Self-optimization system dynamics simulation of reservoir operating rules

Operating rules have been used widely in the reservoir long-term operation duo to its characteristics of coping with inflow uncertainty and easy implementation. And implicit stochastic optimization (ISO) has been widely applied to derive reservoir operation rules, based on linear regression or nonli...

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Main Authors: Jia Benjun, Zhou Jianzhong, Chen Lu, He Zhongzheng, Yuan Liu, Chen Xiao, Zhu Jingan
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:MATEC Web of Conferences
Online Access:https://doi.org/10.1051/matecconf/201824601013
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spelling doaj-06a6a9b72c8e4f7da0e70a706b579b102021-03-02T11:06:56ZengEDP SciencesMATEC Web of Conferences2261-236X2018-01-012460101310.1051/matecconf/201824601013matecconf_iswso2018_01013Self-optimization system dynamics simulation of reservoir operating rulesJia BenjunZhou JianzhongChen LuHe ZhongzhengYuan LiuChen XiaoZhu JinganOperating rules have been used widely in the reservoir long-term operation duo to its characteristics of coping with inflow uncertainty and easy implementation. And implicit stochastic optimization (ISO) has been widely applied to derive reservoir operation rules, based on linear regression or nonlinear fitting method. However, the maximum goodness-of-fit criterion of fitting method may be unreliable to determine the effective rules. Therefore, this paper develops a self-optimization system dynamics (SD) simulation of reservoir operation for optimizing the operating rules, by taking advantages of feedback loops in SD simulation. A deterministic optimization operation model is firstly established, and then resolved using dynamic programming (DP). Simultaneously, the initial operating rules (IOR) are derived using the linear fitting method. Finally, the refined optimal operating rules (OOR) are obtained by improving the IOR based on the self-optimization SD simulation. China’s Three Gorges Reservoir is used as a case study. The results show that the SD simulation is competent in simulating a complicated hydropower system with feedback and causal loops. Moreover, it makes a contribution to improve the IOR derived by fitting method within an ISO frame. And the OOR improve effectively the guarantee rate of power generation on the premise of ensuring power generation.https://doi.org/10.1051/matecconf/201824601013
collection DOAJ
language English
format Article
sources DOAJ
author Jia Benjun
Zhou Jianzhong
Chen Lu
He Zhongzheng
Yuan Liu
Chen Xiao
Zhu Jingan
spellingShingle Jia Benjun
Zhou Jianzhong
Chen Lu
He Zhongzheng
Yuan Liu
Chen Xiao
Zhu Jingan
Self-optimization system dynamics simulation of reservoir operating rules
MATEC Web of Conferences
author_facet Jia Benjun
Zhou Jianzhong
Chen Lu
He Zhongzheng
Yuan Liu
Chen Xiao
Zhu Jingan
author_sort Jia Benjun
title Self-optimization system dynamics simulation of reservoir operating rules
title_short Self-optimization system dynamics simulation of reservoir operating rules
title_full Self-optimization system dynamics simulation of reservoir operating rules
title_fullStr Self-optimization system dynamics simulation of reservoir operating rules
title_full_unstemmed Self-optimization system dynamics simulation of reservoir operating rules
title_sort self-optimization system dynamics simulation of reservoir operating rules
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2018-01-01
description Operating rules have been used widely in the reservoir long-term operation duo to its characteristics of coping with inflow uncertainty and easy implementation. And implicit stochastic optimization (ISO) has been widely applied to derive reservoir operation rules, based on linear regression or nonlinear fitting method. However, the maximum goodness-of-fit criterion of fitting method may be unreliable to determine the effective rules. Therefore, this paper develops a self-optimization system dynamics (SD) simulation of reservoir operation for optimizing the operating rules, by taking advantages of feedback loops in SD simulation. A deterministic optimization operation model is firstly established, and then resolved using dynamic programming (DP). Simultaneously, the initial operating rules (IOR) are derived using the linear fitting method. Finally, the refined optimal operating rules (OOR) are obtained by improving the IOR based on the self-optimization SD simulation. China’s Three Gorges Reservoir is used as a case study. The results show that the SD simulation is competent in simulating a complicated hydropower system with feedback and causal loops. Moreover, it makes a contribution to improve the IOR derived by fitting method within an ISO frame. And the OOR improve effectively the guarantee rate of power generation on the premise of ensuring power generation.
url https://doi.org/10.1051/matecconf/201824601013
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