新流动的特性表明火星沟壑是通过CO2的霜冻流化过程形成的

IF 4.6 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Colin M. Dundas, Susan J. Conway, Kelly Pasquon, Axel Noblet, Lonneke Roelofs
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引用次数: 0

摘要

火星上的沟壑地貌被广泛认为是液态水存在的证据,这通常归因于过去几百万年里高倾角时期的融雪。然而,在现有沟壑中广泛存在的水流是由二氧化碳霜冻引起的,这提出了另一种形成机制。夹带的霜蒸发成流态流,使它们的行为类似于地球上的湿碎片流。现今水流侵蚀和沉积的斜坡为我们了解许多此类水流可能形成的地貌提供了线索。受水流侵蚀的最浅的斜坡与现有河道口的斜坡相似,而最流动的水流到达的最终斜坡与现有沟道边缘的外围相似。这与沟壑的形成完全是由二氧化碳霜冻驱动的流动形成的,假设它们的强度和频率在空间和时间上是不同的。地质上不能排除近期融雪的可能性,但并不需要解释观察到的沟壑形态。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Properties of New Flows Indicate that Martian Gullies Form via CO2 Frost-Fluidization Processes

Properties of New Flows Indicate that Martian Gullies Form via CO2 Frost-Fluidization Processes

Properties of New Flows Indicate that Martian Gullies Form via CO2 Frost-Fluidization Processes

Properties of New Flows Indicate that Martian Gullies Form via CO2 Frost-Fluidization Processes

Properties of New Flows Indicate that Martian Gullies Form via CO2 Frost-Fluidization Processes

Martian gully landforms are widely seen as evidence of liquid water, often attributed to snowmelt during high-obliquity periods within the last few million years. However, widespread present-day flows within existing gullies are caused by CO2 frost, presenting an alternative formation mechanism. Entrained frost vapourizes to fluidize flows, allowing them to behave similarly to wet debris flows on Earth. The slopes where present-day flows erode and deposit provide insights into the landforms that many such flows could create. The shallowest slopes eroded by the flows are similar to slopes at existing channel mouths, and the most mobile flows reach final slopes similar to the outer reaches of existing gully aprons. This is consistent with formation of gullies entirely by CO2 frost-driven flows, assuming their intensity and frequency varies in space and time. Geologically recent snowmelt cannot be ruled out, but is not required to explain the observed gully morphology.

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来源期刊
Geophysical Research Letters
Geophysical Research Letters 地学-地球科学综合
CiteScore
9.00
自引率
9.60%
发文量
1588
审稿时长
2.2 months
期刊介绍: Geophysical Research Letters (GRL) publishes high-impact, innovative, and timely research on major scientific advances in all the major geoscience disciplines. Papers are communications-length articles and should have broad and immediate implications in their discipline or across the geosciences. GRLmaintains the fastest turn-around of all high-impact publications in the geosciences and works closely with authors to ensure broad visibility of top papers.
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