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Techno-economic optimization for the design of solar chimney power plants

机译:太阳能烟囱发电厂设计的技术经济优化

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This paper aims to propose a methodology for optimization of solar chimney power plants taking into account the techno-economic parameters. The indicator used for optimization is the comparison between the actual achieved simple payback period for the design and the minimum possible (optimum) simple payback period as a reference. An optimization model was executed for different twelve designs in the range 5-200 MW to cover reinforced concrete chimney, sloped collector, and floating chimney. The height of the chimney was optimized and the associated collector area was calculated accordingly. Relationships between payback periods, electricity price, and the peak power capacity of each power plant were developed. The resulted payback periods for the floating Chimney power plants were the shortest compared to the other studied designs. For a solar chimney power plant with 100 MW at electricity price 0.10 USD/kWh, the simple payback period for the reference case was 4.29 years for floating chimney design compared to 23.47 and 16.88 years for reinforced concrete chimney and sloped collector design, respectively. After design optimization for 100 MW power plant of each of reinforced concrete, sloped collector, and floating chimney, a save of 19.63, 2.22, and 2.24 million USD, respectively from the initial cost of the reference case is achieved. Sensitivity analysis was conducted in this study to evaluate the impacts of varied running cost, solar radiation, and electricity price on the payback periods of solar chimney power plant. Floating chimney design is still performing after applying the highest ratio of annual running cost to the annual revenue. The sensitivity analysis showed that at the same solar radiation and electricity price, the simple payback period for 200 MW with sloped collector design would almost have the double simple payback period for 5 MW with floating chimney design. (C) 2017 Elsevier Ltd. All rights reserved.
机译:本文旨在提出一种考虑技术经济参数优化太阳能烟囱发电厂的方法。用于优化的指标是设计的实际实现的简单投资回收期与可能的最小(最佳)简单投资回收期之间的比较,以作为参考。针对5-200 MW范围内的十二种设计执行了优化模型,以覆盖钢筋混凝土烟囱,倾斜收集器和浮动烟囱。优化烟囱的高度,并据此计算相关的收集器面积。建立了投资回收期,电价和每个电厂的峰值功率之间的关系。与其他研究设计相比,浮动烟囱发电厂的投资回收期最短。对于电价为0.10美元/千瓦时的100兆瓦太阳能烟囱电厂,浮动烟囱设计的参考案例的简单投资回收期为4.29年,而钢筋混凝土烟囱和倾斜集热器设计的投资回收期分别为23.47年和16.88年。在对100 MW钢筋混凝土,倾斜集热器和浮烟囱的发电厂进行设计优化后,分别比参考案例的初始成本节省了19.63、2.22和124万美元。在这项研究中进行了敏感性分析,以评估变化的运行成本,太阳辐射和电价对太阳能烟囱发电厂投资回收期的影响。在将年度运行成本与年度收入的比例最高后,浮动烟囱设计仍在执行。敏感性分析表明,在相同的太阳辐射和电价的情况下,采用倾斜式集热器设计的200 MW的简单投资回收期将几乎是采用浮动烟囱设计的5 MW的简单投资回收期的两倍。 (C)2017 Elsevier Ltd.保留所有权利。

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