Unraveling the interplay between NDVI, soil moisture, and snowmelt: A comprehensive analysis of the Tibetan Plateau agroecosystem

IF 5.9 1区 农林科学 Q1 AGRONOMY
Di Wei, Lin Yan, Ziqi Zhang, Jia Yu, Xue’er Luo, Yun Zhang, Bo Wang
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Abstract

The rapid changing climate conditions within Tibetan Plateau determine the complex interaction between vegetation succession and agricultural water resources, including soil moisture and snowmelt. While previous studies have primarily focused on the coupling relationship between NDVI and soil moisture, snowmelt, as a critical water source in plateau ecosystems, plays an equally important role in regulating the water cycle. This study integrates MODIS remote sensing images and ERA5-Land meteorological reanalysis datasets to establish a ternary system encompassing NDVI, soil moisture, and snowmelt. Using geostatistical methods such as trend analysis, cross-correlation, random forest algorithm, and Granger causality, we explore the temporal dynamics and causal relationships among these ecological variables. Results indicate an overall increase in NDVI, a consistent decrease in snowmelt, and spatially heterogeneous changes in soil moisture across the Tibetan Plateau from 2001 to 2023. NDVI and soil moisture exhibit mostly instantaneous responses, with a brief one-month time-lag effect, while NDVI demonstrates a more pronounced lagged response to snowmelt. In grassland ecosystems, soil moisture lags behind snowmelt, whereas in woodlands, snowmelt lags behind soil moisture. Transitional vegetation zones reveal a regulatory feedback loop, where snowmelt predominantly influences soil moisture, which subsequently transitions to a bidirectional feedback mechanism between soil moisture and snowmelt as vegetation succession in woodland ecosystems. This study provides new insights into the feedback processes between vegetation growth and water resources in different ecological zones of Tibetan Plateau, guiding water management and sustainable development for agroecosystem.
NDVI、土壤湿度和融雪之间的相互作用:青藏高原农业生态系统的综合分析
青藏高原快速变化的气候条件决定了植被演替与农业水资源(包括土壤水分和融雪)之间复杂的相互作用。以往的研究主要集中在NDVI与土壤水分的耦合关系上,而融雪作为高原生态系统的重要水源,在调节水循环中发挥着同样重要的作用。本研究结合MODIS遥感影像和ERA5-Land气象再分析数据集,建立了包含NDVI、土壤湿度和融雪量的三元系统。利用趋势分析、相互关联、随机森林算法、格兰杰因果关系等地统计学方法,探讨了这些生态变量之间的时间动态和因果关系。结果表明:2001 - 2023年,青藏高原NDVI总体呈上升趋势,融雪量持续减少,土壤湿度呈空间异质性变化。NDVI和土壤湿度主要表现为瞬时响应,具有短暂的1个月滞后效应,而NDVI对融雪的滞后响应更为明显。在草地生态系统中,土壤水分滞后于融雪,而在林地中,融雪滞后于土壤水分。过渡植被带揭示了一个调节反馈回路,其中融雪主要影响土壤湿度,随后随着林地生态系统植被演替转变为土壤湿度和融雪之间的双向反馈机制。该研究为青藏高原不同生态区植被生长与水资源之间的反馈过程提供了新的认识,为水资源管理和农业生态系统的可持续发展提供了指导。
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来源期刊
Agricultural Water Management
Agricultural Water Management 农林科学-农艺学
CiteScore
12.10
自引率
14.90%
发文量
648
审稿时长
4.9 months
期刊介绍: Agricultural Water Management publishes papers of international significance relating to the science, economics, and policy of agricultural water management. In all cases, manuscripts must address implications and provide insight regarding agricultural water management.
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