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Thermodynamic analysis of small-scale externally fired gas turbines and combined cycles using turbo-compound components for energy generation from solid biomass

机译:小型外燃式燃气轮机和联合循环的热力学分析,使用涡轮复合组件从固体生物质中产生能量

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This paper proposes the implementation of cost-effective commercially available automotive components in small-scale power plants for the energy generation from carbon-neutral biomass. Specifically, a turbocharger and a power turbine of turbo-compound systems are proposed to be coupled with an external combustor and a high temperature heat exchanger in order to obtain a cheap externally fired gas turbine capable of producing about 30 kW of electrical power from the combustion of pruning residues. The externally fired gas turbine cycle can be combined either with a final heat exchanger to generate useful thermal power or with a bottoming cycle to generate useful thermal power and an additional electrical power of about 15 kW. Two plant configurations are proposed for the bottoming cycle: the first is a water Rankine cycle employing the "green steam turbine" as the steam expander, whereas the second is an organic Rankine cycle using an axial turbine and toluene as the working fluid. The results of the simulations, obtained through a detailed thermodynamic model, show that the use of a combined cycle is fundamental to maximize the primary energy savings of the power plant. In the case of negligible pressure losses, the use of a bottoming water Rankine cycle leads to a maximum second law efficiency of about 0.25 and maximum primary energy savings of about 0.23. Instead, a bottoming organic Rankine cycle employing a single stage turbine can increase the second law efficiency and the primary energy savings up to about 0.27 and 0.26, respectively. It is also demonstrated that the use of a two-stage turbine for the organic Rankine cycle can further enhance the plant performance. The effects of the pressure drops in the system are investigated in detail to point out that the minimization of the pressure losses is fundamental to improve the performance parameters of all the proposed configurations.
机译:本文提出了在小型发电厂中实施具有成本效益的商用汽车组件的方法,以利用碳中性生物质发电。具体地,提出了涡轮复合系统的涡轮增压器和动力涡轮与外部燃烧器和高温热交换器联接,以便获得能够从燃烧中产生约30kW的电力的廉价的外燃式燃气涡轮。修剪残留物。外部燃气轮机循环可以与最终热交换器组合以产生有用的热能,也可以与底部循环相结合以产生有用的热能和约15 kW的附加电功率。对于底部循环,提出了两种设备配置:第一种是使用“绿色蒸汽轮机”作为蒸汽膨胀机的水朗肯循环,而第二种是使用轴向涡轮机和甲苯作为工作流体的有机朗肯循环。通过详细的热力学模型获得的仿真结果表明,使用联合循环对最大限度地节省发电厂的一次能源至关重要。在压力损失可忽略不计的情况下,使用井底水朗肯循环可导致约0.25的最大第二律效率和约0.23的最大一次能源节省。取而代之的是,采用单级涡轮的底部有机朗肯循环可以分别将第二律效率和一次能源节省分别提高至约0.27和0.26。还证明了在有机朗肯循环中使用两级涡轮可以进一步提高设备性能。详细研究了系统中压降的影响,以指出最小化压力损失对于改善所有建议配置的性能参数至关重要。

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