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水电站分期发电调度规则提取方法
引用本文:郭玉雪,方国华,闻昕,黄显峰.水电站分期发电调度规则提取方法[J].水力发电学报,2019,38(1):20-31.
作者姓名:郭玉雪  方国华  闻昕  黄显峰
作者单位:河海大学水利水电学院
基金项目:江苏省研究生科研与实践创新计划项目(KYZZ16_0287);江苏省高校优势学科建设工程资助项目(PAPD)
摘    要:针对水电站发电优化调度需求,提出了结合灰色关联度(GRA)和贝叶斯模型平均法(BMA)提取水电站水库分期发电调度规则方法。在确定性优化调度模型基础上,首先确定决策变量和影响因子属性集,基于GRA筛选分期影响因子;然后分别采用多元线性回归模型、支持向量机模型及BP神经网络模型拟合得到分期水电站水库发电调度规则;最后应用BMA进行多模型结果加权平均获取最终分期水电站水库发电调度规则。以新安江水电站为例,对本文的方法进行了验证。研究结果表明,基于GRA和BMA结合的调度规则提取方法不仅可以提供精度较高的均值模拟,而且能较好地保持确定性优化调度的发电效益。

关 键 词:灰色关联度  贝叶斯模型平均  分期规则  水电站水库  发电调度  模型不确定性

Deriving rules for staged dispatching of hydropower stations
GUO Yuxue,FANG Guohua,WEN Xin,HUANG Xianfeng.Deriving rules for staged dispatching of hydropower stations[J].Journal of Hydroelectric Engineering,2019,38(1):20-31.
Authors:GUO Yuxue  FANG Guohua  WEN Xin  HUANG Xianfeng
Affiliation:(College of Water Conservancy and Hydropower Engineering,Hohai University,Nanjing 210098)
Abstract:Applying the grey relational analysis (GRA) and Bayesian model averaging (BMA) method, this paper develops a new method for dispatching the power production of a hydropower station. We first determine decision variables and impact factor sets using GRA and the results of a deterministic optimal dispatch model, and then obtain rules for staged hydropower production dispatching using a multivariate linear regression model, a support vector machine, and a back propagation neural networks . Finally, the rules for monthly power dispatching are derived using BMA to take weighted average of the models’ results. Application in a case study of the Xinanjiang hydropower station shows that our method is more accurate and can achieve an efficiency of hydropower production comparable to that of deterministic optimal dispatch.
Keywords:grey relational analysis  Bayesian model averaging  staged dispatching rules  hydropower  station  power production  model uncertainty  
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