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Updated: Jul 12, 2026

06:14
Simulating Imaging of Large Scale Radio Arrays on the Lunar Surface
Published on: July 30, 2020
まとめ
この研究では,月面の土壌と岩石のサンプルの熱放射線特性を測定しました. 発見は,月面の熱的行動と宇宙船の熱管理を理解するために重要なデータを提供します.
科学分野:
- 地質物理学 地質物理学とは地質物理学です.
- マテリアルサイエンス 材料科学
- 放射能の移転について
背景:
- 月面の熱モデリングには,月面のレゴリティの正確な熱放射線データが不可欠です.
- 月面の物質が熱放射線とどのように相互作用するかを理解することは,ミッション計画と地表作戦に不可欠です.
研究 の 目的:
- 月の細部と様々な月の岩からのチップの熱放射線特性を特徴付けるために.
- 月面物質の反射力に対する圧力と照明の角度の影響を調査する.
- 真空条件下での月の材料の熱伝導性を決定するために.
主な方法:
- 0.5〜2.0ミクロンの波長範囲で月の細部とチップの方向的および双方向的反射力を測定しました.
- 様々なインシデンスと照明の角度 (最大60度) で得られた反射率データ.
- 200〜400ケルヴィンまでの温度範囲で真空条件を用いて熱伝導性を決定した.
主要な成果:
- 方向性および双方向性反射性能は,月の細部とチップのために定量化されました.
- シミュレートされた月面の真空条件下で熱伝導度測定が成功しました.
- スペクトル反射率と熱伝導率に関するデータは,月面の熱行動に関する洞察を提供します.
結論:
- 測定された熱放射線特性は,月の熱モデルに貴重なデータを提供します.
- これらの特性を理解することは,月面ミッションのための熱制御システムを設計するのに役立ちます.
- この研究は,地球外物質の熱特性に関する基本的な知識に寄与しています.
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