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Theoretical and experimental research on the thermal performance of ocean thermal energy conversion system using the rankine cycle mode

机译:朗肯循环模式的海洋热能转换系统热性能的理论和实验研究

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In this paper theoretical analysis of an ocean thermal energy conversion (OTEC) system was conducted using the Rankine cycle based on the first law of thermodynamics and a mathematical model of components of the system was established. Efficiencies of six types of working fluids were evaluated and compared under the uniform conditions. Finally a 15 kW OTEC plant using the Rankine cycle was constructed and change rules of the thermal cycle efficiency were obtained with various parameters. The results show that by using the Rankine cycle R717 is "the most suitable" for an OTEC system among the selected working fluids. Thermal cycle efficiency initially increases and then decreases with increasing turbine inlet pressure; maximum thermal cycle efficiency was achieved when the turbine inlet and outlet temperature are fixed. Thermal cycle efficiency was 3.2% when the turbine inlet pressure was 0.85 MPa under calculating the conditions. The thermal efficiency decreased with an increase of the condensing temperature under the same turbine inlet pressure. The consistency between the experiment and theoretical results was verified; the experimental value was lower than the theoretical. Meanwhile, this work can provide design data for an OTEC plant and operating experience for an OTEC system was obtained. (C) 2019 Elsevier Ltd. All rights reserved.
机译:本文基于热力学第一定律,利用朗肯循环对海洋热能转换(OTEC)系统进行了理论分析,并建立了系统组成的数学模型。在统一条件下评估并比较了六种类型的工作流体的效率。最后,使用兰金循环构建了一个15 kW OTEC工厂,并通过各种参数获得了热循环效率的变化规律。结果表明,使用兰金循环R717对于所选工作流体中的OTEC系统而言“最合适”。热循环效率最初随着涡轮进口压力的增加而增加,然后降低。当涡轮机的入口和出口温度固定时,可获得最大的热循环效率。在计算条件下,当涡轮机入口压力为0.85 MPa时,热循环效率为3.2%。在相同的涡轮入口压力下,热效率随着冷凝温度的升高而降低。验证了实验与理论结果的一致性;实验值低于理论值。同时,这项工作可以为OTEC工厂提供设计数据,并获得OTEC系统的操作经验。 (C)2019 Elsevier Ltd.保留所有权利。

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