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水力发电学报

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面向服务水库年度调水计划的月径流概率预测与情景应用

  

  • 出版日期:2026-07-02 发布日期:2026-07-02

Probabilistic Monthly Runoff Forecasting and Scenario Generation for Annual Planning of Service Reservoirs

  • Online:2026-07-02 Published:2026-07-02

摘要: 针对跨流域调水年度计划中月尺度来水不确定性刻画不足、偏枯风险和偏丰调蓄压力难以识别的问题,提出月径流概率预测、来水情景生成与水量平衡校核框架。该方法以实测月径流为统一评价对象,利用训练期多年同月平均流量构建季节性基准,并对残差开展概率建模;进一步结合双向门控循环网络、注意力机制和非交叉分位数约束,生成偏枯、常态和偏丰来水情景。三河口水库实例表明,测试期纳什效率系数为0.3608,90%预测区间覆盖率为0.9275。以5.0亿m3为示例性计划调水目标,偏枯情景下实际可调水量为1.8118亿m3、缺水量为3.1882亿m3;常态和偏丰情景均可完成计划目标,但弃水或强迫泄放量分别为1.1414亿m3和14.2659亿m3。结果表明,该框架可将月径流概率预测结果转化为调水计划可用的来水边界和风险指标,为年度计划编制与滚动修正提供支撑。

Abstract: To address the insufficient representation of monthly inflow uncertainty and the difficulty in identifying dry-scenario water shortage risk and wet-scenario regulation pressure in annual inter-basin water transfer planning, this study proposes a framework integrating monthly runoff probabilistic forecasting, inflow scenario generation, and water-balance checking. Observed monthly runoff is used as the unified evaluation target. Monthly mean runoff estimated from the training period is adopted as a seasonal baseline, and probabilistic residual modelling is then conducted. A bidirectional gated recurrent network with an attention mechanism and non-crossing quantile constraints is developed to generate dry, normal, and wet inflow scenarios. A case study of Sanhekou Reservoir shows that the Nash-Sutcliffe efficiency coefficient in the test period is 0.3608, and the coverage probability of the 90% prediction interval is 0.9275. With an illustrative annual transfer target of 500 million m3, the dry scenario provides 181.18 million m3 transferable water and a shortage of 318.82 million m3. The normal and wet scenarios both meet the target, while the spill or forced-release volumes are 114.14 million m3 and 1.42659 billion m3, respectively. The results indicate that the proposed framework can provide inflow boundaries and risk indicators for annual water transfer planning and rolling adjustment.

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