Organic rankine cycle systems with mixture of pure fluids: On infeasible fluid’s fractions due to the interaction between the mixture glide and the hexs pinchs

IF 1.1 Q3 Engineering
Basma Hamdi, A. Kheiri, M. Mabrouk, L. Kairouani
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Abstract

The Organic Rankine Cycle (ORC) is a promising technology for power generation from low-grade heat. The selection of working fluids is one of the important key points to improve the performance of an ORC system. Zeotropic mixtures show promising performances as working fluids. In fact, their temperature glide during phase change enables better match between the working fluid and the heat source/sink temperatures. In order to reveal the performance of mixture in ORC system, this paper deals with the thermodynamic model of the subcritical Organic Rankine Cycle (ORC) systems driven by low grade heat source while using zeotropic mixture working fluids with a special consideration to the interaction between phase change glides and the pinch value and their location in both the evaporator and the condenser (HEXs). Zeotropic mixtures of seven pure fluids are evaluated as working fluids for a subcritical ORC system. The mass fraction effects of mixtures on the thermal efficiency are analyzed. For given working conditions (working fluid mass flow, pressure and bubble temperature) the results show that for each considered zeotropic mixture there exist mass fraction ranges that are not consistent with the pinch values constraint in the HEXs and leads to so-called ‘infeasible zones’ with unreal HEXs dimensions. Results shows also that, out of these “infeasible fractions” zone, keeping unchanged the working conditions, the thermal performances of ORC system using zeotropic mixture are always better than the thermal performances of the same systems using the correspondent pure fluids. In addition, out of these highlighted “unfeasible zones” it was found that mixture with high temperature glide improve the thermal efficiency of ORC system.
纯流体混合物的有机朗肯循环系统:关于由于混合物滑移和六角挤压之间的相互作用而产生的不可行流体分数
有机朗肯循环(ORC)是一种很有前途的低热量发电技术。工作流体的选择是提高ORC系统性能的重要关键之一。共沸混合物作为工作流体显示出良好的性能。事实上,它们在相变期间的温度滑动使得工作流体和热源/散热器温度之间能够更好地匹配。为了揭示ORC系统中混合物的性能,本文研究了低品位热源驱动的亚临界有机朗肯循环(ORC)系统在使用共沸混合物工作流体时的热力学模型,特别考虑了相变滑移与夹点值之间的相互作用及其在蒸发器和冷凝器中的位置。七种纯流体的共沸混合物被评估为亚临界ORC系统的工作流体。分析了混合物的质量分数对热效率的影响。对于给定的工作条件(工作流体质量流量、压力和气泡温度),结果表明,对于每种考虑的共沸混合物,都存在与HEX中的箍缩值约束不一致的质量分数范围,并导致HEX尺寸不真实的所谓“不可行区”。结果还表明,在这些“不可行部分”区域之外,在保持工作条件不变的情况下,使用共沸混合物的ORC系统的热性能总是优于使用相应纯流体的相同系统的热特性。此外,在这些突出的“不可行区域”中,发现具有高温滑移的混合物提高了ORC系统的热效率。
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来源期刊
CiteScore
2.40
自引率
18.20%
发文量
61
审稿时长
4 weeks
期刊介绍: Journal of Thermal Enginering is aimed at giving a recognized platform to students, researchers, research scholars, teachers, authors and other professionals in the field of research in Thermal Engineering subjects, to publish their original and current research work to a wide, international audience. In order to achieve this goal, we will have applied for SCI-Expanded Index in 2021 after having an Impact Factor in 2020. The aim of the journal, published on behalf of Yildiz Technical University in Istanbul-Turkey, is to not only include actual, original and applied studies prepared on the sciences of heat transfer and thermodynamics, and contribute to the literature of engineering sciences on the national and international areas but also help the development of Mechanical Engineering. Engineers and academicians from disciplines of Power Plant Engineering, Energy Engineering, Building Services Engineering, HVAC Engineering, Solar Engineering, Wind Engineering, Nanoengineering, surface engineering, thin film technologies, and Computer Aided Engineering will be expected to benefit from this journal’s outputs.
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