论文标题

来自射电星系裂片的非热Sunyaev-Zeldovich信号

Non-thermal Sunyaev-Zeldovich signal from radio galaxy lobes

论文作者

Acharya, Sandeep Kumar, Majumdar, Subhabrata, Nath, Biman B.

论文摘要

射电星系裂片中的能量电子不仅使无线电和X射线,而且使它们的潜在来源,还使宇宙微波背景(CMB)辐射中的Sunyaev-Zeldovich(SZ)扭曲。先前的工作已经讨论了宽银河叶的能量学,但假设来自非热电子种群的热SZ效应。我们使用改进的进化模型对射线星系裂片来估计观察到的观察到的观察到的参数,例如SZ-Distortions的无线电亮度和强度。此外,我们量化了射流星系的各种相关物理参数的影响,例如喷射功率,射流处于活动状态的时间尺度,叶的进化时间尺度等对观察到的参数。对于当前对星系簇的SZ观察结果,我们发现与从群集内介质中的热SZ失真量相比,嵌入星系簇中的无线电裂片中的非热SZ失真是不可忽视的,因此不能忽略。我们表明,小小的年轻人(最好居住在集群环境中)射电星系为从这些来源检测非热的SZ信号提供了更好的前景。我们进一步讨论了已经检测到的SZ效应或可用上限的某些来源的不同物理参数的限制。进化模型使我们能够在电子光谱的低能截止($ p_ {min} \ sim 1 \ hbox { - } 2 $)上获得以前无法使用的限制,以解释最近的非热SZ检测。最后,我们讨论未来的CMB实验将如何涵盖较高频段($> $ 400 GHz),可能会为非热SZ效应提供明确的签名。

Energetic electrons in the lobes of radio galaxies make them potential sources for not only radio and X-rays but also Sunyaev-Zeldovich (SZ) distortions in the cosmic microwave background (CMB) radiation. Previous works have discussed the energetics of radio galaxy lobes, but assuming thermal SZ effect, coming from the non-thermal electron population. We use an improved evolutionary model for radio galaxy lobes to estimate the observed parameters such as the radio luminosity and intensity of SZ-distortions at the redshifts of observation. We, further, quantify the effects of various relevant physical parameters of the radio galaxies, such as the jet power, the time scale over which the jet is active, the evolutionary time scale for the lobe, etc on the observed parameters. For current SZ observations towards galaxy clusters, we find that the non-thermal SZ distortions from radio lobes embedded in galaxy clusters can be non-negligible compared to the amount of thermal SZ distortion from the intra-cluster medium and, hence, can not be neglected. We show that small and young (and preferably residing in a cluster environment) radio galaxies offer better prospects for the detection of the non-thermal SZ signal from these sources. We further discuss the limits on different physical parameters for some sources for which SZ effect has been either detected or upper limits are available. The evolutionary models enable us to obtain limits, previously unavailable, on the low energy cut-off of electron spectrum ($p_{min} \sim 1\hbox{--}2$) in order to explain the recent non-thermal SZ detection. Finally, we discuss how future CMB experiments, which would cover higher frequency bands ($>$400 GHz), may provide clear signatures for non-thermal SZ effect.

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