首页> 外文期刊>Astronomy and astrophysics >Synchrotron cooling in energetic gamma-ray bursts observed by the Fermi Gamma-Ray Burst Monitor
【24h】

Synchrotron cooling in energetic gamma-ray bursts observed by the Fermi Gamma-Ray Burst Monitor

机译:费米伽马射线爆裂监测仪观察到高能伽马射线爆发中的同步加速器冷却

获取原文
           

摘要

Context. We study the time-resolved spectral properties of energetic gamma-ray bursts (GRBs) with good high-energy photon statistics observed by the Gamma-Ray Burst Monitor (GBM) onboard the Fermi Gamma-Ray Space Telescope. Aims. We aim to constrain in detail the spectral properties of GRB prompt emission on a time-resolved basis and to discuss the theoretical implications of the fitting results in the context of various prompt emission models. Methods. Our sample comprises eight GRBs observed by the Fermi GBM in its first five years of mission, with 1 keV–1 MeV fluence f> 1.0 × 10-4 erg cm-2 and a signal-to-noise ratio level of S/N ≥ 10.0 above 900 keV. We performed a time-resolved spectral analysis using a variable temporal binning technique according to optimal S/N criteria, resulting in a total of 299 time-resolved spectra. We performed Band function fits to all spectra and obtained the distributions for the low-energy power-law index α, the high-energy power-law index β, the peak energy in the observed νFν spectrum Ep, and the difference between the low- and high-energy power-law indices Δs = α ? β. We also applied a physically motivated synchrotron model, which is a triple power-law with constrained power-law indices and a blackbody component, to test the prompt emission for consistency with a synchrotron origin and obtain the distributions for the two break energies Eb,1 and Eb,2, the middle segment power-law index β, and the Planck function temperature kT. Results. The Band function parameter distributions are α?=?-0.73+0.16-0.21, β?=?-2.13+0.28-0.56, Ep?=?374.4+307.3-187.7 , , keV (log10Ep?=?2.57+0.26-0.30), and Δs?=?1.38+0.54-0.31 , with average errors σα ~ 0.1, σβ ~ 0.2, and σEp ~ 0.1Ep. Using the distributions of Δs and β, the electron population index p is found to be consistent with the “moderately fast” scenario, in which fast- and slow-cooling scenarios cannot be distinguished. The physically motivated synchrotron-fitting function parameter distributions are Eb,1?=?129.6+132.2-32.4 keV, Eb,2?=?631.4+582.6-309.6 keV, β?=?-1.72+0.48-0.25 , and kT?=?10.4+4.9-3.7 keV, with average errors σβ ~ 0.2, σEb,1 ~ 0.1Eb,1, σEb,2 ~ 0.4Eb,2, and σkT ~ 0.1kT. This synchrotron function requires the synchrotron injection and cooling break (i.e., Emin and Ecool) to be close to each other within a factor of ten, often in addition to a Planck function. Conclusions. A synchrotron model is found that is consistent with most of the time-resolved spectra for eight energetic Fermi GBM bursts with good high-energy photon statistics as long as both the cooling and injection break are included and the leftmost spectral slope is lifted either by including a thermal component or when an evolving magnetic field is accounted for.
机译:上下文。我们用费米伽马射线太空望远镜上的伽马射线爆裂监测仪(GBM)观察到的高能光子统计数据,研究了高能伽马射线爆发(GRB)的时间分辨光谱特性。目的我们旨在在时间分辨的基础上详细限制GRB瞬态发射的光谱特性,并在各种瞬态发射模型的背景下讨论拟合结果的理论含义。方法。我们的样本包含费米GBM在其执行任务的头五年中观察到的8个GRB,1 keV–1 MeV能量密度f> 1.0×10-4 erg cm-2,信噪比水平为S / N≥ 900 keV以上为10.0。我们根据最佳S / N标准使用可变时间分箱技术执行了时间分辨光谱分析,从而获得了299个时间分辨光谱。我们对所有光谱进行了带函数拟合,并获得了低能量幂律指数α,高能量幂律指数β,观测到的νFν光谱Ep中的峰值能量以及低能谱之间的差异。和高能幂律指数Δs=α? β。我们还应用了一个物理激励的同步加速器模型,该模型是具有受约束的功率定律指数和黑体分量的三重幂律,以测试迅速发射与同步加速器起源的一致性,并获得两个中断能量Eb,1的分布。 Eb,2,中段幂律指数β和普朗克函数温度kT。结果。带函数参数分布为α?=?-0.73 + 0.16-0.21,β?=?-2.13 + 0.28-0.56,Ep?=?374.4 + 307.3-187.7,keV(log10Ep?=?2.57 + 0.26-0.30 ),Δs?=?1.38 + 0.54-0.31,平均误差为σα〜0.1,σβ〜0.2和σEp〜0.1Ep。利用Δs和β的分布,发现电子种群指数p与“中等快速”情景一致,在这种情况下,不能区分快冷和慢冷情景。物理激励的同步加速器拟合功能参数分布为Eb,1α=α129.6+ 132.2-32.4keV,Eb,2α=α631.4+ 582.6-309.6keV,βα=α-1.72+ 0.48-0.25和kTα。 =?10.4 + 4.9-3.7 keV,平均误差为σβ〜0.2,σEb,1〜0.1Eb,1,σEb,2〜0.4Eb,2和σkT〜0.1kT。该同步加速器功能通常要求除了普朗克功能外,还要求同步加速器的注入和冷却间隔(即Emin和Ecool)在十分之一的范围内彼此接近。结论。发现一个同步加速器模型与八个高能费米GBM脉冲的大多数时间分辨谱一致,只要包括冷却和注入中断,并且通过包括热成分或考虑到不断发展的磁场。

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号