首页> 外文会议>Workshop on Non-Neutral Plasmas, Jul 30-Aug 2, 2001, San Diego, California >An Experiment to Transfer Angular Momentum from a Helical Low Energy Proton Beam to a Trapped Electron Plasma
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An Experiment to Transfer Angular Momentum from a Helical Low Energy Proton Beam to a Trapped Electron Plasma

机译:将角动量从螺旋形低能质子束转移到被困电子等离子体的实验

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As part of a continuing program of beam-plasma interaction studies, a low energy (2 -10 keV) proton beam will be injected on a helical trajectory into a trapped electron plasma in a 1.6 T cryogenic solenoid. The proton source is a conventional duoplasmatron, but operated well below its design extraction energy. Beam tests over the desired energy range have established a mode with submillimeter beam focus and currents of a fewμA. The beam will be transported into the high field, displaced, and then inflected by a sudden impulse onto an offset helical trajectory of low pitch. The electron plasma trapping potential will provide a fine pitch control and will serve as an analyzer of the residual longitudinal momentum (helix pitch). Previous experiments in this laboratory employing proton beams of high energy (50-300 MeV) in a storage ring have shown that an electron plasma absorbs angular momentum and energy from the proton beam - for example exhibiting expansion through beam misalignment which breaks the trap azimuthal symmetry. The expectation is that a lower energy beam, traversing the plasma at velocity well below that of a typical wave mode, may be more effective in torque transfer. A possibility may exist for significant plasma compression with judiciously chosen settings of the helix position offset relative to the plasma surface. Progress in design and implementation of the low energy injection scheme will be presented.
机译:作为束流-等离子体相互作用研究的持续程序的一部分,低能(2 -10 keV)质子束将以螺旋形轨迹注入到1.6 T低温螺线管中的俘获电子等离子体中。质子源是常规的双等离子体加速器,但在低于其设计提取能量的条件下运行。在所需能量范围内的光束测试已经建立了一种模式,其亚毫米光束聚焦和几μA的电流。光束将被传输到高场中,被移位,然后由于突然的脉冲而偏转到低螺距的偏置螺旋轨迹上。电子等离子体的俘获电势将提供精细的螺距控制,并将用作残余纵向动量(螺旋螺距)的分析器。在该实验室中,在存储环中使用高能(50-300 MeV)质子束的先前实验表明,电子等离子体吸收质子束的角动量和能量-例如,由于束错位而表现出膨胀,从而破坏了阱的方位对称性。 。期望以较低的能量束以远低于典型波模速度的速度穿过等离子体,在扭矩传递中可能更有效。通过适当选择相对于等离子体表面的螺旋位置偏移设置,可能存在明显的等离子体压缩。将介绍低能量注入方案的设计和实施进展。

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