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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Modified Single-Fluid Cavitation Model for Pure Diesel and Biodiesel Fuels in Direct Injection Fuel Injectors
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Modified Single-Fluid Cavitation Model for Pure Diesel and Biodiesel Fuels in Direct Injection Fuel Injectors

机译:直喷式燃油喷射器中纯柴油和生物柴油燃料的修正单流体空化模型

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摘要

A cavitation model has been developed for the internal two-phase flow of diesel and biodiesel fuels in fuel injectors under high injection pressure conditions. The model is based on the single-fluid mixture approach with newly derived expressions for the phase change rate and local mean effective pressure-the two key components of the model. The effects of the turbulence, compressibility, and wall roughness are accounted for in the present model and model validation is carried out by comparing the model predictions of probable cavitation regions, velocity distribution, and fuel mass flow rate with the experimental measurement available in literature. It is found that cavitation inception for biodiesel occurs at a higher injection pressure, compared to diesel, due to its higher viscosity. However, supercavitation occurs for both diesel and biodiesel at high injection pressures. The renormalization group (RNG) k - ε model for turbulence modeling is reasonable by comparing its performance with the realizable k -ε and the shear stress transport (SST) k -ω models. The effect of liquid phase compressibility becomes considerable for high injection pressures. Wall roughness is not an important factor for cavitation in fuel injectors.
机译:针对高喷射压力条件下喷油器中柴油和生物柴油燃料的内部两相流,已经开发了一种空化模型。该模型基于单流体混合方法,具有新推导的相变速率和局部平均有效压力表达式,这是模型的两个关键组成部分。在本模型中考虑了湍流,可压缩性和壁面粗糙度的影响,并通过将可能的气蚀区域,速度分布和燃料质量流量的模型预测与文献中提供的实验测量值进行比较,进行了模型验证。已经发现,与柴油相比,生物柴油的空化开始发生在较高的喷射压力下,这是由于其较高的粘度。但是,在高喷射压力下,柴油和生物柴油都会发生超空化现象。通过将湍流模型的重归一化组(RNG)k-ε与可实现的k-ε和切应力传递(SST)k-ω模型进行比较,可以得出合理的模型。对于高注射压力,液相可压缩性的影响变得显着。壁面粗糙度不是燃料喷射器中气穴现象的重要因素。

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  • 来源
    《Journal of Engineering for Gas Turbines and Power》 |2013年第6期|062801.1-062801.8|共8页
  • 作者单位

    Department of Mechanical and Mechatronics Engineering,University of Waterloo,Waterloo, ON, N2L3G1, Canada;

    Department of Mechanical and Mechatronics Department of Mechanical and Mechatronics Engineering,University of Waterloo,Waterloo, ON, N2L3G1, Canada;

    Department of Mechanical and Mechatronics Engineering,University of Waterloo,Waterloo, ON, N2L3G1, Canada;

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