A comprehensive thermo-enviro-economic assessments of a novel geothermal-based multigeneration process: Integrating power generation, hydrogen production, CO2 capture, and absorption cooling

IF 8.4 2区 环境科学与生态学 Q1 ENVIRONMENTAL SCIENCES
Rui He , Lu Huang
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Abstract

This research presents a multigeneration technique that harnesses geothermal energy and recovers waste heat from carbon dioxide separation employing MEA solvent. The process produces many outputs, such as collected carbon dioxide, heating, electricity, and cooling. This innovative method facilitates the processing of industrial flue gas to generate useful goods while utilizing renewable energy sources. The system incorporates a PEM electrolyzer, a geothermal power plant, a carbon dioxide capture unit, and an absorption chiller. The geothermal power plant comprises single flash and organic Rankine cycle components, which improve the power plant's efficiency. The absorption chiller cycle is thermally linked with the carbon dioxide capture unit, generating chilled and hot water. The influence of critical factors, including geothermal fluid flash pressure and hydrogen production rate, on further operational variables is examined. The findings indicate that augmenting hydrogen generation in this arrangement results in a reduction of energy and exergy efficiencies. The exergy analysis shows that the system is completely irreversible. The tower stripper in the carbon dioxide capture unit was found to be the place where the exergy degradation was the highest. An environmental assessment indicates that net carbon dioxide emissions are 725 kg/h, with a carbon dioxide footprint of 0.027 ton/MWh. The findings indicate that the energy, exergy, and electrical efficiencies of the novel process are 16.68 %, 59.19 %, and 13.49 %, respectively at base condition. The final optimum solution by TOPSIS with PESA-II multi objective optimization shows, 73.001 % exergy efficiency and 0.022 tons of CO2 emissions per MWh for first scenario and TPUC of 9.043 $/GJ and an exergy efficiency of 73.431 % for second scenario.
对一种新型地热多发电工艺的综合热环境经济评估:集成发电、制氢、二氧化碳捕获和吸收冷却
本研究提出了一种利用地热能和利用MEA溶剂回收二氧化碳分离余热的多发电技术。这个过程产生许多输出,如收集的二氧化碳,加热,电力和冷却。这种创新方法促进了工业烟气的处理,在利用可再生能源的同时产生有用的产品。该系统包括一个PEM电解槽、一个地热发电厂、一个二氧化碳捕获装置和一个吸收式冷却器。地热发电厂由单一闪蒸和有机朗肯循环组成,提高了电厂的效率。吸收式冷水机循环与二氧化碳捕集装置热连接,产生冷水和热水。研究了地热流体闪蒸压力和产氢速率等关键因素对进一步操作变量的影响。研究结果表明,在这种安排下,增加氢气的产生会导致能源和能源效率的降低。火用分析表明,该系统是完全不可逆的。发现二氧化碳捕集装置中的塔汽提塔是火用降解最高的地方。一项环境评估表明,二氧化碳净排放量为725千克/小时,二氧化碳足迹为0.027吨/兆瓦时。结果表明,在基本条件下,新工艺的能量效率、火用效率和电效率分别为16.68%、59.19%和13.49%。采用PESA-II多目标优化的TOPSIS优化结果表明,第一种方案的火用效率为73.001 %,每兆瓦时二氧化碳排放量为0.022吨,TPUC为9.043美元/GJ,第二种方案的火用效率为73.431%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Environmental Management
Journal of Environmental Management 环境科学-环境科学
CiteScore
13.70
自引率
5.70%
发文量
2477
审稿时长
84 days
期刊介绍: The Journal of Environmental Management is a journal for the publication of peer reviewed, original research for all aspects of management and the managed use of the environment, both natural and man-made.Critical review articles are also welcome; submission of these is strongly encouraged.
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