RAPID: Collaborative Research: Marsh Sedimentation due to Hurricanes Florence and Michael Flooding Event in SC
RAPID: Collaborative Research: Marsh Sedimentation due to Hurricanes Florence and Michael Flooding Event in SC
批准号:
1904470
负责人:
Duncan FitzGerald
金额:
$1.01万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2018
资助国家:
美国
项目状态:
已结题
起止时间:
2018-12-01 至 2019-11-30
中文摘要
飓风对沙质海岸线的破坏以及沿海城市和居民社区的破坏负有责任。然而,科学家们最近开始认识到,它们可以对一些沿海系统产生积极的影响。特别是,虽然风暴波可能会导致沿海湿地的地表挖掘和沼泽边缘的侵蚀,但飓风也可能在风暴潮淹没期间造成净沉积:风暴波和海流搅动近岸和海湾内底部的沉积物,并在伴随的风暴潮期间将这些悬浮沉积物沉积在沼泽上。虽然这一过程并不常见,但一次飓风向沼泽表面添加的无机沉积物比几十年来每天发生的过程所产生的还要多。研究还表明,由于新泥浆中添加的营养物质,沼泽植物群落从风暴沉积中受益。因此,飓风可以显著提高沼泽的复原力,并有助于其在海平面加速上升的情况下的可持续性。去年9月,飓风佛罗伦萨被预测为4级飓风,并在北卡罗来纳州海岸造成严重破坏。然而,上层风切变显著降低了风速,在登陆时将风暴降级为1级飓风。随着飓风向内陆移动,与风暴相关的降水淹没了北卡罗来纳州和南卡罗来纳州的沿海地区,降雨量达到6到20英寸。三天的降雨量大大增加了当地河流的水位和流量,其中几条河流直接流入南卡罗来纳州中部的温耶湾。这些洪水将大量悬浮沉积物带到了沿海海洋和近处的沼泽地。我们计划测量罗曼角地区的河流沉积物,并将这一沉积事件与2017年飓风“厄玛”后绘制的风暴潮沉积物进行比较。这项研究的主要目标是记录佛罗伦萨飓风和迈克尔飓风造成的无机沉积速率增加对支持罗马角角角状前陆的沼泽系统的潜在好处。与2017年的飓风“厄玛”不同,飓风“佛罗伦萨”和“迈克尔”产生了高能海浪、强劲的陆上风和1米高的风暴潮,并导致1-2厘米厚的泥层沉积,由于风力较弱,风暴路径影响较小,对南卡罗来纳州中部的沼泽几乎没有直接影响。然而,佛罗伦萨,以及较小程度的迈克尔,产生了强烈的降水,使沿海河流的水位和流量大大增加了一个数量级。其中几条河流将洪水和大量悬浮沉积物直接带入温耶湾和附近的沼泽系统。在飓风“厄玛”之后,对罗曼角沼泽进行重复取样,这将提供一个难得的机会,将高河流沉积事件与高能飓风造成的沉积事件进行比较。我们将重新访问和采样我们的罗曼角地点(沿着两个横断面的10个站点),并测量我们在泥泞湾附近的10个长期SET站点(在罗曼角)。此外,沿着横断面至少有四个其他地点将被占用,以确保飓风相关沉积物的广泛空间覆盖。沉积物岩心、浅层沉积物样本和观测将在每个站点进行,以记录新的沉积,并确定我们是否可以区分每次飓风“厄玛”(由环境沉积物引起的波浪和风暴潮)和飓风“佛罗伦萨”(引入新的河流沉积物)带来的沉积物。后者将通过观察、沉积学分析(粒度、质地、物理结构、颜色)短沉积物岩心和整体地球化学分析(TOC、TN、delta13CTOC、delta15NTN)来完成,这些分析与飓风Irma和飓风Florence/Michael有关。此外,我们将检查现有的SET记录,以确定它们是否捕获了过去与风暴相关的沉积峰值。来自美国国家科学基金会的资金支持20个地表沉积物样本的现场采样、实验室处理和地球化学分析(来自Irma和Florence/Michael各10个),以及我们将在新的采样站收集的10个岩芯的短芯分析。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Hurricanes are responsible for the destruction of sandy shorelines and devastation to coastal cities and residential communities. However, scientists have recently begun to recognize that they can have net positive influences on some coastal systems. In particular, although storm waves may cause surface excavation and erosion of the marsh edge in coastal wetlands, hurricanes may also cause net sedimentation during storm surge inundation: storm waves and currents stir sediment off the bottom in the nearshore and within bays and deposit this suspended sediment on marshes during the accompanying storm surge. Although this process is infrequent, a single hurricane can add more inorganic sediment to the marsh surface than is emplaced by daily processes acting over several decades. It has also been shown that marsh plant communities benefit from storm sedimentation due to the added nutrients derived from the new mud. Thus, hurricanes can significantly increase the resiliency of marshes and help their sustainability in a regime of accelerating sea-level rise. This past September, Hurricane Florence was predicted to be a category 4 hurricane and wreak havoc along the North Carolina coast. However, upper wind shear significantly reduced wind velocities, downgrading the storm to a category 1 hurricane by the time it made landfall. Still as the hurricane moved inland, precipitation associated with the storm deluged coastal regions of North and South Carolina with 6 to 20 inches of rain. This amount of rain over a three day period greatly increased the stage and discharge of local rivers, several of which empty directly into Winyah Bay in central South Carolina. These flood waters carried large plumes of suspended sediment to the coastal ocean and to the proximal marshes. We plan to measure this river-derived sediment in the Cape Romain region and compare this sedimentation event to storm-surge-derived deposits mapped in 2017 following Hurricane Irma.The major goal of this study is to document the potential benefits of increased rates of inorganic sedimentation caused by Hurricanes Florence and Michael to the marsh system backing the Cape Romain cuspate foreland. Unlike Hurricane Irma in 2017, which generated high-energy waves, strong onshore winds, and a 1 m storm surge, and resulted in the deposition of a 1-2 cm thick mud layer, Hurricanes Florence and Michael had little direct impact on the marshes of central South Carolina due to their weaker winds and less impactful storm tracks. However, Florence, and to a much lesser extent Michael, produced intense precipitation, which vastly increased the stage and discharge of coastal rivers by an order of magnitude. Several of these rivers carried floodwaters and substantial quantities of suspended sediment directly into Winyah Bay and nearby marsh systems. Repeat coring of the Cape Romain marshes at locations previously sampled following Hurricane Irma would provide a rare opportunity to compare a high riverine sedimentation event to that produced by an energetic hurricane. We will revisit and resample our Cape Romain locations (10 stations along two transects), as well as measure our ten long-term SET sites near Muddy Bay (in Cape Romain). In addition, at least four other sites along the transects will be occupied to ensure broad spatial coverage of the hurricane-related deposit. Sediment cores, shallow surface sediment samples, and observations would be taken at each station to document new sedimentation, and determine if we can differentiate sediment delivered by each Hurricane Irma (wave- and storm-surge- induced from ambient sediment) and Hurricane Florence (introduction of new riverine sediment). The latter will be done via observations, sedimentological analyses (grain size, texture, physical structures, color) of short sediment cores and bulk geochemical analyses (TOC, TN, delta13CTOC, delta15NTN) of surface samples associated with each Hurricanes Irma and Hurricanes Florence/Michael. In addition, our existing SET records would be examined to determine if they capture past storm-associated spikes in sedimentation. Funds from NSF support field sampling and the lab processing and geochemical analyses of 20 surface sediment samples (10 each from Irma and Florence/Michael), and short-core analysis from our 10 cores to be collected at new sampling stations.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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会议论文
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批准号:2022934
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项目类别:Standard Grant
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资助金额:$18.8万
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财政年份:2020
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负责人:Duncan FitzGerald
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依托单位:
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项目类别:Standard Grant
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财政年份:2017
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负责人:Duncan FitzGerald
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资助金额:$24.92万
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Acquisition of Near-Surface Geophysical and Sampling Equipment for Earth Surface Processes and Quaternary Stratigraphic Research
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批准号:0079588
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资助金额:$11.17万
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负责人:Duncan FitzGerald
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海外基金