Quantifying the Key Factors Affecting the Escape of Planetary Atmospheres
The habitability of Earth-like planets is an increasingly important subject in astrophysics and in planetary sciences. Atmospheric escape plays a vital role in the evolution of the habitability of Earth-like planets. By systematically analyzing the numerical simulation results of the interactions be...
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Published in | The Astrophysical journal Vol. 951; no. 2; pp. 136 - 143 |
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Main Authors | , , , |
Format | Journal Article |
Language | English |
Published |
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The American Astronomical Society
01.07.2023
IOP Publishing |
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Abstract | The habitability of Earth-like planets is an increasingly important subject in astrophysics and in planetary sciences. Atmospheric escape plays a vital role in the evolution of the habitability of Earth-like planets. By systematically analyzing the numerical simulation results of the interactions between the planetary atmospheres and the stellar winds, in this work, we evaluate various factors related to the atmospheric nonthermal ion escape rates, including planetary parameters (e.g., mass, density, radius, semimajor axis, etc.) and stellar wind parameters (e.g., density, velocity, and interplanetary magnetic field (IMF) strength). Furthermore, we determine and quantify the key factors affecting the planetary atmospheric nonthermal ion escape rates. Our results show that the correlation coefficients between planetary atmospheric nonthermal ion escape rates and stellar wind density, IMF strength, and the ratio of the planetary radius to the planetary semimajor axis are 0.98 (0.88), 0.95 (0.81), and 0.87 (0.59), respectively, in the scenario of maximum (minimum) dynamic wind pressure. This means that the planetary atmospheric nonthermal ion escape rates increase with the increasing stellar wind density, the increasing IMF strength, and the increasing ratio of the planetary radius to the planetary semimajor axis. Generally, the nonthermal ion escape rates of planetary atmospheres are more sensitive to stellar wind parameters than to others. In addition, we determine the functional relations of the above three significant parameters for evaluating and quantifying the effects of such key physical factors on the nonthermal ion escape rates of the planetary atmospheres. Our findings will be very useful for better understanding the key factors that influence the escapes of planetary atmospheres. |
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AbstractList | The habitability of Earth-like planets is an increasingly important subject in astrophysics and in planetary sciences. Atmospheric escape plays a vital role in the evolution of the habitability of Earth-like planets. By systematically analyzing the numerical simulation results of the interactions between the planetary atmospheres and the stellar winds, in this work, we evaluate various factors related to the atmospheric nonthermal ion escape rates, including planetary parameters (e.g., mass, density, radius, semimajor axis, etc.) and stellar wind parameters (e.g., density, velocity, and interplanetary magnetic field (IMF) strength). Furthermore, we determine and quantify the key factors affecting the planetary atmospheric nonthermal ion escape rates. Our results show that the correlation coefficients between planetary atmospheric nonthermal ion escape rates and stellar wind density, IMF strength, and the ratio of the planetary radius to the planetary semimajor axis are 0.98 (0.88), 0.95 (0.81), and 0.87 (0.59), respectively, in the scenario of maximum (minimum) dynamic wind pressure. This means that the planetary atmospheric nonthermal ion escape rates increase with the increasing stellar wind density, the increasing IMF strength, and the increasing ratio of the planetary radius to the planetary semimajor axis. Generally, the nonthermal ion escape rates of planetary atmospheres are more sensitive to stellar wind parameters than to others. In addition, we determine the functional relations of the above three significant parameters for evaluating and quantifying the effects of such key physical factors on the nonthermal ion escape rates of the planetary atmospheres. Our findings will be very useful for better understanding the key factors that influence the escapes of planetary atmospheres. |
Author | He, H.-Q. Li, Jiao Tong, G.-S. Luo, J. |
Author_xml | – sequence: 1 givenname: J. surname: Luo fullname: Luo, J. organization: Institute of Geology and Geophysics Key Laboratory of Earth and Planetary Physics, Chinese Academy of Sciences, Beijing 100029, People's Republic of China – sequence: 2 givenname: H.-Q. surname: He fullname: He, H.-Q. organization: University of Chinese Academy of Sciences College of Earth and Planetary Sciences, Beijing 100049, People's Republic of China – sequence: 3 givenname: G.-S. surname: Tong fullname: Tong, G.-S. organization: Institute of Geology and Geophysics Key Laboratory of Earth and Planetary Physics, Chinese Academy of Sciences, Beijing 100029, People's Republic of China – sequence: 4 givenname: Jiao surname: Li fullname: Li, Jiao organization: Changsha University of Science and Technology School of Mathematics and Statistics, Changsha 410114, Hunan, People's Republic of China |
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Snippet | The habitability of Earth-like planets is an increasingly important subject in astrophysics and in planetary sciences. Atmospheric escape plays a vital role in... |
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StartPage | 136 |
SubjectTerms | Astrobiology Astrophysics Correlation coefficient Correlation coefficients Density Exoplanet atmospheres Extrasolar planets Habitability Habitable planets Interplanetary magnetic field Ions Magnetic fields Numerical simulations Parameter sensitivity Physical factors Planetary atmospheres Planetary evolution Planets Solar system planets Star-planet interactions Stellar magnetic fields Stellar winds Terrestrial planets Wind Wind pressure |
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Title | Quantifying the Key Factors Affecting the Escape of Planetary Atmospheres |
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