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Extensive techno-economic assessment of combined inverted Brayton - Organic Rankine cycle for high-temperature waste heat recovery

机译:广泛的倒置布雷顿 - 有机兰顿循环的广泛技术经济评估 - 用于高温废热回收

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摘要

This work is a techno-economic study of the combination of inverted Brayton cycle, and organic Rankine cycle (combined IBC-ORC) applied for high-temperature waste heat recovery (WHR) of the engine exhaust energy. In IBC, exhaust gases expand to subatmospheric pressure in the turbine, transmit heat residuals to ORC, and restore pressure to 1 atm in the compressor. The system is analysed in the Aspen Hysys software in design conditions at the case study of 1.4 MW gas-fueled internal combustion engine as a high-temperature waste heat source (470-570 °C). Firstly, the paper shows the performance of the system optimised for different ambient temperatures. The role of water condensation contained in flue gas is emphasised for these bounds. Then, the paper presents a multi-objective optimisation illustrated by Pareto fronts for the objective functions of system electric efficiency and levelized cost of energy (LCOE) in the mentioned range of exhaust temperatures. TOPSIS-based Pareto-front analysis results in recommendations of the best sets of cycle parameters in this trade-off. For exhaust temperatures 470 °C, 520 °C, and 570 °C, optimal configurations identified via TOPSIS methodology demonstrate 10.8%, 12.1%, 13.3% efficiencies with LCOE equal to 185.5 $/MWh, 162.4 $/MWh and 146.1 $/MWh correspondingly.
机译:这项工作是对倒置布雷顿循环和有机朗顿循环(组合IBC-ORC)的组合的技术经济研究,其用于发动机排气能量的高温废热回收(WHR)。在IBC中,废气扩展到涡轮机中的副摩擦压力,将热残留物传递到兽人,并在压缩机中恢复压力为1个ATM。在设计条件下的Aspen Hysys软件中分析了该系统,在设计条件下为1.4 MW气体燃气内燃机,作为高温废热源(470-570°C)。首先,本文显示了对不同环境温度优化的系统的性能。为这些界限强调了烟道气中包含的水冷凝的作用。然后,本文提出了用于系统电效率和能量(LCoE)的稳定性成本的帕累托前沿所示的多目标优化,并在提到的排气温度范围内。基于TopSIS的静态分析结果导致该权衡中最佳循环参数的建议。用于排气温度470°C,520°C和570°C,通过Topsis方法确定的最佳配置显示10.8%,12.1%,13.3%,LCOE等于185.5 $ / MWH,162.4 $ / MWH和146.1 $ / MWH相应地。

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  • 来源
    《Energy》 |2020年第1期|118406.1-118406.11|共11页
  • 作者单位

    Skolkovo Institute of Science and Technology Moscow Russia;

    Department of Energy Systems Territory and Construction Engineering University of Pisa Pisa Italy;

    Skolkovo Institute of Science and Technology Moscow Russia;

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