日本地球惑星科学連合2025年大会

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セッション記号 P (宇宙惑星科学) » P-PS 惑星科学

[P-PS09] 火星と火星衛星

2025年5月27日(火) 09:00 〜 10:30 304 (幕張メッセ国際会議場)

コンビーナ:宮本 英昭(東京大学)、中村 智樹(東北大学大学院理学研究科地学専攻)、玄田 英典(東京工業大学 地球生命研究所)、今村 剛(東京大学大学院 新領域創成科学研究科)、座長:宮本 英昭(東京大学)、中村 智樹(東北大学大学院理学研究科地学専攻)、玄田 英典(東京工業大学 地球生命研究所)、松本 晃治(国立天文台RISE月惑星探査プロジェクト)、和田 浩二(千葉工業大学惑星探査研究センター)

09:45 〜 10:00

[PPS09-04] Aerodynamic heating of Martian moon precursors prior to gas-drag capture

*松岡 亮1倉本 圭1,2 (1.北海道大学理学研究院地球惑星科学部門、2.宇宙航空研究開発機構 宇宙科学研究所)

キーワード:火星衛星、小惑星、捕獲説

One proposed source of water on terrestrial planets is the delivery of icy or water-bearing planetesimals from beyond the snowline via gravitational scattering by Jupiter (e.g. Raymond et al. 2006, 2009; Walsh et al. 2011). The spectral similarity between the Martian moons and D-type asteroids (e.g., Rivkin et al. 2002), which supports the capture theory, seems consistent with this scenario. If this hypothesis is correct, MMX may provide physical evidence of such a water delivery process (e.g., Kuramoto 2024).

The gas-drag capture theory for the origin of the Martian moons (Hunten 1979; Sasaki 1990) proposes that Mars captured planetesimals from heliocentric orbit through the action of aerodynamic drag exerted by a primordial atmosphere, which was formed by trapping gas from the primordial solar nebula. This hypothesis naturally explains not only the spectral properties of the Martian moons but also their orbital characteristics through three-body dynamics, including the effects of solar gravity (Matsuoka & Kuramoto 2023, JpGU). Since this hypothesis assumes a primordial solar nebula environment, if the moon precursors underwent orbital evolution via scattering by Jupiter, the transition of these bodies into high-random-velocity orbits just after scattering would have resulted in significant aerodynamic heating.

In this study, we apply the aerodynamic heating model for planetesimal by Tanaka et al. (2013) to the model orbits of Martian moon precursors proposed by Matsuoka & Kuramoto (2023) and discuss the possible thermal history of Martian moon material within this scenario.