春融期斜坡土壤脱离速率方程的验证:来自泥沙浓度和输运能力的启示

IF 5 1区 地球科学 Q2 ENVIRONMENTAL SCIENCES
Kai Zhang, Chengcheng Zhang, Zhidan Wang, Xuan Wang, Siyuan Sheng
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引用次数: 0

摘要

土壤分离在土壤侵蚀模型的制定中起着核心作用,特别是在解冻期寒冷气候侵蚀的模拟和预测中。本研究试图通过综合水槽试验,结合稀土元素示踪剂的应用,阐明春融期坡地土壤剥离机制,探讨土壤剥离速率、含沙量和输沙能力之间的关系。观测结果表明,土壤分离速率和沉积物浓度对冲刷持续时间有细微的响应,其特征是初始增加,随后减少,最终达到平衡。随着融化深度的增加,侵蚀泥沙的主要来源逐渐由上坡向中坡转移。土壤分离速率受泥沙浓度、流量、坡度、融化深度和坡位的影响。此外,我们的分析表明,土壤分离速率、有效剪应力、输沙速率和输沙能力之间存在幂函数关系(R2 = 0.846)。这些结果为春季融化周期下棕壤坡面土壤侵蚀过程的建模和预测提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Validation of Soil Detachment Rate Equations on Spring Thaw Period Slopes: Insights From Sediment Concentration and Transport Capacity
Soil detachment plays a central role in the formulation of soil erosion models, particularly for the simulation and prediction of erosion in cold climates during the thaw period. This research attempts to elucidate the mechanisms of soil detachment on spring thaw period slopes through comprehensive flume experiments, coupled with the application of rare earth element (REE) tracer, investigating the relationships between soil detachment rates, sediment concentration and sediment transport capacity. Observations indicate a nuanced response of soil detachment rate and sediment concentration to scour duration, characterized by an initial increase, subsequent decrease and eventual equilibrium. As thaw depth increases, the primary source of eroded sediment gradually shifts from the upper slope to the mid-slope. Soil detachment rate was affected by sediment concentration, flow discharge, slope gradient, thawing depth, and slope positions. Furthermore, our analysis reveals a power function relationship (R2 = 0.846) between soil detachment rate, effective shear stress, and sediment transport rate and capacity. These results provide valuable insights into the modeling and prediction of soil erosion processes on brown soil slopes subjected to spring thaw period cycles.
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来源期刊
Water Resources Research
Water Resources Research 环境科学-湖沼学
CiteScore
8.80
自引率
13.00%
发文量
599
审稿时长
3.5 months
期刊介绍: Water Resources Research (WRR) is an interdisciplinary journal that focuses on hydrology and water resources. It publishes original research in the natural and social sciences of water. It emphasizes the role of water in the Earth system, including physical, chemical, biological, and ecological processes in water resources research and management, including social, policy, and public health implications. It encompasses observational, experimental, theoretical, analytical, numerical, and data-driven approaches that advance the science of water and its management. Submissions are evaluated for their novelty, accuracy, significance, and broader implications of the findings.
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