论文标题

欧罗巴的地表水冰结晶度:观测与热物理和粒子通量建模之间的差异

Europa's surface water ice crystallinity: Discrepancy between observations and thermophysical and particle flux modeling

论文作者

Berdis, Jodi R., Gudipati, Murthy S., Murphy, James R., Chanover, Nancy J.

论文摘要

通过热松弛,带电的颗粒轰击和可能的冰要燃料活动对欧洲地表水冰进行物理加工可以改变水冰的晶体形式的百分比,与欧洲欧洲冰上的无定形形式的水冰(“结晶度”)相比。在欧洲表面温度下热转化为在欧洲地面温度下将无晶状水冰的时间尺度转化为结晶水冰,这表明那里的水冰主要应以结晶形式形式,但是,由木星磁场引起的带电颗粒诱导的充电颗粒的表面轰击,并从eupan plumes中产生水冰的蒸气,可能会产生无冰的水冰。这项研究的目的是确定欧洲地表水冰结晶度是否从地面光谱测量中得出,这与基于温度和辐射建模的预期的结晶度一致。使用欧罗巴表面的一维热物理模型,我们通过将无定形的热弛豫与结晶水冰的热松弛,并通过辐射通过辐射降解为无定形水冰,从而计算出欧罗巴领先半球的全盘结晶度。同时,我们使用Grundy等人的近红外地面光谱观测来比较欧罗巴领先半球的全盘结晶度。 (1999),Busarev等。 (2018)和Mastrapa等人的实验室光谱的Apache Point天文台。 (2018)和喷气推进实验室的冰光谱实验室。我们计算出高于从地面观测和实验室光谱的结晶率明显高的结晶度。这种差异可能是地球物理过程的结果,例如通过蒸气沉积的羽流材料,也可能是由结晶度计算中的假设和不确定性引起的。

Physical processing of Europan surface water ice by thermal relaxation, charged particle bombardment, and possible cryovolcanic activity can alter the percentage of the crystalline form of water ice compared to that of the amorphous form of water ice (the ''crystallinity'') on Europa's surface. The timescales over which amorphous water ice is thermally transformed to crystalline water ice at Europan surface temperatures suggests that the water ice there should be primarily in the crystalline form, however, surface bombardment by charged particles induced by Jupiter's magnetic field, and vapor deposition of water ice from Europan plumes, can produce amorphous water ice surface deposits on short timescales. The purpose of this investigation is to determine whether the Europan surface water ice crystallinity derived from ground-based spectroscopic measurements is in agreement with the crystallinity expected based on temperature and radiation modeling. Using a 1D thermophysical model of Europa's surface, we calculate a full-disk crystallinity of Europa's leading hemisphere by incorporating the thermal relaxation of amorphous to crystalline water ice and the degradation of crystalline to amorphous water ice by irradiation. Concurrently, we derive the full-disk crystallinity of Europa's leading hemisphere using a comparison of near-infrared ground-based spectral observations from Grundy et al. (1999), Busarev et al. (2018), and the Apache Point Observatory with laboratory spectra from Mastrapa et al. (2018) and the Ice Spectroscopy Lab at the Jet Propulsion Laboratory. We calculate a modeled crystallinity significantly higher than crystallinities derived from ground-based observations and laboratory spectra. This discrepancy may be a result of geophysical processes, such as by vapor-deposited plume material, or it may arise from assumptions and uncertainties in the crystallinity calculations.

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