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Generation of magnetic field and electrostatic shock wave driven by counterstreaming pair plasmas

机译:逆流对等离子体驱动产生的磁场和静电冲击波

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By using a two-dimensional (2D) relativistic fully electromagnetic particle-in-cell code, the interaction process of counterstreaming pair (electron-positron) plasmas is investigated. The counterstreaming plasmas become unstable against the collisionless electromagnetic counterstreaming instability, similar to the Weibel instability. In the linear phase, magnetic and electric fields with the scale of skin depth size are generated through the electromagnetic counterstreaming instability. The behavior of plasma in the nonlinear phase is also made clear. The small-scale magnetic fields coalesce with each other, merging through the inverse cascade process which occurs characteristically in 2D dynamics, and change into larger unit. The large-scale magnetic fields propagate more slowly than the initial plasma flow as a low-frequency wave. Behind the magnetic fields, plasmas are isotropically heated by the mixing of counterstreaming plasmas. On the other hand, the electric fields propagate the same as the initial plasma flow. Ahead of the generated magnetic fields, the electric field component along the stream is amplified through the electrostatic counterstreaming instability and the electrostatic shock waves are formed. High-energy particles are also produced from the electrostatic shocks. These simulation results may be applied to the synchrotron gamma-ray burst model. (C) 2003 American Institute of Physics. [References: 11]
机译:通过使用二维(2D)相对论完全电磁粒子编码,研究了逆流对(电子-正电子)等离子体的相互作用过程。逆流等离子体在对抗无碰撞电磁逆流不稳定性方面变得不稳定,类似于Weibel不稳定。在线性阶段,通过电磁逆流不稳定性产生了与皮肤深度大小成比例的磁场和电场。等离子体在非线性相中的行为也很清楚。小规模的磁场相互融合,通过二维动力学中特有的逆级联过程合并,并变为更大的单位。大型磁场作为低频波的传播比初始等离子体流的传播更慢。在磁场的背后,通过逆流等离子体的混合各向同性地加热等离子体。另一方面,电场的传播与初始等离子体流相同。在产生的磁场之前,沿着流的电场分量通过静电逆流不稳定性而被放大,并形成静电冲击波。静电冲击也会产生高能粒子。这些仿真结果可以应用于同步加速器伽马射线突发模型。 (C)2003美国物理研究所。 [参考:11]

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