Collaborative Research: Lateral weathering gradients typify critical zone architecture in glaciated catchments
Collaborative Research: Lateral weathering gradients typify critical zone architecture in glaciated catchments
批准号:
1643327
负责人:
Kevin McGuire
金额:
$32.01万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2017
资助国家:
美国
项目状态:
已结题
起止时间:
2017-09-01 至 2022-08-31
中文摘要
地球上薄薄的一层土壤使生命得以存在。水和岩石的相互作用,或矿物风化作用,是维持生命和调节水质和流量的土壤发育的原因。因此,矿物风化是一种重要的自然服务,它提供植物生长所需的营养物质,控制营养物质在环境中的循环,并将其输送到下游的河流、湖泊、河口和海洋。在这项研究中,美国东北部的山区提供了一个自然实验室来检查矿物风化的过程和速率,那里的土壤相对年轻(不到1万年),基岩通常很浅,提供了整个景观中矿物消耗和积累的空间梯度。这个地区拥有年轻的土壤,为该国一些森林最茂密的州的森林提供了支持,也是东北主要河流的源头,为下游的主要大都市地区提供了丰富、清洁的水。这些森林土壤还提供其他重要服务,包括野生动物栖息地和由森林产品的可持续收获和娱乐机会驱动的区域经济。许多这些服务依赖于岩石分解以补充土壤养分供应的速度与通过树木采伐或向下游输送物质的速度之间的平衡。矿物风化速率的不确定性,以及这种速率是否与损失同步,是森林集约采伐的可持续性和了解森林如何对干扰作出反应的长期问题。由于对森林的需求日益增加,除了更传统的森林产品外,还需要提供可再生生物质能源,因此对这个问题的兴趣加倍。由于几十年的空气污染,许多相同的营养元素已经耗尽。矿物风化速率的精确计算是临界负荷模型的核心,北半球各国越来越多地采用临界负荷模型作为指导空气污染政策制定和可持续生态系统管理的工具。这项研究在新罕布什尔州的哈伯德布鲁克实验森林进行,将在流域尺度上引入矿物风化的新范式,描述空间变化,可用于在关键负荷模型中重新制定矿物风化算法,并解决森林管理中的营养枯竭问题。在哈伯德溪工作,有北美最长的河流和雨水化学记录之一,提供了一个框架,通过这个框架,本研究可以展示不同部分的流域如何相互作用,产生物质流,由森林输送到下游的河流和湖泊。这将有助于林业工作者和流域管理者评估如何应用管理决策来确保美国东北部高地森林的持续生产力。通过在美国东北部和哈伯德布鲁克实验森林的几个地点测量水文通量、溶质通量和固相特征,将沿着从暴露的基岩到深土的样带检查矿物风化和风化层的发展过程。冰川地区常见的景观梯度。在Hubbard Brook的三个仪器样带收集的数据将用于测试山坡和流域尺度上矿物风化梯度的变化。分散在美国东北部的四个地点的单个样带将测试在区域范围内的适用性,具有更广泛的气候,基岩岩性和土壤类型。矿物风化过程,包括假设代表集水区功能不同部分的区域的初级矿物溶解和次级物质积累,将通过对风化层(土壤、底土和岩石碎片)和基岩的固相研究进行检查,使用重叠的分析方法,包括光学岩石学、扫描电极显微镜、电子探针测绘、大量化学分析和次级物质提取。表明长期风化过程的风化层研究将通过使用被动流量测量和更传统的水文地质监测相结合的方法,对风化衍生元素中当前的水通量进行测量来补充。将集水区内四个不同区域的面积归一化水通量与集水区尺度的化学剥蚀进行比较,以确定研究区域对整体集水区质量平衡的重要性。这将有助于重新解释哈伯德布鲁克50多年来的记录,这将通过识别高地集水区不同区域的不同速率和过程进展,为森林可持续性评估提供重要信息。
英文摘要
The thin skin of soil on Planet Earth is what makes life possible. The interactions of water and rock, or mineral weathering, are responsible for the development of the soil that sustains life and regulates water quality and flow. As such, mineral weathering is a critical natural service that provides nutrients required for plant growth and controls the cycling of nutrients through the environment and their transport to downstream rivers, lakes, estuaries, and the ocean. In this study, mountainous areas of the northeastern United States provide a natural laboratory to examine processes and rates of mineral weathering where soils are relatively young (less than 10,000 years) and bedrock is often shallow, providing spatial gradients of mineral depletion and accumulation across the landscape. This region with young soils supports forests in some of the most densely forested states in the country and is the source of the major rivers of the northeast, providing major metropolitan areas downstream with abundant, clean water. These forest soils also provide other vital services including wildlife habitat and a regional economy driven by sustainable harvest of forest products and recreational opportunities. Many of these services are dependent on the balance between the rate at which rocks break down to recharge soil nutrient supply versus the rates at which materials are removed via tree harvest or are transported downstream. Uncertainty in mineral weathering rates, and whether such rates keep pace with losses, is a long-standing question in the sustainability of intensive forest harvest, and in understanding how forests respond to disturbances. This question has redoubled interest due to increasing demands on forests to provide renewable biomass energy sources in addition to more traditional forest products. Many of these same nutrient elements have been depleted by decades of air pollution. Accurate calculation of mineral weathering rates is the centerpiece of critical loads models, increasingly adopted by countries across the northern hemisphere as a tool to guide development of air pollution policy and for the management sustainable ecosystems. This study, taking place at the Hubbard Brook Experimental Forest in New Hampshire, will introduce a new paradigm of mineral weathering at the watershed-scale, describing spatial variation that can be used to reformulate mineral weathering algorithms in critical loads models and address nutrient depletion concerns for forest management. Working at Hubbard Brook with one of the longest records of stream and rainwater chemistry in North America provides a framework by which this research can demonstrate how different portions of watersheds interact to produce material flows transported by forests to downstream rivers and lakes. This will help foresters and watershed managers evaluate how management decisions may be applied to ensure continued productivity of upland forests of the northeastern U.S.Through measurement of hydrologic fluxes, solute fluxes and solid phase characterization at several sites in the northeastern U.S. and at the Hubbard Brook Experimental Forest, mineral weathering and regolith development processes will be examined along transects from exposed bedrock to deep soil, a common landscape gradient in glaciated regions. Data collected at three instrumented transects at Hubbard Brook will be used to test variation in mineral weathering gradients at the hillslope and watershed scale. Single transects at four sites dispersed across the northeastern U.S. will test applicability at the regional scale, with a broader range of climate, bedrock lithology and soil type. Mineral weathering processes, including both primary mineral dissolution and secondary material accumulation in zones hypothesized to represent functionally distinct portions of catchments, will be examined through solid phase studies of regolith (soil, subsoil, and rock fragments) and bedrock using overlapping analytical approaches, including optical petrography, scanning electrode microscopy, electron microprobe mapping, bulk chemical analyses, and secondary material extraction. The regolith studies, indicating long-term weathering progression, will be complemented by measurements of current aqueous flux in weathering derived elements using a combination of passive flow metering and more traditional hydrogeologic monitoring. Area normalized aqueous fluxes at four distinct zones within the catchment will be compared to catchment scale chemical denudation to determine the importance of the study zones to overall catchment mass balance. This will facilitate reinterpretation of a 50+ year record at Hubbard Brook, which will provide essential information for the assessment of forest sustainability by discerning the distinct rates and progression of processes at differing zones within upland catchments.
期刊论文(10)
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Development of a lateral topographic weathering gradient in temperate forested podzols
温带森林灰化土横向地形风化梯度的发展
DOI:
10.1016/j.geoderma.2023.116677
发表时间:
2023
期刊:
Geoderma
影响因子:
6.1
作者:
[Bower, Jennifer A., Ross, Donald S., Bailey, Scott W., Pennino, Amanda M., Jercinovic, Michael J., McGuire, Kevin J., Strahm, Brian D., Schreiber, Madeline E.]
通讯作者:
Schreiber, Madeline E.
Identifying Controls on Nitrate Sources and Flowpaths in a Forested Catchment Using a Hydropedological Framework
使用水文土壤学框架确定森林流域硝酸盐来源和流动路径的控制
DOI:
10.1029/2020jg006140
发表时间:
2022
期刊:
Journal of Geophysical Research: Biogeosciences
影响因子:
--
作者:
[Pardo, L. H., Green, M. B., Bailey, S. W., McGuire, K. J., McDowell, W. H.]
通讯作者:
McDowell, W. H.
Mineral Weathering and Podzolization Control Acid Neutralization and Streamwater Chemistry Gradients in Upland Glaciated Catchments, Northeastern United States
美国东北部高地冰川流域的矿物风化和灰化控制酸中和和溪水化学梯度
DOI:
10.3389/feart.2019.00063
发表时间:
2019
期刊:
Frontiers in Earth Science
影响因子:
2.9
作者:
[Bailey, Scott W., McGuire, Kevin J., Ross, Donald S., Green, Mark B., Fraser, Olivia L.]
通讯作者:
Fraser, Olivia L.
Hubbard Brook Experimental Forest: Watershed 3 – One year of resin-extracted solutes from variably saturated soils
哈伯德布鲁克实验森林:分水岭 3 – 从不同饱和土壤中树脂提取溶质的一年
DOI:
10.6073/pasta/60f964ffa4e180eb19ee9249219cfa4e
发表时间:
2023
期刊:
Environmental Data Initiative
影响因子:
--
作者:
[Pennino, Amanda M, McGuire, Kevin J, Strahm, Brian D, Bailey, Scott W]
通讯作者:
Bailey, Scott W
Hubbard Brook Experimental Forest: Watershed 3 Subsurface Water Chemistry
哈伯德布鲁克实验森林:分水岭 3 地下水化学
DOI:
10.6073/pasta/fe2c54e0c7d8c43f20c2b200555ca1f5
发表时间:
2022
期刊:
Environmental Data Initiative
影响因子:
--
作者:
[Bailey, Scott W., Gannon, John P., McGuire, Kevin J., Pardo, Linda H.]
通讯作者:
Pardo, Linda H.
共 10 条
2017 Gordon Research Conference on Catchment Science: Interactions of Hydrology, Biology & Geochemistry
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批准号:1664300
-
项目类别:Standard Grant
-
资助金额:$4.98万
-
财政年份:2016
-
负责人:Kevin McGuire
-
依托单位:
US-Japan Joint Seminar on Responses of Catchment Hydrology and Forest Biogeochemistry to Climatic and Environmental Change
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批准号:1256273
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项目类别:Standard Grant
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Collaborative Research: Landform controls on hydrologic flowpaths and pedogenesis explain solute retention and export from pedon to catchment scales
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批准号:1014507
-
项目类别:Continuing Grant
-
资助金额:$33.77万
-
财政年份:2010
-
负责人:Kevin McGuire
-
依托单位:
国内基金
海外基金
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