Skip to main content
Article
The Basic Physics of the Binary Black Hole Merger GW150914
Faculty Publications
  • Tiffany Summerscales, Andrews University
  • LIGO Scientific Collaboration, LIGO Scientific Collaboration
  • Virgo Collaboration, Virgo Collaboration
Document Type
Article
Publication Date
10-4-2016
Keywords
  • Black hole,
  • Merger
Abstract

The first direct gravitational-wave detection was made by the Advanced Laser Interferometer Gravitational Wave Observatory on September 14, 2015. The GW150914 signal was strong enough to be apparent, without using any waveform model, in the filtered detector strain data. Here, features of the signal visible in the data are analyzed using concepts from Newtonian physics and general relativity, accessible to anyone with a general physics background. The simple analysis presented here is consistent with the fully general-relativistic analyses published elsewhere, in showing that the signal was produced by the inspiral and subsequent merger of two black holes. The black holes were each of approximately , still orbited each other as close as ∼350 km apart and subsequently merged to form a single black hole. Similar reasoning, directly from the data, is used to roughly estimate how far these black holes were from the Earth, and the energy that they radiated in gravitational waves.

Journal Title
Annalen der Physik
First Department
Physics
Citation Information
Tiffany Summerscales, LIGO Scientific Collaboration and Virgo Collaboration. "The Basic Physics of the Binary Black Hole Merger GW150914" (2016) p. 1 - 17
Available at: http://works.bepress.com/tiffany_summerscales/52/