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Characterization of a radial turbocharger turbine in pulsating flow by means of CFD and its application to engine modeling

机译:利用CFD表征脉动流中径向涡轮增压器涡轮及其在发动机建模中的应用

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摘要

This paper presents a numerical study analyzing the effect of pulsating flow in a variable geometry radial inflow turbine. The turbine behavior is analyzed under isentropic pulses, which are similar to those created by a rotating disk in a turbocharger test rig. Three different pulse frequencies (50, 90 and 130 Hz) and two pulse amplitudes (100 and 180 kPa) were considered. Turbine flow was studied throughout the pressure pulsation cycles in a wide range of off-design operating conditions, from low pressure ratio flow detachment to high pressure ratio choked flow. An overall analysis of the phasing of instantaneous mass flow and pressure ratio was first performed and the results show the non-quasi-steady behavior of the turbine as a whole as described in the literature. However, the analysis of the flow in the different turbine components independently gives a different picture. As the turbine volute has greater length and volume than the other components, it is the main source of non-quasi-steadiness of the turbine. The stator nozzles cause fewer accumulation effects than the volute, but present a small degree of hys-teretic behavior due to flow separation and reattachment cycle around the vanes. Finally, the flow in the moving rotor behaves as quasi-steady, as far as flow capacity is concerned, although the momentum transfer between exhaust gas and blades (and thus work production and thermal efficiency) is affected by a hysteretic cycle against pressure ratio, but not if blade speed ratio is considered instead. A simple model to simulate the turbine stator and rotor is proposed, based on the results obtained from the CFD computations.
机译:本文提供了一个数值研究,分析了可变几何形状的径向流入涡轮中脉动流的影响。在等熵脉冲下分析涡轮的性能,该等熵脉冲类似于涡轮增压器测试台中的旋转盘所产生的等熵脉冲。考虑了三个不同的脉冲频率(50、90和130 Hz)和两个脉冲幅度(100和180 kPa)。从低压比流动分离到高压比阻流,在广泛的非设计运行条件下,研究了整个压力脉动周期中的涡轮流。首先对瞬时质量流量和压力比的相位进行了全面分析,结果表明,如文献所述,整个涡轮机具有非准稳态特性。但是,对不同涡轮机部件中的流动的分析独立给出了不同的画面。由于涡轮蜗壳比其他部件具有更大的长度和体积,因此它是涡轮不稳定的主要来源。定子喷嘴比蜗壳产生的累积效应更少,但由于绕叶片的流动分离和重新连接循环,呈现出较小程度的滞后行为。最后,就流量而言,活动转子中的流动表现为准稳定状态,尽管废气和叶片之间的动量传递(以及功生产和热效率)受滞后循环相对于压力比的影响,但如果考虑改为使用叶片速比,则不会。基于从CFD计算获得的结果,提出了一个简单的模型来模拟涡轮定子和转子。

著录项

  • 来源
    《Applied Energy》 |2013年第3期|116-127|共12页
  • 作者单位

    CMT - Motores TSrmicos. Universitat Politecnica de Valencia, Camino de Vera S/N, 46022 Valencia, Spain;

    CMT - Motores TSrmicos. Universitat Politecnica de Valencia, Camino de Vera S/N, 46022 Valencia, Spain;

    CMT - Motores TSrmicos. Universitat Politecnica de Valencia, Camino de Vera S/N, 46022 Valencia, Spain;

    CMT - Motores TSrmicos. Universitat Politecnica de Valencia, Camino de Vera S/N, 46022 Valencia, Spain;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    CFD simulation; pulsating flow; radial turbine; turbocharger; turbine modeling; quasi-steady assumption;

    机译:CFD模拟;脉动流径向涡轮涡轮增压器涡轮建模;拟稳态假设;

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