Synergistic Regulation of Soil Salinity and Ion Transport in Arid Agroecosystems: A Field Study on Drip Irrigation and Subsurface Drainage in Xinjiang, China
文献类型: 外文期刊
作者: Zhu, Qianqian 1 ; Wang, Hui 1 ; Ma, Honghong 1 ; Ding, Feng 1 ; Xu, Wanli 1 ; Ma, Xiaopeng 1 ; Fu, Yanbo 1 ;
作者机构: 1.Xinjiang Acad Agr Sci, Inst Agr Resources & Environm, Urumqi 830000, Peoples R China
2.Natl Soil Qual Aksu Observat Expt Stn, Aksu 843000, Peoples R China
关键词: salt-affected soil remediation; ionic migration dynamics; subsurface drainage; arid agriculture
期刊名称:WATER ( 影响因子:3.0; 五年影响因子:3.3 )
ISSN:
年卷期: 2025 年 17 卷 9 期
页码:
收录情况: SCI
摘要:
The salinization of cultivated soil in arid zones is a core obstacle restricting the sustainable development of agriculture, particularly in regions like Xinjiang, China, where extreme aridity and intensive irrigation practices exacerbate salt accumulation through evaporation-crystallization cycles. Conventional drip irrigation, while temporarily mitigating surface salinity, often leads to secondary salinization due to elevated water tables and inefficient leaching. Recent studies highlight the potential of integrating drip irrigation with subsurface drainage systems to address these challenges, yet the synergistic mechanisms governing ion transport dynamics, hydrochemical thresholds, and their interaction with crop physiology remain poorly understood. In this study, we analyzed the effects of spring irrigation during the non-fertile period, soil hydrochemistry variations, and salt ion dynamics across three arid agroecosystems in Xinjiang. By coupling drip irrigation with optimized subsurface drainage configurations (burial depths: 1.4-1.6 m; lateral spacing: 20-40 m), we reveal a layer-domain differentiation in salt migration, Cl- and Na+ were leached to 40-60 cm depths, while SO42- formed a "stagnant salt layer" at 20-40 cm due to soil colloid adsorption. Post-irrigation hydrochemical shifts included a 40% decline in conductivity, emphasizing the risk of adsorbed ion retention. Subsurface drainage systems suppressed capillary-driven salinity resurgence, maintaining salinity at 8-12 g
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