首页> 外文期刊>International Journal of Heat and Mass Transfer >Heat transfer and fluid flow characteristics of a pair of interacting dual swirling flame jets impinging on a flat surface
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Heat transfer and fluid flow characteristics of a pair of interacting dual swirling flame jets impinging on a flat surface

机译:撞击在平面上的一对相互作用的双涡旋火焰射流的传热和流体流动特性

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Experimental and numerical studies have been conducted to investigate the flow field and heat transfer characteristics of a pair of dual interacting swirling flames impinging on a flat surface. Commercial computational fluid dynamics (CFD) code (FLUENT (R)) has been used to simulate the interacting isothermal swirling impinging jets. Inverse heat conduction procedure (IHCP) has been used to calculate the impingement heat fluxes from the surface temperatures captured by Infra-red camera. Effect of separation distance (H/D-h = 2.5, 4, 6 and 8) and inter-jet spacings (S/D-h = 4, 6, 8 and 10) have been studied at various Reynolds numbers (Re(o) = 7000, 9000, 11000, 13,000 and Re(i) = 700, 1000, 1300) under stoichiometric conditions. Strong interactions between adjacent dual swirling flames result in high heat transfer due to increased mixing and turbulence in the interaction region. The inner non-swirling flames are seen to deflect towards interacting side due to asymmetric interactions. Numerical simulation predicted this deflection to be primarily due to large recirculation bubble developed from asymmetric interactions. Tilted cross-flow, emerging from interaction region has been observed due to momentum exchange taking place between cross-flow and swirling flames (jets). Area weighted average of local heat flux and relative deviation from averaged value has been calculated at various H/D-h and S/D-h. High average heat fluxes are obtained at smallest H/D-h and S/D-h. It has been concluded that for a system of burners considered for the present study, H/D-h = 2.5 and S/D-h = 8 is the optimum configuration on the basis of minimum relative deviation. (C) 2018 Elsevier Ltd. All rights reserved.
机译:已经进行了实验和数值研究,以研究撞击在平面上的一对双重相互作用的涡旋火焰的流场和传热特性。商业计算流体动力学(CFD)代码(FLUENT(R))已用于模拟相互作用的等温涡旋撞击射流。逆热传导程序(IHCP)已用于根据红外相机捕获的表面温度来计算撞击热通量。在不同的雷诺数下(Re(o)= 7000,研究了分离距离(H / Dh = 2.5、4、6和8)和喷射间隔(S / Dh = 4、6、8和10)的影响。 9000,11000,13,000和Re(i)= 700,1000,1300)。由于相互作用区域中混合和湍流的增加,相邻双旋流火焰之间的强相互作用会导致较高的热传递。由于不对称的相互作用,内部无旋流的火焰偏向相互作用侧。数值模拟预测该变形主要是由于非对称相互作用产生的大的再循环气泡。由于在交叉流和旋转火焰(射流)之间进行了动量交换,因此观察到了从相互作用区域出现的倾斜的交叉流。在各种H / D-h和S / D-h下,已计算出局部热通量的面积加权平均值和与平均值的相对偏差。以最小的H / D-h和S / D-h获得高的平均热通量。已经得出结论,对于本研究中考虑的燃烧器系统,基于最小相对偏差,H / D-h = 2.5和S / D-h = 8是最佳配置。 (C)2018 Elsevier Ltd.保留所有权利。

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