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首页> 外文期刊>Journal of Cleaner Production >Exergoeconomic optimization of a novel multigeneration system driven by geothermal heat source and liquefied natural gas cold energy recovery
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Exergoeconomic optimization of a novel multigeneration system driven by geothermal heat source and liquefied natural gas cold energy recovery

机译:由地热热源和液化天然气冷能回收驱动的新型多代发电系统的能效经济优化

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摘要

Multigeneration systems driven by renewable sources are proved as cutting-edge technologies for multiple productions purposes to curb greenhouse gas emissions. With this regard, a novel geothermal-based multigeneration system is proposed to produce multiple commodities of cooling, heating, power, and hydrogen, simultaneously, using liquefied natural gas as cold energy recovery. To demonstrate the feasibility of the proposed multigeneration system, energy, exergy, and exergoeconomic analysis are employed as the most effective tools for performance assessment of the proposed system. Also, to enhance the performance of the system, single- and multi-objective optimizations are carried out, using genetic algorithm. It is found that the proposed multigeneration system can be run with the optimum basic ammonia concentration of 0.42, geothermal inlet temperature of 160.5 degrees C, evaporator temperature of 7.76 degrees C, vapor generator pressure of 33 bar, mass extraction ratio of 0.2, condenser temperature of 29.01 degrees C, separator 2 pressure of 4.99 bar, vapor generator terminal temperature difference of 7 degrees C, and turbine 2 inlet pressure of 22.11 bar. In this case, the optimum thermal efficiency, exergy efficiency, and total SUCP (sum unit cost of the product) of the system are calculated 62.74%, 33.82%, and 125.4 $/GJ, respectively. Moreover, a comprehensive parametric study is carried out and it is shown that a higher thermal efficiency can be obtained by increasing the vapor generator pressure and evaporator temperature, or decreasing the mass extraction ratio, separator 2 pressure, turbine 2 inlet pressure, geothermal inlet temperature, vapor generator terminal temperature difference, and basic ammonia concentration. (C) 2018 Elsevier Ltd. All rights reserved.
机译:事实证明,由可再生资源驱动的多代系统是用于多种生产目的的先进技术,可抑制温室气体排放。考虑到这一点,提出了一种新颖的基于地热的多代发电系统,该系统利用液化天然气作为冷能回收,同时生产多种商品,包括制冷,供热,电力和氢气。为了证明所提出的多代发电系统的可行性,能源,火用和能效经济分析被用作对所提出的系统进行性能评估的最有效工具。另外,为了提高系统性能,使用遗传算法进行了单目标和多目标优化。结果发现,建议的多联产系统可以在最佳基本氨浓度为0.42,地热入口温度为160.5摄氏度,蒸发器温度为7.76摄氏度,蒸汽发生器压力为33巴,质量提取比为0.2,冷凝器温度的条件下运行29.01摄氏度,分离器2压力为4.99巴,蒸汽发生器终端温差为7摄氏度,涡轮2入口压力为22.11巴。在这种情况下,系统的最佳热效率,火用效率和总SUCP(产品总和成本)分别计算为62.74%,33.82%和125.4 $ / GJ。此外,进行了全面的参数研究,结果表明,通过提高蒸汽发生器压力和蒸发器温度或降低质量提取比,分离器2压力,涡轮2入口压力,地热入口温度,可以获得更高的热效率。 ,蒸汽发生器的终端温差和碱性氨浓度。 (C)2018 Elsevier Ltd.保留所有权利。

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