A Study of Hybrid Renewable Energy Production Scenarios Using a Long Short-Term Memory Method. A Case Study of Göksun

被引:0
作者
Karayigit, Habibe [1 ]
Bolukbasi, Aykan [2 ]
Abaci, Kadir [2 ]
Akdagli, Ali [2 ]
机构
[1] Minist Natl Educ, Gen Directorate Secondary Educ, Adana, Turkiye
[2] Mersin Univ, Dept Elect Elect Engn, TR-33110 Mersin, Turkiye
关键词
Index Terms - LSTM; CNN; GRU; HOMER; Hybrid system; COE; Emission; FEASIBILITY ANALYSIS; SYSTEM;
D O I
10.5755/j02.eie.38441
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
The global demand for energy has increased exponentially over the years. To reduce the dominance of fossil fuels in energy production, there has been a shift towards energy production models based on renewable sources. In the design of hybrid energy systems, it is essential to keep investment costs low while ensuring the security of the energy supply by meeting the consumer's energy demands without interruption. The success of a good energy production model can be directly associated with the results of load estimation. The primary objective of this research is to predict the electricity demand for the G & ouml;ksun district until 2028, utilising a data set that encompasses electricity usage from 2019 through the first four months of 2024 for the G & ouml;ksun district in Kahramanmara & scedil;. This endeavour includes the application of various machine learning (ML) paradigms (long short-term memory (LSTM), gated recurrent unit (GRU), convolutional neural network (CNN)LSTM, support vector regression (SVR)) to produce load forecasting outcomes and to engineer an optimally performing hybrid system. On evaluation of the performance metrics derived from the experimental data, it has been established that the LSTM model outperforms other methodologies, yielding more favourable results. The simulation studies of the designed hybrid system were conducted using the hybrid optimisation model for electric renewables software (HOMER Pro), demonstrating improvements in both economic and environmental parameters. Our study is unique in that it is the first to utilise a data set specific to the G & ouml;ksun region and to model predictions obtained from this data set using HOMER software.
引用
收藏
页码:57 / 69
页数:13
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