首页> 外文会议>International Conference on Energy Sustainability >PERFORMANCE INVESTIGATION OF SOLAR ORGANIC RANKINE CYCLE SYSTEMS WITH AND WITHOUT REGENERATION AND WITH ZEOTROPIC WORKING FLUID MIXTURES FOR USE IN MICRO-COGENERATION
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PERFORMANCE INVESTIGATION OF SOLAR ORGANIC RANKINE CYCLE SYSTEMS WITH AND WITHOUT REGENERATION AND WITH ZEOTROPIC WORKING FLUID MIXTURES FOR USE IN MICRO-COGENERATION

机译:具有和无再生的太阳能有机兰汀循环系统的性能调查和横发工作流体混合物用于微肿瘤

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Globally there are several viable sources of renewable, low-temperature heat (below 130°C) particularly solar energy, geothermal energy, and energy generated from industrial wastes. Increased exploitation of these low-temperature options has the definite potential of reducing fossil fuel consumption with its attendant very harmful greenhouse gas emissions. Researchers have universally identified the organic Rankine cycle (ORC) as a practicable and promising system to generate electrical power from renewable sources based on its beneficial use of volatile organic fluids as working fluids (WFs). In recent times, researchers have also shown a preference for/an inclination towards deployment of zeotropic mixtures as ORC WFs because of their capacity to improve thermodynamic performance of ORC systems, a feat enabled by better matches of the temperature profiles of the WF and the heat source/sink. This paper demonstrates both the technical feasibility and the notable advantages of using zeotropic mixtures as WFs through a simulation study of an ORC system. The study examines the thermodynamic performance of ORC systems using zeotropic WF mixtures to generate electricity driven by low-temperature solar heat source for building applications. A thermodynamic model is developed with an ORC system both w ith and excluding a regenerator. Five zeotropic mixtures with varying compositions of R245fa/propane, R245fa/hexane, R245fa/heptane, pentane/hexane and isopentane/hexane are evaluated and compared to identify the best combinations of WF mixtures that can yield high efficiency in their system cycles. The study also investigates the effects of the volumetric flow ratio, and evaporation and condensation temperature glides on the ORC's thermodynamic performance. Following a detailed analysis of each mixture. R245fa/propane is selected for parametric study to examine the effects of operating parameters on the system's efficiency and sustainability index. For zeotropic mixtures, results showed that there is an optimal composition range within which binary mixtures are inclined to perform more efficiently than the component pure fluids. In addition, a significant increase in cycle efficiency can be achieved with a regenerative ORC, with cycle efficiency ranging between 3.1-9.8% and 8.6-17.4% for ORC both without and with regeneration, respectively. Results also showed that exploiting zeotropic mixtures could enlarge the limitation experienced in selecting WFs for low-temperature solar organic Rankine cycles.
机译:在全球范围内有几种可再生能源,低温热(低于130°C),特别是太阳能,地热能和工业废物产生的能量。随着这些低温选项的开发增加,具有减少化石燃料消耗的明确潜力,使其具有伴随的温室气体排放。研究人员普遍地将有机朗肯循环(ORC)作为一种可行性和有希望的系统,以基于其基于其作为工作流体(WFS)的挥发性有机流体的有益挥发性源产生来自可再生来源的电力。近来,研究人员还显示出倾斜的偏好/倾向于延长沟槽WFS作为兽人WFS的倾斜,因为它们可以提高兽人系统的热力学性能,通过更好的WF温度曲线和热量的匹配来实现壮举源/下沉。本文通过对ORC系统的模拟研究,使用鸟射混合物作为WFS的技术可行性和显着优势。该研究检查了使用ZeoTropic WF混合物的兽人系统的热力学性能,以产生由低温太阳能热源驱动的电力进行建筑应用。热力学模型是用兽人系统开发的,并且不包括再生器。评价具有改变组合物的五种鸟类混合物,R245FA /丙烷,R245FA /己烷,R245FA /庚烷,戊烷/己烷和异戊烷/己烷,以鉴定WF混合物的最佳组合,可在其系统循环中产生高效率。该研究还研究了体积流量比的影响,蒸发和冷凝温度滑动在ORC的热力学性能上。在对每个混合物进行详细分析。 R245FA /丙烷选择参数研究,以检查操作参数对系统效率和可持续性指数的影响。对于延长混合物,结果显示存在最佳的组成范围,其中二元混合物倾斜以比组分纯净流体更有效地执行。此外,通过再生兽人可以实现循环效率的显着增加,循环效率分别没有和再生的侧面的3.1-9.8%和8.6-17.4%。结果还表明,利用横跨膜混合物可以扩大为低温太阳能有机朗朗循环选择WFS的限制。

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