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Aerodynamic optimization of a SCO_2 radial-inflow turbine based on an improved simulated annealing algorithm

机译:基于改进的模拟退火算法的SCO_2径向流入涡轮机的空气动力学优化

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摘要

Supercritical carbon dioxide plays a vital role in the development of power generation applications. It owns the characteristics of high density and low viscosity, which can ensure a compact structure for turbomachinery. With the blossom of optimization algorithm, an interdisciplinary research which applies optimization method to a traditional design process of turbomachinery can accelerate the course and promote the validity by leaps and bounds. We improve the traditional simulated annealing algorithm and establish an optimization process containing the optimization of rotor meridian plane and nozzle profile. This process can effectively reduce the computation time by establishing a surrogate model of coarse mesh simulation. The effects of traditional simulated annealing algorithm (SAA), genetic algorithm (GA) and improve simulated annealing algorithm (ISAA) are compared. As a result, we realize a maximum of 4.94% promotion for isentropic efficiency in ISAA computation. Also, ISAA method saves the computation time by 59.6% compared to GA and by 41.5% compared to SAA. Applying ISAA optimization method to the turbine in a kW-scale solar-driven Brayton cycle power system, we realize a 1.17% increase for the system efficiency.
机译:超临界二氧化碳在发电应用的发展中起着至关重要的作用。它拥有高密度和低粘度的特点,可确保涡轮机械的紧凑结构。随着优化算法的开花,将优化方法应用于传统的涡轮机械设计过程的跨学科研究可以加速课程并通过跨越式和界限促进有效性。我们改善了传统的模拟退火算法,建立了一种优化过程,其中包含转子经络平面和喷嘴轮廓的优化。通过建立粗网格模拟的代理模型可以有效地减少计算时间。比较了传统模拟退火算法(SAA),遗传算法(GA)和改进模拟退火算法(ISAA)的影响。因此,我们在ISAA计算中最多实现了最多4.94%的促进促进效率。此外,与SAA相比,ISAA方法将计算时间节省59.6%,并将41.5%达到41.5%。将ISAA优化方法应用于KW级太阳能驱动布雷顿循环电力系统中的涡轮机,我们实现了系统效率的1.17%。

著录项

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  • 作者单位

    MOE Key Laboratory of Thermo-Fluid Science and Engineering School of Energy and Power Engineering Xi’an Jiaotong University;

    Shaanxi Engineering Laboratory of Turbomachinery and Power Equipment School of Energy and Power Engineering Xi’an Jiaotong University;

    MOE Key Laboratory of Thermo-Fluid Science and Engineering School of Energy and Power Engineering Xi’an Jiaotong University;

    Shaanxi Engineering Laboratory of Turbomachinery and Power Equipment School of Energy and Power Engineering Xi’an Jiaotong University;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Supercritical carbon dioxide; Brayton cycle; radial-inflow turbine; aerodynamic optimization;

    机译:超临界二氧化碳;布雷顿循环;径向流动涡轮机;空气动力学优化;
  • 入库时间 2022-08-19 02:29:23

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