Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events

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Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events. / Kremer, Kyle; D'Orazio, Daniel J.; Samsing, Johan; Chatterjee, Sourav; Rasio, Frederic A.

I: Astrophysical Journal, Bind 885, Nr. 1, 2, 01.11.2019.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Kremer, K, D'Orazio, DJ, Samsing, J, Chatterjee, S & Rasio, FA 2019, 'Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events', Astrophysical Journal, bind 885, nr. 1, 2. https://doi.org/10.3847/1538-4357/ab44d1

APA

Kremer, K., D'Orazio, D. J., Samsing, J., Chatterjee, S., & Rasio, F. A. (2019). Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events. Astrophysical Journal, 885(1), [2]. https://doi.org/10.3847/1538-4357/ab44d1

Vancouver

Kremer K, D'Orazio DJ, Samsing J, Chatterjee S, Rasio FA. Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events. Astrophysical Journal. 2019 nov. 1;885(1). 2. https://doi.org/10.3847/1538-4357/ab44d1

Author

Kremer, Kyle ; D'Orazio, Daniel J. ; Samsing, Johan ; Chatterjee, Sourav ; Rasio, Frederic A. / Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events. I: Astrophysical Journal. 2019 ; Bind 885, Nr. 1.

Bibtex

@article{090b8087a8f24a11b8c79129f3cc4f3f,
title = "Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events",
abstract = "Among the growing list of confirmed exoplanets, the number of planets identified in dense star clusters remains sparse. Previous analyses have suggested that this may be due in part to dynamical interactions that can unbind planets from their host stars, limiting the survival of planetary systems in clusters. Thus, alternative detection strategies may be necessary to study planets in clusters that may no longer be bound to a host. Here, we use N-body models to explore the evolution of planetary systems in dense star clusters. Depending on various initial conditions, we show that 10%-50% of primordial planetary systems are broken through dynamical encounters over a cluster's full lifetime, populating clusters with {"}free-floating{"} planets. Furthermore, a large number (30%-80%) of planets are ejected from their host cluster through strong dynamical encounters and/or tidal loss. Additionally, we show that planets naturally mix with stellar-mass black holes (BHs) in the cores of their host cluster. As a consequence, up to a few hundred planets will be tidally disrupted through close passages of BHs. We show that these BH-planet tidal disruption events (TDEs) occur in clusters at a rate of up to 10-5 yr-1 in a Milky-Way-type galaxy. In principle, these BH-planet TDEs may be detected by upcoming transient surveys such as the Large Synoptic Survey Telescope at a rate of a few events per year, although identification of these events may prove challenging. The observed rate of BH-planet TDEs could place new constraints upon the formation and survival of planetary systems and BHs in dense star clusters.",
author = "Kyle Kremer and D'Orazio, {Daniel J.} and Johan Samsing and Sourav Chatterjee and Rasio, {Frederic A.}",
year = "2019",
month = nov,
day = "1",
doi = "10.3847/1538-4357/ab44d1",
language = "English",
volume = "885",
journal = "Astrophysical Journal",
issn = "0004-637X",
publisher = "Institute of Physics Publishing, Inc",
number = "1",

}

RIS

TY - JOUR

T1 - Probing the Survival of Planetary Systems in Globular Clusters with Tidal Disruption Events

AU - Kremer, Kyle

AU - D'Orazio, Daniel J.

AU - Samsing, Johan

AU - Chatterjee, Sourav

AU - Rasio, Frederic A.

PY - 2019/11/1

Y1 - 2019/11/1

N2 - Among the growing list of confirmed exoplanets, the number of planets identified in dense star clusters remains sparse. Previous analyses have suggested that this may be due in part to dynamical interactions that can unbind planets from their host stars, limiting the survival of planetary systems in clusters. Thus, alternative detection strategies may be necessary to study planets in clusters that may no longer be bound to a host. Here, we use N-body models to explore the evolution of planetary systems in dense star clusters. Depending on various initial conditions, we show that 10%-50% of primordial planetary systems are broken through dynamical encounters over a cluster's full lifetime, populating clusters with "free-floating" planets. Furthermore, a large number (30%-80%) of planets are ejected from their host cluster through strong dynamical encounters and/or tidal loss. Additionally, we show that planets naturally mix with stellar-mass black holes (BHs) in the cores of their host cluster. As a consequence, up to a few hundred planets will be tidally disrupted through close passages of BHs. We show that these BH-planet tidal disruption events (TDEs) occur in clusters at a rate of up to 10-5 yr-1 in a Milky-Way-type galaxy. In principle, these BH-planet TDEs may be detected by upcoming transient surveys such as the Large Synoptic Survey Telescope at a rate of a few events per year, although identification of these events may prove challenging. The observed rate of BH-planet TDEs could place new constraints upon the formation and survival of planetary systems and BHs in dense star clusters.

AB - Among the growing list of confirmed exoplanets, the number of planets identified in dense star clusters remains sparse. Previous analyses have suggested that this may be due in part to dynamical interactions that can unbind planets from their host stars, limiting the survival of planetary systems in clusters. Thus, alternative detection strategies may be necessary to study planets in clusters that may no longer be bound to a host. Here, we use N-body models to explore the evolution of planetary systems in dense star clusters. Depending on various initial conditions, we show that 10%-50% of primordial planetary systems are broken through dynamical encounters over a cluster's full lifetime, populating clusters with "free-floating" planets. Furthermore, a large number (30%-80%) of planets are ejected from their host cluster through strong dynamical encounters and/or tidal loss. Additionally, we show that planets naturally mix with stellar-mass black holes (BHs) in the cores of their host cluster. As a consequence, up to a few hundred planets will be tidally disrupted through close passages of BHs. We show that these BH-planet tidal disruption events (TDEs) occur in clusters at a rate of up to 10-5 yr-1 in a Milky-Way-type galaxy. In principle, these BH-planet TDEs may be detected by upcoming transient surveys such as the Large Synoptic Survey Telescope at a rate of a few events per year, although identification of these events may prove challenging. The observed rate of BH-planet TDEs could place new constraints upon the formation and survival of planetary systems and BHs in dense star clusters.

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U2 - 10.3847/1538-4357/ab44d1

DO - 10.3847/1538-4357/ab44d1

M3 - Journal article

AN - SCOPUS:85075124195

VL - 885

JO - Astrophysical Journal

JF - Astrophysical Journal

SN - 0004-637X

IS - 1

M1 - 2

ER -

ID: 236270748