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Thermodynamic analysis and performance optimization of organic rankine cycles for the conversion of low-to-moderate grade geothermal heat

机译:有机朗肯循环的热力学分析和性能优化,用于转换低到中等等级的地热

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摘要

The present study considers a thermodynamic analysis and performance optimization ofgeothermal power cycles. The proposed binary-cycles operate with moderately lowtemperature and liquid-dominated geothermal resources in the range of 110oC to 160oC, andcooling air at ambient conditions of 25oC and 101.3 kPa reference temperature andatmospheric pressure, respectively. A thermodynamic optimization process and irreversibilityanalysis were performed to maximize the power output while minimizing the overall exergydestruction and improving the First- and Second-law efficiencies of the cycle. Maximum netpower output was observed to increase exponentially with the geothermal resourcetemperature to yield 16-49 kW per unit mass flow rate of the geothermal fluid for the nonregenerativeORCs, as compared to 8-34 kW for the regenerative cycles. The cycle First-lawefficiency was determined in the range of 8-15% for the investigated geothermal binarypower cycles. Maximum Second-law efficiency of approximately 56% was achieved by theORC with an IHE. In addition, a performance analysis of selected pure organic fluids such asR123, R152a, isobutane and n-pentane, with boiling points in the range of -24oC to 36oC, wasconducted under saturation temperature and subcritical pressure operating conditions of theturbine. Organic fluids with higher boiling point temperature, such as n-pentane, wererecommended for non-regenerative cycles. The regenerative ORCs, however, require organicfluids with lower vapour specific heat capacity (i.e. isobutane) for an optimal operation of thebinary-cycle.
机译:本研究考虑了地热动力循环的热力学分析和性能优化。拟议的二元循环在温度为110oC至160oC的中等低温和以液体为主的地热资源下运行,并分别在25oC和101.3 kPa参考温度和大气压的环境条件下冷却空气。进行了热力学优化过程和不可逆性分析,以使功率输出最大化,同时使总的火用破坏最小化,并提高循环的第一定律和第二定律效率。观察到最大净功率输出随地热资源温度呈指数增长,非再生ORC的单位质量流速的地热流体每单位质量流量可产生16-49 kW,而再生循环则为8-34 kW。对于所研究的地热二元动力循环,确定第一循环的第一效率在8-15%的范围内。带有IHE的ORC实现了大约56%的最大第二律效率。此外,在涡轮机的饱和温度和亚临界压力运行条件下,对沸点在-24oC至36oC范围内的选定纯有机流体(如R123,R152a,异丁烷和正戊烷)进行了性能分析。建议将沸点较高的有机流体(例如正戊烷)用于非再生循环。然而,再生的ORC需要具有较低蒸气比热容的有机流体(即异丁烷)以使二元循环最佳操作。

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