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首页> 外文期刊>Journal of Energy Resources Technology >Performance Investigation of Solar Organic Rankine Cycle System With Zeotropic Working Fluid Mixtures for Use in Micro-Cogeneration
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Performance Investigation of Solar Organic Rankine Cycle System With Zeotropic Working Fluid Mixtures for Use in Micro-Cogeneration

机译:鸟类加工型鸟类加工液混合物太阳能有机兰汀循环系统的性能调查

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Overall, there are numerous sustainable sources of renewable, low-temperature heat, principally solar energy, geothermal energy, and energy produced from industrial wastes. Extended utilization of these low-temperature alternatives has a certain capacity of decreasing fossil fuel use with its associated very hazardous greenhouse gas emissions. Researchers have commonly recognized the organic Rankine cycle (ORC) as a feasible and suitable system to produce electrical power from renewable sources based on its advantageous use of volatile organic fluids as working fluids (WFs). Researchers have similarly shown an affinity to the exploitation of zeotropic mixtures as ORC WFs due to their capability to enhance the thermodynamic performance of ORC systems, an achievement supported by improved fits of the temperature profiles of the WF and the heat source/sink. This paper determines both the technical feasibility and the benefits of using zeotropic mixtures as WFs by means of a simulation study of an ORC system. This study analyzes the thermodynamic performance of ORC systems using zeotropic WF mixtures to produce electricity driven by low-temperature solar heat sources for use in buildings. A thermodynamic model is created with an ORC system with and without a regenerator. Five zeotropic mixtures with diverse compositions between 0 and 1 in 0.2 increments of R245fa/propane, R245fa/hexane, R245fa/heptane, pentane/hexane, and isopentane/hexane are assessed and compared with identify the best blends of mixtures that are able to produce superior efficiency in their system cycles. Results disclosed that R245fa/propane (0.4/0.6) with regenerator produces the highest net power output of 7.9 kW and cycle efficiency of 9.4% at the operating condition with a hot source temperature of 85 °C. The study also investigates the effects of the volume flow ratio, and evaporation and condensation temperature glide on the ORC's thermodynamic performance. Following a thorough analysis of each mixture, R245fa/propane is chosen for a parametric study to examine the effects of operating factors on the system's efficiency and sustainability index. It was found that the highest cycle efficiency and highest second law cycle efficiency of around 10.5% and 84.0%, respectively, were attained with a mass composition of 0.6/0.4 at the hot source temperature of 95 °C and cold source temperature of 20 °C with a net power output of 9.6 kW. Moreover, results revealed that for zeotropic mixtures, there is an optimal composition range within which binary mixtures are tending to work 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 in the range 3.1-9.8% versus 8.6-17.4% for ORC both without and with regeneration, respectively. In conclusion, utilizing zeotropic mixtures may well expand the restriction faced in choosing WFs for solar-powered ORC-based micro-combined heat and power (CHP) systems.
机译:总体而言,有许多可持续的可再生能源,低温热,主要是太阳能,地热能和工业废物产生的能量。这些低温替代品的延长利用率具有一定的能力,使化石燃料燃料使用较低,其相关的非常危险的温室气体排放。研究人员通常认为有机朗肯循环(ORC)作为可行性和合适的系统,以基于其基于其作为工作流体(WFS)的挥发性有机流体的有利使用的可再生来源产生电力。研究人员同样地显示了对横抗混合物的利用作为兽人WFS的亲和力,因为它们的能力提高了ORC系统的热力学性能,这是通过改善WF和热源/水槽的改进的拟合而支持的成就。本文通过对兽人系统的模拟研究确定了使用鸟射混合物作为WFS的技术可行性和益处。本研究分析了使用横熵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以用于建筑物。使用带有再生器的ORC系统产生热力学模型。在0.2的R245FA /丙烷,R245FA /己烷,R245FA /庚烷,戊烷/己烷和异戊烷/己烷中,0.2个ZeoTropic混合物以0和1的0和1之间的0和1的0.2%和1的组合物进行评估,并与鉴定能够产生的混合物的最佳混合物进行比较,并进行比较系统周期的卓越效率。结果公开了具有再生器的R245FA /丙烷(0.4 / 0.6)在运行条件下产生7.9kW的最高净功率输出为7.9kW,循环效率为85°C的热源温度。该研究还研究了体积流量比的影响,蒸发和冷凝温度滑动对ORC的热力学性能。在对每个混合物进行彻底的分析后,选择R245FA /丙烷用于参数研究,以检查操作系统对系统效率和可持续性指数的影响。结果发现,最高循环效率和最高的第二律循环效率分别约为10.5%和84.0%,在热源温度为95℃和20°的冷源温度下,质量组成为0.6 / 0.4 C净功率输出为9.6 kW。此外,结果显示,对于横熵混合物,存在最佳的组成范围,其中二元混合物趋于比组分纯净流体更有效地工作。此外,通过再生兽人可以实现循环效率的显着增加,循环效率分别为3.1-9.8%的循环效率,分别没有和再生的ORC的8.6-17.4%。总之,利用横抗混合物可以很好地扩展对基于太阳能技术的微综合热和功率(CHP)系统选择WFS的限制。

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