.
    Zenobia, S. J.
    PHYSICAL REVIEW E, 2009, 80 (03):
  • [7] THEORY OF MULTIPLE POTENTIAL DISTRIBUTIONS IN SPHERICAL INERTIAL ELECTROSTATIC PLASMA CONFINEMENT DEVICES
    CHERRINGTON, BE
    VERDEYEN, JT
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1976, 21 (09): : 1162 - 1162
  • [8] Evidence for surface fusion in inertial electrostatic confinement devices
    Bowden-Reid, Richard
    Khachan, Joe
    Wulfkuehler, Jan-Philipp
    Tajmar, Martin
    PHYSICS OF PLASMAS, 2018, 25 (11)
  • [9] Engineering issues of gridded inertial electrostatic confinement devices
    Chacon, L
    DeMora, JM
    Miley, GH
    17TH IEEE/NPSS SYMPOSIUM ON FUSION ENGINEERING, VOLS 1 AND 2, 1998, : 737 - 740
  • [10] Pulsed operation of spherical inertial-electrostatic confinement device
    Gu, Y
    Williams, M
    Stubbers, R
    Miley, G
    FUSION TECHNOLOGY, 1996, 30 (03): : 1342 - 1346