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Earth Without Life: A Systems Model of a Global Abiotic Nitrogen Cycle

机译:没有生命的地球:全球非生物氮循环的系统模型

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摘要

Nitrogen is the major component of Earth's atmosphere and plays important roles in biochemistry. Biological systems have evolved a variety of mechanisms for fixing and recycling environmental nitrogen sources, which links them tightly with terrestrial nitrogen reservoirs. However, prior to the emergence of biology, all nitrogen cycling was abiological, and this cycling may have set the stage for the origin of life. It is of interest to understand how nitrogen cycling would proceed on terrestrial planets with comparable geodynamic activity to Earth, but on which life does not arise. We constructed a kinetic mass-flux model of nitrogen cycling in its various major chemical forms (e.g., N-2, reduced (NHx) and oxidized (NOx) species) between major planetary reservoirs (the atmosphere, oceans, crust, and mantle) and included inputs from space. The total amount of nitrogen species that can be accommodated in each reservoir, and the ways in which fluxes and reservoir sizes may have changed over time in the absence of biology, are explored. Given a partition of volcanism between arc and hotspot types similar to the modern ones, our global nitrogen cycling model predicts a significant increase in oceanic nitrogen content over time, mostly as NHx, while atmospheric N-2 content could be lower than today. The transport timescales between reservoirs are fast compared to the evolution of the environment; thus atmospheric composition is tightly linked to surface and interior processes. Key Words: Nitrogen cycleAbioticPlanetologyAstrobiology. Astrobiology 18, 897-914.
机译:氮是地球大气的主要成分,在生物化学中起着重要作用。生物系统已发展出多种机制来固定和回收环境氮源,并将其与地面氮库紧密相连。但是,在生物学出现之前,所有氮循环都是非生物循环的,这种循环可能为生命起源奠定了基础。有趣的是要了解氮循环将如何在地球动力学活动与地球相当的陆地行星上进行,但不会产生生命。我们构建了主要行星储层(大气层,海洋,地壳和地幔)之间各种主要化学形式(例如N-2,还原(NHx)和氧化(NOx)物种)的氮循环的动力学质量通量模型。并包括来自太空的输入。探索了每个储层中可容纳的氮物种总量,以及在没有生物的情况下通量和储层大小随时间变化的方式。鉴于弧形和热点类型之间的火山划分与现代相似,我们的全球氮循环模型预测,随着时间的推移,海洋氮含量将显着增加,大部分为NHx,而大气中的N-2含量可能会低于今天。与环境的演变相比,水库之间的运输时间尺度很快。因此,大气成分与表面和内部过程紧密相关。关键词:氮循环;非生物行星;天体生物学。天文生物学18,897-914。

著录项

  • 来源
    《Astrobiology》 |2018年第7期|897-914|共18页
  • 作者单位

    Tokyo Inst Technol, Earth Life Sci Inst, Tokyo, Japan;

    Tokyo Inst Technol, Earth Life Sci Inst, Tokyo, Japan;

    Tokyo Inst Technol, Earth Life Sci Inst, Tokyo, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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