论文标题

评估低频脉冲星观测值,以监视巨大的Metrewave射电望远镜的分散体

Evaluating Low-Frequency Pulsar Observations to Monitor Dispersion with the Giant Metrewave Radio Telescope

论文作者

Jones, Megan L., McLaughlin, Maura A., Roy, Jayanta, Lam, Michael T., Cordes, James M., Kaplan, David L., Bhattacharyya, Bhaswati, Levin, Lina

论文摘要

重力波(Nanograv)项目的北美纳米赫兹天文台的主要目标是通过高精度脉冲星时间安排检测和表征低频引力波。星际效应的缓解对于达到重力波检测的必要精度至关重要。在较低的观察频率下,分散和散射等效果具有更大的影响力,这些数量在每周的时间尺度上的变化,需要对PULSAR时正时项目进行高电量的多频观测。在这项工作中,我们利用了巨大的Metrewave射电望远镜(GMRT)的双频观察能力,并在与现有的Pulsar定时阵列数据结合使用时评估分散度度量(DM)不确定性的潜在减少。我们介绍了在322和607 MHz时同时观察到的四毫秒脉冲星的定时分析,并将DM测量与通过纳米GRAV观测获得的DM测量结果与绿色银行望远镜(GBT)和ARECIBO观测值进行了比较,并在1400至2300 MHz频率下进行了比较。用GMRT和Nanograv程序测得的DM值显示出某些脉冲星的显着偏移,这可能是由两个频带中的脉冲曲线演变引起的。与将这些低频数据纳入纳米格拉夫数据集时的预测DM不确定性相比,我们发现更高精确的GMRT数据对于提供改进的DM测量是必要的。通过检测和分析测试PULSAR B1929+10数据中的脉冲曲线基线纹波,我们发现,虽然对这些数据并不重要,但它可能与其他计时数据集有关。我们讨论将GMRT数据纳入Nanograv和International Pulsar定时阵列数据集的可能优势和挑战。

The North American Nanohertz Observatory for Gravitational Waves (NANOGrav) project has the primary goal of detecting and characterizing low-frequency gravitational waves through high-precision pulsar timing. The mitigation of interstellar effects is crucial to achieve the necessary precision for gravitational wave detection. Effects like dispersion and scattering are more influential at lower observing frequencies, with the variation of these quantities over week-month timescales requiring high-cadence multi-frequency observations for pulsar timing projects. In this work, we utilize the dual-frequency observing capability of the Giant Metrewave Radio Telescope (GMRT) and evaluate the potential decrease in dispersion measure (DM) uncertainties when combined with existing pulsar timing array data. We present the timing analysis for four millisecond pulsars observed with the GMRT simultaneously at 322 and 607 MHz, and compare the DM measurements with those obtained through NANOGrav observations with the Green Bank Telescope (GBT) and Arecibo Observatory at 1400 to 2300 MHz frequencies. Measured DM values with the GMRT and NANOGrav program show significant offsets for some pulsars, which could be caused by pulse profile evolution in the two frequency bands. In comparison to the predicted DM uncertainties when incorporating these low-frequency data into the NANOGrav dataset, we find that higher-precision GMRT data is necessary to provide improved DM measurements. Through the detection and analysis of pulse profile baseline ripple in data on test pulsar B1929+10, we find that, while not important for this data, it may be relevant for other timing datasets. We discuss the possible advantages and challenges of incorporating GMRT data into NANOGrav and International Pulsar Timing Array datasets.

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