合成生物膜在床层演化和沉积构造形成中的作用

IF 4.6 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Willian R. Assis, Lian Shen, Judy Q. Yang
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引用次数: 0

摘要

众所周知,微生物可以塑造地形;然而,生物膜-沉积物相互作用的机制和生物膜覆盖的床型的动态演化仍然知之甚少。在这里,我们通过水槽实验来探索合成生物膜对水下河床几何形状和时间演变的影响。我们的研究结果表明,合成生物膜可以产生与天然微生物形成的沉积结构相似的沉积结构,包括皱纹、凹坑、翻转、卷起、垫片和侵蚀边缘。我们观察到褶皱的形成,这是一种常见的地质特征,是由于沙粒在生物膜上的积累而形成的。此外,我们证明了生物膜可以在低流量状态下将床层粗糙度降低一个数量级。然而,随后的生物膜-沉积物相互作用可以增加局部的床型尺寸,形成多尺度的床型几何形状。我们的研究提高了对天然生物膜覆盖的地貌动态的基本理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Role of Synthetic Biofilms in Bed Evolution and the Formation of Sedimentary Structures

Role of Synthetic Biofilms in Bed Evolution and the Formation of Sedimentary Structures

Role of Synthetic Biofilms in Bed Evolution and the Formation of Sedimentary Structures

Role of Synthetic Biofilms in Bed Evolution and the Formation of Sedimentary Structures

Role of Synthetic Biofilms in Bed Evolution and the Formation of Sedimentary Structures

Microbes are known to shape topographies; however, mechanisms of biofilm-sediment interactions and the dynamic evolution of biofilm-covered bedforms remain poorly understood. Here, we explore the effects of synthetic biofilms on the geometry and temporal evolution of underwater bedforms through flume experiments. Our results demonstrate that synthetic biofilms can produce sedimentary structures similar to those formed by natural microbes, including wrinkles, pits, flip-overs, roll-ups, mat chips, and erosional edges. We observed the formation of wrinkles, a common geological feature, due to the accumulation of sand grains on the biofilms. Furthermore, we demonstrated that biofilms can reduce bed roughness by an order of magnitude in the low flow regime. However, the subsequent biofilm-sediment interactions can increase local bedform size, forming multi-scale geometries of bedforms. Our study improves the fundamental understanding of the landscape dynamics of bedforms covered by natural biofilms.

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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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