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Investigating the effect of crevice flow on internal combustion engines using a new simple crevice model implemented in a CFD code

机译:使用CFD代码中实现的新的简单缝隙模型研究缝隙流对内燃机的影响

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摘要

A theoretical investigation is conducted to examine the way the crevice regions affect the mean cylinder pressure, the in-cylinder temperature, and the velocity field of internal combustion engines running at motoring conditions. For the calculation of the wall heat flux, a wall heat transfer formulation developed by the authors is used, while for the simulation of the crevices and the blow-by a newly developed simplified simulation model is presented herein. These sub-models are incorporated into an in-house Computational Fluid Dynamics (CFD) code. The main advantage of the new crevice model is that it can be applied in cases where no detailed information of the ring-pack configuration is available, which is important as this information is rarely known or may have been altered during the engine's life. Thus, an adequate estimation of the blow-by effect on the cylinder pressure can be drawn. To validate the new model, the measured in-cylinder pressure traces of a diesel engine, located at the authors' laboratory, running under motoring conditions at four engine speeds were used as reference, together with measured velocity profiles and turbulence data of a motored spark-ignition engine. Comparing the predicted and measured cylinder pressure traces of the diesel engine for all cases examined, it is observed that by incorporating the new crevice sub-model into the in-house CFD code, significant improvements on the predictive accuracy of the model is obtained. The calculated cylinder pressure traces almost coincide with the measured ones, thus avoiding the use of any calibration constants as would have been the case with the crevice effect omitted. Concerning the radial and swirl velocity profiles and the turbulent kinetic energy measured in the spark-ignition engine, the validation process revealed that the developed crevice model has a minor influence on the aforementioned parameters. The theoretical study has been extended by investigating in the same spark-ignition engine, during the induction and compression strokes, the way crevice flow affects the thermodynamic properties of the air trapped in the cylinder.
机译:进行了理论研究,以研究缝隙区域影响平均汽缸压力,缸内温度以及在行驶条件下运行的内燃机的速度场的方式。为了计算壁的热通量,使用了由作者开发的壁传热公式,而为了模拟缝隙和漏气,本文提出了新开发的简化模拟模型。这些子模型已合并到内部计算流体动力学(CFD)代码中。新缝隙模型的主要优点是,它可用于没有可用的环组配置详细信息的情况,这很重要,因为该信息鲜为人知或在发动机使用寿命内可能已被更改。因此,可以得出对气缸压力的窜缸效应的充分估计。为了验证新模型,作者实验室中测得的,在四种发动机转速下以发动机工况运行的柴油发动机的缸内压力轨迹与测量的速度曲线和湍流数据一起用作参考。点火引擎。比较所有检查情况下柴油机的预测和实测气缸压力曲线,可以发现,通过将新的缝隙子模型合并到内部CFD代码中,可以显着提高模型的预测精度。计算出的气缸压力曲线几乎与测量的曲线重合,因此避免了使用任何校准常数的情况,因为省去了缝隙效应。关于在火花点火发动机中测得的径向和旋流速度分布以及湍动能,验证过程表明,开发的缝隙模型对上述参数影响较小。通过研究同一个火花点火发动机,在进气冲程和压缩冲程期间,缝隙流影响滞留在气缸中的空气的热力学性质的方式,已经扩展了理论研究。

著录项

  • 来源
    《Applied Energy》 |2011年第1期|p.111-126|共16页
  • 作者单位

    Combustion Engines Laboratory, Thermal Engineering Department, School of Mechanical Engineering, National Technical University of Athens, 9 Heroon Polytechniou St., Zografou Campus, 15780 Athens, Greece;

    Combustion Engines Laboratory, Thermal Engineering Department, School of Mechanical Engineering, National Technical University of Athens, 9 Heroon Polytechniou St., Zografou Campus, 15780 Athens, Greece;

    Combustion Engines Laboratory, Thermal Engineering Department, School of Mechanical Engineering, National Technical University of Athens, 9 Heroon Polytechniou St., Zografou Campus, 15780 Athens, Greece;

    laboratory of Naval Propulsion Systems, Section 0/Naval Architecture and Marine Engineering, Department of Naval Sciences, Hellenic Naval Academy,End of Hatzikyriakou Ave., Hatzikyriakio, 18539 Piraeus, Greece;

  • 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

    engine; cfd code; crevice model; blow-by; motoring; heat transfer;

    机译:发动机;cfd代码;缝隙模型;漏气;驱动;传热;
  • 入库时间 2022-08-18 00:10:04

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