用于森林管理的森林生长和水文过程综合建模

J. Yang, D. White, J. Palma, D. Meason, F. Balocchi, C. Rajanayaka, W. Dawes, M. Battaglia
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引用次数: 0

摘要

森林在调节全球碳循环和水文循环、全球变暖和森林生产方面发挥着重要作用。这对森林集水区管理提出了巨大挑战,因为它需要解决几个问题,例如,毁林和再造林对水文过程(如蒸发、河流、地下水系统和洪水)的影响,以及气候变化对水文过程(蒸发、河流等)和森林生产的影响。这通常需要对气候、地质、树木生长、营养以及地表水和地下水之间的相互作用有一个全面的了解。在本研究中,我们将森林水文模型CABALA (Battaglia et al. 2004)与地下水模型(Pauwels et al. 2002)结合起来模拟这些相互作用。然后将该综合模型应用于智利的两个森林实验集水区,即Maria Las Cruces和Quivolgo,流域面积分别为19公顷和40公顷(Balocchi et al. 2002),其中水资源和森林生产是主要问题。结果表明,该模型能较好地模拟森林生长、流域蒸散量和河流流量。敏感性分析表明,树种和森林生长、土壤(如导电性)和地形(如流域坡度)等参数对河流流量的影响最大。这些模式的整合似乎有希望支持森林集水区的管理,这些集水区需要考虑对水管理采取更全面的办法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Integrated modelling of forest growth and hydrologic processes for forest management
: Forests play a major role in regulating the global carbon cycle and the hydrologic cycle, global warming, and forest production. This poses a big challenge for forest catchment management, as it requires addressing several questions, e.g. what is the impact of deforestation and reforestation on hydrologic processes (e.g. evaporation, streamflow, groundwater system, and flooding), and what is the impact of climate change on hydrologic processes (evaporation, streamflow, etc) and forest production. This often requires a holistic understanding the interactions among climate, geology, tree growth, nutrient, and both surface and groundwater bodies. In this study, we integrated a forest hydrologic model CABALA (Battaglia et al. 2004) with a groundwater model (Pauwels et al. 2002) to simulate these interactions. This integrated model was then applied in two forest experimental catchments in Chile, i.e. Maria Las Cruces and Quivolgo with drainage areas of 19 ha and 40 ha (Balocchi et al. 2002), respectively, where water resources and forest production are of major concerns. Results indicate the integrated model can correctly simulate forest growth, catchment evapotranspiration and streamflow. Sensitivity analysis indicates that parameters of tree species and forest growth, soil (e.g. hydraulic conductivity), and topography (e.g. catchment slope) have the most impact on the streamflow. The integration of these models seems promising to support the management of forest catchments that need to consider a more holistic approach regarding water management.
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