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A methodology to obtain the foremost type and optimal size of the prime mover of a CCHP system for a large-scale residential application

机译:一种方法,以获得用于大型住宅应用程序的CCHP系统的最重要类型和最佳大小的方法

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摘要

An innovative procedure was proposed for the optimal design and deployment of the CCHP systems for usage in a residential building, considering their application in various climatic conditions. Energy demands of the building were estimated at six different climatic zones. The preliminary CCHP plant based on different prime-movers, including internal-combustion engine, gas turbines, Stirling-engine, and the molten carbonate fuel cell was modeled. Multi-objective optimizations based on energy, economic and environmental (3E) objective functions were implemented to determine the optimal capacity of prime-movers. The final solution at each area was obtained in two steps. First, multi-criteria decision-making techniques (Fuzzy, TOPSIS, and LINMAP) were used to select the best CCHP configurations among the Pareto optimal sets. Second, a new class of the analytic hierarchy process (AHP) was employed to prioritize the optimal solutions based on each prime-mover in any zone. Results show that the ICE-based CCHP system was the most beneficial alternative for use in the residential sector at all climates. CCHP systems based on GTs and SEs come as the next priorities, respectively. It was found that in determining an appropriate CCHP system, the type of technology is more important than the climatic conditions.
机译:提出了一种创新的程序,为住宅建筑中使用的CCHP系统的最佳设计和部署,考虑到他们在各种气候条件下的应用。建筑物的能源需求估计在六种不同的气候区。基于不同的主要搬运工的初步CCHP工厂,包括内燃机,燃气轮机,斯特林发动机和熔融碳酸盐燃料电池。实施了基于能源,经济和环境(3E)客观职能的多目标优化,以确定主要搬运工的最佳能力。每个区域的最终溶液分两步获得。首先,使用多标准决策技术(模糊,TOPSIS和LINMAP)来选择Pareto最佳集之间的最佳CCHP配置。其次,采用新类别的分析层次处理(AHP),以基于任何区域的每个Prime-MOVER优先考虑最佳解决方案。结果表明,基于冰的CCHP系统是在所有气候中使用的居住部门最有益的替代品。基于GTS和SES的CCHP系统分别为下一个优先级。结果发现,在确定适当的CCHP系统时,技术类型比气候条件更重要。

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