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ON THE EFFECT OF DIFFERENT MODELING ASSUMPTIONS AND THEIR IMPACT ON RADIATION HEAT TRANSFER IN A SMALL GAS-FUELED FURNACE

机译:煤气炉中不同模型假设的影响及其对辐射换热的影响

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摘要

Soot processes in a vertical methane-fueled furnace supplied with fuel through its primary inlet located at its bottom, and with air via two opposing horizontal air jets perpendicular to the direction of fuel supply, are studied numerically under different modeling assumptions. Results show that a complete decoupling of soot from the gas-phase computations leads to a significant overprediction of soot levels and consequently of heat radiated to the furnace walls. As the reactivity of the fuel with the oxidizer decreases, the overall amount of soot generated and, consequently, the amount of heat radiated to furnace walls also decreases. Simulating soot oxidation by using the Nagle-Strickland-Constable model leads to results that are to some extent comparable to those obtained when soot oxidation is represented by a combination of the Lee et al. model and a model that accounts for soot oxidation by OH radical. The results obtained when the standard k-ε model of turbulence is used are found to significantly differ from those attained when the modified version of the k-ε model proposed by Chen and Kim is employed.
机译:在不同的建模假设下,通过数值研究了立式甲烷燃烧炉中的烟ot过程,该炉通过位于底部的主要进气口供入燃料,并通过垂直于燃料供应方向的两个相对的水平空气射流供入空气。结果表明,烟灰与气相计算的完全解耦会导致烟灰水平的显着过高预测,进而会导致热量辐射到炉壁。随着燃料与氧化剂的反应性降低,产生的烟灰总量以及因此辐射到炉壁的热量也降低。通过使用Nagle-Strickland-Constable模型模拟烟尘氧化可获得的结果在某种程度上与当Lee等人的组合代表烟尘氧化时获得的结果相当。模型和解释OH自由基造成烟灰氧化的模型。发现使用标准的k-ε湍流模型时获得的结果与使用Chen和Kim提出的k-ε模型的修改版本时获得的结果显着不同。

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