论文标题
Parkes Pulsar定时阵列UWL数据的宽带时间安排数据
Wideband timing of the Parkes Pulsar Timing Array UWL data
论文作者
论文摘要
2018年,在64米的Parkes射电望远镜上安装了超宽的低频(UWL)接收器,该接收器可实现704至4032 MHz的瞬时频率覆盖率的观测值。在这里,我们介绍了使用宽带正时方法对Parkes Pulsar定时阵列(PPTA)观察到的35毫秒脉冲星的三年数据集的分析。与典型的窄带方法相比,这两个关键差异首先是生成二维模板,这些模板会以频率来考虑脉冲形状演变,其次,同时测量了脉冲时间(TOA)(TOA)和色散度量(DM)。这是第一次将宽带正时应用于使用单个大型带宽接收器收集的统一数据集,最初开发了此类技术。由于我们的研究,我们提出了一组轮廓演化模型和新的时序解决方案,包括初始噪声分析。我们的TOA和DM测量值的精度在0.005 $ - $ 2.08 $ $ $ s和(0.043 $ - $ 14.24)$ \ times10^{ - 4} $ cm $^{ - 3} $ pc,分别为94%的脉搏达到了94%的脉搏,其中94%的脉搏不到1 $ $ $ $。
In 2018 an ultra-wide-bandwidth low-frequency (UWL) receiver was installed on the 64-m Parkes Radio Telescope enabling observations with an instantaneous frequency coverage from 704 to 4032 MHz. Here, we present the analysis of a three-year data set of 35 millisecond pulsars observed with the UWL by the Parkes Pulsar Timing Array (PPTA), using wideband timing methods. The two key differences compared to typical narrow-band methods are, firstly, generation of two-dimensional templates accounting for pulse shape evolution with frequency and, secondly, simultaneous measurements of the pulse time-of-arrival (ToA) and dispersion measure (DM). This is the first time that wideband timing has been applied to a uniform data set collected with a single large-fractional bandwidth receiver, for which such techniques were originally developed. As a result of our study, we present a set of profile evolution models and new timing solutions including initial noise analysis. Precision of our ToA and DM measurements is in the range of 0.005 $-$ 2.08 $μ$s and (0.043$-$14.24)$\times10^{-4}$ cm$^{-3}$ pc, respectively, with 94% of the pulsars achieving a median ToA uncertainty of less than 1 $μ$s.