论文标题
可变伽马射线脉冲星的重复状态变化,PSR J2021+4026
Repeated state change of variable gamma-ray pulsar, PSR J2021+4026
论文作者
论文摘要
PSR J2021+4026是一种射射电量 - 射线脉冲星,也是第一个显示伽马射线发射和旋转速率状态变化的脉冲星。 PSR J2021+4026的状态变化首次在2011年10月观察到,在该状态下,PULSAR将状态从高γ-射线通量/低自旋速率状态转变为低伽马射线/高γ射线/高旋转率ST \ Ate。 2014年12月,PSR J2021+4026在2011年州变化之前在几个月的时间表变化之前就回收了该州。我们报告说,伽马射线通量的长期演变和时机行为表明PSR J2021+4026在2月1日接近2018年的状态,并进入了新的低伽马射线/高旋转速率状态。在2018年状态变化时,平均通量从$(1.29 \ pm 0.01)\ times 10^{ - 6} {\ rm cts〜cm^{ - 2} s^{ - 1}}} $降至$(1.12 \ pm 0.01) cts〜cm^{ - 2} s^{ - 1 \}} $,其行为与2011年事件的情况相似。自2018年州变化以来,新州的旋转率上升了$ \ sim 3 \%$。 GEV频段中脉冲轮廓和光谱的形状也发生了变化,它们与2011年状态变化的行为一致。我们的结果可能表明,PSR J2021+4026在不同状态之间进行了几年的时间范围,例如某些无线电脉冲星(例如PSR〜B1828-11)。 PSR J2021+4026将提供一个独特的机会来研究状态切换的机制。
PSR J2021+4026 is a radio-quiet gamma-ray pulsar and the first pulsar that shows state change of the gamma-ray emission and spin-down rate. The state change of PSR J2021+4026 was first observed at 2011 October, at which the pulsar changes the state from high gamma-ray flux/low spin-down rate state to low gamma-ray flux/high spin-down rate st\ ate. In December 2014, PSR J2021+4026 recovered the state before the 2011 state change over a timescale of a few months. We report that the long term evolution of the gamma-ray flux and timing behavior suggests that PSR J2021+4026 changed the state near 2018 February 1st and entered a new low gamma-ray flux/high spin-down rate state. At the 2018 state change, the averaged flux dropped from $(1.29\pm 0.01)\times 10^{-6} {\rm cts~cm^{-2}s^{-1}}$ to $(1.12\pm 0.01)\times 10^{-6} {\rm cts~cm^{-2}s^{-1\ }}$, which has the similar behavior to the case of 2011 event. The spin-down rate has increased by $\sim 3\%$ in the new state since the 2018 state change. The shapes of pulse profile and spectrum in GeV bands also changed at the 2018 event, and they are consistent with behavior at the 2011 state change. Our results probably suggest that PSR J2021+4026 is switching between different states with a timescale of several years, like some radio pulsars (e.g. PSR~B1828-11). PSR J2021+4026 will provide a unique opportunity to study the mechanism of the state switching.