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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Special Challenges in the Computational Fluid Dynamics Modeling of Transonic Turbo-Expanders
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Special Challenges in the Computational Fluid Dynamics Modeling of Transonic Turbo-Expanders

机译:跨音速涡轮膨胀机的计算流体动力学建模中的特殊挑战

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摘要

High pressure ratio turbo-expanders often put a strain on computational fluid dynamics (CFD) modeling. First of all, the working fluid is usually characterized by significant departures from the ideal behavior, thus requiring the adoption of a reliable real gas model. Moreover, supersonic flow conditions are typically reached at the nozzle vanes discharge, thus involving the formation of a shock pattern, which is in turn responsible for a strong unsteady interaction with the wheel blades. Under such circumstances, performance predictions based on classical perfect gas, steady-state calculations can be very poor. While reasonably accurate real gas models are nowadays available in most flow solvers, unsteady real gas calculations still struggle to become an affordable tool for investigating turbo-expanders. However, it is emphasized in this work how essential the adoption of a time-accurate analysis can be for accurate performance estimations. The present paper is divided in two parts. In the first part, the computational framework is validated against on-site measured performance from an existing power plant equipped with a variable-geometry nozzled turbo-expander, for different nozzle positions, and in design and off-design conditions. The second part of the paper is devoted to the detailed discussion of the unsteady interaction between the nozzle shock waves and the wheel flow field. Furthermore, an attempt is made to identify the key factors responsible for the unsteady interaction and to outline an effective way to reduce it.
机译:高压比涡轮膨胀机通常会对计算流体力学(CFD)建模造成压力。首先,工作流体通常具有明显偏离理想行为的特征,因此需要采用可靠的真实气体模型。此外,通常在喷嘴叶片出口处达到超音速流动状态,因此涉及形成冲击波,这又导致了与轮叶片的强烈的不稳定相互作用。在这种情况下,基于经典理想气体,稳态计算的性能预测可能会很差。尽管当今在大多数流量求解器中都可以使用合理准确的真实气体模型,但是不稳定的真实气体计算仍然很难成为研究涡轮膨胀机的负担得起的工具。但是,在这项工作中要强调的是,采用时间准确的分析对于准确的性能估计有多重要。本文分为两部分。在第一部分中,针对不同喷嘴位置以及在设计和非设计条件下,针对配备有可变几何形状喷嘴涡轮膨胀机的现有电厂的现场测量性能,对计算框架进行了验证。本文的第二部分专门讨论了喷嘴冲击波与轮流场之间的不稳定相互作用。此外,尝试确定导致不稳定交互的关键因素,并概述减少这种不稳定交互的有效方法。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2013年第10期|102701.1-102701.8|共8页
  • 作者单位

    Department of Industrial Engineering, University of Florence, via di Santa Marta, 3 Firenze 50139, Italy;

    Department of Industrial Engineering, University of Florence, via di Santa Marta, 3 Firenze 50139, Italy;

    Department of Industrial Engineering, University of Florence, via di Santa Marta, 3 Firenze 50139, Italy;

    GE Oil & Gas, via Felice Matteucci 2, Firenze 50127, Italy;

    GE Oil & Gas, via Felice Matteucci 2, Firenze 50127, Italy;

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