Strategic planning for sustainable electric system operations: Integrating renewables and energy storage

IF 3.9 2区 工程技术 Q2 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Ilse María Hernández-Romero , Luis R. Barajas-Villarruel , Antonio Flores-Tlacuahuac , Luis Fabian Fuentes-Cortes , Vicente Rico-Ramirez
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引用次数: 2

Abstract

This work proposes a mathematical programming approach for strategic planning in power system operations with the aim of promoting a sustainable energy transition. The approach identifies optimal operating policies that integrate conventional generation plants and renewable energies to meet user demand while considering energy generation, transmission, and distribution. Additionally, the formulation determines the optimal storage units required in the energy transmission network to improve system stability and reduce operating costs by balancing energy supply and demand. However, the operation of the power system is limited by several factors, such as economic and environmental factors as well as energy losses. Therefore, the purpose is to operate the electricity system with the lowest operating cost while minimizing CO2 emissions generated by electricity production. Since there is a conflict between these objectives, a multi-objective approach is necessary to propose a compromise solution. The compromise solution represents a balance between technical, economic, and environmental factors; the results demonstrate that it is possible to achieve a balance between these factors. Finally, we present a case study of the Mexican Electricity System (SEN) to apply the developed model. The case study includes a maximum load operation analysis to determine the system’s limits and ranges. This analysis will enable system expansion or improvement planning to meet future energy demands.

可持续电力系统运行的战略规划:整合可再生能源和能源储存
这项工作提出了一种数学规划方法,用于电力系统运行的战略规划,旨在促进可持续的能源转型。该方法确定了整合传统发电厂和可再生能源的最佳运营政策,以满足用户需求,同时考虑能源的生产、传输和分配。此外,该公式还确定了输电网所需的最优存储单元,通过平衡能源供需,提高系统稳定性,降低运行成本。然而,电力系统的运行受到多种因素的限制,如经济、环境因素以及能量损失。因此,目的是以最低的运行成本运行电力系统,同时最大限度地减少电力生产产生的二氧化碳排放。由于这些目标之间存在冲突,因此有必要采用多目标方法来提出折衷的解决方案。折衷方案代表了技术、经济和环境因素之间的平衡;结果表明,在这些因素之间达到平衡是可能的。最后,我们以墨西哥电力系统(SEN)为例来应用所建立的模型。案例研究包括最大负载运行分析,以确定系统的极限和范围。这种分析将使系统扩展或改进计划能够满足未来的能源需求。
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来源期刊
Computers & Chemical Engineering
Computers & Chemical Engineering 工程技术-工程:化工
CiteScore
8.70
自引率
14.00%
发文量
374
审稿时长
70 days
期刊介绍: Computers & Chemical Engineering is primarily a journal of record for new developments in the application of computing and systems technology to chemical engineering problems.
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