论文标题

磁重新连接和热平衡

Magnetic reconnection and thermal equilibration

论文作者

Boozer, Allen

论文摘要

当磁场被迫在时间尺度上进化$τ_{ev} $,如脚上的动作,在tokamaks中驱动太阳能电晕或非轴对称不稳定性时,磁场线在拓扑上进行大规模变化,以一个时间尺度大约长度比$τ_{ev_ {ev_ {ev} $。但是,允许此类更改的物理学在时间尺度上运行八个或多个数量级。空气中发生了类似的现象。温度平衡发生在时间尺度上,大约比空气穿过房间的时间级大约要长的数量级,尽管允许温度平衡的物理机制大约要比$τ_{ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_ {ev_)$。 Lagrangian坐标的使用允许解决基本方程式,并解释了两个现象。传统的磁重新连接理论的范式和推定是如此根深蒂固,以至于使用拉格朗日坐标从分析中获得的理解在很大程度上被忽略了。热平衡和磁重新连接的理论并行开发,以帮助读者了解使用拉格朗日坐标的分析的重要性和含义。

When a magnetic field is forced to evolve on a time scale $τ_{ev}$, as by footpoint motions driving the solar corona or non-axisymmetric instabilities in tokamaks, the magnetic field lines undergo large-scale changes in topology on a time scale approximately an order of magnitude longer than $τ_{ev}$. But, the physics that allows such changes operates on a time scale eight or more orders of magnitude slower. An analogous phenomenon occurs in air. Temperature equilibration occurs on a time scale approximately an order of magnitude longer than it takes air to cross a room, $τ_{ev}$, although the physical mechanism that allows temperature equilibration is approximately four orders of magnitude slower than $τ_{ev}$. The use of Lagrangian coordinates allows the fundamental equations to be solved and both phenomena explained. The paradigms and presumptions of traditional theories of magnetic reconnection are so ingrained that the understanding gained from analyses using Lagrangian coordinates has been largely ignored. The theories of thermal equilibration and magnetic reconnection are developed in parallel to help readers obtain an understanding of the importance and implications of analyses using Lagrangian coordinates.

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