03862nam 22005895 450 991025457680332120200630211350.03-319-63441-010.1007/978-3-319-63441-8(CKB)4340000000061880(DE-He213)978-3-319-63441-8(MiAaPQ)EBC4926883(PPN)203669738(EXLCZ)99434000000006188020170727d2017 u| 0engurnn|008mamaatxtrdacontentcrdamediacrrdacarrierGlobular Cluster Binaries and Gravitational Wave Parameter Estimation Challenges and Efficient Solutions /by Carl-Johan Haster1st ed. 2017.Cham :Springer International Publishing :Imprint: Springer,2017.1 online resource (XII, 92 p. 37 illus., 9 illus. in color.) Springer Theses, Recognizing Outstanding Ph.D. Research,2190-5053"Doctoral Thesis accepted by the University of Birmingham, UK."3-319-63440-2 Includes bibliographical references at the end of each chapters.Introduction --  N−body Dynamics of Intermediate Mass Ratio Inspirals -- Inference on Gravitational Waves from Coalescences of Stellar-mass Compact Objects and Intermediate-mass Black Holes -- Efficient Method for Measuring the Parameters Encoded in a Gravitational-wave Signal -- Conclusion.This thesis presents valuable contributions to several aspects of the rapidly growing field of gravitational wave astrophysics. The potential sources of gravitational waves in globular clusters are analyzed using sophisticated dynamics simulations involving intermediate mass black holes and including, for the first time, high-order post-Newtonian corrections to the equations of motion. The thesis further demonstrates our ability to accurately measure the parameters of the sources involved in intermediate-mass-ratio inspirals of stellar-mass compact objects into hundred-solar-mass black holes. Lastly, it proposes new techniques for the computationally efficient inference on gravitational waves. On 14 September 2015, the LIGO observatory reported the first direct detection of gravitational waves from the merger of a pair of black holes. For a brief fraction of a second, the power emitted by this merger exceeded the combined output of all stars in the visible universe. This has since been followed by another confirmed detection and a third candidate binary black hole merger. These detections heralded the birth of an exciting new field: gravitational-wave astrophysics.Springer Theses, Recognizing Outstanding Ph.D. Research,2190-5053AstrophysicsPhysicsGravitationAstrophysics and Astroparticleshttps://scigraph.springernature.com/ontologies/product-market-codes/P22022Numerical and Computational Physics, Simulationhttps://scigraph.springernature.com/ontologies/product-market-codes/P19021Classical and Quantum Gravitation, Relativity Theoryhttps://scigraph.springernature.com/ontologies/product-market-codes/P19070Astrophysics.Physics.Gravitation.Astrophysics and Astroparticles.Numerical and Computational Physics, Simulation.Classical and Quantum Gravitation, Relativity Theory.523.01Haster Carl-Johanauthttp://id.loc.gov/vocabulary/relators/aut821839MiAaPQMiAaPQMiAaPQBOOK9910254576803321Globular Cluster Binaries and Gravitational Wave Parameter Estimation2283944UNINA