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首页> 外文期刊>Geothermics >A Sustainable model for the integration of solar and geothermal energy boosted with thermoelectric generators (TEGs) for electricity, cooling and desalination purpose
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A Sustainable model for the integration of solar and geothermal energy boosted with thermoelectric generators (TEGs) for electricity, cooling and desalination purpose

机译:一种可持续的太阳能和地热能集成模型,用热电发电机(TEGS)进行电力,冷却和海水淡化

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摘要

In this research paper, an integrated energy system for the production of cooling, hot water, and electricity along with desalinated water is proposed, simulated, assessed, and optimized. This integrated energy system is composed of a geothermal well, a single-effect Li/Br and water absorption chiller, parabolic trough collectors (PTCs), a steam Rankine cycle (SRC) and, a reverse osmosis desalination unit. Instead of the condenser, thermoelectric generators (TEGs) are used to increase the generated electricity by the SRC. The system?s performance is evaluated in terms of energy, exergy, and exergoeconomic, and the cases with the TEG is compared to the system with the condenser, and results are discussed and investigated. Using the TEG instead of a condenser, results in reducing the total cost rate and enhancing the system?s exergy efficiency. Also, the performance of the system was evaluated for four different days in Shiraz city. For the selected days in spring, summer, fall, and winter, the highest generated electricity of the system with the thermoelectric generator is 1087 kW, 1158 kW, 1133 kW, and 766.5 kW, respectively. Thus, the system with thermoelectric is selected for optimization. To optimize the system, seven decision variables are selected namel, the geothermal fluid temperature, the total solar aperture area, the collector outlet temperature, the inlet pressure of the turbines, the TEG figure of merit, the turbine outlet pressure, and the evaporator pinch point temperature difference. Total cost rate and system exergy efficiency are considered as two objective functions. To determine optimum values of the objective functions, a multi-objective genetic algorithm is applied, and also the Pareto frontier figure is obtained. In this figure, the best point is chosen from the technique for order of preference by similarity to ideal solution (TOPSIS) decision-making criterion, where the cost rate is 10.41 ($ / GJ), and the exergy efficiency is 20.52%.
机译:在本研究论文中,提出了一种用于生产冷却,热水和电力以及脱盐水的集成能量系统,进行了模拟,评估和优化。该集成能量系统由地热井组成,单效Li / Br和吸水冷却器,抛物线槽收集器(PTC),蒸汽兰序循环(SRC)和反渗透脱盐单元。代替冷凝器,热电发电机(TEG)用于通过SRC增加产生的电力。系统的性能是在能量,驱动和exergo经济学方面进行评估,并且将TEG的病例与用冷凝器进行比较,并讨论并研究了结果。使用TEG而不是冷凝器,导致降低总成本率并增强系统的漏洞效率。此外,系统在Shiraz City的四天评估了系统的性能。对于春季,夏季,秋季和冬季选定的日子,系统具有热电发电机的最高发电量分别为1087千瓦,1158千瓦,1133千瓦,766.5千瓦。因此,选择具有热电学的系统进行优化。为了优化系统,选择七个决策变量Namel,地热液温度,总太阳能孔径区域,集电极出口温度,涡轮机的入口压力,涡轮机出口压力和蒸发器夹具点温差。总成本率和系统高度效率被视为两个目标职能。为了确定目标函数的最佳值,应用了多目标遗传算法,并且获得了帕累托前沿图。在该图中,最佳点是通过相似性与理想解决方案(TOPSIS)决策标准的优先顺序选择的最佳点,其中成本率为10.41($ / GJ),高度效率为20.52%。

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