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Two-stage design optimization based on artificial immune system and mixed-integer linear programming for energy supply networks

机译:基于人工免疫系统和混合整数线性规划的能源供应网络两阶段设计优化

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摘要

A two-stage optimization approach based on an artificial immune system (AIS) and mixed-integer linear programming (MILP) was developed to efficiently solve large-scale structural design problems of energy supply networks and obtain multiple and diverse design candidates. By focusing on a hierarchical relationship between design and operation variables, a structural design problem, formulated using MILP, is decomposed into an upper-level design problem and a lower-level operation problem. The upper-level design problem is solved using an AIS, in which multiple and diverse sets of suboptimal solutions are searched in a short computation time. In the lower-level optimization, design variables are fixed at the values searched in the upper-level optimization and operation variables are optimized using MILP. Moreover, the lower-level optimization for multiple sets of design variables is separately conducted using parallel computing. The developed approach was applied to the structural design of an energy supply network, consisting of candidates of cogeneration units and heat pump water heating units under power and heat interchange, for a housing complex with four dwellings. The diversity and energy-saving performance of multiple design candidates were analyzed. The computational efficiency was also demonstrated in comparison to the results obtained using only a commercial MILP solver. (C) 2018 Elsevier Ltd. All rights reserved.
机译:提出了一种基于人工免疫系统(AIS)和混合整数线性规划(MILP)的两阶段优化方法,以有效解决能源供应网络的大规模结构设计问题,并获得多种多样的设计备选方案。通过关注设计和操作变量之间的层次关系,将使用MILP公式化的结构设计问题分解为上层设计问题和下层操作问题。使用AIS解决了较高层的设计问题,其中在短计算时间内搜索了多种多样的次优解。在较低级别的优化中,将设计变量固定为在较高级别的优化中搜索的值,并使用MILP对操作变量进行优化。此外,使用并行计算分别对多组设计变量进行低级优化。所开发的方法应用于能源供应网络的结构设计,该能源供应网络由具有热能交换条件的热电联产机组和热泵热水机组组成,用于具有四个住宅的房屋。分析了多个设计候选的多样性和节能性能。与仅使用商用MILP求解器获得的结果相比,还证明了计算效率。 (C)2018 Elsevier Ltd.保留所有权利。

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