推进评估土地利用变化对水质影响的方法:全面审查和建议。

IF 3.2 3区 环境科学与生态学 Q3 ENGINEERING, ENVIRONMENTAL
Silin Su, Kai Ma, Tianhong Zhou, Yuting Yao, Huijuan Xin
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引用次数: 0

摘要

随着越来越多的学者关注土地利用变化对水质的影响,尽管已经进行了大量的研究,但研究结果显示出明显的空间变异性和研究方法的异质性。为了解决这一关键差距,本综述对当前研究方法的优势和局限性进行了严格的评估,并提出了有针对性的改进建议。它系统地评估了有关土地利用变化对水质影响的现有文献,特别强调了研究结果的空间异质性和所采用方法的统一性。尽管地理环境和研究主题各不相同,但方法范例基本上保持一致,通常包括水质和土地利用数据的获取和分析、缓冲区的划定以及相关和回归分析的应用。然而,这些方法在处理区域差异、非线性相互作用和实时监测复杂性方面遇到了局限性。该评论提倡方法上的进步,例如自动化监测系统和物联网技术的集成,以及深度学习算法与遥感技术的融合,以提高数据收集的精度和效率。此外,它建议标准化缓冲区划定,加强基础水质评价,并利用流域尺度分析更准确地捕捉土地利用变化对水质的影响。未来的研究应优先发展跨学科的生态模型,以阐明土地利用、水质和气候变化之间的相互作用和反馈机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancing methodologies for assessing the impact of land use changes on water quality: a comprehensive review and recommendations.

With increasing scholarly focus on the ramifications of land use changes on water quality, although substantial research has been undertaken, the findings demonstrate pronounced spatial variability and the heterogeneity of research methodologies. To address this critical gap, this review offers a rigorous evaluation of the strengths and limitations of current research methodologies, providing targeted recommendations for refinement. It systematically assesses the existing body of literature concerning the influence of land use changes on water quality, with particular emphasis on the spatial heterogeneity of research results and the uniformity of employed methodologies. Despite variations in geographical contexts and research subjects, the methodological paradigms remain largely consistent, typically encompassing the acquisition and analysis of water quality and land use data, the delineation of buffer zones, and the application of correlation and regression analyses. However, these approaches encounter limitations in addressing regional disparities, nonlinear interactions, and real-time monitoring complexities. The review advocates for methodological advancements, such as the integration of automated monitoring systems and IoT technologies, alongside the fusion of deep learning algorithms with remote sensing techniques, to enhance both the precision and efficiency of data collection. Furthermore, it recommends the standardization of buffer zone delineation, the reinforcement of foundational water quality assessments, and the utilization of catchment-scale analyses to more accurately capture the influence of land use changes on water quality. Future inquiries should prioritize the development of interdisciplinary ecological models to elucidate the interaction and feedback mechanisms between land use, water quality, and climate change.

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来源期刊
Environmental Geochemistry and Health
Environmental Geochemistry and Health 环境科学-工程:环境
CiteScore
8.00
自引率
4.80%
发文量
279
审稿时长
4.2 months
期刊介绍: Environmental Geochemistry and Health publishes original research papers and review papers across the broad field of environmental geochemistry. Environmental geochemistry and health establishes and explains links between the natural or disturbed chemical composition of the earth’s surface and the health of plants, animals and people. Beneficial elements regulate or promote enzymatic and hormonal activity whereas other elements may be toxic. Bedrock geochemistry controls the composition of soil and hence that of water and vegetation. Environmental issues, such as pollution, arising from the extraction and use of mineral resources, are discussed. The effects of contaminants introduced into the earth’s geochemical systems are examined. Geochemical surveys of soil, water and plants show how major and trace elements are distributed geographically. Associated epidemiological studies reveal the possibility of causal links between the natural or disturbed geochemical environment and disease. Experimental research illuminates the nature or consequences of natural or disturbed geochemical processes. The journal particularly welcomes novel research linking environmental geochemistry and health issues on such topics as: heavy metals (including mercury), persistent organic pollutants (POPs), and mixed chemicals emitted through human activities, such as uncontrolled recycling of electronic-waste; waste recycling; surface-atmospheric interaction processes (natural and anthropogenic emissions, vertical transport, deposition, and physical-chemical interaction) of gases and aerosols; phytoremediation/restoration of contaminated sites; food contamination and safety; environmental effects of medicines; effects and toxicity of mixed pollutants; speciation of heavy metals/metalloids; effects of mining; disturbed geochemistry from human behavior, natural or man-made hazards; particle and nanoparticle toxicology; risk and the vulnerability of populations, etc.
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