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Working fluid selection for organic Rankine cycle power generation using hot produced supercritical CO2 from a geothermal reservoir

机译:使用热源超临界CO2从地热储层工作的有机朗肯循环发电的工作流体选择

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摘要

Geothermal heat mining simulations using supercritical CO2 (sCO(2)) were performed in this research. Working fluid selection criteria for power generation using sCO(2) from a geothermal reservoir are then presented for subcritical, superheated and supercritical organic Rankine cycles (ORCs). Meanwhile, method of working fluid classification for ORC is proposed. To get the most feasible ORC design, this study introduces the concept of "turning point" for isentropic and dry working fluids, as well as minimum turbine inlet temperature for wet working fluids. A thermodynamic model was developed with capabilities to obtain the optimal working fluid mass flow rate, evaporation temperature, superheated temperature, and supercritical pressure, to evaluate the thermal performance of the three ORC approaches using hot produced sCO(2). With this model, thirty potential working fluids with critical temperatures in the range from 50 to 225 degrees C were screened for utilizing hot produced sCO(2) considering physical properties, environmental and safety impacts, and thermodynamic performances. Finally, the thermodynamic results were compared for all possible working fluids.
机译:在本研究中进行了使用超临界CO2(SCO(2))的地热热挖掘模拟。然后呈现使用来自地热储层的SCO(2)的发电的工作流体选择标准,用于亚临界,过热和超临界有机朗克斯循环(ORC)。同时,提出了对ORC工作流体分类的方法。为了获得最可行的ORC设计,本研究介绍了诸如熵和干燥工作流体的“转弯”的概念,以及湿式工作流体的最小涡轮机入口温度。利用热力学模型进行了能力,以获得最佳的工作流体质量流量,蒸发温度,过热温度和超临界压力,以评估使用热产生的SCO(2)的三种兽人方法的热性能。利用该模型,筛选了30至225摄氏度范围内的30个潜在工作流体,用于考虑物理性质,环境和安全影响以及热力学性能的热量产生的SCO(2)。最后,对所有可能的工作流体进行比较了热力学结果。

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