Microgrid Optimal Energy Scheduling Considering Neural Network Based Battery Degradation

被引:15
|
作者
Zhao, Cunzhi [1 ]
Li, Xingpeng [1 ]
机构
[1] Univ Houston, Dept Elect & Comp Engn, Houston, TX 77204 USA
关键词
Batteries; Degradation; Microgrids; Artificial neural networks; Costs; State of charge; Mathematical models; Battery degradation; battery energy storage system; energy management system; machine learning; microgrid day-ahead scheduling; neural network; optimization; LOAD; REGRESSION; HOLIDAYS;
D O I
10.1109/TPWRS.2023.3239113
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Battery energy storage system (BESS) can effectively mitigate the uncertainty of variable renewable generation. Degradation is unpreventable and hard to model and predict for batteries such as the most popular Lithium-ion battery (LiB). In this paper, we propose a data driven method to predict the battery degradation per a given scheduled battery operational profile. Particularly, a neural network based battery degradation (NNBD) model is proposed to quantify the battery degradation with inputs of major battery degradation factors. When incorporating the proposed NNBD model into microgrid day-ahead scheduling (MDS), we can establish a battery degradation based MDS (BDMDS) model that can consider the equivalent battery degradation cost precisely with the proposed cycle based battery usage processing (CBUP) method for the NNBD model. Since the proposed NNBD model is highly non-linear and non-convex, BDMDS would be very hard to solve. To address this issue, a neural network and optimization decoupled heuristic (NNODH) algorithm is proposed in this paper to effectively solve this neural network embedded optimization problem. Simulation results demonstrate that the proposed NNODH algorithm is able to obtain the optimal solution with the lowest total cost including normal operation cost and battery degradation cost.
引用
收藏
页码:1594 / 1606
页数:13
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