基岩循环深度和孔隙度在山地水流对长期干旱响应中的作用

IF 4.6 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Geophysical Research Letters Pub Date : 2025-02-22 DOI:10.1029/2024GL112927
Rosemary W. H. Carroll, Andrew H. Manning, Kenneth H. Williams
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引用次数: 0

摘要

对于基岩中活跃地下水循环的深度如何影响山地河流对多年干旱的响应,还缺乏定量的认识。我们使用一个综合水文模型来探索在可能持续长达5年的极端干旱情景下,各种流量指标对基岩循环深度和孔隙度的敏感性。模拟了破碎结晶岩端部深度与水力导电性的关系和孔隙度值。在干旱情况下,与浅层循环系统相比,具有较高排水孔隙度的深层循环系统更有效地缓冲了最小流量,并显著限制了常年流损失。径流缓冲是通过大量地下水储存损失来实现的。然而,与储水量有限的浅层系统相比,深层循环系统从干旱中恢复的时间更长。研究强调了表征山区流域深层基岩水文地质的重要性,以更好地了解和预测干旱对河流生态系统健康和水资源可持续性的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The Role of Bedrock Circulation Depth and Porosity in Mountain Streamflow Response to Prolonged Drought

Quantitative understanding is lacking on how the depth of active groundwater circulation in bedrock affects mountain streamflow response to a multi-year drought. We use an integrated hydrological model to explore the sensitivity of a variety of streamflow metrics to bedrock circulation depth and porosity under a plausible extreme drought scenario lasting up to 5 years. Endmember depth versus hydraulic conductivity relationships and porosity values for fractured crystalline rock are simulated. With drought, a deeper circulation system with higher drainable porosity more effectively buffers minimum flow and significantly limits perennial stream loss in comparison to a shallow circulation system. Streamflow buffering is accomplished through extensive groundwater storage loss. However, deeper circulation systems experience prolonged recovery from drought in comparison to storage-limited shallow systems. Research highlights the importance of characterizing the deeper bedrock hydrogeology in mountainous watersheds to better understand and predict drought impacts on stream ecosystem health and water resource sustainability.

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来源期刊
Geophysical Research Letters
Geophysical Research Letters 地学-地球科学综合
CiteScore
9.00
自引率
9.60%
发文量
1588
审稿时长
2.2 months
期刊介绍: Geophysical Research Letters (GRL) publishes high-impact, innovative, and timely research on major scientific advances in all the major geoscience disciplines. Papers are communications-length articles and should have broad and immediate implications in their discipline or across the geosciences. GRLmaintains the fastest turn-around of all high-impact publications in the geosciences and works closely with authors to ensure broad visibility of top papers.
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