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Compositional mapping of planetary moons by mass spectrometry of dust ejecta

机译:尘埃喷射质谱法对行星卫星进行成分映射

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摘要

Classical methods to analyze the surface composition of atmosphereless planetary objects from an orbiter are IR and gamma ray spectroscopy and neutron backscatter measurements. The idea to analyze surface properties with an in-situ instrument has been proposed by Johnson et al. (1998). There, it was suggested to analyze Europa's thin atmosphere with an ion and neutral gas spectrometer. Since the atmospheric components are released by sputtering of the moon's surface, they provide a link to surface composition. Here we present an improved, complementary method to analyze rocky or icy dust particles as samples of planetary objects from which they were ejected. Such particles, generated by the ambient meteoroid bombardment that erodes the surface, are naturally present on all atmosphereless moons and planets. The planetary bodies are enshrouded in clouds of ballistic dust particles, which are characteristic samples of their surfaces. In situ mass spectroscopic analysis of these dust particles impacting onto a detector of an orbiting spacecraft reveals their composition. Recent instrumental developments and tests allow the chemical characterization of ice and dust particles encountered at speeds as low as 1 km/s and an accurate reconstruction of their trajectories. Depending on the sampling altitude, a dust trajectory sensor can trace back the origin of each analyzed grain with about 10 km accuracy at the surface. Since the detection rates are of the order of thousand per orbit, a spatially resolved mapping of the surface composition can be achieved. Certain bodies (e.g., Europa) with particularly dense dust clouds, could provide impact statistics that allow for compositional mapping even on single flybys. Dust impact velocities are in general sufficiently high at orbiters about planetary objects with a radius > 1000 km and with only a thin or no atmosphere. In this work we focus on the scientific benefit of a dust spectrometer on a spacecraft orbiting Earth's Moon as well as Jupiter's Galilean satellites. This 'dust spectrometer1 approach provides key chemical and isotopic constraints for varying provinces or geological formations on the surfaces, leading to better under standing of the body's geological evolution.
机译:分析来自轨道器的无大气层行星物体表面成分的经典方法是红外和伽马射线光谱法以及中子背向散射测量。 Johnson等人提出了用现场仪器分析表面性质的想法。 (1998)。有人建议用离子和中性气体光谱仪分析欧罗巴的稀薄大气。由于大气成分是通过溅射月球表面释放的,因此它们提供了与表面成分的联系。在这里,我们提出了一种改进的补充方法来分析岩石或冰冷的尘埃颗粒,作为从中喷射出的行星物体的样本。由周围的流星体轰击侵蚀表面产生的此类粒子自然存在于所有无大气层的卫星和行星上。行星体被弹道灰尘颗粒云所笼罩,这是它们表面的特征样本。这些尘埃粒子撞击在轨航天器探测器上的原位质谱分析揭示了它们的成分。最近的仪器开发和测试允许以低至1 km / s的速度对遇到的冰和尘埃颗粒进行化学表征,并精确重建其轨迹。根据采样高度,灰尘轨迹传感器可以在地面上以大约10 km的精度追溯每种分析谷物的原点。由于检测率约为每轨道一千,因此可以实现表面成分的空间分辨映射。某些尘埃云特别密集的物体(例如欧罗巴)可以提供影响统计数据,即使在单个飞越时也可以进行成分映射。绕轨道运行的尘埃撞击速度通常足够高,这些行星绕着半径> 1000 km且只有稀薄或没有大气层的行星物体。在这项工作中,我们将重点放在绕月球飞行的航天器上的尘埃光谱仪以及木星的伽利略卫星的科学收益。这种“尘埃光谱仪1”方法为表面上不同的省份或地质构造提供了关键的化学和同位素约束,从而更好地了解了人体的地质演化情况。

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  • 来源
    《Planetary and space science》 |2011年第14期|p.1815-1825|共11页
  • 作者单位

    Institut fur Geowissenschaften, Universitat Heidelberg, Germany,Max-Planck-lnstitut for Nuclear Physics, Heidelberg, Germany;

    Max-Planck-lnstitut for Nuclear Physics, Heidelberg, Germany,LASP, University of Colorado, Boulder, CO, USA;

    LASP, University of Colorado, Boulder, CO, USA;

    Max-Planck-lnstitut for Nuclear Physics, Heidelberg, Germany,LASP, University of Colorado, Boulder, CO, USA;

    Max-Planck-lnstitut for Solar System Research, Katlenburg-Lindau, Germany;

    Institut fur Physik und Astronomie, Universitat Potsdam Potsdam-Golm, Germany;

    Institut fur Physik und Astronomie, Universitat Potsdam Potsdam-Golm, Germany;

    Max-Planck-lnstitut for Nuclear Physics, Heidelberg, Germany;

    LASP, University of Colorado, Boulder, CO, USA;

    Institut fur Geowissenschaften, Universitat Heidelberg, Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    moon; europa; ganymede; dust; surface composition; spectrometry;

    机译:月亮;欧罗巴;花木;灰尘;表面成分;光谱法;

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