论文标题

无碰撞磁化等离子体中球形灰尘的浮动潜力

Floating Potential Of Spherical Dust In Collisionless Magnetised Plasmas

论文作者

Simons, L. M., Coppins, M.

论文摘要

确定在等离子体中传导球的平衡电荷对于解释Langmuir探针测量,等离子体表面相互作用和灰尘颗粒行为很重要。为了确定在多种条件下导电球的力和充电行为的目的,已开发了磁化等离子体(DIMPL)中的蒙特卡洛密码灰尘(DIMPL),并针对先前的数值结果进行了标准。使用DIMPL研究了等温,无碰撞,无碰撞,氢等离子体在磁场强度和大小相对于Debye长度的函数的浮动电势,并与N体树代码(POT)和细胞测量中最近的粒子相比进行了新的结果。所有三个模拟的结果都是相似的,在适度的离子磁化参数下识别一个相对于离子电流减少的电子电流的范围很小。发现对磁场强度的函数的电势对小于debye长度的灰尘的灰尘尺寸相对不敏感。发现大灰尘的潜力不太依赖于适度的磁场强度的流速,而在存在强磁场的情况下,对于较小的灰尘而言,随着流速的增加而降低。开发了无碰撞等离子体中小尘埃作为磁场强度函数的半经验模型,该模型在高和低磁场限制下重现了预期电流和电位。

Determining the equilibrium charge of conducting spheres in plasmas is important for interpreting Langmuir probe measurements, plasma surface interactions and dust particle behaviour. The Monte Carlo code Dust in Magnetised Plasmas (DiMPl) has been developed for the purpose of determining the forces and charging behaviour of conducting spheroids under a variety of conditions and benchmarked against previous numerical results. The floating potentials of spheres in isothermal, collisionless, hydrogen plasmas as a function of magnetic field strength and size relative to Debye length are studied using DiMPl and compared with new results from the N-body tree code (pot) and recent particle in cell measurements. The results of all three simulations are similar, identifying a small range at modest ion magnetisation parameters over which the electron current is reduced relative to the ion current. The potential as a function of magnetic field strength is found to be relatively insensitive to dust size for dust smaller than the Debye length. The potential of large dust is found to depend less strongly on flow speed for modest magnetic field strengths and to decrease with increasing flow speed in the presence of strong magnetic fields for smaller dust. A semi-empirical model for the potential of small dust in a collisionless plasma as a function of magnetic field strength is developed which reproduces the expected currents and potentials in the high and low magnetic field limit.

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