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Estimation of Surface Heat Flux and Surface Temperature during Inverse Heat Conduction under Varying Spray Parameters and Sample Initial Temperature

机译:喷雾参数和样品初始温度变化下逆导热过程中表面热通量和表面温度的估算

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摘要

An experimental study was carried out to investigate the effects of inlet pressure, sample thickness, initial sample temperature, and temperature sensor location on the surface heat flux, surface temperature, and surface ultrafast cooling rate using stainless steel samples of diameter 27 mm and thickness (mm) 8.5, 13, 17.5, and 22, respectively. Inlet pressure was varied from 0.2 MPa to 1.8 MPa, while sample initial temperature varied from 600°C to 900°C. Beck's sequential function specification method was utilized to estimate surface heat flux and surface temperature. Inlet pressure has a positive effect on surface heat flux (SHF) within a critical value of pressure. Thickness of the sample affects the maximum achieved SHF negatively. Surface heat flux as high as 0.4024 MW/m2 was estimated for a thickness of 8.5 mm. Insulation effects of vapor film become apparent in the sample initial temperature range of 900°C causing reduction in surface heat flux and cooling rate of the sample. A sensor location near to quenched surface is found to be a better choice to visualize the effects of spray parameters on surface heat flux and surface temperature. Cooling rate showed a profound increase for an inlet pressure of 0.8 MPa.
机译:进行了一项实验研究,研究了使用直径为27 mm且厚度为( (mm)分别为8.5、13、17.5和22。进样口压力在0.2 MPa至1.8 MPa之间变化,而样品的初始温度在600°C至900°C之间变化。利用贝克的顺序函数规范方法估算表面热通量和表面温度。入口压力在压力的临界值内会对表面热通量(SHF)产生积极影响。样品的厚度会对达到的最大SHF产生负面影响。估计表面热通量高达0.4024 MW / m 2 ,厚度为8.5 mm。在样品初始温度范围为900°C时,蒸汽膜的隔热效果变得明显,从而导致表面热通量和样品的冷却速率降低。发现靠近淬火表面的传感器位置是可视化喷涂参数对表面热通量和表面温度影响的更好选择。入口压力为0.8 MPa时,冷却速率显示出极大的提高。

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