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FUEL SENSITIVE IGNITION DELAY MODELS FOR A LOCAL AND GLOBAL DESCRIPTION OF DIRECT INJECTION INTERNAL COMBUSTION ENGINES

机译:直接注射内部燃烧发动机局部和整体描述的燃油敏感点火延迟模型

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Models for ignition delay in a direct injection compression ignition engine are investigated and fuel specific properties are included to predict the effects of different fuels on the ignition delay. These models follow the Arrhenius type expression for the ignition delay modified with the oxygen concentration and Cetane number to extend the range of validity. In this investigation two fuel-sensitive spray ignition delay models are developed: a global model and a local model. The global model is based on the global combustion chamber charge properties including temperature, pressure and oxygen/fuel content. The local model is developed to account for temporal and spatial variations in properties of separated spray zones such as local temperature, oxidizer and fuel concentrations obtained by a quasi-dimensional multi-zone fuel spray model. These variations are integrated in time to predict the ignition delay. An ignition delay model is typically re-calibrated for a specific fuel being used. In this study, the global ignition delay model includes the Cetane number to capture ignition delay of various fuels. The local model uses Cetane number and local stoichiometric oxygen to fuel molar ratio. Due to those variables, the model is capable of predicting spray ignition delays for a set of fuels with a single calibration step. Experimental dataset of spray ignition delay in a constant volume chamber is used for model development and calibration. The models show a good accuracy for the predicted ignition delay of four different fuels: JP8, DF2, n-heptane and n-dodecane. The investigation revealed that the most accurate form of the models is from a calibration done for each individual fuel with only a slight decrease in accuracy when a single calibration is done for all fuels. The single calibration case is the more desirable outcome as it leads to general models that cover all the fuels. Of the two proposed models the local model has a slightly better accuracy compared to the global model. Results for both models demonstrate the improvements that can be obtained for the ignition delay model when additional fuel specific properties are included in the spray ignition model. Other alternative fuels like synthetic oxygenated fuels were included in the investigation. These fuels behave differently such that the Cetane number does not provide the same explanation for the trend in ignition delay. Though of lower accuracy, the new models do improve the predictive capability when compared with existing types of ignition delay models applied to this kind of fuels.
机译:研究了直喷压缩式点火发动机的点火延迟模型,并包括了燃料的特定属性,以预测不同燃料对点火延迟的影响。这些模型遵循Arrhenius型表达式,其中点火延迟用氧气浓度和十六烷值进行了修改,以扩展有效期。在这项研究中,开发了两个对燃油敏感的喷雾点火延迟模型:全局模型和局部模型。整体模型基于整体燃烧室充气特性,包括温度,压力和氧气/燃料含量。开发局部模型是为了考虑分开的喷雾区域的特性在时间和空间上的变化,例如局部温度,氧化剂和通过准多维多区域燃料喷雾模型获得的燃料浓度。这些变化会及时积分以预测点火延迟。通常针对所使用的特定燃料重新校准点火延迟模型。在这项研究中,全局点火延迟模型包括十六烷值,以捕获各种燃料的点火延迟。局部模型使用十六烷值和局部化学计量的氧与燃料摩尔比。由于这些变量,该模型能够通过单个校准步骤预测一组燃料的喷雾点火延迟。恒定容积室内喷雾点火延迟的实验数据集用于模型开发和校准。该模型对于四种不同燃料(JP8,DF2,正庚烷和正十二烷)的预计点火延迟显示出良好的准确性。调查显示,模型的最准确形式来自对每种燃料进行的校准,而对所有燃料进行一次校准后,精度只会略有下降。单一校准的情况是更理想的结果,因为它会导致涵盖所​​有燃料的通用模型。在两个建议的模型中,局部模型的精度比全局模型的精度略高。两种模型的结果都表明,当喷雾点火模型中包含其他燃料特定属性时,对于点火延迟模型可以获得改进。调查中还包括其他替代燃料,例如合成含氧燃料。这些燃料的行为不同,因此十六烷值不能为点火延迟趋势提供相同的解释。尽管准确性较低,但与应用于此类燃料的现有类型的点火延迟模型相比,新模型确实提高了预测能力。

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