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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >Nonlinear Breakup Model for a Liquid Sheet Emanating From a Pressure-Swirl Atomizer
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Nonlinear Breakup Model for a Liquid Sheet Emanating From a Pressure-Swirl Atomizer

机译:压力旋流雾化器散发的液膜的非线性分解模型

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Predictions of breakup length of a liquid sheet emanating from a pressure-swirl (simplex) fuel atomizer have been carried out by computationally modeling the two-phase flow in the atomizer coupled with a nonlinear analysis of instability of the liquid sheet. The volume-of-fluid (VOF) method has been employed to study the flow field inside the pressure-swirl atomizer. A nonlinear instability model has been developed using a perturbation expansion technique with the initial amplitude of the disturbance as the perturbation parameter to determine the sheet instability and breakup. The results for sheet thickness and velocities from the internal flow solutions are used as input in the nonlinear instability model. Computational results for internal flow are validated by comparing film thickness at exit, spray angle, and discharge coefficient with available experimental data. The predictions of breakup length show a good agreement with semiempirical correlations and available experimental measurements. The effect of elevated ambient pressure on the atomizer internal flow field and sheet breakup is investigated. A decrease in air core diameter is obtained at higher ambient pressure due to increased liquid-air momentum transport. Shorter breakup lengths are obtained at elevated air pressure. The coupled internal flow simulation and sheet instability analysis provides a comprehensive approach to modeling sheet breakup from a pressure-swirl atomizer.
机译:通过对雾化器中的两相流进行计算建模并结合液体薄板不稳定性的非线性分析,可以预测从压力旋流式(单一)燃料雾化器散发的液体薄板的破裂长度。流体体积(VOF)方法已被用于研究压力旋流雾化器内部的流场。使用扰动展开技术开发了一种非线性不稳定性模型,以扰动的初始振幅作为扰动参数来确定片材的不稳定性和破裂。内部流动解决方案的板厚和速度结果用作非线性不稳定模型的输入。通过将出口处的膜厚,喷雾角度和排放系数与可用的实验数据进行比较,可以验证内部流动的计算结果。破裂长度的预测与半经验相关性和可用的实验测量结果显示出良好的一致性。研究了升高的环境压力对雾化器内部流场和纸张破碎的影响。由于增加的液-气动量传输,在较高的环境压力下,空气芯直径减小。在升高的气压下获得更短的破裂长度。内部流动模拟和薄板不稳定性分析相结合,提供了一种全面的方法来模拟压力旋流雾化器中的薄板破裂。

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