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首页> 外文期刊>Journal of turbomachinery >Numerical and Experimental Investigation of the Impact of Mixed Flow Turbine Inlet Cone Angle and Inlet Blade Angle
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Numerical and Experimental Investigation of the Impact of Mixed Flow Turbine Inlet Cone Angle and Inlet Blade Angle

机译:混合流动涡轮机入口锥角和入口角度影响的数值和实验研究

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摘要

Mixed flow turbines (MFTs) offer potential benefits for turbocharged engines when considering off-design performance and engine transient behavior. Although the performance and use of MFTs are described in the literature, little is published on the combined impact of the cone angle and the inlet blade angle, which are the defining features of such turbines. Numerical simulations were completed using a computational fluid dynamics (CFD) model that was validated against experimental measurements for a baseline geometry. The mechanical impact of the design changes was also analyzed. Based on the results of the numerical study, two rotors of different blade angle and cone angle were selected and manufactured. These rotors were tested using the Queen's University Belfast (QUB) low-temperature turbine test rig, which allowed for accurate and wide-range mapping of the turbine performance to low values of the velocity ratio. The performance results from these additional rotors were used to further validate the numerical findings. The numerical model was used to understand the underlying physical reasons for the measured performance differences through detailed consideration of the flow field at the rotor inlet and to document how the loss mechanisms and secondary flow structures developed with varying rotor inlet geometry. It was observed that large inlet blade cone angles resulted in strong separation and flow blockage near the hub at off-design conditions, which greatly reduced efficiency. However, the significant rotor inertia benefits achieved with the large blade cone angles were shown to compensate for the efficiency penalties and could be expected to deliver improved transient performance in downsized automotive engine applications.
机译:混合流动涡轮机(MFTs)在考虑偏移设计性能和发动机瞬态行为时为涡轮增压发动机提供潜在的益处。尽管在文献中描述了MFT的性能和使用,但是在锥角和入口叶片角度的组合撞击上发表了很少的公布,这是这种涡轮机的限定特征。使用计算流体动力学(CFD)模型来完成数值模拟,该模型针对基线几何体的实验测量验证。还分析了设计变化的机械影响。基于数值研究的结果,选择并制造了两个不同叶片角度和锥角的转子。这些转子使用女王的大学贝尔法斯特(QUB)低温涡轮试验台进行了测试,这允许准确且宽范围的涡轮机性能映射到速度比的低值。这些附加转子的性能结果用于进一步验证数值发现。通过对转子入口处的流场的详细考虑并记录具有不同转子入口几何形状的流场的详细考虑,使用数值模型来了解测量性能差异的潜在的物理原因。观察到,大型入口叶片锥角导致毂在非设计条件下靠近集线器的强分离和流量堵塞,这大大降低了效率。然而,随着大刀片锥角实现的显着转子惯性益处被证明可以补偿效率的惩罚,并且可以预期在缩小的汽车发动机应用中提供改进的瞬态性能。

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  • 来源
    《Journal of turbomachinery》 |2019年第8期|081001.1-081001.12|共12页
  • 作者单位

    Queens Univ Belfast Sch Mech & Aerosp Engn Belfast BT9 5AH Antrim North Ireland;

    Queens Univ Belfast Sch Mech & Aerosp Engn Belfast BT9 5AH Antrim North Ireland;

    IHI Charging Syst Int D-69126 Heidelberg Germany;

    IHI Charging Syst Int D-69126 Heidelberg Germany;

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  • 正文语种 eng
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