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Energy confinement for a relativistic magnetic flux tube in the ergosphere of a Kerr black hole

机译:克尔黑洞活动圈中相对论磁通管的能量限制

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摘要

In the MHD description of plasma phenomena the concept of magnetic field lines frozen into the plasma turns out to be very useful. We present here a method of introducing Lagrangian coordinates into relativistic MHD equations in general relativity, which enables a convenient mathematical formulation for the behaviour of flux tubes. With the introduction of these Lagrangian, so--called ``frozen--in'' coordinates, the relativistic MHD equations reduce to a set of nonlinear 1D string equations, and the plasma may therefore be regarded as a gas of nonlinear strings corresponding to flux tubes. Numerical simulation shows that if such a tube/string falls into a Kerr black hole, then the leading portion loses angular momentum and energy as the string brakes, and to compensate for this loss, momentum and energy is radiated to infinity to conserve energy and momentum for the tube. Inside the ergosphere the energy of the leading part turns out to be negative after some time, and the rest of the tube then gets energy from the hole. In our simulations most of the compensated positive energy is also localized inside the ergosphere because the inward speed of the plasma is approximately equal to the velocity of the MHD wave which transports energy outside. Therefore, an additional physical process has to be included which can remove energy from the ergophere. Magnetic reconnection seems fills this role releasing Maxwellian stresses and producing a relativistic jet.
机译:在对等离子现象的MHD描述中,冻结成等离子的磁场线的概念非常有用。我们在这里介绍一种在广义相对论中将拉格朗日坐标引入相对论性MHD方程的方法,该方法为通量管的行为提供了方便的数学公式。随着这些拉格朗日坐标(所谓的``冻结''坐标)的引入,相对论MHD方程简化为一组非线性一维弦方程,因此等离子体可被视为对应于助焊剂管。数值模拟表明,如果这样的管/弦落入Kerr黑洞,则在弦制动时,前导部分会损失角动量和能量,并且为了补偿这种损失,动量和能量会辐射至无穷远以节省能量和动量对于管。一段时间后,在人体工程圈内部,前导部分的能量变为负能量,然后其余的电子管从孔中获取能量。在我们的模拟中,大多数补偿后的正能量也位于人体运动圈内部,因为等离子体的向内速度大约等于将能量传输到外部的MHD波的速度。因此,必须包括一个附加的物理过程,该过程可以从遍历中去除能量。磁力重新连接似乎填补了这一角色,释放了麦克斯韦应力并产生了相对论射流。

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