论文标题

使用Meerkat望远镜研究的双脉冲星中的重力信号传播

Gravitational signal propagation in the Double Pulsar studied with the MeerKAT telescope

论文作者

Hu, H., Kramer, M., Champion, D. J., Wex, N., Parthasarathy, A., Pennucci, T. T., Porayko, N. K., van Straten, W., Krishnan, V. Venkatraman, Burgay, M., Freire, P. C. C., Manchester, R. N., Possenti, A., Stairs, I. H., Bailes, M., Buchner, S., Cameron, A. D., Camilo, F., Serylak, M.

论文摘要

双脉冲星PSR J0737-3039A/b在强场策略中提供了丰富的引力实验,所有这些都以鲜艳的色彩传递。特别是,在测试光子传播的当前重力实验中,双脉冲星探测最强的时空曲率。对Meerkat的观察以及将来的SKA可以大大提高当前测试的准确性,并促进轨道运动和信号传播中NLO贡献的测试。我们介绍了过去三年中使用Meerkat望远镜制成的PSR J0737-3039A的新观察的时机分析。与以前的研究相比,Meerkat提供的时序精度的提高可得出2倍更好的Shapiro延迟参数的测量和改进的质量测量值。此外,我们的结果提供了对NLO信号传播效应的独立确认,并且已经超过了16年数据的先前测量值1.65。这些效果包括由于B的运动以及信号的偏转而产生的延迟作用。我们还研究了预期的新型效应。例如,我们搜索由于纬度信号挠度引起的视线偏移而引起的较高连词附近的潜在轮廓变化,并使用我们当前的数据找到无关紧要的证据。通过模拟,我们发现纬度偏转延迟不太可能通过定时来测量其与夏皮罗延迟的相关性。此外,尽管目前无法检测到对Shapiro延迟的预期透镜校正,但我们的模拟表明可以用完整的SKA测量这种效果。最后,我们为双脉冲星系统中的信号传播提供了改进的分析描述,该描述符合未来仪器(例如完整SKA)预期的时序精度。

The Double Pulsar, PSR J0737-3039A/B, has offered a wealth of gravitational experiments in the strong-field regime, all of which GR has passed with flying colours. In particular, among current gravity experiments that test photon propagation, the Double Pulsar probes the strongest spacetime curvature. Observations with MeerKAT and, in future, the SKA can greatly improve the accuracy of current tests and facilitate tests of NLO contributions in both orbital motion and signal propagation. We present our timing analysis of new observations of PSR J0737-3039A, made using the MeerKAT telescope over the last 3 years. The increased timing precision offered by MeerKAT yields a 2 times better measurement of Shapiro delay parameter s and improved mass measurements compared to previous studies. In addition, our results provide an independent confirmation of the NLO signal propagation effects and already surpass the previous measurement from 16-yr data by a factor of 1.65. These effects include the retardation effect due to the movement of B and the deflection of the signal by the gravitational field of B. We also investigate novel effects which are expected. For instance, we search for potential profile variations near superior conjunctions caused by shifts of the line-of-sight due to latitudinal signal deflection and find insignificant evidence with our current data. With simulations, we find that the latitudinal deflection delay is unlikely to be measured with timing because of its correlation with Shapiro delay. Furthermore, although it is currently not possible to detect the expected lensing correction to the Shapiro delay, our simulations suggest that this effect may be measured with the full SKA. Finally, we provide an improved analytical description for the signal propagation in the Double Pulsar system that meets the timing precision expected from future instruments such as the full SKA.

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