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Single and Multi-Objective Optimization of a Cogeneration System Using Hybrid Algorithms

机译:使用混合算法的热电联产系统的单目标和多目标优化

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摘要

Current design and operation of energy systems must consider the efficient utilization of energy resources, reduced environmental harms, and sustainable development. Many techniques for energy systems analysis and optimization have thus been developed worldwide. To evaluate different methodologies, the benchmark CGAM problem was proposed, which consisted of the optimization of a cogeneration system with explicit physical, thermodynamic, and economic models. The original CGAM problem was formulated as a single objective optimization problem, where the objective function was the sum of the purchased equipment, maintenance and operation, and fuel consumption costs. However, in real-life applications, costs must be analyzed individually: for example, one might increase equipment costs but save in fuel consumption for the entire system life. In this paper, single- and multi-objective hybrid optimizations of the CGAM system are performed. A hybrid optimization algorithm combines the strengths of deterministic and heuristic methods. Usually, it employs a heuristic method to locate a region where the global extreme point lies, and then switches to a deterministic method to get to the exact point faster. The objective functions are the fuel consumption cost rate and the total capital investment. Thus, a Pareto front is obtained for all non-dominated solutions, from which the final decision can be made considering appropriate scenarios.
机译:当前能源系统的设计和运行必须考虑能源的有效利用,减少环境危害和可持续发展。因此,全世界范围内开发了许多用于能源系统分析和优化的技术。为了评估不同的方法,提出了基准CGAM问题,该问题包括利用显式物理,热力学和经济模型对热电联产系统进行优化。最初的CGAM问题被表述为单个目标优化问题,其中目标函数是所购设备,维护和运行以及燃油消耗成本之和。但是,在实际应用中,必须单独分析成本:例如,可能会增加设备成本,但会节省整个系统寿命的油耗。本文对CGAM系统进行了单目标和多目标混合优化。混合优化算法结合了确定性和启发式方法的优势。通常,它采用启发式方法来定位全局极端点所在的区域,然后切换到确定性方法以更快地到达精确点。目标函数是燃料消耗成本率和总资本投资。因此,获得了所有非支配解的Pareto前沿,可以根据适当的方案做出最终决定。

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