>In the spark-ignition engine development and optimization process, the cyclic variability'/> A physical-based approach for modeling cycle-to-cycle variations within a zero-dimensional/one-dimensional simulation environment
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A physical-based approach for modeling cycle-to-cycle variations within a zero-dimensional/one-dimensional simulation environment

机译:一种基于物理的方法,用于在零维/一维模拟环境中建模周期到周期变化的方法

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>In the spark-ignition engine development and optimization process, the cyclic variability of combustion is an essential and current issue. Cycle-to-cycle variations are extensively investigated by means of quasi-dimensional (zero-dimensional/one-dimensional) simulation modeling. To date, these model approaches have been limited either because they neglected particularly significant physical causes and factors influencing cyclic combustion variations or because of their solely empirical combustion modeling basis. However, in order to ensure the high validity of simulation results, quasi-dimensional model approaches have to accurately describe the physical background of engine combustion. Therefore, a new cyclic combustion variation model is introduced in this study. This cycle-to-cycle variation model is based on previously developed, highly sophisticated physical turbulence, ignition and combustion models, thus for the first time enabling the physical description of cycle-to-cycle variation. The model integrates the most significant physical causes of combustion variations and the factors which influence them, obtained from a literature study. Hence, the derived cycle-to-cycle variation model can physically react to changes in engine parameters such as the engine speed, load, spark timing, valve lift and timing as well as the air–fuel equivalence ratioλ. For validation, the new cycle-to-cycle variation model is compared to a state-of-the-art cycle-to-cycle variation model and analyzed by means of engines with different combustion processes. This new cycle-to-cycle variation model uniquely features the physical background of the underlying combustion model and the integration of more influencing factors than in previous approaches. Another unique feature is its basis on extensive experimental data, gained by changing various engine parameters for homogeneous charge spark-ignition engines with different combustion/engine concepts. These include engines with high turbulence generation or a long expansion stroke via crank and valve train.]]>
机译:<![cdata [ >在火花点火发动机开发和优化过程中,燃烧的循环变异性是必不可少的问题。通过准维度(零维/一维)仿真建模广泛地研究循环到周期变化。迄今为止,这些模型方法是有限的,因为它们被忽视了影响循环燃烧变化的特别重要的物理原因和因素,或因其完全经验燃烧建模的基础。然而,为了确保仿真结果的高效力,准尺寸模型方法必须准确地描述发动机燃烧的物理背景。因此,本研究介绍了一种新的循环燃烧变化模型。该循环到周期变化模型基于先前显影,高度复杂的物理湍流,点火和燃烧模型,从而首次启用循环到循环变化的物理描述。该模型集成了燃烧变化最重要的物理原因和影响它们的因素,从文献研究中获得。因此,导出的周期到循环变化模型可以物理地反应发动机参数的变化,例如发动机速度,负载,火花正时,阀升程和时序以及空气燃料等效比<内联公式ID =“内联 - 公式1-1468087417732882“> λ 。为了验证,将新的周期到周期变化模型与最先进的周期到循环变化模型进行比较,并通过具有不同燃烧过程的发动机分析。这种新的周期到周期变化模型独特地具有底层燃烧模型的物理背景以及比以前的方法更具影响因素的整合。另一个独特的特征是通过改变具有不同燃烧/发动机概念的各种发动机参数来获得广泛的实验数据的基础。这些包括具有高湍流产生或通过曲柄和阀门列车的长膨胀行程的发动机。 ]]>

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