Efficient pseudospectral method for the computation of the self-force on a charged particle: Circular geodesics around a Schwarzschild black hole

被引:33
作者
Canizares, Priscilla [1 ]
Sopuerta, Carlos F. [1 ]
机构
[1] Fac Ciencias, Inst Ciencies Espai CSIC IEEC, E-08193 Bellaterra, Spain
关键词
GRAVITATIONAL-RADIATION REACTION; MASS-RATIO INSPIRALS; ORBITS; MOTION; WAVES;
D O I
10.1103/PhysRevD.79.084020
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
The description of the inspiral of a stellar-mass compact object into a massive black hole sitting at a galactic center is a problem of major relevance for the future space-based gravitational-wave observatory Laser Interferometer Space Antenna (LISA), as the signals from these systems will be buried in the data stream and accurate gravitational-wave templates will be needed to extract them. The main difficulty in describing these systems lies in the estimation of the gravitational effects of the stellar-mass compact object on his own trajectory around the massive black hole, which can be modeled as the action of a local force, the self-force. In this paper, we present a new time-domain numerical method for the computation of the self-force in a simplified model consisting of a charged scalar particle orbiting a nonrotating black hole. We use a multidomain framework in such a way that the particle is located at the interface between two domains so that the presence of the particle and its physical effects appear only through appropriate boundary conditions. In this way we eliminate completely the presence of a small length scale associated with the need of resolving the particle. This technique also avoids the problems associated with the impact of a low differentiability of the solution in the accuracy of the numerical computations. The spatial discretization of the field equations is done by using the pseudospectral collocation method and the time evolution, based on the method of lines, uses a Runge-Kutta solver. We show how this special framework can provide very efficient and accurate computations in the time domain, which makes the technique amenable for the intensive computations required in the astrophysically relevant scenarios for LISA.
引用
收藏
页数:15
相关论文
共 73 条
[61]   Multiscale analysis of the electromagnetic self-force in a weak gravitational field [J].
Pound, Adam ;
Poisson, Eric .
PHYSICAL REVIEW D, 2008, 77 (04)
[62]  
Press W. H., 2007, Numerical Recipes 3rd Edition: The Art of Scientific Computing
[63]   Axiomatic approach to electromagnetic and gravitational radiation reaction of particles in curved spacetime [J].
Quinn, TC ;
Wald, RM .
PHYSICAL REVIEW D, 1997, 56 (06) :3381-3394
[64]   Axiomatic approach to radiation reaction of scalar point particles in curved spacetime [J].
Quinn, TC .
PHYSICAL REVIEW D, 2000, 62 (06)
[65]   STABILITY OF A SCHWARZSCHILD SINGULARITY [J].
REGGE, T ;
WHEELER, JA .
PHYSICAL REVIEW, 1957, 108 (04) :1063-1069
[66]   Adiabatic radiation reaction to orbits in Kerr spacetime [J].
Sago, N ;
Tanaka, T ;
Hikida, W ;
Nakano, H .
PROGRESS OF THEORETICAL PHYSICS, 2005, 114 (02) :509-514
[67]  
SIGURDSSON S, ARXIVASTROPH9608093
[68]   Finite element computation of the gravitational radiation emitted by a pointlike object orbiting a nonrotating black hole [J].
Sopuerta, CF ;
Laguna, P .
PHYSICAL REVIEW D, 2006, 73 (04)
[69]   A toy model for testing finite element methods to simulate extreme-mass-ratio binary systems [J].
Sopuerta, CF ;
Sun, PT ;
Laguna, P ;
Xu, JC .
CLASSICAL AND QUANTUM GRAVITY, 2006, 23 (01) :251-285
[70]   Towards adiabatic waveforms for inspiral into Kerr black holes: A new model of the source for the time domain perturbation equation [J].
Sundararajan, Pranesh A. ;
Khanna, Gaurav ;
Hughes, Scott A. .
PHYSICAL REVIEW D, 2007, 76 (10)