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Collaborative Proposal: Landscape evolution and sediment-nutrient fluxes in a wetland-stream restoration experiment

Collaborative Proposal: Landscape evolution and sediment-nutrient fluxes in a wetland-stream restoration experiment
合作提案:湿地溪流恢复实验中的景观演化和沉积物养分通量
批准号:
1226972
负责人:
Dorothy Merritts
金额:
$17.16万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2012
资助国家:
美国
项目状态:
已结题
起止时间:
2012-09-01 至 2016-08-31

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项目成果

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中文摘要
翻译
设计具有高潜力的可持续河流和河岸恢复以改善生态系统服务的先决条件是增加这些系统如何演变和响应环境变化和人类影响的多学科知识。在美国宾夕法尼亚州东南部进行的大泉流(BSR)恢复实验的目的是更好地了解浅层植被流系统中景观格局发展和稳定的地质、生物和环境机制,并测试溪流-湿地恢复的新范式。这种新方法是基于这样一个假设,即移除埋藏了大约三个世纪的全新世湿草地的历史沉积物可以有效地恢复许多生态系统功能。恢复的目标包括加强恢复区内河道与浅层地下水之间的水文交换,增加从泉水中流出的地下水在富有机质洪泛区的停留时间,通过减少从恢复河段流出的地表水中的沉积物和营养物质负荷来改善水质。地表水和地下水之间的水和营养物质交换促进了地表水流速低而有机碳有效性高的湿地生态系统中沉积物和营养物质的去除。通过比较恢复前后的数据,我们可以确定这些和其他恢复目标是否实现,并评估早期湿地景观在恢复后的演变情况。由来自12个机构和学术机构的26名科学家和资源管理人员组成的团队最近完成了BSR第三年的恢复前监测。2011年8月,谷底修复完成1 km后开始进行修复后监测。水质监测包括三个USGS流量测量站(带有浊度传感器和悬浮沉积物采样器)、18个USGS压力计和30多个由USEPA在恢复流域内安装的浅层地下水井的连续运行。此外,我们使用数值模拟来1)研究河流-洪泛平原系统在一系列环境条件下的演变和稳定性,2)确定地下水流动路径和营养转化区域,以及3)预测这种新的河流恢复模式在当今的泥沙输入和水文通量下是否可持续。这项工作的结果将对恢复溪流和改善水质具有广泛的意义。在这项工作之前,河流恢复的主要范式是基于这样的假设,即河流损害的原因主要是现代土地利用的结果(例如,城市化地区的过量雨水径流),而不是几个世纪以来人类影响的遗产,包括将原始湿地-河流景观埋在几米或更多的历史泥浆下。BSR的恢复包括清除历史沉积物,以适应整个谷底的风暴流,并且速度、流深和剪应力都比受损状态低得多。我们预计,这种沉积物清除和湿地恢复将是重建生态系统多样性和功能的可持续手段,减少向下游排放的雨水,并改善已发现类似损害的流域的水质。
英文摘要
Prerequisite to designing sustainable stream and riparian restorations with high potential for improved ecosystem services is to increase multi-disciplinary knowledge of how these systems evolve and respond to environmental change and human impacts. The goal of the Big Spring Run (BSR) restoration experiment in southeastern Pennsylvania is to better understand the geological, biological, and environmental mechanisms responsible for development and stability of landscape patterns in shallow vegetated flow systems, and to test a new paradigm of stream-wetland restoration. This new approach is based on the hypothesis that removal of historic sediment that buried a pre-existing Holocene wet meadow for approximately three centuries can effectively restore a number of ecosystem functions. Goals of the restoration include enhancing hydrologic exchange between stream channels and shallow groundwater within the restoration area, increasing the residence time of groundwater emanating from springs onto an organic-rich floodplain, and improving water quality by reducing sediment and nutrient loads in surface water flowing out of the restored reach. The exchange of water and nutrients between surface and ground water fosters removal of sediment and nutrients in wetland ecosystems where surface water flow speeds are low and organic carbon availability is high. Comparison of pre- and post-restoration data enables us to determine whether or not these and other restoration goals are achieved, and to evaluate how an incipient wetland landscape evolves after restoration. With a team of 26 scientists and resource managers from 12 agencies and academic institutions, we recently completed the 3rd yr of pre-restoration monitoring at BSR. Post-restoration monitoring began after 1 km of valley bottom restoration was completed in August, 2011. Water quality monitoring includes continuous operation of three USGS stream gaging stations (with turbidity sensors and suspended sediment samplers), 18 USGS piezometers, and over 30 shallow groundwater wells installed by USEPA within the restoration watershed. In addition, we use numerical modeling to 1) investigate the evolution and stability of stream-floodplain systems over a range of environmental conditions, 2) identify ground water flow paths and zones of nutrient transformation, and 3) predict whether this new paradigm of stream restoration will be sustainable under present-day sediment inputs and hydrologic fluxes. Results of this work will have broad implications for restoring streams and improving water quality. Prior to this work, the dominant paradigm for stream restoration was based on the assumption that causes of stream impairment are largely the result of modern land use (e.g., excess storm water runoff from urbanizing areas) rather than a legacy of centuries of human impacts that included the burial of original wetland-stream landscapes beneath several meters or more of historic mud. Restoration at BSR involved removing historic sediment so as to accommodate storm flow within the entire valley bottom, and at a much lower velocity, flow depth, and shear stress than in the impaired state. We anticipate that such sediment removal and wetland rehabilitation will be a sustainable means of reestablishing ecosystem diversity and function, reducing storm water discharge to downstream reaches, and improving water quality in watersheds where similar impairments have been identified.
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Collaborative research: Is Anthropocene sedimentation in valley bottoms a geologically significant event?
  • 批准号:
    1451586
  • 项目类别:
    Standard Grant
  • 资助金额:
    $13.79万
  • 财政年份:
    2015
  • 负责人:
    Dorothy Merritts
  • 依托单位:
MRI: Acquisition of New and Upgraded Equipment for Critical Zone Laboratory at a Research-Intensive Undergraduate College
  • 批准号:
    0923224
  • 项目类别:
    Standard Grant
  • 资助金额:
    $54.54万
  • 财政年份:
    2009
  • 负责人:
    Dorothy Merritts
  • 依托单位:
Collaborative Research: Geodynamic Evolution of an Active Arc-Continent Collision, Eastern Sunda Arc, Indonesia
  • 批准号:
    0337192
  • 项目类别:
    Standard Grant
  • 资助金额:
    $5.42万
  • 财政年份:
    2004
  • 负责人:
    Dorothy Merritts
  • 依托单位:
Development of Inquiry-Based Instructional Videos for Teachers in Undergraduate Geoscience Education
  • 批准号:
    9952843
  • 项目类别:
    Standard Grant
  • 资助金额:
    $3.38万
  • 财政年份:
    2000
  • 负责人:
    Dorothy Merritts
  • 依托单位:
海外基金