波浪影响的三角洲:通过屏障喷砂的周期性增生和泥浆的作用而生长

IF 3.8 2区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Connor M. Broaddus, Jaap H. Nienhuis, Douglas A. Edmonds, Efi Foufoula-Georgiou
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引用次数: 0

摘要

波浪影响三角洲是最丰富的三角洲类型,由于波浪驱动的沉积物输运过程的影响和它们运作的相对较短的时间尺度,它也可能最容易受到人为变化的威胁。尽管如此,控制波浪影响生长的过程知之甚少,细粒粘性沉积物(泥浆)的作用通常被忽视。在这里,我们在Delft3D中模拟了一系列条件下的理想河流三角洲,以询问相对波浪影响和河流沉积物组成如何影响十年-世纪时间尺度上的三角洲演化。我们的模拟捕捉到了堰洲-吐槽形成和递进波影响三角洲的吸积过程特征,与在自然系统中观察到的行为一致。沙口淤积表现出由河口附近河流沉积物水下堆积所驱动的多年周期性。使用一系列指标,我们量化了波浪和泥浆如何影响三角洲形态和动力学。结果表明,波浪稳定和简化了河道网络,平滑了海岸线,增加了海岸线的改造率,减少了三角洲平原的泥沙滞留,并使河口坝沉积物重新形成了堰洲砂。较高的河流泥浆浓度会产生更简单、更稳定的分流网络、更粗糙的海岸线,并限制屏障后泻湖的保存。我们的研究结果揭示了河流主导三角洲和波浪影响三角洲之间海岸线变化的不同控制因素,并表明即使在强烈的波浪影响下,泥沙在三角洲演化中也起着关键作用。这些见解可以增强古环境重建,并为三角洲对气候和土地利用变化的响应预测提供信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Wave-Influenced Deltas: Growth Through Cyclical Accretion of Barrier-Spits and the Role of Mud

Wave-Influenced Deltas: Growth Through Cyclical Accretion of Barrier-Spits and the Role of Mud

Wave-Influenced Deltas: Growth Through Cyclical Accretion of Barrier-Spits and the Role of Mud

Wave-Influenced Deltas: Growth Through Cyclical Accretion of Barrier-Spits and the Role of Mud

Wave-Influenced Deltas: Growth Through Cyclical Accretion of Barrier-Spits and the Role of Mud

Wave-Influenced Deltas: Growth Through Cyclical Accretion of Barrier-Spits and the Role of Mud

Wave-influenced deltas are the most abundant delta type and are also potentially the most at-risk to human-caused changes, owing to the effects of wave-driven sediment transport processes and the relatively short timescales on which they operate. Despite this, the processes controlling wave-influenced growth are poorly understood, and the role of fine-grained cohesive sediment (mud) is typically neglected. Here we simulate idealized river deltas in Delft3D across a range of conditions to interrogate how relative wave-influence and fluvial sediment composition impact delta evolution on decadal-centurial timescales. Our simulations capture the barrier-spit formation and accretion process characteristic of prograding wave-influenced deltas, consistent with behaviors observed in natural systems. Barrier-spit accretion exhibits multi-decadal cyclicity driven by subaqueous accumulation of fluvial sediment near river mouths. Using a range of metrics, we quantify how waves and mud influence delta morphology and dynamics. Results show that waves stabilize and simplify channel networks, smooth shorelines, increase shoreline reworking rates, reduce mud retention in the delta plain, and rework mouth bar sediments to form barrier-spits. Higher fluvial mud concentrations produce simpler and more stable distributary networks, rougher shorelines, and limit back-barrier lagoon preservation. Our findings reveal distinct controls on shoreline change between river-dominated and wave-influenced deltas and demonstrate that mud plays a critical role in delta evolution, even under strong wave influence. These insights could enhance paleoenvironmental reconstructions and inform predictions of delta responses to climate and land-use changes.

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来源期刊
Journal of Geophysical Research: Earth Surface
Journal of Geophysical Research: Earth Surface Earth and Planetary Sciences-Earth-Surface Processes
CiteScore
6.30
自引率
10.30%
发文量
162
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