Radar Reflectivity as a Proxy for the Dust Content of Individual Layers in the Martian North Polar Layered Deposits
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Final Published Version
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Univ Arizona, Lunar & Planetary LabIssue Date
2019-07-02
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AMER GEOPHYSICAL UNIONCitation
Lalich, D. E., Holt, J. W., & Smith, I. B.(2019). Radar reflectivity as a proxy for the dust content of individual layers in the Martian north polar layered deposits. Journal of Geophysical Research: Planets, 124,1690–1703.https://doi.org/10.1029/2018JE005787Rights
Copyright © 2019. American Geophysical Union. All Rights Reserved.Collection Information
This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.Abstract
The stratigraphy of the north polar layered deposits (NPLD) of Mars is believed to contain a climate record of the recent Amazonian period. However, full utilization of this record is difficult without detailed information regarding the physical properties of the constituent layers. Here we present a method for determining the fractional dust content of individual layers using a combination of orbital radar reflectivity measurements and physical modeling. We apply this method to the upper 500 m of the NPLD at 10 study sites and compare the results to a cap-wide radar-mapped surface. Our results show that reflectivity can vary drastically both geographically and with depth, a result we attribute to changing dust content, though the impact of variable layer thickness cannot be totally discounted. These findings imply large-scale regional patterns in ice and dust accumulation do not remain consistent through time. We also find that current models of Mars's dust cycle and polar ice accumulation consistently underpredict the dust content of layers, indicating that our understanding of dust transport, dust sequestration, or dust preservation remains incomplete. Comparisons of study sites on the NPLD also show that some locations contain fewer radar reflectors than others, meaning they may contain a less complete record of the planet's recent paleoclimate, and any future efforts to use the polar layered deposits as a climate proxy, including in situ measurements, should take this into account by choosing study sites wisely.Note
6 month embargo; published online: 2 July 2019ISSN
2169-9097Version
Final published versionSponsors
NASA [NNX15AM52G]; NESSF fellowship program; Jackson School of Geosciencesae974a485f413a2113503eed53cd6c53
10.1029/2018je005787
