New framework extends Hawking black hole laws to dynamic cases

Scientists have introduced an updated approach to black hole thermodynamics that applies to objects that are growing, merging or evaporating. The work, led by researchers at Penn State, replaces the traditional event horizon with a dynamical horizon to overcome limitations in Stephen Hawking's original framework. It was published in Physical Review Letters.

Abhay Ashtekar, Atherton University Professor and Evan Pugh Professor of Physics Emeritus at Penn State, led the team. He noted that Hawking's laws were formulated only for black holes at equilibrium. "They were formulated for black holes at equilibrium, or unchanging over time, but black holes are constantly changing, they form, merge and eventually evaporate," Ashtekar said.

The new entropy measure connects more directly to a black hole's spin and energy. Co-author Daniel E. Paraizo explained that earlier models suggested infinite entropy and zero temperature, which conflicted with thermodynamics until Hawking incorporated quantum effects.

Co-author Jonathan Shu highlighted that event horizons rely on future events and fail for dynamic black holes. The dynamical horizon allows the first and second laws of thermodynamics to apply to nonequilibrium cases, supporting studies of mergers detected by LIGO-Virgo-KAGRA and evaporating black holes.

The research received support from the Penn State Atherton Professorship Program and the Eberly College of Science.

관련 기사

A mathematician at Queen Mary University of London has developed a framework called Gravity from Entropy that may reconcile the universe's increasing total entropy with the emergence of complex structures such as galaxies, stars and life.

AI에 의해 보고됨

A new theoretical model suggests black holes leave behind stable remnants that preserve quantum information, potentially solving a long-standing puzzle in physics.

New analysis of gravitational wave data indicates that the universe's heaviest black holes arise from multiple collisions inside dense star clusters instead of single stellar collapses.

AI에 의해 보고됨

New research reinterprets the Einstein-Rosen bridge as a connection between two directions of time rather than a spatial shortcut. The study suggests this view could resolve the black hole information paradox and point to a universe that existed before the Big Bang. It was published in the journal Classical and Quantum Gravity.

이 웹사이트는 쿠키를 사용합니다

사이트를 개선하기 위해 분석을 위한 쿠키를 사용합니다. 자세한 내용은 개인정보 보호 정책을 읽으세요.
거부