论文标题

jansky vla观察3C 227和3C 445射电星系的同步器发射光点

Jansky VLA observations of synchrotron emitting optical hotspots of 3C 227 and 3C 445 radio galaxies

论文作者

Orienti, M., Migliori, G., Brunetti, G., Nagai, H., D'Ammando, F., Mack, K. -H., Prieto, M. A.

论文摘要

我们报告了深jansky在22 GHz射电星系3C227和3C445的22 GHz上非常大的阵列A-configuration观测值。据报道,对于四个热点,据报道,光学上的缩放量表中的同步加速器发射最高为几个KPC。我们的VLA观察结果指出,存在未解决的区域,其线性大小约为100 PC。这是第一次在迷你样本中检测到热点中的这种紧凑成分,这表明它们不是少数单个热点的特征。偏振的值可能达到高达热点内紧凑型(约0.1 kpc尺度)区域的70%,这表明高度有序的磁场,大小高达一百个parsecs。在较大的尺度上,热点成分的平均极化约为30-45%,表明存在重要的随机场成分,而不是有序的磁场。在所有四个热点中观察到的峰值强度和总强度图像中的峰之间的位移进一步支持了这一点。电向矢量位置角度不是恒定的,而是在热点区域的中心部分任意变化,而通常垂直于热点结构最外边缘的总强度轮廓,可能标志着大型冲击阵线。 X射线与无线电发射之间的错位表明,前者正在追踪当前的粒子加速度,而后者则标志着较旧的冲击战线。

We report results on deep Jansky Very Large Array A-configuration observations at 22 GHz of the hotspots of the radio galaxies 3C227 and 3C445. Synchrotron emission in the optical on scales up to a few kpc was reported for the four hotspots. Our VLA observations point out the presence of unresolved regions with upper limit to their linear size of about 100 pc. This is the first time that such compact components in hotspots have been detected in a mini-sample, indicating that they are not a peculiar characteristic of a few individual hotspots. The polarization may reach values up to 70 per cent in compact (about 0.1 kpc scale) regions within the hotspot, indicating a highly ordered magnetic field with size up to a hundred parsecs. On larger scales, the average polarization of the hotspot component is about 30-45 per cent, suggesting the presence of a significant random field component, rather than an ordered magnetic field. This is further supported by the displacement between the peaks in polarized intensity and in total intensity images that is observed in all the four hotspots. The electric vector position angle is not constant, but changes arbitrarily in the central part of the hotspot regions, whereas it is usually perpendicular to the total intensity contours of the outermost edge of the hotspot structure, likely marking the large-scale shock front. The misalignment between X-ray and radio-to-optical emission suggests that the former is tracing the current particle acceleration, whereas the latter marks older shock fronts.

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