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A principle of charged particle trapping by RF electromagnetic field in the spherical cavity

机译:球形腔中射频电磁场捕获带电粒子的原理

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A new principle of particle trapping in the simple spherical cavity using both electric and magnetic components of radiofrequency electromagnetic field is proposed. The electric component of H_(120) oscillating mode drives the fast particle oscillations, while the magnetic component synchronously bends the trajectories to the cavity center. A specially developed theory of particle stability predicts dense and energetic electron cluster in the trap. Numerical simulations of particle dynamics in the complete electromagnetic field taking into account both space charge and particle-induced magnetic field are in good agreement with the analytic results, giving a density of 2.6* 10~(10) electrons/cm~3 and an average kinetic energy of around 30 keV at an operating frequency of 3 GHz. Being used at lower frequency, spherical cavity can trap protons and heavier ions too, but with lower density and kinetic energy.
机译:提出了利用射频电磁场的电磁成分将粒子捕获在简单球体内的新原理。 H_(120)振荡模式的电分量驱动快速的粒子振荡,而磁分量同步地将轨迹弯曲到腔体中心。专门开发的粒子稳定性理论可预测陷阱中的高能电子簇。同时考虑了空间电荷和粒子感应磁场的全电磁场中粒子动力学的数值模拟与分析结果非常吻合,给出的密度为2.6 * 10〜(10)电子/ cm〜3,平均在3 GHz的工作频率下约为30 keV的动能。在较低频率下使用时,球形空腔也可以捕获质子和较重的离子,但具有较低的密度和动能。

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