Assessment of External Heat Transfer Modeling of a Laboratory-Scale Combustor Inside a Pressure-Housing Environment

P. L. Rodrigues, O. Gicquel, N. Darabiha, K. Geigle, R. Vicquelin
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Abstract

Many laboratory-scale combustors are equipped with viewing windows to allow for characterization of the reactive flow. Additionally, pressure housing is used in this configuration to study confined pressurized flames. Since the flame characteristics are influenced by heat losses, the prediction of wall temperature fields becomes increasingly necessary to account for conjugate heat transfer in simulations of reactive flows. For configurations similar to this one, the pressure housing makes the use of such computations difficult in the whole system. It is therefore more appropriate to model the external heat transfer beyond the first set of quartz windows. The present study deals with the derivation of such a model which accounts for convective heat transfer from quartz windows external face cooling system, free convection on the quartz windows 2, quartz windows radiative properties, radiative transfer inside the pressure housing and heat conduction through the quartz window. The presence of semi-transparent viewing windows demands additional care in describing its effects in combustor heat transfers. Because this presence is not an issue in industrial-scale combustors with opaque enclosures, it remains hitherto unaddressed in laboratory-scale combustors. After validating the model for the selected setup, the sensitivity of several modeling choices is computed. This enables a simpler expression of the external heat transfer model that can be easily implemented in coupled simulations.
压力壳体环境下实验室规模燃烧器外传热模型的评估
许多实验室规模的燃烧室都配备了观察窗,以便对反应流进行表征。此外,在这种结构中使用压力外壳来研究承压火焰。由于火焰特性受到热损失的影响,因此在反应流动模拟中,壁面温度场的预测对于考虑共轭传热变得越来越必要。对于类似的配置,压力外壳使得在整个系统中使用这种计算变得困难。因此,对第一组石英窗以外的外部传热进行建模更为合适。本文研究了考虑石英窗外表面冷却系统对流换热、石英窗上的自由对流、石英窗的辐射特性、压力壳内的辐射传递和石英窗的热传导等因素的模型推导。半透明观察窗的存在要求在描述其对燃烧室传热的影响时格外小心。由于这种存在在工业规模的不透明外壳燃烧器中不是问题,因此在实验室规模的燃烧器中迄今仍未解决。在对选定的设置验证模型后,计算了几种建模选择的灵敏度。这使得外部传热模型的表达式更简单,可以很容易地在耦合模拟中实现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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