Scinovex
articleTop 1% cited

The singularities of gravitational collapse and cosmology

S. W. HawkingRoger Penrose

Abstract

Abstract A new theorem on space-time singularities is presented which largely incorporates and generalizes the previously known results. The theorem implies that space-time singularities are to be expected if either the universe is spatially closed or there is an ‘object’ undergoing relativistic gravitational collapse (existence of a trapped surface) or there is a point p whose past null cone encounters sufficient matter that the divergence of the null rays through p changes sign somewhere to the past of p (i. e. there is a minimum apparent solid angle, as viewed from p for small objects of given size). The theorem applies if the following four physical assumptions are made: (i) Einstein’s equations hold (with zero or negative cosmological constant), (ii) the energy density is nowhere less than minus each principal pressure nor less than minus the sum of the three principal pressures (the ‘energy condition’), (iii) there are no closed timelike curves, (iv) every timelike or null geodesic enters a region where the curvature is not specially alined with the geodesic. (This last condition would hold in any sufficiently general physically realistic model.) In common with earlier results, timelike or null geodesic incompleteness is used here as the indication of the presence of space-time singularities. No assumption concerning existence of a global Cauchy hypersurface is required for the present theorem.

Cosmology and Gravitation TheoriesAdvanced Differential Geometry ResearchBlack Holes and Theoretical PhysicsEnergy conditionGeodesics in general relativityGravitational singularityGeodesicNull (SQL)PhysicsCosmic censorship hypothesisHypersurfaceMathematical physicsCosmological constant
Citations
1,978
FWCI
20.39
field-weighted impact
References
15
Percentile
100%
vs. same field & year
Citations per year
Cited by
Breakdown of predictability in gravitational collapse
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1976 · 2,423 citations
Black holes in general relativity
Communications in Mathematical Physics · 1972 · 1,476 citations
Particle creation by black holes
Communications in Mathematical Physics · 1975 · 12,304 citations
Testing general relativity with present and future astrophysical observations
Classical and Quantum Gravity · 2015 · 1,413 citations
Action integrals and partition functions in quantum gravity
Physical review. D. Particles, fields, gravitation, and cosmology/Physical review. D. Particles and fields · 1977 · 3,251 citations
References
Mach's Principle and a Relativistic Theory of Gravitation
Physical Review · 1961 · 5,409 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.