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首页> 外文期刊>The Astrophysical journal >INTERPRETING THE BEHAVIOR OF TIME-RESOLVED GAMMA-RAY BURST SPECTRA
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INTERPRETING THE BEHAVIOR OF TIME-RESOLVED GAMMA-RAY BURST SPECTRA

机译:解释时间分辨伽马射线爆谱的行为

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In this paper, we explore time-resolved gamma-ray burst (GRB) spectra in the context of the synchrotron emission model presented by Lloyd & Petrosian in 2000. First, we show that our model―which involves three distinct emission regimes―can provide excellent fits to the time-resolved spectra of GRBs, and we present these results for a few bursts. We then describe how the phenomenological Band spectrum can be interpreted in the context of our models based on the value of the low-energy photon index α. We discuss the types of correlations one would expect to observe among the Band parameters if these models are correct. We then compare these predictions to the existing data, combining a sample of 2026 time-resolved spectra (from approximately 80 bursts). We show that the correlations found in the data are consistent with the models and discuss the constraints they place on the emission physics. In particular, we find a (~ 4 σ) negative correlation between the peak of the vf_v spectrum E_p and the low-energy photon index α for bursts with - 2/3 < α < 0, in contrast to what is predicted by the instrumental effect discussed in Lloyd & Petrosian. We suggest that this correlation is simply due to the mechanism responsible for producing values of α above the value of - 2/3―namely, a decreasing mean pitch angle of the electrons. We also show that E_p is correlated with the photon flux and interpret this as a result of changing magnetic field or characteristic electron energy between emission episodes. Finally, we discuss the implications that our results have on particle acceleration in GRBs and prospects for further testing these models with the anticipated data from the High Energy Transient Explorer 2, Swift, and the Gamma-Ray Large Area Space Telescope.
机译:在本文中,我们在Lloyd&Petrosian在2000年提出的同步加速器发射模型的背景下探索了时间分辨伽马射线猝发(GRB)光谱。首先,我们证明了我们的模型-涉及三种不同的发射机制-可以提供与GRBs的时间分辨谱非常吻合,我们将这些结果展示了几个爆发。然后,我们基于低能光子指数α的值,描述在我们的模型中如何解释现象学带谱。我们讨论了如果这些模型正确的话,人们会期望在Band参数之间观察到的相关类型。然后,我们将这些预测与现有数据进行比较,并结合了2026个时间分辨光谱的样本(来自大约80个猝发)。我们表明,在数据中发现的相关性与模型一致,并讨论了它们对发射物理的约束。特别是,我们发现,对于-2/3 <α<0的猝发,vf_v谱E_p的峰值与低能光子指数α之间存在(〜4σ)负相关,这与仪器预测的相反。 Lloyd&Petrosian中讨论了影响。我们认为,这种相关性仅是由于产生大于-2/3的值的α的机理所致,也就是说,电子的平均俯仰角减小。我们还表明,E_p与光子通量相关,并将其解释为发射事件之间磁场或特征电子能量变化的结果。最后,我们讨论了结果对GRB中粒子加速的影响,以及使用高能瞬变资源管理器2,Swift和伽玛射线大面积空间望远镜的预期数据进一步测试这些模型的前景。

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