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Multi-objective optimization of a residential solar thermal combisystem

机译:住宅太阳能热发电系统的多目标优化

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Solar thermal systems for domestic hot water and space heating, referred to as solar combisystems, can significantly reduce primary energy consumption for residential buildings. In most studies, single objective optimization algorithms are used for the design and operation strategies of such complex systems. This paper presents the use of two conflicting objective functions, the life cycle cost and life cycle energy, for the optimization of a residential solar combisystem in Montreal, Quebec, Canada. Since the design the solar combisystem is treated as a multi-objective optimization problem, two different approaches for solving such problems are presented and compared: the weighted sum method (WSM) using a hybrid particle swarm optimization/Hooke-Jeeves (PSO/HJ) algorithm, and a multi-objective particle swarm optimization (MOPSO). Finally, a hybrid (MOPSO/HJ) is proposed to enhance the local search of MOPSO. The results show that the WSM was time-consuming for such an optimization problem. MOPSO/HJ was more than six times faster than the WSM. Compared with the base case combisystem, MOPSO/HJ found different design options, where the life cycle cost and life cycle energy were reduced by up to 88.6% and 63.9%, respectively. (C) 2016 Elsevier Ltd. All rights reserved.
机译:用于生活热水和空间供暖的太阳能热系统(称为太阳能组合系统)可以显着减少住宅建筑的一次能源消耗。在大多数研究中,单目标优化算法用于此类复杂系统的设计和操作策略。本文介绍了使用两个相互矛盾的目标函数(生命周期成本和生命周期能量)来优化加拿大魁北克蒙特利尔的住宅太阳能组合系统。由于太阳能组合系统的设计被视为多目标优化问题,因此提出并比较了解决这些问题的两种不同方法:使用混合粒子群优化/胡克·吉夫斯(PSO / HJ)的加权和方法(WSM)算法和多目标粒子群优化(MOPSO)。最后,提出了一种混合(MOPSO / HJ)来增强对MOPSO的本地搜索。结果表明,WSM对于此类优化问题非常耗时。 MOPSO / HJ比WSM快六倍以上。与基本案例组合系统相比,MOPSO / HJ发现了不同的设计方案,其中生命周期成本和生命周期能量分别降低了88.6%和63.9%。 (C)2016 Elsevier Ltd.保留所有权利。

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