A Comparison of MILP and Metaheuristic Approaches for Implementation of a Home Energy Management System under Dynamic Tariffs

Vahid Rasouli, Ivo Gonçalves, C. H. Antunes, Á. Gomes
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引用次数: 14

Abstract

This paper compares two different methodological approaches - a mixed-integer linear programing (MILP) model and a metaheuristic (a genetic algorithm, GA) – to be embedded in a Home Energy Management System (HEMS) with the aim to make the integrated optimization of energy resources under dynamic tariffs. Different types of demand-side resources, including shiftable, interruptible and thermostatically controlled loads as well as local generation and storage, have been considered. The objective is to minimize the electricity cost including the monetization of the dissatisfaction of end-users with possible changes of load operation. Since these two objectives are in conflict, a compromise solution is sought according to the end-user's profile. Different end-users' preferences are considered embodying different sensitivity levels of end-users to the cost and the energy service satisfaction.
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动态电价下家庭能源管理系统实施的MILP与元启发式方法比较
本文比较了两种不同的方法方法-混合整数线性规划(MILP)模型和元启发式(遗传算法,GA) -嵌入到家庭能源管理系统(HEMS)中,目的是在动态电价下对能源资源进行综合优化。考虑了不同类型的需求侧资源,包括可移动、可中断和恒温控制负载以及本地发电和存储。目标是最大限度地减少电力成本,包括最终用户对负荷运行可能发生的变化的不满货币化。由于这两个目标是相互冲突的,因此要根据最终用户的情况寻求折衷的解决方案。考虑不同的终端用户偏好,体现了终端用户对成本和能源服务满意度的不同敏感程度。
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