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Dynamic response of a vaporizing spray to pressure oscillations: Approximate analytical solutions

机译:蒸发喷雾对压力波动的动态响应:近似分析解决方案

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In this work, we study thermal conduction and convection combined effects on frequency response to pressure oscillations of a spray of repetitively injected drops in a combustion chamber. The theoretical model is based on Heidmann analogy of the so called "mean droplet" which is a single spherical vaporizing droplet with constant average radius, given that this droplet is continually fed at a stationary flow rate. The feeding comes from a source point placed at the mean spherical droplet center in such a way that the injection process can be assumed to be isothermal (isothermal feeding regime) or adiabatic (adiabatic feeding regime). Drawing upon the linear decomposition of the energy conservation equation, approximate analytical solutions for the perturbed temperature field inside the droplet are obtained from some derived double confluent Heun equations. Frequency response factor of the evaporating mass is then evaluated on the basis of the Rayleigh criterion by means of the linearized equations of the gas phase. Compared to the results obtained for the previous pure conduction model of the same "mean droplet", frequency response factor curves seem to be similar with reference to each feeding regime. Moreover, due to the radial thermal convection effect introduced in the present work, a frequency response factor curve with the same characteristic times ratio may exhibit a relatively larger frequency range for the instability domain. Data are found to be correlated in terms of period of pressure oscillations, of vaporization characteristics times and of fuel thermodynamic coefficients. In the isothermal feeding regime in particular, due to some possible values that can be taken by a certain thermodynamic coefficient, high and non-linear frequency responses may appear in the system. (C) 2018 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
机译:在这项工作中,我们研究了热传导和对流组合对频率响应的影响,这些响应对燃烧室中重复注入的液滴的喷雾的压力振荡产生了频率响应。该理论模型基于所谓的“平均液滴”的海德曼类比,“平均液滴”是具有恒定平均半径的单个球形汽化液滴,假定该液滴以固定的流速连续供给。进料来自放置在平均球形液滴中心的源点,其方式可假定注射过程为等温(等温进料方式)或绝热(绝热进料方式)。利用能量守恒方程的线性分解,可以从一些导出的双汇合Heun方程获得近似的液滴内部温度场的解析解。然后根据瑞利准则,通过气相线性化方程式评估蒸发物质的频率响应因数。与从以前的相同“平均液滴”的纯传导模型获得的结果相比,频率响应因子曲线在每种喂食方式下似乎都相似。而且,由于在本工作中引入了径向热对流效应,具有相同特征倍数比的频率响应因子曲线对于不稳定性域可能表现出相对较大的频率范围。发现数据在压力振荡周期,汽化特性时间和燃料热力学系数方面是相关的。特别是在等温进料方式中,由于某些热力学系数可以获取一些可能的值,因此系统中可能会出现高频率和非线性频率响应。 (C)2018年燃烧研究所。由Elsevier Inc.出版。保留所有权利。

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