论文标题
N体系统领域的光传播以及Tianqin Mission的应用
Light propagation in the field of the N-body system and the application in the TianQin mission
论文作者
论文摘要
鉴于高精度的现代空间任务,需要对观察的精确相对论建模。通过用牛顿后近似求解艾科纳尔方程,光传播由迭代方法在一个分离的,重力结合的N体系统的重力场中确定。与系统在系统中彼此独立的传统$ n $身体不同,我们的系统包括引力体的速度,加速度,重力相互作用和潮汐变形。然后,这些因素的光延迟由分析溶液确切确定。这些延迟很大,很可能达到\ emph {强}引力场(例如二元脉冲星和某些引力波源)的可检测水平。结果在地球附近的应用为现代空间任务提供了相对论的框架。从天然气任务中的相对论分析中,我们找到了替代引力理论的可能测试,例如在某些标量的重力理论的水平上,可能确定了牛顿后参数$γ$。
Given the high-precision modern space mission, a precise relativistic modeling of observations is required. By solving the eikonal equation with the post-Newtonian approximation, the light propagation is determined by the iterative method in the gravitational field of an isolated, gravitationally bound N-body system. Different from the traditional $N$ bodies that are independent with each other in the system, our system includes the velocities, accelerations, gravitational interactions and tidal deformations of the gravitational bodies. The light delays of these factors then are precisely determined by the analytical solutions. These delays are significant and are likely to reach a detectable level for the \emph{strong} gravitational fields, such as binary pulsars and some gravitational wave sources. The result's application in the vicinity of the Earth provides a relativistic framework for modern space missions. From the relativistic analysis in the TianQin mission, we find the possible tests for the alternative gravitational theories, such as a possible determination for the post-Newtonian parameter $γ$ in the level of some scalar-tensor theories of gravity.