Thermodynamics and Structural Optimization of Organic Rankine Cycle Plant for Clean Energy Access Using Artificial Bee Colony and Multi-Criteria Decision-Making Algorithms

Aniebiet Udo, O. Diemuodeke, M. Ojapah, F. Abam, J. Ofodu
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引用次数: 1

Abstract

The quest to decarbonize the energy space to avert the negative climate change consequences calls for using low/zero-carbon energy conversion technologies in the energy generation space. The Organic Rankine Cycle is a low/zero-carbon energy conversion technology for recovering waste heat from low to medium-temperature heat sources and for biomass conversion. Therefore, this paper presents the thermodynamic optimization, with an artificial bee colony algorithm, of different ORC configurations, including simple organic Rankine cycle, Regenerative Organic Rankine Cycle, Cascade Organic Rankine Cycle, Organic Rankine Cycle with Superheat, Organic Rankine Cycle with Superheat and Reheat, Regenerative-Superheat Organic Rankine Cycle, Regenerative-Reheat Organic Rankine Cycle and Two Complementary ORC using twelve (12) different working fluids. The thermodynamic optimization was followed by structural optimization using a multi-criteria decision approach. The modified-TOPSIS multi-criteria decision-making analysis was used to perform the structural optimization. The overall optimization study shows that the Regenerative-Reheat Organic Rankine Cycle, operating with an isopentane of 0 GWP and ODP, was selected as the best ORC configuration. The Regenerative-Reheat Organic Rankine Cycle has the following performance; thermal efficiency of 49.5%, maximum power output of 0.4 MW, condenser pressure of 90 kPa, and turbine pressure of 3.37 MPa. The results presented in this work will support clean energy developers in the clean energy access sector, especially in the agrarian community with huge agro-waste generation potentials.
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基于人工蜂群和多准则决策算法的有机朗肯循环装置清洁能源获取热力学与结构优化
寻求使能源空间脱碳以避免负面气候变化后果,需要在能源生产空间使用低碳/零碳能源转换技术。有机朗肯循环是一种低碳/零碳能源转换技术,用于从中低温热源中回收废热并进行生物质转化。因此,本文采用人工蜂群算法对不同的ORC结构进行了热力学优化,包括简单有机朗肯循环、蓄热式有机朗肯循环、级联式有机朗肯循环、过热有机朗肯循环、过热再热有机朗肯循环、蓄热-过热有机朗肯循环、蓄热-再热有机朗肯循环和使用12种不同工质的两互补ORC。采用多准则决策方法进行了结构优化和热力学优化。采用改进的topsis多准则决策分析进行结构优化。总体优化研究表明,以异戊烷为0 GWP和ODP运行的再生-再热有机朗肯循环为最佳ORC配置。再生-再热有机朗肯循环具有以下性能:热效率49.5%,最大功率输出0.4 MW,冷凝器压力90kpa,汽轮机压力3.37 MPa。这项工作的成果将为清洁能源获取部门的清洁能源开发商提供支持,特别是在具有巨大农业废物产生潜力的农业社区。
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Journal of Nuclear Energy Science and Power Generation Technology
Journal of Nuclear Energy Science and Power Generation Technology Energy-Energy Engineering and Power Technology
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