论文标题

Blazar 3C 454.3中核心迁移效应的时间变异性

Time variability of the core-shift effect in the blazar 3C 454.3

论文作者

Chamani, Wara, Savolainen, Tuomas, Ros, Eduardo, Kovalev, Yuri Y., Wiik, Kaj, Lähteenmäki, Anne, Tornikoski, Merja, Tammi, Joni

论文摘要

使用VLBI测量所谓的核心移位效应是获得射流磁场强度估计值的常见方法。 VLBI核心通常被识别为射流底座上的亮点,并且核心的位置随观察到的频率而变化,$ r_ \ mathrm {core} \ propto v cν{ - 1/k_r} $。在这项工作中,我们研究了Blazar 3C 454.3中核心迁移效应的时间变化。我们对多频率(5、8、15、22-24和43 GHz)的自我参考分析进行了VLBA数据,涵盖了从2005年到2010年的19个时期。我们发现,在5到43 GHz之间的0.27至0.86 MAS之间,确认了核心转移的可变性现象,从而确认了核心变异性现象。核心指数($ k_r $)的时间变异通常在1以下,平均值为0.85 \ pm 0.08 $,标准偏差为$ 0.30 $。 $ k_r <1 $值在爆炸和静止状态下发现,我们的结果表明,通常假定的圆锥形喷射形状和均衡条件并不总是同时保持。尽管如此,在从核心移位测量中得出磁场强度时,通常会假设这些条件,如果$ k_r $显着偏离统一,则会导致不可靠的结果。因此,重要的是要验证$ k_r = 1 $在使用核心移位值和均衡假设以衍生Jets中的物理参数之前保留。如果在3C 454.3的情况下选择$ k_r = 1 $时期时,即使核心移动随时间变化,磁场估计确实确实是一致的。此外,我们对3C 454.3中喷射磁通量的估计表明,该源确实在磁性停滞的磁盘状态中。最后,我们发现了核心位置与核心通量密度的良好相关性,$ r_ \ mathrm {core} \ propto s_ \ mathrm {core}^{0.7} $,与颗粒密度增加一致。

Using VLBI to measure a so-called core shift effect is a common way of obtaining estimates of the jet magnetic field strength. The VLBI core is typically identified as the bright feature at the jet's base, and the position of the core changes with the observed frequency, $r_\mathrm{core} \propto ν^{-1/k_r}$. In this work, we investigated the time variability of the core-shift effect in the blazar 3C 454.3. We employed self-referencing analysis of multi-frequency (5, 8, 15, 22-24, and 43 GHz) VLBA data covering 19 epochs from 2005 until 2010. We found significant core shift variability ranging from 0.27 to 0.86 mas between 5 and 43 GHz, confirming the core-shift variability phenomenon observed before. Time variability of the core-shift index ($k_r$) was found typically below one, with an average value of $0.85 \pm 0.08$ and a standard deviation of $0.30$. $k_r<1$ values were found during flaring and quiescent states and our results indicate that commonly assumed conical jet shape and equipartition conditions do not always hold simultaneously. Still, these conditions are often assumed when deriving magnetic field strengths from core shift measurements, leading to unreliable results if $k_r$ significantly deviates from unity. Therefore, it is important to verify that $k_r = 1$ holds before using core shift values and the equipartition assumption to derive physical parameters in the jets. When $k_r = 1$ epochs are selected in the case of 3C 454.3, the magnetic field estimates are indeed quite consistent, even though the core shift varies with time. Additionally, our estimations of the jet's magnetic flux in 3C 454.3 show that the source is indeed in the magnetically arrested disk state. Finally, we found a good correlation of the core position with the core flux density, $r_\mathrm{core}\propto S_\mathrm{core}^{0.7}$, which is consistent with increased particle density during the flares.

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