Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles charge

Abstract We analyze the extraction of the rotational energy of a Kerr black hole (BH) endowed with a test charge and surrounded by an external test magnetic field and ionized low-density matter. For a magnetic field parallel to the BH spin, electrons move outward(inward) and protons inward(outward)...

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Main Authors: J. A. Rueda, R. Ruffini
Format: Article
Language:English
Published: SpringerOpen 2024-11-01
Series:European Physical Journal C: Particles and Fields
Online Access:https://doi.org/10.1140/epjc/s10052-024-13459-1
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author J. A. Rueda
R. Ruffini
author_facet J. A. Rueda
R. Ruffini
author_sort J. A. Rueda
collection DOAJ
description Abstract We analyze the extraction of the rotational energy of a Kerr black hole (BH) endowed with a test charge and surrounded by an external test magnetic field and ionized low-density matter. For a magnetic field parallel to the BH spin, electrons move outward(inward) and protons inward(outward) in a region around the BH poles(equator). For zero charge, the polar region comprises spherical polar angles $$-60^\circ \lesssim \theta \lesssim 60^\circ $$ - 60 ∘ ≲ θ ≲ 60 ∘ and the equatorial region $$60^\circ \lesssim \theta \lesssim 120^\circ $$ 60 ∘ ≲ θ ≲ 120 ∘ . The polar region shrinks for positive charge, and the equatorial region enlarges. For an isotropic particle density, we argue the BH could experience a cyclic behavior: starting from a zero charge, it accretes more polar protons than equatorial electrons, gaining net positive charge, energy and angular momentum. Then, the shrinking(enlarging) of the polar(equatorial) region makes it accrete more equatorial electrons than polar protons, gaining net negative charge, energy, and angular momentum. In this phase, the BH rotational energy is extracted. The extraction process continues until the new enlargement of the polar region reverses the situation, and the cycle repeats. We show that this electrodynamical process produces a relatively limited increase of the BH irreducible mass compared to gravitational mechanisms like the Penrose process, hence being a more efficient and promising mechanism for extracting the BH rotational energy.
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spelling doaj-art-446b131725fc42008f769c7ecb3e75632025-08-20T02:43:33ZengSpringerOpenEuropean Physical Journal C: Particles and Fields1434-60522024-11-01841111010.1140/epjc/s10052-024-13459-1Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles chargeJ. A. Rueda0R. Ruffini1ICRANetICRANetAbstract We analyze the extraction of the rotational energy of a Kerr black hole (BH) endowed with a test charge and surrounded by an external test magnetic field and ionized low-density matter. For a magnetic field parallel to the BH spin, electrons move outward(inward) and protons inward(outward) in a region around the BH poles(equator). For zero charge, the polar region comprises spherical polar angles $$-60^\circ \lesssim \theta \lesssim 60^\circ $$ - 60 ∘ ≲ θ ≲ 60 ∘ and the equatorial region $$60^\circ \lesssim \theta \lesssim 120^\circ $$ 60 ∘ ≲ θ ≲ 120 ∘ . The polar region shrinks for positive charge, and the equatorial region enlarges. For an isotropic particle density, we argue the BH could experience a cyclic behavior: starting from a zero charge, it accretes more polar protons than equatorial electrons, gaining net positive charge, energy and angular momentum. Then, the shrinking(enlarging) of the polar(equatorial) region makes it accrete more equatorial electrons than polar protons, gaining net negative charge, energy, and angular momentum. In this phase, the BH rotational energy is extracted. The extraction process continues until the new enlargement of the polar region reverses the situation, and the cycle repeats. We show that this electrodynamical process produces a relatively limited increase of the BH irreducible mass compared to gravitational mechanisms like the Penrose process, hence being a more efficient and promising mechanism for extracting the BH rotational energy.https://doi.org/10.1140/epjc/s10052-024-13459-1
spellingShingle J. A. Rueda
R. Ruffini
Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles charge
European Physical Journal C: Particles and Fields
title Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles charge
title_full Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles charge
title_fullStr Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles charge
title_full_unstemmed Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles charge
title_short Kerr black hole energy extraction, irreducible mass feedback, and the effect of captured particles charge
title_sort kerr black hole energy extraction irreducible mass feedback and the effect of captured particles charge
url https://doi.org/10.1140/epjc/s10052-024-13459-1
work_keys_str_mv AT jarueda kerrblackholeenergyextractionirreduciblemassfeedbackandtheeffectofcapturedparticlescharge
AT rruffini kerrblackholeenergyextractionirreduciblemassfeedbackandtheeffectofcapturedparticlescharge