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COMBINED SOLAR THERMAL GAS TURBINE AND ORGANIC RANKINE CYCLE APPLICATION FOR IMPROVED CYCLE EFFICIENCIES

机译:太阳能热轮机和有机RANKINE循环联合应用可提高循环效率

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Concentrating Solar Power (CSP) technologies are considered to provide a significant contribution for the electric power production in the future. Different kinds of CSP technologies are presently in operation or under development, e.g. parabolic troughs, central receivers, solar dish systems and Fresnel reflectors. In such applications, electricity is produced by thermal energy conversion cycles. For high MW-class CSP applications usually water/steam cycles (Rankine cycles) are used. Alternative technologies, especially for central receiver applications, are open and closed gas turbine cycles (Brayton cycles), where higher receiver fluid outlet temperatures can be applied. Therefore, there is the potential of higher cycle efficiencies and the advantage of reduced water consumption. The paper presents the results for design considerations to improve a gas turbine cycle of a 2 MWel class industrial gas turbine for solar-thermal application, where solar heat is fed in by a central receiver technology. The reference process is improved significantly by application of an intercooler between the two radial compressor stages and a recuperator, which recovers heat from the exhaust gases to the compressed air before the air is further pre-heated by the solar receiver. Hybrid operation of the gas turbine is considered. In order to further improve the overall cycle efficiency, the combined operation of the gas turbine and an Organic Rankine Cycle is investigated. The ORC can be coupled to the solar-thermal gas turbine cycle at the intercooler and after the recuperator. Therefore, waste heat from different cycle positions can be transferred to the ORC for additional production of electricity. The investigations have been performed by application of improved thermodynamic and process analysis tools, which consider real gas behavior of fluids and a huge number of organic fluids for application in ORCs. The results show that by choice of a suitable organic fluid the waste heat recovery can be further improved for the investigated gas turbine cycle. The major result of the study is that by combined operation of the solar thermal gas turbine and the ORC, the combined cycle efficiency is approximately 4%-points higher than in the solar-thermal gas turbine cycle.
机译:人们认为,聚光太阳能(CSP)技术将为未来的电力生产做出重大贡献。目前,不同种类的CSP技术正在运行或开发中。抛物线槽,中央接收器,太阳能碟形系统和菲涅耳反射镜。在这样的应用中,通过热能转换循环来产生电。对于高MW级的CSP应用,通常使用水/蒸汽循环(朗肯循环)。替代技术(特别是对于中央接收器应用而言)是开放式和封闭式燃气轮机循环(布雷顿循环),在这些循环中,可以应用更高的接收器流体出口温度。因此,存在更高的循环效率和减少水消耗的优点。本文介绍了出于设计考虑的结果,以改善用于太阳能热应用的2 MWel级工业燃气轮机的燃气轮机循环,其中通过中央接收器技术馈入太阳能。通过在两个径向压缩机级之间使用中间冷却器和同流换热器,可以大大改善参考过程,该同流换热器在空气进一步被太阳能接收器预热之前,将废气中的热量回收到压缩空气中。考虑了燃气轮机的混合运行。为了进一步提高整体循环效率,研究了燃气轮机和有机朗肯循环的组合操作。 ORC可以在中间冷却器和换热器之后耦合至太阳热燃气轮机循环。因此,来自不同循环位置的废热可以传递到ORC,以产生更多的电能。已经通过使用改进的热力学和过程分析工具进行了研究,该工具考虑了流体的真实气体行为以及大量有机流体用于ORC。结果表明,通过选择合适的有机流体,可以进一步提高所研究燃气轮机循环的废热回收率。研究的主要结果是,通过太阳热能燃气轮机和ORC的联合运行,联合循环效率比太阳热能燃气轮机的循环效率高约4%。

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