Diversity of planetary systems in low-mass disks Terrestrial-type planet formation and water delivery

被引:15
作者
Ronco, M. P. [1 ]
de Elia, G. C.
机构
[1] Univ Nacl La Plata, Fac Ciencias Astron & Geofis, RA-1900 La Plata, Buenos Aires, Argentina
关键词
astrobiology; methods: numerical; protoplanetary disks; EARTH-LIKE PLANETS; HIGH-RESOLUTION SIMULATIONS; HABITABLE ZONE; MINIMUM-MASS; SOLAR-SYSTEM; EXTRASOLAR NEBULA; GIANT PLANETS; SNOW LINE; ACCRETION; STARS;
D O I
10.1051/0004-6361/201323313
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Context. Several studies, observational and theoretical, suggest that planetary systems with only rocky planets are the most common in the Universe. Aims. We study the diversity of planetary systems that might form around Sun-like stars in low-mass disks without gas-giant planets. We focus especially on the formation process of terrestrial planets in the habitable zone (HZ) and analyze their water contents with the goal to determine systems of astrobiological interest. In addition, we study the formation of planets on wide orbits because they can be detected with the microlensing technique. Methods. N-body simulations of high resolution were developed for a wide range of surface density profiles. A bimodal distribution of planetesimals and planetary embryos with different physical and orbital configurations was used to simulate the planetary accretion process. The surface density profile combines a power law for the inside of the disk of the form r(-gamma), with an exponential decay to the outside. We performed simulations adopting a disk of 0.03 M-circle plus and values of gamma = 0.5, 1 and 1.5. Results. All our simulations form planets in the HZ with different masses and final water contents depending on the three different profiles. For gamma = 0.5, our simulations produce three planets in the HZ with masses ranging from 0.03 M-circle plus to 0.1 M-circle plus and water contents between 0.2 and 16 Earth oceans (1 Earth ocean = 2.8 x 10(-4) Me). For gamma = 1, three planets form in the HZ with masses between 0.18 M-circle plus and 0.52 M-circle plus and water contents from 34 to 167 Earth oceans. Finally, for gamma = 1.5, we find four planets in the HZ with masses ranging from 0.66 M-circle plus to 2.21 M-circle plus and water contents between 192 and 2326 Earth oceans. This profile shows distinctive results because it is the only one of those studied here that leads to the formation of water worlds. Conclusions. Since planetary systems with gamma = 1 and 1.5 present planets in the HZ with suitable masses to retain a long-lived atmosphere and to maintain plate tectonics, they seem to be the most promising candidates to be potentially habitable. Particularly, these systems form Earths and Super-Earths of at least 3 M-circle plus around the snow line, which can be discovered by the microlensing technique.
引用
收藏
页数:13
相关论文
共 38 条
  • [31] Habitable Planet Formation around Low-mass Stars: Rapid Accretion, Rapid Debris Removal, and the Essential Contribution of External Giants
    Clement, Matthew S.
    Quintana, Elisa, V
    Quarles, Billy L.
    ASTROPHYSICAL JOURNAL, 2022, 928 (01)
  • [32] LOW-MASS COMPANIONS FOR FIVE SOLAR-TYPE STARS FROM THE MAGELLAN PLANET SEARCH PROGRAM
    Minniti, Dante
    Butler, R. Paul
    Lopez-Morales, Mercedes
    Shectman, Stephen A.
    Adams, Fred C.
    Arriagada, Pamela
    Boss, Alan P.
    Chambers, John E.
    ASTROPHYSICAL JOURNAL, 2009, 693 (02) : 1424 - 1430
  • [33] Formation of planetary systems by pebble accretion and migration How the radial pebble flux determines a terrestrial-planet or super-Earth growth mode
    Lambrechts, Michiel
    Morbidelli, Alessandro
    Jacobson, Seth A.
    Johansen, Anders
    Bitsch, Bertram
    Izidoro, Andre
    Raymond, Sean N.
    ASTRONOMY & ASTROPHYSICS, 2019, 627
  • [34] Early Water Delivery to Terrestrial Planet Regions during the Stages of Jupiter's Formation and Migration in the Grand Tack Model
    Ogihara, Masahiro
    Genda, Hidenori
    Sekine, Yasuhito
    PLANETARY SCIENCE JOURNAL, 2023, 4 (02):
  • [35] SPITZER OBSERVATIONS OF THE λ ORIONIS CLUSTER. II. DISKS AROUND SOLAR-TYPE AND LOW-MASS STARS
    Hernandez, Jesus
    Morales-Calderon, Maria
    Calvet, Nuria
    Hartmann, L.
    Muzerolle, J.
    Gutermuth, R.
    Luhman, K. L.
    Stauffer, J.
    ASTROPHYSICAL JOURNAL, 2010, 722 (02) : 1226 - 1239
  • [36] FORMATION OF BLACK HOLE LOW-MASS X-RAY BINARIES IN HIERARCHICAL TRIPLE SYSTEMS
    Naoz, Smadar
    Fragos, Tassos
    Geller, Aaron
    Stephan, Alexander P.
    Rasio, Frederic A.
    ASTROPHYSICAL JOURNAL LETTERS, 2016, 822 (02)
  • [37] Characterizing K2 Candidate Planetary Systems Orbiting Low-mass Stars. III. A High Mass and Low Envelope Fraction for the Warm Neptune K2-55b
    Dressing, Courtney D.
    Sinukoff, Evan
    Fulton, Benjamin J.
    Lopez, Eric D.
    Beichman, Charles A.
    Howard, Andrew W.
    Knutson, Heather A.
    Werner, Michael
    Benneke, Bjorn
    Crossfield, Ian J. M.
    Isaacson, Howard
    Krick, Jessica
    Gorjian, Varoujan
    Livingston, John
    Petigura, Erik A.
    Schlieder, Joshua E.
    Akeson, Rachel L.
    Batygin, Konstantin
    Christiansen, Jessie L.
    Ciardi, David R.
    Crepp, Justin R.
    Gonzales, Erica J.
    Hardegree-Ullman, Kevin
    Hirsch, Lea A.
    Kosiarek, Molly
    Weiss, Lauren M.
    ASTRONOMICAL JOURNAL, 2018, 156 (02)
  • [38] Early Planet Formation in Embedded Disks (eDisk). VIII. A Small Protostellar Disk around the Extremely Low Mass and Young Class 0 Protostar IRAS 15398-3359
    Thieme, Travis J.
    Lai, Shih-Ping
    Ohashi, Nagayoshi
    Tobin, John J.
    Jorgensen, Jes K.
    Sai, Jinshi
    Aso, Yusuke
    Williams, Jonathan P.
    Yamato, Yoshihide
    Aikawa, Yuri
    de Gregorio-Monsalvo, Itziar
    Han, Ilseung
    Kwon, Woojin
    Lee, Chang Won
    Lee, Jeong-Eun
    Li, Zhi-Yun
    Lin, Zhe-Yu Daniel
    Looney, Leslie W.
    Narayanan, Suchitra
    Phuong, Nguyen Thi
    Plunkett, Adele L.
    Santamaria-Miranda, Alejandro
    Sharma, Rajeeb
    Takakuwa, Shigehisa
    Yen, Hsi-Wei
    ASTROPHYSICAL JOURNAL, 2023, 958 (01)