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Infrared-image diagnostics of a low-energy, high-current electron beam transported through a plasma channel in a guide magnetic field

机译:在引导磁场中通过等离子通道传输的低能量,大电流电子束的红外图像诊断

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Results of studying the energy density distribution of a wide-area (up to 60 cm), low-energy (10–30 keV), high-current (up to 25 kA) pulsed (∼ 3 μs) electron beam transported through a plasma channel in a guide magnetic field are presented. Beam focusing and redistribution of the beam energy density in the cross section was performed with the use of hollow cylinders made of ferromagnetic materials (magnetic field concentrators) and placed behind the target made of 185-μm-thick stainless steel foil. Temperature distributions of the back side of the target, which correspond to the beam energy distribution, were measured by thermal imager. For this purpose, the concentrator was temporarily removed aside with the help of electromagnet during the pause (about 1 s) between a beam pulse and recording a thermogram. Thus, during the pause, the optical path became free for infrared radiation of the target. The experiments have confirmed improving the beam uniformity with the use of hollow magnetic field concentrators and agree good with computer calculations of magnetic flux density [1].
机译:研究通过等离子体传输的大面积(最大60 cm),低能量(10-30 keV),大电流(最大25 kA)脉冲(〜3μs)脉冲电子束的能量密度分布的结果给出了引导磁场中的通道。使用由铁磁材料制成的空心圆柱体(磁场集中器)进行光束聚焦并在截面中重新分配光束能量密度,并将其放置在由厚度为185μm的不锈钢箔制成的目标后面。用热成像仪测量靶背面的温度分布,该温度分布对应于光束能量分布。为此,在光束脉冲和记录温度记录图之间的暂停(约1 s)期间,借助电磁体将聚光器暂时移开。因此,在暂停期间,光路对于目标的红外辐射变得自由。实验已经证实,使用空心磁场集中器可以提高光束的均匀性,并且与磁通密度的计算机计算相吻合[1]。

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