炭酸塩に富んだ地殻の沈殿は,深い炭素と塩素のサイクルを駆動する
Chunfei Chen1, Michael W Förster2,3, Stephen F Foley2,3
1School of Natural Sciences, Macquarie University, North Ryde, New South Wales, Australia. chfchen2016@hotmail.com.
Nature
|August 9, 2023
まとめ
炭酸塩が豊富な岩石は,深いマントルに吸収され,炭素と塩素を効果的にリサイクルし,メソプロテロゾイク期以来,地球の居住可能性とマントルの組成に影響を与えています. このプロセスは古代の地質学的特徴と マントルの貯水池を説明します
科学分野:
- 地化学
- ペトロロジー
- 惑星科学
背景:
- マントルと大気間の炭素と塩素の流れは 惑星の居住可能性にとって不可欠です
- 沈殿板からの流体損失は,深層マントルの炭素と塩素の供給を防ぐと考えられていた.
研究 の 目的:
- 潜水中の炭素と塩素の運命を調査するために
- 深い炭素循環とマントルの進化における 役割を理解するために
主な方法:
- 高圧実験用ペトロロジー
- 炭酸塩に富んだ地殻岩と水性炭酸塩の溶融の分析
主要な成果:
- ほとんどの炭酸塩 (>75 wt %) は,スブダクションスラブでの脱酸化と融解に耐えられる.
- KClとNaClは溶け物から結晶化し,塩素を残基に閉じ込めます.
- 炭酸塩に富んだ岩石の沈殿は 炭素と塩素を 深いマントルに効果的に再利用します
結論:
- 炭酸塩に富んだ岩石の沈殿が メソプロテロゾイク時代から深層の炭素循環を牽引してきた.
- この過程で大気中のCO2が減少し,マントルの貯水池が形成された.
- 最適な炭素と塩素の沈殿は,エクロジットのダイヤモンドの年齢とHIMUマントルの源泉形成を説明する可能性があります.
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