冥王星 と その 宇宙 環境 の 相互作用: 太陽 風,エネルギー の 粒子,塵
F Bagenal1, M Horányi2, D J McComas3
1Laboratory of Atmospheric and Space Physics, University of Colorado, Boulder, CO 80600, USA. bagenal@colorado.edu.
まとめ
"ニュー・ホライゾンズ"号は冥王星を発見した
科学分野:
- 惑星科学
- ヘリオフィジックス
- 宇宙物理学
背景:
- 2015年7月14日,新地平線宇宙船が冥王星を通過した.
- 冥王星の宇宙環境を理解することは 惑星科学にとって極めて重要です
研究 の 目的:
- 冥王星周辺の宇宙環境を測るため
- 冥王星と太陽風の相互作用を分析する
主な方法:
- スワップ,ペプシ,そしてヴェネチア・バーニー・スタッダント・ダスト・カウンター.
- 冥王星周辺の太陽風,エネルギー粒子,塵の密度を測定した.
主要な成果:
- 冥王星周りの太陽風 (SWAP) 装置は,冥王星から太陽に向かって (冥王星半径6メートル以内) コンパクトな相互作用領域を検出した.
- 冥王星のエネルギー粒子スペクトロメーター科学調査 (PEPSSI) のデータは,イオン加速/偏移を示し,冥王星の後ろに減少した超熱粒子フローを観測した.
- ベネチア・バーニー学生の塵計は,冥王星系における塵密度の上限を設定した (<4.6 km−3).
結論:
- 冥王星と太陽風の相互作用領域は予想より小さく,大気逃逸の減少と高い太陽風の流れを示唆しています.
- 観測された粒子の行動と低い塵の密度は,冥王星システムのユニークな宇宙環境の洞察を提供します.
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