Numerical Evaluation of the Effects of Low Pressure EGR Mixer Configuration on Turbocharger Compressor Performance

A. Reihani, J. Hoard, Stefan Klinkert, C. Kuan, D. Styles
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引用次数: 3

Abstract

Low-pressure exhaust gas recirculation (LP-EGR) is an EGR configuration in which clean exhaust gas is taken downstream of the turbine and aftertreatment, and then reintroduced upstream of the compressor (1). Employing LP-EGR on Diesel engines can improve fuel economy by reducing pumping losses, lowering intake manifold temperature and facilitating advanced combustion phasing (2, 3). The LP-EGR can also improve compressor and turbine performance by moving their operating points towards higher flow rate and higher efficiency points, which is reflected as a net reduction in pumping losses of the engine. In this study, we focus on effects of introducing LP-EGR on the compressor pressure ratio, and isentropic total-to-total efficiency. The flow field of LP-EGR and air mixing upstream of the compressor as well as the entire compressor stage were studied using a CFD RANS model. The model was validated against turbocharger gas stand measurements. A T-junction mixer was chosen as the design baseline, and various configurations of this mixer were evaluated. The impact of the geometric configuration of the mixer was studied by varying mixing length, EGR jet introduction angle, and EGR-to-air cross section area ratio over a wide range of relevant engine operating conditions. The flow field upstream of the compressor is strongly affected by the dimensionless quantity EGR-to-air momentum ratio. At intermediate momentum ratios, stream-wise counter-rotating vortex pairs (4) are induced in the flow. These vortices can reach the impeller inlet, and depending on vorticity and length scale, perturb the local velocity triangle. At low and high momentum ratios, creeping or impinging jets respectively are formed. In addition prewhirl can be induced by eccentric introduction of EGR. The EGR-induced prewhirl acts similar to an inlet guide vane and can alter the incidence angle at the impeller inlet. The performance of the compressor is altered by the EGR-induced flow field. Compressor pressure ratio is either increased or decreased depending on the direction of EGR-induced prewhirl with eccentric EGR introduction. The compressor efficiency decreases at low flow rates by introduction of concentric EGR due to perturbation of the velocity triangle at the impeller inlet. On the other hand, at low flow rates compressor efficiency can be improved by eccentric EGR introduction, which generates prewhirl in the direction of rotation of the impeller leading to improved incidence angle. The extent to which the compressor is influenced by the EGR-induced flow field is generally reduced by increasing the EGR mixing length, due to viscous damping and breakdown of large-scale EGR-induced vortices. The LP-EGR configuration provides a potential pathway towards improvement of compressor performance, not only by increasing compressor flow rate, but also by manipulation of the flow field. Given that the engine pumping losses are strongly dependent on compressor performance, specifically the compressor efficiency, this study indicates that LP-EGR provides an important path towards reducing pumping loss and improving fuel conversion efficiency.
低压EGR混合器配置对涡轮增压器压气机性能影响的数值评价
低压废气再循环(LP-EGR)是一种EGR配置,在这种配置中,清洁的废气被带到涡轮和后处理的下游,然后重新引入压缩机的上游(1)。在柴油机上采用低压废气再循环可以通过减少泵送损失、降低进气歧管温度和促进提前燃烧阶段来提高燃油经济性(2)。3) LP-EGR还可以改善压气机和涡轮的性能,使它们的工作点向更高的流量和效率点移动,这体现在发动机泵送损失的净减少上。在本研究中,我们重点研究了引入LP-EGR对压缩机压比和等熵总效率的影响。采用CFD RANS模型研究了低压- egr的流场以及压气机上游和整个压气机级的空气混合情况。该模型通过涡轮增压器气台实测数据进行了验证。选择t型结混合器作为设计基准,并对该混合器的各种配置进行了评价。在一系列相关发动机工况下,通过改变混合长度、EGR射流引入角和EGR与空气截面比,研究了混合器几何构型的影响。无因次量egr -空气动量比对压气机上游流场影响较大。在中等动量比下,在流动中诱导流向的反向旋转涡对(4)。这些涡可以到达叶轮进口,并根据涡量和长度尺度对局部速度三角形产生扰动。在低动量比和高动量比下,分别形成蠕变射流和撞击射流。此外,偏心引入EGR可引起预涡。egr诱导的预旋作用类似于进口导叶,可以改变叶轮进口的入射角。egr诱导的流场改变了压缩机的性能。引入偏心EGR后,随着EGR诱导的预涡方向的不同,压气机压比也随之增大或减小。在低流量时,由于叶轮入口速度三角形的扰动,引入同心EGR会导致压缩机效率下降。另一方面,在小流量时,通过偏心引入EGR,在叶轮旋转方向产生预旋,提高入射角,可以提高压气机效率。由于粘滞阻尼和大尺度EGR诱导涡的击穿,增加EGR混合长度通常会降低压气机受EGR诱导流场影响的程度。LP-EGR配置不仅可以通过增加压气机流量,还可以通过控制流场来改善压气机的性能。鉴于发动机抽气损失与压气机性能特别是压气机效率密切相关,本研究表明,LP-EGR为降低抽气损失和提高燃油转换效率提供了重要途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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