首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >ORGANIC RANKINE CYCLE WORKING FLUID SELECTION AND PERFORMANCE ANALYSIS FOR COMBINED APPLICATION WITH A 2 MW CLASS INDUSTRIAL GAS TURBINE
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ORGANIC RANKINE CYCLE WORKING FLUID SELECTION AND PERFORMANCE ANALYSIS FOR COMBINED APPLICATION WITH A 2 MW CLASS INDUSTRIAL GAS TURBINE

机译:2 MW级工业燃气轮机有机RANKINE循环工作液的选择与性能分析。

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The selection of suitable working fluids for use in Organic Rankine Cycles (ORC) is strongly addicted to the intended application of the ORC system. The design of the ORC, the kind of heat source and the ambient condition has an influence on the performance of the Organic Rankine Cycle and on the selection of the working fluid. It can come to a discrepancy between the best candidate from the thermodynamic point of view and the transformation into a real machine design. If an axial turbine design is considered for expansion and energy conversion within the ORC, the vapor volume flow ratios within the expansion path, the pressure ratio and of course the number of stages have to be considered within the fluid selection process and for the design parameters. Furthermore, environmental aspects have to be taken into account, e.g. the global warming potential (GWP) and the flammability of the selected fluid. This paper shows the results of the design and fluid selection process for an Organic Rankine Cycle for application in a combined operation with a 2MW class industrial gas turbine. The gas turbine contains two radial compressor stages with an integrated intercooler. To further increase the thermal cycle efficiency, a recuperator has been implemented to the gas turbine cycle, which uses the exhaust gas waste heat to preheat the compressed air after the second compressor, before it enters the combustion chamber. The shaft power is generated by a three stage axial turbine, whereby the first stage is a convection cooled stage, due to a turbine inlet temperature of 1100°C. To further increase the electrical efficiency and the power output of the energy conversion cycle, a combined operation with an organic Rankine cycle is intended. Therefore the waste heat from the GT compressor intercooler is used as first heat source and the waste heat of the exhaust gas after the recuperator as second heat source for the Organic Rankine Cycle. It is intended that the ORC fluid acts as heat absorption fluid within the compressor intercooler. Due to these specifications for the ORC, a detailed thermodynamic analysis has been performed to determine the optimal design parameter and the best working fluid for the ORC, in order to obtain a maximum power output of the combined cycle. Due to the twice coupling of the ORC to the GT cycle, the heat exchange between the two cycles is bounded by each other and a detailed analysis of the coupled cycles is necessary. E.g. the ambient temperature has an enormous influence on the transferred heat from the intercooler to the ORC cycle, which itself affects the heat transfer and temperatures of the transferable heat from the second heat source. Thus, a detailed analysis by considering the ambient operation conditions has been performed, in order to provide a most efficient energy conversion system over a wide operation range. The performance analysis has shown that by application of an ORC for a combined operation with the intercooled and recuperated gas turbine, the combined cycle efficiency can be increased, for a wide ambient conditions range, by more than 3 %pts. and the electrical power output by more than 10 %, in comparison to the stand alone intercooled and recuperated gas turbine.
机译:选择适合于有机朗肯循环(ORC)的合适工作流体对ORC系统的预期应用非常沉迷于。 ORC的设计,热源和环境条件的种类对有机朗肯循环的性能和在选择工作流体的选择具有影响。从热力学的角度来看,它可以在最佳候选人之间进行差异,并将转换成真实机器设计。如果考虑轴向涡轮机设计,则在兽人内进行膨胀和能量转换,则必须在流体选择过程和设计参数内考虑膨胀路径,压力比和阶段数量的蒸汽积流量比。 。此外,必须考虑环境方面,例如,全球变暖电位(GWP)和所选液体的可燃性。本文显示了用于在与2MW级工业燃气轮机的组合操作中应用的有机朗肯循环的设计和流体选择过程的结果。燃气轮机包含两个带有集成的中间冷却器的径向压缩机级。为了进一步提高热循环效率,恢复器已经实现到燃气涡轮循环,该燃气涡轮循环使得在进入燃烧室之前使用废气废热在第二压缩机之后预热压缩空气。轴功率由三级轴向涡轮机产生,由此第一级是对流冷却级,由于涡轮机入口温度为1100℃。为了进一步提高能量转换周期的电效率和功率输出,预期具有有机朗肯循环的组合操作。因此,来自GT压缩机中冷却器的废热用作在恢复器中作为用于有机朗肯循环的第二热源之后的第一热源和废气的废热。奥尔流体旨在用作压缩机中冷却器内的吸热流体。由于对兽人的这些规范,已经执行了详细的热力学分析以确定ORC的最佳设计参数和最佳工作流体,以获得组合循环的最大功率输出。由于ORC对GT循环的两次耦合,两个循环之间的热交换彼此限制,并且需要对耦合循环的详细分析。例如。环境温度对从中间冷却器到ORC循环的转移热影响,这本身影响来自第二热源的可转移热的传热和温度。因此,通过考虑已经执行了环境操作条件的详细分析,以便在宽操作范围内提供最有效的能量转换系统。性能分析表明,通过将ORC施加用于与中间磁化和蓄能燃气轮机的组合操作,可以增加组合的循环效率,对于宽的环境条件范围,通过3%以上的PTS增加。与单独的间电压和恢复的燃气轮机相比,电力输出超过10%。

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