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Thermoeconomic optimization of a solar-assisted heat pump based on transient simulations and computer Design of Experiments

机译:基于瞬态模拟和计算机实验设计的太阳能辅助热泵热经济性优化

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In the paper, a model for the simulation and the optimization of a novel solar trigeneration system is presented. The plant simulation model is designed to supply electricity, space heating or cooling and domestic hot water for a small residential building. The system is based on a solar field equipped with flat-plate photovoltaic/thermal collectors, coupled with a water-to-water electric heat pump/chiller. The electrical energy, produced by the hybrid collectors is entirely supplied to the building. During the winter, the thermal energy available from the solar field is used as a heat source for the evaporator of the heat pump and/or to produce domestic hot water. During the summer, the heat pump operates in cooling mode, coupled with a closed circuit cooling tower, providing space cooling for the building, and the hot water produced by the collectors is only used to produce domestic hot water. For such a system, a dynamic simulation model was developed in TRNSYS environment, paying special attention to the dynamic simulation of the building, too. The system was analyzed from an energy and economic point of view, considering different time bases. In order to minimize the pay-back period, an optimum set of the main design/control parameters was obtained by means of a sensitivity analysis. Simultaneously, a computer-based Design of Experiment procedure was implemented, aiming at calculating the optimal set of design parameters, using both energy and economic objective functions. The results showed that thermal and electrical efficiencies are above 40% and 10%, respectively. The coefficient of performance of the reversible heat pump resulted above 4 for both heating and cooling modes. For the base case, a Simple Pay Back period of 5.36 years was found; such index decreases to 2.33 years in case a capital investment incentive of 30% is available. As expected, a decrease of the performance of the system was detected for weather conditions in which the availability of solar energy is scarce. The Design of Experiments analysis outlined that the appropriate selection of collector area is crucial in order to achieve a good profitability of the system under analysis. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了一种用于模拟和优化新型太阳能三代发电系统的模型。该工厂模拟模型旨在为小型住宅建筑提供电力,空间供暖或制冷以及生活热水。该系统基于配备有平板光伏/集热器以及水对水电热泵/冷却器的太阳能场。混合式集热器产生的电能完全提供给建筑物。在冬季,从太阳能场获得的热能被用作热泵蒸发器的热源和/或产生生活热水。在夏季,热泵以制冷模式运行,再加上一个闭路冷却塔,为建筑物提供空间制冷,而集热器产生的热水仅用于生产生活热水。对于这样的系统,在TRNSYS环境中开发了动态仿真模型,同时也特别注意了建筑物的动态仿真。该系统从能源和经济角度出发,考虑了不同的时基。为了最小化投资回收期,通过敏感性分析获得了一组最佳的主要设计/控制参数。同时,实施了基于计算机的实验设计程序,旨在利用能源和经济目标函数来计算最佳设计参数集。结果表明,热效率和电效率分别高于40%和10%。对于加热和冷却模式,可逆热泵的性能系数均高于4。对于基本情况,发现的简单投资回收期为5.36年。如果有30%的资本投资激励措施,该指数将降低至2.33年。不出所料,对于缺乏太阳能的天气情况,系统的性能下降了。实验设计分析概述了正确选择收集器区域对于实现所分析系统的良好盈利能力至关重要。 (C)2016 Elsevier Ltd.保留所有权利。

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