论文标题
极高的质量比灵感到被物质包围的黑洞
Extreme mass ratio inspirals into black holes surrounded by matter
论文作者
论文摘要
恒星质量紧凑的物体的灵感变成巨大的黑洞,称为极限比率灵感(EMRIS),是即将到来的基于空间的重力波检测器的关键目标之一。在本文中,我们采取了系统地结合外部引力物质对EMRI的影响所需的第一步。我们对灵感进行建模,以便在Schwarzschild黑洞的田地发生,该黑洞受到封闭系统的质量质量分布的重力场的扰动。我们考虑了由封闭物质引起的红移,框架拖拉和四极潮的潮汐,从而将所有效果纳入了封闭质量的特征距离的反逆三阶。然后,我们使用规范的扰动理论来获取在这种背景下轻度偏心的预犯测试粒子的动作角度坐标和哈密顿量。最后,我们使用它来有效计算该领域中的温和偏心灵感并记录其特性。这项工作显示了建模EMRI的规范扰动理论的优势,尤其是在背景偏离标准黑洞场的情况下。
Inspirals of stellar-mass compact objects into massive black holes, known as extreme mass ratio inspirals (EMRIs), are one of the key targets for upcoming space-based gravitational-wave detectors. In this paper we take the first steps needed to systematically incorporate the effect of external gravitating matter on EMRIs. We model the inspiral as taking place in the field of a Schwarzschild black hole perturbed by the gravitational field of a far axisymmetric distribution of mass enclosing the system. We take into account the redshift, frame-dragging, and quadrupolar tide caused by the enclosing matter, thus incorporating all effects to inverse third order of the characteristic distance of the enclosing mass. Then, we use canonical perturbation theory to obtain the action-angle coordinates and Hamiltonian for mildly eccentric precessing test-particle orbits in this background. Finally, we use this to efficiently compute mildly eccentric inspirals in this field and document their properties. This work shows the advantages of canonical perturbation theory for the modeling EMRIs, especially in the cases when the background deviates from the standard black hole fields.