首页> 外文会议>ASME Internal Combustion Engine Division technical conference >ADVANCED MODEL OF BI-COMPONENT FUEL DROPLET HEATING AND EVAPORATING WITH LIQUID TURBULENCE EFFECTS AT HIGH PRESSURE
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ADVANCED MODEL OF BI-COMPONENT FUEL DROPLET HEATING AND EVAPORATING WITH LIQUID TURBULENCE EFFECTS AT HIGH PRESSURE

机译:双组分燃料液滴加热的先进模型,高压下蒸发液体湍流效应

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A new approach to account for finite thermal conductivity, finite mass diffusivity and turbulence effects within atomizing liquid sprays at high pressure condition is presented in this paper. The finite conductivity model is based on a newly developed two-layer film theory, where the turbulence characteristics of the droplet are used to estimate the effective thermal conductivity [1]. The present paper extends the formulation to model the multi-component mass diffusivities within the droplet phase at high pressures but less than components critical pressures. An approximate solution to the quasi-steady energy equation was used to derive an explicit expression for the heat flux from the surrounding gas to the droplet-gas interface, with inter-diffusion of fuel vapor and the surrounding gas taken into account. The Peng-Robinson equation of state (EOS) is used for extension of the model to the high pressures. The latent heat of vaporization and fuel enthalpies are also corrected for high pressure. The model includes the non-ideal gas and liquid behavior, and variable thermo-transport properties including their dependence on pressure and temperature. For this study a mixture of decane and hexadecane fuel droplet was considered. Predictions of the high-pressure single droplet model are in good agreement with the available data in literature.
机译:本文介绍了一种新的用于在高压条件下雾化液体喷雾器内的有限热导率,有限质量扩散和湍流效应的新方法。有限电导率模型基于新开发的双层薄膜理论,其中液滴的湍流特性用于估计有效的导热率[1]。本文延伸了配方以在高压下模拟液滴液体内的多组分质量扩散性,但小于组分临界压力。用于准稳态能量方程的近似解决方案用于导出从周围气体到液滴 - 气体接口的热通量的显式表达,燃料蒸汽的间扩散和考虑的周围气体。状态(EOS)的彭罗宾逊方程用于延伸模型到高压。汽化和燃料焓的潜热也校正高压。该模型包括非理想的气体和液体行为,以及可变热传输性能,包括它们对压力和温度的依赖性。本研究考虑了癸烷和十六烷燃料液滴的混合物。高压单液滴模型的预测与文献中的可用数据很好。

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