来自海洋的可再生能源——有机朗肯循环利用海洋热能转换

S.K. Wang, T. Hung
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引用次数: 16

摘要

本文研究了以冷媒和苯系流体为工质,利用朗肯循环将太阳能和海洋热能等可再生能源转化为低品位能源的过程。主要目的是验证利用海洋能源(即海洋热能转换,OTEC)的可行性,该能源也可以与太阳能在有机朗肯循环(ORC)中结合发电。研究的参数包括涡轮入口温度、涡轮入口压力、冷凝器出口温度、涡轮出口质量、总体不可逆性和系统效率。结果表明,T-s图中饱和蒸汽曲线非常陡的湿流体在能量转换效率方面的整体表现优于干流体。所有的工质都具有相似的效率-冷凝器出口温度关系。此外,太阳能与具有较高涡轮入口温度和较低冷凝器温度的ORC系统的适当组合(如在深海运行)将提供经济可行且环境友好的可再生能源转换系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Renewable energy from the sea - organic Rankine Cycle using ocean thermal energy conversion
Rankine cycles using refrigerant- and benzene-series fluids as working fluids in converting low-grade energy from renewable energy resources such as solar energy and ocean thermal energy were investigated in this study. The main purpose is to verify the feasibility of utilizing ocean energy (i.e., ocean thermal energy conversion, OTEC) which can also be combined with solar energy in an organic Rankine Cycle (ORC) to generate electricity. Parameters under investigation were turbine inlet temperature, turbine inlet pressure, condenser exit temperature, turbine exit quality, overall irrversibility, and system efficiency. Results indicate that wet fluids with very steep saturated vapor curves in T-s diagram have a better overall performance in energy conversion efficiencies than that of dry fluids. It can also be shown that all the working fluids have a similar behavior of the efficiency-condenser exit temperature relationship. Furthermore, an appropriate combination of solar energy and an ORC system with a higher turbine inlet temperature and a lower condenser temperature (as operated deeply under sea level) would provide an economically feasible and environment-friendly renewable energy conversion system.
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