Goodbred Matthew, Liu Yi-Hsin
Dartmouth College, Hanover, New Hampshire 03755, USA.
Phys Rev Lett. 2022 Dec 23;129(26):265101. doi: 10.1103/PhysRevLett.129.265101.
We develop a first-principles model for the relativistic magnetic reconnection rate in strongly magnetized pair plasmas. By considering the energy budget and required current density near the x-line, we analytically show that in the magnetically dominated relativistic regime, the x-line thermal pressure is significantly lower than the upstream magnetic pressure due to the extreme energy needed to sustain the current density, consistent with kinetic simulations. This causes the upstream magnetic field lines to collapse in, producing the open outflow geometry which enables fast reconnection. The result is important for understanding a wide range of extreme astrophysical environments, where fast reconnection has been evoked to explain observations such as transient flares and nonthermal particle signatures.
我们针对强磁化电子对等离子体中的相对论磁重联率建立了一个第一性原理模型。通过考虑X线附近的能量收支和所需的电流密度,我们通过分析表明,在磁主导的相对论 regime中,由于维持电流密度所需的极端能量,X线热压力显著低于上游磁压力,这与动力学模拟结果一致。这导致上游磁力线向内坍塌,产生开放的流出几何结构,从而实现快速重联。该结果对于理解广泛的极端天体物理环境非常重要,在这些环境中,快速重联已被用来解释诸如瞬态耀斑和非热粒子特征等观测现象。