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Jet Impingement Heat Transfer of Confined Single and Double Jets with Non-Newtonian Power Law Nanofluid under the Inclined Magnetic Field Effects for a Partly Curved Heated Wall

机译:非牛顿电源纳米流体下狭窄单射流的喷射撞击热传递inoftonian电源法下的倾斜磁场效应,用于部分弯曲的宽壁

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摘要

Single and double impinging jets heat transfer of non-Newtonian power law nanofluid on a partly curved surface under the inclined magnetic field effects is analyzed with finite element method. The numerical work is performed for various values of Reynolds number (Re, between 100 and 300), Hartmann number (Ha, between 0 and 10), magnetic field inclination (γ, between 0 and 90), curved wall aspect ratio (AR, between 01. and 1.2), power law index (n, between 0.8 and 1.2), nanoparticle volume fraction (ϕ, between 0 and 0.04) and particle size in nm (dp, between 20 and 80). The amount of rise in average Nusselt (Nu) number with Re number depends upon the power law index while the discrepancy between the Newtonian fluid case becomes higher with higher values of power law indices. As compared to case with n = 1, discrepancy in the average Nu number are obtained as −38% and 71.5% for cases with n = 0.8 and n = 1.2. The magnetic field strength and inclination can be used to control the size and number or vortices. As magnetic field is imposed at the higher strength, the average Nu reduces by about 26.6% and 7.5% for single and double jets with n greater than 1 while it increases by about 4.78% and 12.58% with n less than 1. The inclination of magnetic field also plays an important role on the amount of enhancement in the average Nu number for different n values. The aspect ratio of the curved wall affects the flow field slightly while the average Nu variation becomes 5%. Average Nu number increases with higher solid particle volume fraction and with smaller particle size. At the highest particle size, it is increased by about 14%. There is 7% variation in the average Nu number when cases with lowest and highest particle size are compared. Finally, convective heat transfer performance modeling with four inputs and one output is successfully obtained by using Adaptive Neuro-Fuzzy Interface System (ANFIS) which provides fast and accurate prediction results.
机译:利用有限元法分析了在倾斜磁场效应下部分弯曲表面上的非牛顿电力法的单次和双击的喷射纳米流体的传热。对雷诺数(Re,100和300之间)的各种值进行数值作品,Hartmann号(HA,0和10),磁场倾斜度(γ,0和90之间),弯曲壁纵横比(AR,在01和1.2之间,功率法指数(n,0.8和1.2),纳米颗粒体积分数(φ,0和0.04之间)和nm粒度(dp,在20和80之间)。具有RE编号的平均水平(NU)数量的增加量取决于电力法指数,而牛顿流体箱之间的差异变得更高,功率法指数较高。与n = 1的情况相比,对于n = 0.8和n = 1.2的病例,获得平均NU编号的差异为-38%和71.5%。磁场强度和倾斜度可用于控制尺寸和数量或涡流。由于磁场以较高的强度施加,平均NU对于单个和双射流的单个和双射流减少约26.6%和7.5%,而N大于1,而N的单次速度少于1.5%,n小于1.磁场也在不同N值的平均NU编号中的增强量起到重要作用。弯曲壁的纵横比在平均NU变化变为5%时略微影响流场。平均NU数量随着较高的固体颗粒体积分数和粒径较小。在最高的粒径上,它增加了约14%。当比较最低粒度和最高粒度的情况时,平均NU数有7%的变化。最后,通过使用自适应神经模糊界面系统(ANFI)成功地获得了具有四个输入和一个输出的对流传热性能建模,其提供快速准确的预测结果。

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