测量金星表面体积元素组成

Jeffrey S. Schweitzer , Ann M. Parsons , Jim Grau , David J. Lawrence , Timothy P. McClanahan , Jeffrey Miles , Patrick Peplowski , Luke Perkins , Richard Starr
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摘要

由于金星表面的极端环境(462˚C, 93 bar压力),测量金星地下的大量元素组成具有挑战性。因此,降落在金星表面的探测器所提供的仪器必须装在一个压力容器中。高表面温度需要一个热控制系统,使仪器和电子设备尽可能长时间地保持在其工作温度范围内。目前,金星表面探测器只能工作几个小时。因此,着陆器仪器能够在短时间内进行具有统计意义的测量是至关重要的。本文描述了一种仪器,它可以通过使用高能穿透中子和伽马辐射来实现对数千立方厘米材料体积的测量。该仪器由一个脉冲中子发生器(PNG)和一个伽马射线光谱仪(GRS)组成。PNG发射14.1 MeV中子的各向同性脉冲,穿透压力容器壁、致密大气和表面岩石。中子在岩石中引起核反应,产生具有特定元素和核过程能量的伽马射线。因此,探测到的伽马射线的能量确定了存在的元素,它们的强度提供了每种元素的丰度。通过分析GRS光谱,从单个主要、次要和痕量放射性元素的光谱特征确定金星的元素组成。为了测试这种仪器,斯伦贝谢的Litho Scanner1油井测井工具在美国宇航局戈达德太空飞行中心进行了一系列实验。光刻扫描仪工具安装在大型(1.8米x 1.8米x 0.9米)花岗岩和玄武岩纪念碑上,并在平面几何结构中进行一系列一小时的元素组成测量,更类似于行星着陆器测量。初步分析结果与目标元素分析结果吻合良好。
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Measuring Surface Bulk Elemental Composition on Venus

Bulk elemental composition measurements of the subsurface of Venus are challenging because of the extreme surface environment (462 ˚C, 93 bars pressure). Instruments provided by landed probes on the surface of Venus must therefore be enclosed in a pressure vessel. The high surface temperatures require a thermal control system that keeps the instrumentation and electronics within their operating temperature range for as long as possible. Currently, Venus surface probes can operate for only a few hours. It is therefore crucial that the lander instrumentation be able to make statistically significant measurements in a short time. An instrument is described that can achieve such a measurement over a volume of thousands of cubic centimeters of material by using high energy penetrating neutron and gamma radiation. The instrument consists of a Pulsed Neutron Generator (PNG) and a Gamma-Ray Spectrometer (GRS). The PNG emits isotropic pulses of 14.1 MeV neutrons that penetrate the pressure vessel walls, the dense atmosphere and the surface rock. The neutrons induce nuclear reactions in the rock to produce gamma rays with energies specific to the element and nuclear process involved. Thus the energies of the detected gamma rays identify the elements present and their intensities provide the abundance of each element. The GRS spectra are analyzed to determine the Venus elemental composition from the spectral signature of individual major, minor, and trace radioactive elements. As a test of such an instrument, a Schlumberger Litho Scanner1 oil well logging tool was used in a series of experiments at NASA's Goddard Space Flight Center. The Litho Scanner tool was mounted above large (1.8 m x 1.8 m x .9 m) granite and basalt monuments and made a series of one-hour elemental composition measurements in a planar geometry more similar to a planetary lander measurement. Initial analysis of the results shows good agreement with target elemental assays.

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