首页> 外文会议>ASME Internal Combustion Engine Division technical conference >ANALYZING THE EFFECT OF ENGINE DESIGN MODIFICATION ON THE SPARK-IGNITION ENGINE PERFORMANCE VIA SIMPLIFIED QUASI-DIMENSIONAL MODELING
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ANALYZING THE EFFECT OF ENGINE DESIGN MODIFICATION ON THE SPARK-IGNITION ENGINE PERFORMANCE VIA SIMPLIFIED QUASI-DIMENSIONAL MODELING

机译:通过简化的准二维模型分析发动机设计修改对点火信号引擎性能的影响

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For past decades, substantial developments have been accomplished in internal combustion (IC) engine technology, but there still remain some possible improvements. The combustion in an IC engine is a highly intricate phenomenon, thus, numerous factors correlated with different forms of loss decides the efficiency of an engine. In spark-ignition (SI) engines, the combustion duration is considered important because it plays a key role in determining the combustion phasing for best possible energy conversion. The geometry of engine components may directly change the burning rate of air-fuel mixture, therefore, it should also be considered as significant as other aspects like exhaust gas recirculation (EGR) rate or boosting in investigation of the engine performance. This is the reason the development engineers are putting their effort to design an engine with optimized flow motion. Tweaking the flow dynamics via design modification or use of auxiliary device influences the turbulence level inside the combustion chamber, thus, the burning rate as well. Intake port orientation, masking, and piston shape are one of the typical design parameters manipulated for such purpose, and profound understanding on the effect of these design parameters on burning rate is encouraged in order to assist the optimization process. The design optimization process should be based on a fundamental understanding of how the design parameters affect the flow motion and combustion characteristics. This study aims for a simpler and faster method to investigate the consequences of design modifications. As a base model, a physics-based quasi-dimensional (QD) engine model is developed for simulation of SI combustion phenomenon. It is modeled to consider the change in flow motion and turbulence properties via simplified modeling. The advantages of such QD model is that it requires much less computational resource compared to 3D CFD model, and allows a greater degree of freedom within the simulation process which facilitates parametric studies. A zero-dimensional (OD) turbulence submodel is used to describe energy cascade mechanism, and turbulence intensity is calculated reflecting the effect cause by design modification. According to the sensitivities drawn from parametric study, the results of each effect on burning rate and other engine performance properties are compared individually and collectively. A qualitative analysis suggests how sensitive each effect are at given operating conditions. The result infers that the flow concentration by port design modification boosts the burning rate, but it is advantageous in terms of fuel economy to enhance the breathing ability by valve masking. The product of this comparative study assists an intuitive understanding on how the design modification would affect the engine operations, and it is encouraged to develop the model further via validation with experiment data to provide more reliable output. It is believed that it can be utilized as a good reference in engine design process.
机译:过去几十年来,在内燃(IC)发动机技术中取得了大量发展,但仍然存在一些可能的改进。 IC发动机中的燃烧是一种高度复杂的现象,因此,与不同形式的损失相关的许多因素决定了发动机的效率。在火花点火(Si)发动机中,燃烧持续时间被认为是重要的,因为它在确定最佳能量转换中的燃烧相位时起着关键作用。发动机部件的几何形状可以直接改变空气燃料混合物的燃烧速率,因此,它也应该被认为是作为废气再循环(EGR)速率(EGR)速率(EGR)速率或在发动机性能的调查中提高的其他方面的重要性。这就是开发工程师努力设计具有优化流动运动的发动机的原因。通过设计修改或使用辅助装置的流动动力学影响燃烧室内的湍流水平,因此,燃烧率也是如此。进气口取向,遮罩和活塞形状是为这种目的操纵的典型设计参数之一,并鼓励对这些设计参数对燃烧速率的影响的深刻理解,以帮助优化过程。设计优化过程应基于对设计参数如何影响流动运动和燃烧特性的基础知识。本研究旨在探讨设计修改的后果更简单和更快的方法。作为基础模型,开发了一种基于物理基准(QD)发动机模型以模拟Si燃烧现象。它是通过简化建模考虑流动运动和湍流性能的变化。这种QD模型的优点是,与3D CFD模型相比,它需要更少的计算资源,并且在促进参数研究的仿真过程中允许更大程度的自由度。零维(OD)湍流子模型用于描述能量级联机构,并计算湍流强度通过设计修改来反映效果原因。根据从参数研究中汲取的敏感性,单独和共同比较每种对燃烧速率和其他发动机性能特性的每个效果的结果。定性分析表明每种效果在给予操作条件时如何敏感。结果是港口设计修改的流量浓度提高了燃烧速率,但在燃料经济性方面是有利的,以通过阀门掩模增强呼吸能力。该比较研究的产品有助于对设计修改如何影响发动机操作的直观了解,并鼓励通过使用实验数据进一步开发模型,以提供更可靠的输出。据信它可以用作发动机设计过程中的良好参考。

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