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Introduction of Circumferentially Nonuniform Variable Guide Vanes in the Inlet Plenum of a Centrifugal Compressor for Minimum Losses and Flow Distortion

机译:引入周向非均匀可变导叶在离心式压缩机的入口进气口中,以最大程度地减少损失和流量畸变

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In the oil and gas industry, large variations in flow rates are often encountered, which require compression trains with a wide operating range. If the stable operating range at constant speed is insufficient, variable speed drivers can be used to meet the requirements. Alternatively, variable inlet guide vanes (IGVs) can be introduced into the inlet plenum to provide pre- or counterswirl to the first-stage impeller, possibly eliminating the need for variable speed. This paper presents the development and validation of circumferentially nonuniform IGVs that were specifically designed to provide maximum angle variation at minimum losses and flow distortion for the downstream impeller. This includes the comparison of three concepts: a baseline design based on circumferentially uniform and symmetric profiles, two circumferentially nonuniform concepts based on uniquely cambered airfoils at each circumferential position, and a multi-airfoil configuration consisting of a uniquely cambered fixed part and a movable part. The idea behind the circumferentially nonuniform designs was to take into account nonsymmetric flow features inside the plenum and a bias toward large preswirl angles rather than counterswirl during practical operation. The designs were carried out by computational fluid dynamics (CFD) and first tested in a steady, full-annulus cascade in order to quantify pressure losses and flow quality at the inlet to the impeller at different IGV setting angles (ranging from -20 deg to +60 deg) and flow rates. Subsequently, the designs were mounted in front of a typical oil and gas impeller on a high-speed rotating rig in order to determine the impact of flow distortion on the impeller performance. The results show that pressure losses in the inlet plenum could be reduced by up to 40% with the circumferentially nonuniform designs over the symmetric baseline configuration. Furthermore, a significant reduction in circumferential distortion could be achieved with the circumferentially nonuniform designs. The resulting improvement in impeller performance contributed approximately 40% to the overall efficiency gains for inlet plenum and impeller combined.
机译:在石油和天然气工业中,经常遇到流速的巨大变化,这需要具有宽工作范围的压缩链。如果恒定速度下的稳定工作范围不足,则可以使用变速驱动器来满足要求。或者,可以将可变的进口导向叶片(IGV)引入进口气室,以为第一级叶轮提供预旋或反旋,从而可能无需变速。本文介绍了周向不均匀IGV的开发和验证,这些IGV专门设计用于在最小损失和下游叶轮流量畸变的情况下提供最大角度变化。这包括对三个概念的比较:基于圆周均匀和对称轮廓的基线设计,基于每个圆周位置处的唯一弧形翼型的两个圆周不均匀概念以及由唯一弧形固定部分和活动部分组成的多翼型配置。周向非均匀设计的思想是考虑到气室内部的非对称流动特征以及在实际操作中偏向大的预旋角而不是逆旋。设计是通过计算流体动力学(CFD)进行的,首先在稳定的全环流级联中进行测试,以便量化在不同IGV设定角(从-20度到20度不等)下叶轮进口处的压力损失和流量质量。 +60度)和流量。随后,将设计安装在高速旋转钻机上的典型油气叶轮前面,以便确定流量畸变对叶轮性能的影响。结果表明,在对称基线结构上采用周向不均匀设计时,进气室中的压力损失最多可减少40%。此外,通过周向不均匀的设计可以实现周向变形的显着减小。叶轮性能的最终改善为进气室和叶轮的总效率提高贡献了约40%。

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