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Numerical Analysis of Heat Transfer Characteristics for Supercritical Aviation Kerosene

机译:超临界航空煤油传热特性的数值分析

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With the physical property changing dramatically, the supercritical aviation kerosene obtains unique heat transfer characteristics. In this way, it is difficult to investigate the heat transfer characteristics by normal experiment and therefore we resort to numerical analysis to address the scientific questions in this study. The project is proposed to demystify the heat transfer characteristics of supercritical aviation kerosene with CFD in 4mm inside diameter vertical circular tubes. Under the conditions of different pressures (3.5MPa-5MPa), the physical properties of the fluid are expressed in linear poly-nominal fitting including density, isobaric specific heat, thermal conductivity and viscosity. With the guidance of CFD, we analyze how the heat transfer characteristics can be affected by the value of temperature, pressure, heat flux mass velocity and so on. The result indicates: (1) In primary heating process, convective heat transfer is enhanced significantly. (2) When wall temperature surpasses the critical temperature, heat transfer can be deteriorated. (3) When the temperature continues to go up, the convective heat transfer coefficient will rise greatly again. Furthermore, the project has also compared the numerical analysis result with experimental result, which shows good agreement with each other. Hence, the validation of numerical analysis of supercritical fluid is well recognized.
机译:随着物理性质的急剧变化,超临界航空煤油获得了独特的传热特性。这样,很难通过常规实验研究传热特性,因此我们借助数值分析来解决本研究中的科学问题。提出该项目的目的是为了揭开内径为4mm的垂直圆管中CFD的超临界航空煤油的传热特性。在不同压力(3.5MPa-5MPa)的条件下,流体的物理特性以线性多项式拟合表示,包括密度,等压比热,导热系数和粘度。在CFD的指导下,我们分析了温度,压力,热通量质量速度等值如何影响传热特性。结果表明:(1)在一次加热过程中,对流换热显着增强。 (2)当壁温超过临界温度时,传热会变差。 (3)当温度继续升高时,对流传热系数将再次大大升高。此外,该项目还将数值分析结果与实验结果进行了比较,这显示出很好的一致性。因此,超临界流体数值分析的验证得到了公认。

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