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Dominant roles of pressure tensors in collisionless magnetic reconnection without a guide field

机译:压力张量在无导向磁场的无碰撞磁连接中的主要作用

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The dominant roles of pressure tensors in collisionless magnetic reconnection are demonstrated during a steady state of two-dimensional collisionless driven reconnection without any guide field by means of full-particle simulations. The pressure tensors in the momentum equations of ions and of electrons play two crucial roles in the collisionless magnetic reconnection. One role is the gyroviscous cancellation which suppresses the violation of frozen-in condition due to the inertia term. This cancellation causes ions to be tied to the magnetic field within the ion skin depth. The gyroviscous cancellation of electrons is also observed. The other role is a strong violation of the frozen-in condition due to non-gyrotropic pressure. The strong violation of the ion frozen-in condition forms the ion-dissipation region where the collisionless magnetic reconnection occurs. The strong violation of the electron frozen-in condition generates the reconnection electric field at the reconnection point.
机译:通过全粒子模拟,在没有任何引导场的二维无碰撞驱动重连接的稳定状态下,证明了张量在无碰撞磁重连接中的主要作用。离子和电子的动量方程中的压力张量在无碰撞磁重连接中起两个关键作用。一种作用是陀螺粘度消除,它抑制了由于惯性项引起的冻结状态的违反。这种消除导致离子被束缚在离子趋肤深度内的磁场。还观察到电子的陀螺粘度消除。另一个作用是由于非回旋压力而严重违反了冻结状态。对离子冻结条件的强烈违反形成了发生无碰撞磁重连接的离子耗散区域。强烈违反电子冻结条件会在重新连接点产生重新连接电场。

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