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首页> 外文期刊>Physics of plasmas >An alternative to the plasma emission model: Particle-in-cell, self-consistent electromagnetic wave emission simulations of solar journal article III radio bursts
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An alternative to the plasma emission model: Particle-in-cell, self-consistent electromagnetic wave emission simulations of solar journal article III radio bursts

机译:等离子体发射模型的替代方法:太阳学报第三期无线电脉冲群的单元内自洽电磁波发射模拟

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High-resolution (sub-Debye length grid size and 10 000 particle species per cell), 1.5D particlein- cell, relativistic, fully electromagnetic simulations are used to model electromagnetic wave emission generation in the context of solar type III radio bursts. The model studies generation of electromagnetic waves by a super-thermal, hot beam of electrons injected into a plasma thread that contains uniform longitudinal magnetic field and a parabolic density gradient. In effect, a single magnetic line connecting Sun to Earth is considered, for which five cases are studied. (i) We find that the physical system without a beam is stable and only low amplitude level electromagnetic drift waves (noise) are excited. (ii) The beam injection direction is controlled by setting either longitudinal or oblique electron initial drift speed, i.e., by setting the beam pitch angle (the angle between the beam velocity vector and the direction of background magnetic field). In the case of zero pitch angle, i.e., when ~→_(Vb). ~→_E⊥=0, the beam excites only electrostatic, standing waves, oscillating at local plasma frequency, in the beam injection spatial location, and only low level electromagnetic drift wave noise is also generated. (iii) In the case of oblique beam pitch angles, i.e., when ~→_(Vb). ~→_E⊥≠0, again electrostatic waves with same properties are excited. However, now the beam also generates the electromagnetic waves with the properties commensurate to type III radio bursts. The latter is evidenced by the wavelet analysis of transverse electric field component, which shows that as the beam moves to the regions of lower density and hence lower plasma frequency, frequency of the electromagnetic waves drops accordingly. (iv) When the density gradient is removed, an electron beam with an oblique pitch angle still generates the electromagnetic radiation. However, in the latter case no frequency decrease is seen. (v) Since in most of the presented results, the ratio of electron plasma and cyclotron frequencies is close to unity near the beam injection location, in order to prove that the electromagnetic emission, generated by the non-zero pitch angle beam, oscillates at the plasma frequency, we also consider a case when the magnetic field (and the cyclotron frequency) is ten times smaller. Within the limitations of the model, the study presents the first attempt to produce synthetic (simulated) dynamical spectrum of the type III radio bursts in the fully kinetic plasma model. The latter is based on 1.5D non-zero pitch angle (non-gyrotropic) electron beam that is an alternative to the plasma emission classical mechanism for which two spatial dimensions are needed.
机译:高分辨率(亚德拜长度网格尺寸和每个单元1万个粒子种类),1.5D粒子单元,相对论,完全电磁仿真可用于模拟太阳类型III无线电脉冲串中的电磁波发射产生。该模型研究通过注入等离子线的超高温热电子束产生的电磁波,该等离子线包含均匀的纵向磁场和抛物线密度梯度。实际上,只考虑了一条将太阳连接到地球的磁力线,为此研究了五种情况。 (i)我们发现没有光束的物理系统是稳定的,只有低振幅水平的电磁漂移波(噪声)被激发。 (ii)通过设定纵向或倾斜的电子初始漂移速度,即通过设定电子束俯仰角(电子束速度矢量与背景磁场方向之间的角度)来控制电子束注入方向。在俯仰角为零的情况下,即〜→_(Vb)时。 〜→_E⊥= 0,在射束注入空间位置,射束仅激发以局部等离子体频率振荡的静电驻波,并且仅产生低电平电磁漂移波噪声。 (iii)在倾斜的光束俯仰角的情况下,即当〜→_(Vb)时。 〜→_E⊥≠0,再次激发具有相同特性的静电波。但是,现在,光束还产生具有与III型无线电脉冲串相当的特性的电磁波。后者通过横向电场分量的小波分析得到证明,该分析表明,当电子束移至密度较低的区域,因此等离子体频率较低时,电磁波的频率也会相应下降。 (iv)当去除密度梯度时,具有倾斜俯仰角的电子束仍然产生电磁辐射。但是,在后一种情况下,看不到频率降低。 (v)由于在大多数给出的结果中,电子等离子体和回旋加速器频率之比在电子束注入位置附近接近1,以证明由非零俯仰角电子束产生的电磁辐射在对于等离子频率,我们还考虑了磁场(和回旋加速器频率)小十倍的情况。在模型的限制范围内,该研究提出了在全动力学等离子体模型中首次尝试产生III型无线电脉冲的合成(模拟)动力学谱的尝试。后者基于1.5D非零俯仰角(非回旋)电子束,是需要两个空间尺寸的等离子发射经典机制的替代方案。

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