大孔隙
壤土
土壤水分
示踪剂
土壤科学
浸出(土壤学)
土壤质地
压实
化学
地下水
Lessivage公司
环境化学
环境科学
地质学
岩土工程
介孔材料
物理
催化作用
核物理学
生物化学
作者
António Lucas Soares,Per Møldrup,Anders Lindblad Vendelboe,Sheela Katuwal,Trine Nørgaard,Cristina Delerue‐Matos,Markus Tuller,Lis W. de Jonge
出处
期刊:Soil Science
[Ovid Technologies (Wolters Kluwer)]
日期:2015-01-01
卷期号:180 (1): 10-20
被引量:14
标识
DOI:10.1097/ss.0000000000000105
摘要
Preferential flow and transport through macropores affect plant water use efficiency and enhance leaching of agrochemicals and the transport of colloids, thereby increasing the risk for contamination of groundwater resources. The effects of soil compaction, expressed in terms of bulk density (BD), and organic carbon (OC) content on preferential flow and transport were investigated using 150 undisturbed soil cores sampled from 15 × 15–m grids on two field sites. Both fields had loamy textures, but one site had significantly higher OC content. Leaching experiments were conducted in each core by applying a constant irrigation rate of 10 mm h−1 with a pulse application of tritium tracer. Five percent tritium mass arrival times and apparent dispersivities were derived from each of the tracer breakthrough curves and correlated with texture, OC content, and BD to assess the spatial distribution of preferential flow and transport across the investigated fields. Soils from both fields showed strong positive correlations between BD and preferential flow. Interestingly, the relationships between BD and tracer transport characteristics were markedly different for the two fields, although the relationship between BD and macroporosity was nearly identical. The difference was likely caused by the higher contents of fines and OC at one of the fields leading to stronger aggregation, smaller matrix permeability, and a more pronounced pipe-like pore system with well-aligned macropores.
科研通智能强力驱动
Strongly Powered by AbleSci AI