论文标题

在电子束照射下电荷的膨胀岩颗粒的静电传输实验

Experiments on the Electrostatic Transport of Charged Anorthite Particles under Electron Beam Irradiation

论文作者

Gan, Hong, Zhang, Xiaoping, Li, Xiongyao, Jin, Hong, Xie, Lianghai, Zou, Yongliao

论文摘要

为了揭示次级电子发射对由微米大小的绝缘粉尘覆盖的表面充电性能和这些颗粒的迁移特性的影响,我们首次使用了激光多普勒方法来测量具有350 ev的入射能量的电子束辐照的电容量的微小型阳极颗粒的直径和速度。在这里,膨胀石颗粒被视为月球雷果的代理。我们在实验上证实,尽管水平运输发生,但河根颗粒的垂直运输始终是主导的。在我们的实验中,在测量点,观察到一些河石颗粒的垂直速度最高为9.74 m〜s $^{ - 1} $。垂直速度的上边界$ v _ {\ rm {z}} $的这些高速阳极颗粒受到其直径$ d $的约束,即$ v _ {\ rm {z}}}^2 $ linearmilly依赖于$ d^{ - 2} $。这些速度直径数据对灰尘充电和运输机制提供了强大的限制。共享电荷模型无法解释观察到的速度直径数据。隔离电荷模型和修补电荷模型似乎都需要$ -350至$ - $ 78 V的大灰尘充电潜力来复制观察到的数据。尘土表面的微结构可能在产生这种充电潜力并理解我们实验中观察到的脉冲迁移现象方面起重要作用。本文中提出的结果和分析有助于理解各种血浆条件下无空体的灰尘充电和静电传输机制,例如月球和小行星。

To reveal the effect of secondary electron emission on the charging properties of a surface covered by micron-sized insulating dust particles and the migration characteristics of these particles, for the first time, we used a laser Doppler method to measure the diameters and velocities of micron-sized anorthite particles under electron beam irradiation with an incident energy of 350 eV. Here, anorthite particles are being treated as a proxy for lunar regolith. We experimentally confirm that the vertical transport of anorthite particles is always dominant, although the horizontal transport occurs. In our experiments, some anorthite particles were observed to have large vertical velocities up to 9.74 m~s$^{-1}$ at the measurement point. The upper boundary of the vertical velocities $V_{\rm{z}}$ of these high-speed anorthite particles are well constrained by its diameter $D$, that is, $V_{\rm{z}}^2$ linearly depends on $D^{-2}$. These velocity-diameter data provide strong constraints on the dust charging and transportation mechanisms. The shared charge model could not explain the observed velocity-diameter data. Both the isolated charge model and patched charge model appear to require a large dust charging potential of $-$350 to $-$78 V to reproduce the observed data. The micro-structures of the dusty surface may play an important role in producing this charging potential and in understanding the pulse migration phenomenon observed in our experiment. The presented results and analysis in this paper are helpful for understanding the dust charging and electrostatic transport mechanisms in airless celestial bodies such as the Moon and asteroids in various plasma conditions.

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