论文标题
比较北纽顿后框架中的轻度公式的比较
Comparison of light-time formulations in the post-Newtonian framework for the BepiColombo MORE experiment
论文作者
论文摘要
ESA/JAXA BEPICOLOMBO任务于2018年10月20日启动,目前正驶向水星。汞轨道轨道无线科学实验(更多)是该任务的16个实验之一,它将利用在较高的太阳能连接期间收集的范围和范围率测量,以更好地限制牛顿后参数$γ$。更多的无线电跟踪系统能够在X-和KA波段中建立一个5腿链路,以获得2条范围速率测量值,其精度为$ 0.01 mm/s^-1 $ @ 60 S 60 S采样时间和几秒钟的集成时间之后,在几秒钟的集成时间之后,在几秒钟内,在几秒钟内,在几乎所有太阳能延长的角度处,在所有太阳能延长的角度上。在本文中,我们研究了JPL轨道确定代码蒙特(Monte)实现的Moyer得出的轻度公式是否仍然是有效的近似值,鉴于辐射测量性能的最新进步。在这项工作中,考虑了重力时间延迟的几种表述,以$ gm/c^2r $的扩展表示。我们量化了bepicolombo的第一个上等太阳连接实验的轻度扩展的每个项的贡献。相对于完整的二阶扩展,由Moyer近似引起的最大2路误差构成17毫米。这是在24 mcps使用的新型伪噪声(PN)范围系统的准确性层面。然后,建议进行完整的二阶扩展,以进行当前和未来的上级太阳连接实验。也考虑了由太阳系中的行星引起的扰动,从而导致木星,地球和土星系统产生重大影响。对于这些身体,经典的夏皮罗时间延迟就足够了。由于阳光涂抹和棱角动量而引起的校正可以忽略不计。
The ESA/JAXA BepiColombo mission, launched on 20 October 2018, is currently in cruise toward Mercury. The Mercury Orbiter Radio-science Experiment (MORE), one of the 16 experiments of the mission, will exploit range and range-rate measurements collected during superior solar conjunctions to better constrain the post-Newtonian parameter $γ$. The MORE radio tracking system is capable of establishing a 5-leg link in X- and Ka-band to obtain 2-way range-rate measurements with an accuracy of $0.01 mm/s^-1$ @ 60 s sampling time and 2-way range measurements at centimeter level after a few seconds of integration time, at almost all solar elongation angles. In this paper, we investigate if the light-time formulation derived by Moyer, implemented in JPL's orbit determination code MONTE, is still a valid approximation, in light of the recent advancements in radiometric measurement performance. Several formulations of the gravitational time delay, expressed as an expansion in powers of $GM/c^2r$, are considered in this work. We quantified the contribution of each term of the light-time expansion for the first superior solar conjunction experiment of BepiColombo. The maximum 2-way error caused by Moyer approximation with respect to a complete second order expansion amounts to 17 mm. This is at the level of accuracy of the novel pseudo-noise (PN) ranging system at 24 Mcps used by MORE. A complete second order expansion is then recommended for present and future superior solar conjunction experiments. The perturbation caused by the planets in the Solar System is considered as well, resulting in significant effects due to the Jupiter, the Earth and the Saturn systems. For these bodies the classical Shapiro time delay is sufficient. The corrections due to the Sun oblateness and angular momentum are negligible.