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Titlebook: Black Holes, Gravitational Radiation and the Universe; Essays in Honor of C Bala R. Iyer,Biplab Bhawal Book 1999 Springer Science+Business

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發(fā)表于 2025-3-21 19:25:00 | 只看該作者 |倒序瀏覽 |閱讀模式
期刊全稱Black Holes, Gravitational Radiation and the Universe
期刊簡稱Essays in Honor of C
影響因子2023Bala R. Iyer,Biplab Bhawal
視頻videohttp://file.papertrans.cn/189/188948/188948.mp4
學(xué)科分類Fundamental Theories of Physics
圖書封面Titlebook: Black Holes, Gravitational Radiation and the Universe; Essays in Honor of C Bala R. Iyer,Biplab Bhawal Book 1999 Springer Science+Business
影響因子Our esteemed colleague C. V. Vishveshwara, popularly known as Vishu, turned sixty on 6th March 1998. His colleagues and well wishers felt that it would be appropriate to celebrate the occasion by bringing out a volume in his honour. Those of us who have had the good fortune to know Vishu, know that he is unique, in a class by himself. Having been given the privilege to be the volume‘s editors, we felt that we should attempt something different in this endeavour. Vishu is one of the well known relativists from India whose pioneer- ing contributions to the studies of black holes is universally recognised. He was a student of Charles Misner. His Ph. D. thesis on the stability of the Schwarzschild black hole, coordinate invariant characterisation of the sta- tionary limit and event horizon for Kerr black holes and subsequent seminal work on quasi-normal modes of black holes have passed on to become the starting points for detailed mathematical investigations on the nature of black holes. He later worked on other aspects related to black holes and compact objects. Many of these topics have matured over the last thirty years. New facets have also developed and become current areas of vig
Pindex Book 1999
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Notes on Black Hole Fluctuations and Back-Reaction,n as a manifestation of a fluctuction-dissipation relation was first proposed by Candelas and Sciama [3, 4]. Even though, as we will soon see, the fluctuations in the thought of these earlier authors are not the correct ones and the relations proposed were not really addressing the back-reaction of
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Micro-Structure of Black Holes and String Theory,didates in binary systems and there is also evidence that the matter of galaxies is belched in ‘a(chǎn)ctive galactic nuclei’ which are black holes with a million times the solar mass. Why do black holes occur? The standard answer is gravitational collapse and the existence of black hole solutions in gene
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Quantum Geometry and Black Holes,rature and a multiple of the area of its event horizon should be identified with its thermodynamic entropy [1]. In this reasoning, he had to use not only general relativity but also quantum mechanics. Indeed, without recourse to the Planck’s constant, ?, the identification is impossible because even
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Black Holes, Global Monopole Charge and Quasi-Local Energy,n: can we get the same solutions from a slightly different and more general equation, which is not the derivative of the original equation? The answer is yes. Take the case of the Schwarzshild solution. It is the unique spherically symmetric solution of the Einstein vacuum equation, .. = 0. It can a
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Kinematical Consequences of Inertial Forces in General Relativity,on is an indicator of the characteristic of a body that determines its motion. Whereas according to Newton’s law of motion, a body’s state of rest or of uniform motion does in no way characterise its inertia, any change in this state depends upon its inertia. As the change of state can be recorded o
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Neutron Stars and Relativistic Gravity,tic gravity can be understood as the warping of space-time near any object that has mass. Consider the following examples. In Newtonian gravity, a planet orbits around a star in an ellipse. In relativistic gravity the orbit is not a closed curve; it is approximately an ellipse, whose major axis prec
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