Development of a geothermal-driven multi-output scheme for electricity, cooling, and hydrogen production: Techno-economic assessment and genetic algorithm-based optimization

IF 6.4 2区 工程技术 Q1 THERMODYNAMICS Case Studies in Thermal Engineering Pub Date : 2024-10-05 DOI:10.1016/j.csite.2024.105228
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Abstract

This study aims to develop an environmentally friendly multi-energy system for sustainable production of electricity, cooling and hydrogen. The study introduces a pioneering geothermal-based system, integrating an ejector refrigeration cycle, a dual-loop organic Rankine cycle, and a hydrogen production unit with proton exchange membrane electrolyzers. The study provides a thorough analysis of the system's energy and exergy performance, as well as its economic feasibility. Through sensitivity and parametric analyses, the research identifies key parameters that significantly influence system performance. The system's innovative design promises minimal environmental impact while delivering multifaceted performance: generating 1.38 MW of electricity, supplying 436 kW of cooling load, and producing 5.39 kg/h of hydrogen. In the exergy analysis, Evaporator1 is identified as the primary contributor to exergy loss, representing 34 % of the total exergy destruction. This is followed by the electrolysis unit, the condenser, and the ejector refrigeration cycle, which contribute 18 %, 14 %, and 12 %, respectively. The system achieves optimal efficiency at an organic Rankine cycle turbine1 inlet temperature of 387 K, yielding a power generation of 885.4 kW and an exergy efficiency of 26.7 %. Beyond this temperature, any further increase leads to a decline in power output due to operational disturbances. A multi-criteria optimization using genetic algorithm is applied, resulting in an optimized system with a cost rate of 18.13 $/h and an exergy efficiency of 38.96 %.
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开发用于发电、制冷和制氢的地热驱动多输出方案:技术经济评估和基于遗传算法的优化
本研究旨在开发一种环境友好型多能源系统,以实现电力、制冷和氢气的可持续生产。研究介绍了一种基于地热的开创性系统,该系统集成了喷射器制冷循环、双回路有机朗肯循环和质子交换膜电解槽制氢装置。研究对该系统的能量和放能性能及其经济可行性进行了全面分析。通过敏感性和参数分析,研究确定了对系统性能有重大影响的关键参数。该系统的创新设计承诺将对环境的影响降至最低,同时提供多方面的性能:发电 1.38 兆瓦,提供 436 千瓦的冷却负荷,并生产 5.39 千克/小时的氢气。在能耗分析中,蒸发器 1 是造成能耗损失的主要因素,占总能耗损失的 34%。其次是电解装置、冷凝器和喷射器制冷循环,分别占 18%、14% 和 12%。该系统在有机郎肯循环涡轮1 入口温度为 387 K 时达到最佳效率,发电量为 885.4 kW,放能效率为 26.7 %。超过这一温度后,由于运行干扰,任何进一步的升温都会导致功率输出下降。采用遗传算法进行多标准优化后,优化系统的成本率为 18.13 美元/小时,放能效率为 38.96%。
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来源期刊
Case Studies in Thermal Engineering
Case Studies in Thermal Engineering Chemical Engineering-Fluid Flow and Transfer Processes
CiteScore
8.60
自引率
11.80%
发文量
812
审稿时长
76 days
期刊介绍: Case Studies in Thermal Engineering provides a forum for the rapid publication of short, structured Case Studies in Thermal Engineering and related Short Communications. It provides an essential compendium of case studies for researchers and practitioners in the field of thermal engineering and others who are interested in aspects of thermal engineering cases that could affect other engineering processes. The journal not only publishes new and novel case studies, but also provides a forum for the publication of high quality descriptions of classic thermal engineering problems. The scope of the journal includes case studies of thermal engineering problems in components, devices and systems using existing experimental and numerical techniques in the areas of mechanical, aerospace, chemical, medical, thermal management for electronics, heat exchangers, regeneration, solar thermal energy, thermal storage, building energy conservation, and power generation. Case studies of thermal problems in other areas will also be considered.
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