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Numerical experiments to explain multiscale hydrological responses to mountain pine beetle tree mortality in a headwater watershed

机译:数值实验解释水源流域对山松甲虫树死亡率的多尺度水文响应

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摘要

The effects of mountain pine beetle (MPB)-induced tree mortality on a headwater hydrologic system were investigated using an integrated physical modeling framework with a high-resolution computational grid. Simulations of MPB-affected and unaffected conditions, each with identical atmospheric forcing for a normal water year, were compared at multiple scales to evaluate the effects of scale on MPB-affected hydrologic systems. Individual locations within the larger model were shown to maintain hillslope-scale processes affecting snowpack dynamics, total evapotranspiration, and soil moisture that are comparable to several field-based studies and previous modeling work. Hillslope-scale analyses also highlight the influence of compensating changes in evapotranspiration and snow processes. Reduced transpiration in the Grey Phase of MPB-induced tree mortality was offset by increased late-summer evaporation, while overall snowpack dynamics were more dependent on elevation effects than MPB-induced tree mortality. At the watershed scale, unaffected areas obscured the magnitude of MPB effects. Annual water yield from the watershed increased during Grey Phase simulations by 11 percent; a difference that would be difficult to diagnose with long-term gage observations that are complicated by inter-annual climate variability. The effects on hydrology observed and simulated at the hillslope scale can be further damped at the watershed scale, which spans more life zones and a broader range of landscape properties. These scaling effects may change under extreme conditions, e.g., increased total MPB-affected area or a water year with above average snowpack.
机译:使用具有高分辨率计算网格的集成物理建模框架研究了山松甲虫(MPB)诱导的树木死亡率对源水水文系统的影响。在多个尺度上比较了受MPB影响和未受影响条件的模拟,每个条件对正常水年都具有相同的大气强迫,以评估尺度对受MPB影响的水文系统的影响。较大模型中的各个位置都显示出可以维持坡面规模的过程,这些过程会影响积雪动力学,总蒸散量和土壤湿度,这与基于田野的研究和先前的建模工作相当。坡度规模分析还强调了蒸散和降雪过程中补偿变化的影响。 MPB诱导的树木死亡率在灰色阶段减少的蒸腾作用被增加的夏末蒸发所抵消,而总积雪动态比MPB诱导的树木死亡率更依赖于海拔效应。在分水岭范围内,未受影响的地区掩盖了MPB效应的程度。在灰色阶段模拟期间,流域的年产量增加了11%。这种差异很难通过长期的观测数据来诊断,而这些观测数据由于年际气候变化而变得复杂。在分水岭范围内,可以进一步衰减在坡度尺度上观测和模拟的对水文的影响,该分水岭范围涵盖了更多的生活区和更广泛的景观特性。这些缩放效果可能会在极端条件下发生变化,例如,受MPB影响的总面积增加或积雪量高于平均水平的水年。

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  • 来源
    《Water resources research》 |2016年第4期|3143-3161|共19页
  • 作者单位

    Colorado Sch Mines, Integrated GroundWater Modeling Ctr, Golden, CO 80401 USA|Colorado Sch Mines, Dept Geol & Geol Engn, Golden, CO 80401 USA|US Geol Survey, Colorado Water Sci Ctr, Box 25046, Denver, CO 80225 USA;

    Colorado Sch Mines, Integrated GroundWater Modeling Ctr, Golden, CO 80401 USA|Colorado Sch Mines, Dept Geol & Geol Engn, Golden, CO 80401 USA;

    Colorado Sch Mines, Integrated GroundWater Modeling Ctr, Golden, CO 80401 USA|Colorado Sch Mines, Dept Geol & Geol Engn, Golden, CO 80401 USA;

    US Geol Survey, Colorado Water Sci Ctr, Box 25046, Denver, CO 80225 USA;

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