论文标题

Nenufar的脉冲星:后端和管道

Pulsars with NenuFAR: backend and pipelines

论文作者

Bondonneau, L., Grießmeier, J. -M., Theureau, G., Cognard, I., Brionne, M., Kondratiev, V., Bilous, A., McKee, J. W., Zarka, P., Viou, C., Guillemot, L., Chen, S., Main, R., Pilia, M., Possenti, A., Serylak, M., Shaifullah, G., Tiburzi, C., Verbiest, J. P. W., Wu, Z., Wucknitz, O., Yerin, S., Briand, C., Cecconi, B., Corbel, S., Dallier, R., Loh, A., Martin, L., Girard, J. N., Tasse, C.

论文摘要

Nenufar(Nançay升级Lofar的新扩展名)是在Nançay无线电天文台所在地开发和建造的新射电望远镜。它旨在观察从10到85 \ MHz的很大程度上未开发的频率窗口,在其完整的带宽上具有高灵敏度。 Nenufar已于2019年7月开始其“早期科学”运营,其中58%的最终收集区域可用。脉冲星是科学剥削该频率范围的主要主题之一,在仪器方面是一个重要的挑战。在这些频率上设计仪器的设计使需要补偿星际介质和电离层对观察到的信号的影响变得复杂。我们的实时管道Luppi(低频最终的脉冲星处理仪器)能够应对高数据速率,并将实时相干分解降低到Nenufar(10 \,MHz)达到的最低频率。描述了完整的后端功能,以及主要观察模式的主要脉冲星(折叠,单脉冲,波形和动态频谱)。该仪器使我们能够在85 \ MHz以下的第一个目标搜索中检测172个脉冲星,其中包括10毫秒的脉冲星(其中6个首次检测到100 MHz以下)。我们还介绍了Nenufar对Pulsars的一些“早期科学”结果:PSR B1919 $+$ 21的排放概况的高频分辨率映射,以及对PSR〜B0809 $+$ 74+$ 74降至16 \的单脉冲子结构的详细观察,降至16 \,MHz,MHz,MHz,MHz的高率,较高的Pulse Pulsar ats At At At At At At At At At At At Aft Aft Aft pulsar pulsar frouls the thy 38(68)事件/分钟),以及仪器的非常好的时机性能的说明,使我们能够详细研究分散体的变化。

NenuFAR (New extension in Nançay upgrading LoFAR) is a new radio telescope developed and built on the site of the Nançay Radio Observatory. It is designed to observe the largely unexplored frequency window from 10 to 85\,MHz, offering a high sensitivity across its full bandwidth. NenuFAR has started its "early science" operation in July 2019, with 58\% of its final collecting area being available. Pulsars are one of the major topics for the scientific exploitation of this frequency range and represent an important challenge in terms of instrumentation. Designing instrumentation at these frequencies is complicated by the need to compensate for the effects of both the interstellar medium and the ionosphere on the observed signal. Our real-time pipeline LUPPI (Low frequency Ultimate Pulsar Processing Instrumentation) is able to cope with a high data rate and to provide real-time coherent de-dispersion down to the lowest frequencies reached by NenuFAR (10\,MHz). The full backend functionality is described, as well as the main pulsar observing modes (folded, single-pulse, waveform, and dynamic spectrum). This instrumentation allowed us to detect 172 pulsars in our first targeted search below 85\,MHz, including 10 millisecond pulsars (6 of which detected for the first time below 100 MHz). We also present some of the "early science" results of NenuFAR on pulsars: a high frequency resolution mapping of PSR B1919$+$21's emission profile and a detailed observation of single-pulse sub-structures from PSR~B0809$+$74 down to 16\,MHz, the high rate of giant-pulse emission from the Crab pulsar detected at 68.7\,MHz (43 events/min), and the illustration of the very good timing performance of the instrumentation, allowing us to study dispersion measure variations in great detail.

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