土壤水分
环境科学
堵塞
水文学(农业)
渗透(HVAC)
生物地球化学循环
洪水(心理学)
漫滩
土层
地下水流
土壤科学
海岸
地下水位
微咸水
风暴
孔隙水压力
大洪水
饱和(图论)
地质学
水位
河岸带
地表水
地表径流
导水率
土壤盐分
排水
土壤形态
盐沼
水槽(地理)
潜育土
作者
Kenton A. Rod,Kennedy O. Doro,Kaizad Patel,Kenneth Kemner,Stephanie J. Wilson,J. Patrick Megonigal,Nicholas D. Ward,Michael Weintraub,Vanessa Bailey
摘要
Abstract Coastal soils are increasingly impacted by hydrologic intensification in the form of rising sea level and flooding from storm surges and precipitation. Alternating saltwater (SW) and freshwater (FW) exposure has the potential to disperse colloids, which can lead to disintegration of soil structure, clogging of pore spaces, and reduction in ecologically and biogeochemically important functions like infiltration or gas exchange. To investigate how hydrologic intensification affects soil structure and oxygen dynamics, we conducted a series of laboratory‐based flood simulations. Intact soil cores of the A and B horizons (22 total) from the toe slope of an upland coastal forest along the western shore of Chesapeake Bay. We subjected the cores to 24 h of saturation with either FW or alternating brackish SW and FW, with a 24‐h draining event in between flood events. Oxygen diffusion into soil during draining was reduced by up to 30% for soils flooded alternating SW‐FW compared to soils flooded only with FW. We attributed the reduced oxygen diffusion to clogging of smaller pores by colloids, with colloid redistribution observed as an increase in specific surface area down the core profile of up to 59%. After three SW‐FW floods (six floods total), there were significant changes in pore size distribution, significant redistribution of colloids, and the A horizon became sodic. We concluded that a small number of SW flooding events can induce a measurable change in soil physical properties that directly impacts the biogeochemical dynamics.
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