Proton beam-driven instabilities in an inclined magnetic field

被引:0
|
作者
Khoshbinfar, Soheil [1 ]
Khalili, Masome [1 ]
机构
[1] Univ Guilan, Fac Sci, Phys Dept, Rasht 413351914, Iran
关键词
Proton fast ignition; Two-stream instability; Filamentation instability; Oblique instability; Inclined magnetic field; Cold fluid approximation; FAST IGNITION; 2-STREAM INSTABILITY; ION-BEAMS; FILAMENTATION; PLASMAS; GAIN;
D O I
10.1016/j.nima.2022.167269
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
In this paper, the electrostatic and electromagnetic instabilities of a magnetized proton-DT plasma relevant to the fast ignition scheme of inertial fusion were examined. The magnetic field and proton beam define a plane and the magnetic field vector has the orientation angle of theta. The dispersion relation of two-stream and filamentation modes was first derived using the conservation, Euler, and Maxwell equations. Then, the more general case describing the wave propagation in an arbitrary direction in the two-dimensional case was derived symbolically. It is demonstrated that in a magnetized beam-plasma system, the two-stream instability depicts two separated growth curves, one larger than the other and there exists a stable frequency band between them. This zone will grow as the magnetic field inclination angle increases such that the smaller two-stream peak vanishes at the limiting angle of theta ->pi/2. The splitting in the growth rate curve becomes obvious at magnetic field parameter Omega(e)>0.5. The pure filamentation instability of the beam-plasma is about two orders of magnitude smaller than the two-stream instability and it just contributes to magnetic field orientation theta = 0. In a two-dimensional case, the mixed electrostatic/electromagnetic instabilities contribute to the final growth rate curve producing an X-like shape. The interface point of two growth curves is characterized by coordinate (similar to 1.0, tan(theta)) in the zx-plane.
引用
收藏
页数:9
相关论文
共 50 条
  • [1] BEAM-DRIVEN INSTABILITIES IN A FIELD-REVERSED ION LAYER
    GERVER, MJ
    SUDAN, RN
    PHYSICS OF FLUIDS, 1979, 22 (04) : 686 - 700
  • [2] Role of Dust Grains in Beam-Driven Instabilities
    Sharma, S. C.
    VedPrakash
    Gupta, Ruby
    MATERIALS TODAY-PROCEEDINGS, 2018, 5 (07) : 15466 - 15472
  • [3] THE NONLINEAR SATURATION OF BEAM-DRIVEN INSTABILITIES - THEORY AND EXPERIMENT
    HEIDBRINK, WW
    DUONG, HH
    MANSON, J
    WILFRID, E
    OBERMAN, C
    STRAIT, EJ
    PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1993, 5 (07): : 2176 - 2186
  • [4] MEASUREMENTS OF BEAM-ION CONFINEMENT DURING TANGENTIAL BEAM-DRIVEN INSTABILITIES IN A BEAM TOKAMAK EXPERIMENT
    HEIDBRINK, WW
    KAITA, R
    TAKAHASHI, H
    GAMMEL, G
    HAMMETT, GW
    KAYE, S
    PHYSICS OF FLUIDS, 1987, 30 (06) : 1839 - 1852
  • [5] Optical Characterization of Beam-Driven Plasma Wake Field Accelerators
    Zgadzaj, Rafal
    Li, Zhengyan
    Downer, M. C.
    Gessner, Spencer
    Corde, Sebastien
    Litos, Mike
    Clarke, Christine
    Schmeltz, Margaux
    Allen, James
    Green, Selina
    Hogan, Mark
    Yakimenko, Vitaly
    ADVANCED ACCELERATOR CONCEPTS, (AAC 2014), 2016, 1777
  • [6] Relativistic electron beam driven instabilities in the presence of an arbitrarily oriented magnetic field
    Bret, A.
    Dieckmann, M. E.
    PHYSICS OF PLASMAS, 2008, 15 (06)
  • [7] THE NONLINEAR SATURATION OF BEAM-DRIVEN INSTABILITIES - IRREGULAR BURSTING IN THE DIII-D TOKAMAK
    HEIDBRINK, WW
    DANIELSON, JR
    PHYSICS OF PLASMAS, 1994, 1 (12) : 4120 - 4123
  • [8] Wave dispersion in pulsar plasma. Part 3. Beam-driven instabilities
    Rafat, M. Z.
    Melrose, D. B.
    Mastrano, A.
    JOURNAL OF PLASMA PHYSICS, 2019, 85 (06)
  • [10] Nonlinear dynamics of a beam-driven magnetic plasma: Streaming or mass motion
    Mohanty, JN
    Naik, A
    PHYSICS OF PLASMAS, 1997, 4 (06) : 2146 - 2150