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Comparison of sub- and supercritical Organic Rankine Cycles for power generation from low-temperature/low-enthalpy geothermal wells, considering specific net power output and efficiency

机译:考虑到特定的净功率输出和效率,比较低温/低焓地热井发电的亚临界和超临界有机朗肯循环

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摘要

Electrical power production at low-enthalpy (~150℃) geothermal sites is usually realized using an Organic Rankine Cycle (ORC process). This paper presents our analysis of sub- and supercritical processes using propane, carbon dioxide and ten other refrigerants as working fluids. The impact of crucial indicators for optimization, such as specific net power, thermal efficiency and heat input is discussed in detail. The focus was to optimize the thermodynamic loop and the influence of other parameters, such as condensing temperature, minimal temperature difference in the heat exchanger, and internal heat recovery. Simulations showed that at a geothermal fluid temperature of 150℃, a suitable working fluid such as propane or R143a can increase specific net power output up to 40%. Furthermore, systematic simulations on brine temperatures of 130-170℃ from subcritical to supercritical operation are discussed. Results from this research may also be applicable for electricity generation using waste heat from combined heat and power (CHP) plants or other technical processes.
机译:低焓(〜150℃)地热场所的电力生产通常使用有机朗肯循环(ORC工艺)来实现。本文介绍了我们对使用丙烷,二氧化碳和十种其他制冷剂作为工作流体的亚临界和超临界过程的分析。详细讨论了优化关键指标的影响,例如比净功率,热效率和热量输入。重点是优化热力学回路以及其他参数的影响,例如冷凝温度,热交换器中的最小温差和内部热量回收。仿真表明,在地热流体温度为150℃的情况下,合适的工作流体(如丙烷或R143a)可以将比净功率输出提高40%。此外,还讨论了从亚临界到超临界运行的130-170℃盐水温度的系统模拟。这项研究的结果也可能适用于利用热电联产(CHP)电厂或其他技术过程产生的废热发电。

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