具有频率相关色散测量的等离子体透镜对快速射电暴的影响

IF 5.8 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS
Yu-Bin Wang, Xia Zhou, Abdusattar Kurban
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引用次数: 0

摘要

通过非均匀等离子体介质传播的无线电信号偏离其原始路径,产生频率相关的放大效应。本文通过对经典等离子体透镜理论的回顾,发现了一个基本矛盾:经典模型假定透镜等离子体介质的分布与频率无关的像位有关;然而,我们的分析表明,当信号穿过结构等离子体介质时,图像位置(θ(ν))和色散测量(DM(ν))都是固有的频率依赖。我们已经能够通过开发一个框架来解决这个悖论,该框架明确地结合了遵循幂律关系(DM∝νγ)的频率相关色散度量(DM)。我们的分析表明,信号的放大率随着频率的降低而系统地降低,这为快速射电暴(FRB)中观测到的频率相关的峰值通量密度提供了一个合理的解释,特别是在重复的FRB 180814.J0422+73的情况下。我们的研究结果表明,这些快速射电暴可能起源于磁化致密的恒星磁球。通过考虑这些等离子体透镜效应在不同频率上对快速射电暴的子脉冲的影响,我们有能力通过对无线电信号的精确测量更准确地研究快速射电暴的内在特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Plasma lens with frequency-dependent dispersion measure effects on fast radio bursts
Radio signals propagating through inhomogeneous plasma media deviate from their original paths, producing frequency-dependent magnification effects. In this paper, after reviewing the classical plasma-lensing theory, we have found a fundamental contradiction: the classical model assumes that the distribution of lensing plasma medium is related to the frequency-independent image position; however, our analysis demonstrates that both the image position (θ(ν)) and dispersion measure (DM(ν)) are inherently frequency-dependent when signals traverse a structured plasma medium. We have been able to resolve this paradox by developing a framework that explicitly incorporates frequency-dependent dispersion measures (DMs) following power-law relationships (DM ∝ νγ). Our analysis shows that the signal magnification decreases systematically with decreasing frequency, offering a plausible explanation for the frequency-dependent peak flux densities observed in fast radio bursts (FRBs), particularly in the case of the repeating FRB 180814.J0422+73. Our results suggest these FRBs could originate from the magnetized compact star magnetospheres. By considering these plasma-lensing effects on the sub-pulses of an FRB across different frequencies, we have the ability to more accurately investigate the intrinsic properties of FRBs via precise measurements of radio signals.
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来源期刊
Astronomy & Astrophysics
Astronomy & Astrophysics 地学天文-天文与天体物理
CiteScore
10.20
自引率
27.70%
发文量
2105
审稿时长
1-2 weeks
期刊介绍: Astronomy & Astrophysics is an international Journal that publishes papers on all aspects of astronomy and astrophysics (theoretical, observational, and instrumental) independently of the techniques used to obtain the results.
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