Optimal Design of a Gas Turbine Cogeneration Plant by a Hierarchical Optimization Method With Parallel Computing

R. Yokoyama, Y. Shinano, Yuki Wakayama, T. Wakui
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引用次数: 1

Abstract

To attain the highest performance of energy supply systems, it is necessary to rationally determine types, capacities, and numbers of equipment in consideration of their operational strategies corresponding to seasonal and hourly variations in energy demands. Mixed-integer linear programming (MILP) approaches have been applied widely to such optimal design problems. The authors have proposed a MILP method utilizing the hierarchical relationship between design and operation variables to solve the optimal design problems of energy supply systems efficiently. In addition, some strategies to enhance the computation efficiency have been adopted: bounding procedures at both the levels and ordering of the optimal operation problems at the lower level. In this paper, as an additional strategy to enhance the computation efficiency, parallel computing is adopted to solve multiple optimal operation problems in parallel at the lower level. In addition, the effectiveness of each and combinations of the strategies adopted previously and newly is investigated. This hierarchical optimization method is applied to an optimal design of a gas turbine cogeneration plant, and its validity and effectiveness are clarified through some case studies.
基于并行计算的分层优化方法的燃气轮机热电联产装置优化设计
为了实现能源供应系统的最高性能,有必要根据能源需求的季节性和小时变化,合理确定设备的类型、容量和数量。混合整数线性规划(MILP)方法已广泛应用于此类优化设计问题。提出了一种利用设计变量和运行变量之间的层次关系来有效解决能源供应系统优化设计问题的MILP方法。此外,为了提高计算效率,本文还采用了一些策略:对最优操作问题的层次进行边界化处理,并对较低层次的问题进行排序。本文采用并行计算作为提高计算效率的附加策略,在底层并行解决多个最优操作问题。此外,还研究了以前和新采用的策略的有效性和组合。将该方法应用于某燃气轮机热电联产装置的优化设计,并通过实例验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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