微生物定植增加了对悬浮沉积物的阻力

IF 15.7 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Naiyu Zhang, Haochen Li, Fan Xu, Charlotte E. L. Thompson, Ian H. Townend, Qing He
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引用次数: 0

摘要

微生物群落和沉积物运输之间的动态相互作用塑造了大陆景观,并影响了地球表面的颗粒物通量。微生物定植将单个沉积物颗粒转化为具有复杂多样形态的聚集体,使沉积物的运输复杂化。然而,目前的模型往往简化了这种形态的复杂性,假设聚集体经历的流体阻力与光滑球体或理想形状相等。在这里,我们应用x射线微计算机断层扫描方法结合计算流体动力学模拟来分析高空间分辨率的聚集体形态,并确定与阻力的关系。我们发现,与光滑表面相比,微生物定植改变了细尺度聚集体的形态,并增加了1-3倍的阻力,而不是聚集体的大小或总形状是阻力的主要控制因素。我们提出了一个形态修正的阻力定律,该定律解释了这种复杂性,协调了不同聚集体之间阻力的差异。我们的研究结果表明,从关注总体尺度变化(大小或总体形状)到关注精细尺度形态的转变,可以提高运输预测的准确性,并提高对河流、海岸和海洋系统中微生物定殖聚集体的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Drag acting on suspended sediment increased by microbial colonization

Drag acting on suspended sediment increased by microbial colonization

The dynamic interplay between microbial communities and sediment transport shapes continental landscapes and influences particulate matter fluxes across the Earth’s surface. Microbial colonization transforms individual sediment grains into aggregates with intricate and varied morphologies, complicating sediment transport. However, current models often simplify this morphological complexity, assuming that aggregates experience fluid drag equal to that of smooth spheres or idealized shapes. Here we apply an X-ray micro-computed tomography method combined with computational fluid dynamics simulations to analyse aggregate morphology at high spatial resolution and determine the relationship with drag. Instead of aggregate size or gross shape being the primary controls on drag, we find that microbial colonization alters the fine-scale aggregate morphology and increases drag by factors of 1–3 compared with smooth surfaces. We propose a morphology-corrected drag law that accounts for this complexity, reconciling the differences in drag across diverse aggregates. Our findings suggest that a shift from focusing on gross scale variabilities (size or gross shape) to fine-scale morphologies could enable greater accuracy in transport predictions, and improve understanding of microbially colonized aggregates in fluvial, coastal and oceanic systems.

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来源期刊
Nature Geoscience
Nature Geoscience 地学-地球科学综合
CiteScore
26.70
自引率
1.60%
发文量
187
审稿时长
3.3 months
期刊介绍: Nature Geoscience is a monthly interdisciplinary journal that gathers top-tier research spanning Earth Sciences and related fields. The journal covers all geoscience disciplines, including fieldwork, modeling, and theoretical studies. Topics include atmospheric science, biogeochemistry, climate science, geobiology, geochemistry, geoinformatics, remote sensing, geology, geomagnetism, paleomagnetism, geomorphology, geophysics, glaciology, hydrology, limnology, mineralogy, oceanography, paleontology, paleoclimatology, paleoceanography, petrology, planetary science, seismology, space physics, tectonics, and volcanology. Nature Geoscience upholds its commitment to publishing significant, high-quality Earth Sciences research through fair, rapid, and rigorous peer review, overseen by a team of full-time professional editors.
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