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Performance Improvement of a Dry Mode Natural Gas Fired Turbine Plant for Combined Cycle Operation

机译:联合循环运行的干式天然气燃气轮机电厂的性能改进

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This research considers the design of combined cycle (CC) operation for a dry mode natural gas fired turbine plant in southern Nigeria. It entails evaluation and utilization of the amount of waste heat energy exhausted by the Omoku gas turbine (GT) power plant by integrating a steam Rankine cycle retrofitted with a heat recovery steam generator (HRSG) for CC operation, with the focus to improving its performance and reducing waste heat intensity to the environment. Gathered data from the human machine interface (HMI) and log sheets were used for the analysis. Thermodynamic sensitivity analysis was implemented for the combined cycle system (CCS) using a developed model in the MATLAB platform. The outcome of energy balance of the HRSG having a heat load of 38.49 MW showed that for every kg of exhaust gas, 0.1164 kg of steam is generated at an optimum pressure of 40 bar and mass flow of 14.45 kg, with acceptable steam turbine exhaust moisture content of 10%. These revealed a quantified amount of 45.28 MW heat energy contained in the usually wasted exhaust gas of the dry mode GT which was thus recovered in the HRSG, producing additional 16.32 MW as the steam turbine (ST) power output with a feed pump heat load of 0.06 MW and a condenser heat load of 28.96 MW. Further analysis in terms of power outputs, energy efficiencies, and environmental impacts showed that the CCS achieved 41.32 MW, 49.26% and HRSG stack temperature of 170.25 ℃ compared to the previously 25 MW, 26.60% and exhaust gas temperature (EGT) of 487℃ respectively of the dry mode GT. These indicate that the CCS generates about 65.30% boost in the net power output, 85.20% improvement in overall efficiency and 65.10% reduction in waste heat intensity to the environment when compared with the dry mode GT operating in isolation. Thus, the work showed that for the design of a CCS with a single pressure level HRSG without supplementary firing, a recommended range for the power output of the steam bottoming plant falls within 34 - 40% of the total power output of the CCS while that of the gas topping plant falls within the range of 60 - 66% of the total power output of the CCS. This study therefore confirms the viability as well as demonstrates the application, of the combined cycle concept for the Omoku gas turbine and recommends for further research, the introduction of a multiple pressure level HRSG with supplementary firing to the combined cycle system for an improved efficiency and output.
机译:这项研究考虑了尼日利亚南部干式天然气燃气轮机厂的联合循环(CC)操作设计。它需要评估和利用Omoku燃气轮机(GT)发电厂所排放的余热能,方法是将蒸汽兰金循环与热回收蒸汽发生器(HRSG)集成在一起,以进行CC运行,重点是提高其性能并减少对环境的废热强度。从人机界面(HMI)和日志表收集的数据用于分析。使用MATLAB平台中开发的模型对联合循环系统(CCS)进行了热力学灵敏度分析。热负荷为38.49 MW的HRSG的能量平衡结果表明,在40 bar的最佳压力和14.45 kg的质量流量下,每千克废气产生0.1164 kg的蒸汽,并且蒸汽轮机的废气湿度可接受含量为10%。这些结果表明,通常在干式GT浪费的废气中包含定量的45.28 MW热能,因此在HRSG中进行了回收,从而产生了额外的16.32 MW作为蒸汽轮机(ST)功率输出,进料泵的热负荷为0.06 MW,冷凝器热负荷为28.96 MW。从功率输出,能源效率和环境影响方面的进一步分析表明,CCS达到41.32 MW,49.26%和HRSG烟囱温度为170.25℃,而之前的25 MW,26.60%和废气温度(EGT)为487℃分别为干式GT。这些表明,与单独运行的干式GT相比,CCS的净输出功率提高了约65.30%,总效率提高了85.20%,对环境的废热强度降低了65.10%。因此,工作表明,对于不带辅助点火的单压力水平HRSG的CCS设计,蒸汽底馏装置的功率输出建议范围应在CCS总功率的34%至40%之内。加气站的总功率在CCS总功率输出的60-66%范围内。因此,本研究证实了Omoku燃气轮机联合循环概念的可行性并证实了其应用,并建议进一步研究,在联合循环系统中引入多压力级HRSG和辅助点火,以提高效率和效率。输出。

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