利用SWAT-C模型减少森林流域溶解有机碳的管理策略

IF 2.7 3区 环境科学与生态学 Q3 ENVIRONMENTAL SCIENCES
Dongjun Lee, Ritesh Karki, Latif Kalin, Sabahattin Isik, Puneet Srivastava, Xuesong Zhang
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引用次数: 0

摘要

森林是至关重要的碳汇,但由于其固有的复杂性,包括多个碳库和可变性,对森林流域内的碳循环过程进行量化具有挑战性。来自森林的溶解有机碳(DOC)运输显著影响饮用水质量,因为它与氯相互作用形成消毒副产物。虽然土壤和水评估工具-碳(SWAT-C)已被广泛用于了解流域尺度的碳通量,但该模型主要在非森林流域和对水生系统的负荷中进行评估,往往忽略了流域内森林地区的陆地碳通量。本研究评估了SWAT-C在模拟美国中南部大溪森林流域陆地和水生系统碳通量方面的适用性,该流域也是饮用水源,并分析了DOC在景观中运输的主要途径。此外,还评估了旨在减少DOC迁移的三种管理方案(即森林转换、森林耙伐和调整农田生物量收获)。利用遥感数据集和数据集进行的校准工作表明,SWAT-C能够熟练地模拟森林主导地区的陆地和水生碳通量。结果强调了初始化和校准主要土地利用/覆被类型参数对提高模型模拟碳通量性能的重要性。研究发现,所有评估的管理方案都可以减少DOC向河流的输送,将优势火炬松林转化为恢复的长叶松林,使森林来源的DOC产量减少40%。这些发现为流域尺度的碳循环建模提供了有价值的见解,并为森林优势流域的管理策略提供了信息,以减少DOC的产生。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Management Strategies for Dissolved Organic Carbon Reduction from Forested Watersheds using the SWAT-C model

Forests serve as crucial carbon sinks, yet quantifying carbon cycle processes within forested watersheds is challenging due to inherent complexities, including multiple carbon pools and variability. Dissolved organic carbon (DOC) transport from forests significantly impacts drinking water quality since it interacts with chlorine to form disinfection byproducts. Although the Soil and Water Assessment Tool-Carbon (SWAT-C) has been widely used to understand carbon fluxes at the watershed scale, the model has been primarily evaluated in non-forested watersheds and loading to aquatic systems, often overlooking terrestrial carbon fluxes from forested regions within watersheds of interests. This study assessed the applicability of SWAT-C in simulating carbon fluxes in both terrestrial and aquatic systems in the forested Big Creek watershed located in the south-central United States (U.S.), which also serves as a drinking water source, and analyzed dominant pathways of DOC transport across the landscape. Additionally, three management scenarios (i.e., forest conversion, raking in forests, and adjusting biomass harvest in croplands) aimed at reducing DOC transport were evaluated. Calibration efforts using remotely sensed as well as datasets demonstrated the proficiency of SWAT-C in simulating both terrestrial and aquatic carbon fluxes in forest-dominated regions. Results emphasize the importance of initializing and calibrating the parameters of dominant land use/cover types to enhance model performance in simulating carbon fluxes. The study found that all evaluated management scenarios can reduce DOC transport into streams, with the conversion of the dominant loblolly pine forests to restored longleaf pine forests achieving a 40% reduction in forest-derived DOC yields. These findings offer valuable insights for watershed-scale carbon cycling modeling and inform management strategies in forest-dominant watersheds to mitigate DOC yields.

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来源期刊
Environmental Management
Environmental Management 环境科学-环境科学
CiteScore
6.20
自引率
2.90%
发文量
178
审稿时长
12 months
期刊介绍: Environmental Management offers research and opinions on use and conservation of natural resources, protection of habitats and control of hazards, spanning the field of environmental management without regard to traditional disciplinary boundaries. The journal aims to improve communication, making ideas and results from any field available to practitioners from other backgrounds. Contributions are drawn from biology, botany, chemistry, climatology, ecology, ecological economics, environmental engineering, fisheries, environmental law, forest sciences, geosciences, information science, public affairs, public health, toxicology, zoology and more. As the principal user of nature, humanity is responsible for ensuring that its environmental impacts are benign rather than catastrophic. Environmental Management presents the work of academic researchers and professionals outside universities, including those in business, government, research establishments, and public interest groups, presenting a wide spectrum of viewpoints and approaches.
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