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Heat transfer characteristics of supercritical water in a tube: Application for 2D and an experimental validation

机译:管中超临界水的传热特性:2D应用和实验验证

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摘要

Heat transfer to water at supercritical pressures has been numerically investigated using a two-dimensional modeling approach. The simulations in a two-dimensional domain have been performed using the low-Reynolds k-∈ turbulence model, and the IAPWS-IF97 formulation to describe the properties of water at different conditions. The accuracy of the model is validated using an experimental setup at supercritical pressures. The experimental dataset was obtained in supercritical water flowing upward in a 0.4 m long vertical bare tube with 10 mm ID. The temperature data were collected at multiple heights in the tube and at pressures of about 24 MPa, an inlet temperature of 300 °C, values of mass flux ranged from 6.6 to 10 kg/m~2 s and an outer wall temperature of 300 °C resulting in bulk-fluid temperatures exceeding the pseudo-critical temperature. The comparison of the temperature results shows a good agreement for low mass fluxes between the experimental and numerical data. At these low flow conditions, the 2D model predicts recirculation zones near the inlet which results in a more complex simulation. The accuracy of the 2D model for higher fluxes cannot be properly assessed on basis of the experimental data because of practical limitation of the setup. But the accuracy of the 2D model for the higher mass flow cases is expected to be even more accurate, due to less complexity in the flow calculation because of smaller buoyancy effects. Finally simulation results of the two-dimensional model at higher mass flows are compared with several frequently used one-dimensional correlations from literature for heat transfer at supercritical pressures.
机译:已经使用二维建模方法对超临界压力下水的热传递进行了数值研究。使用低雷诺k-ε湍流模型和IAPWS-IF97公式在二维域中进行了模拟,以描述不同条件下水的性质。使用在超临界压力下的实验装置验证了模型的准确性。实验数据集是在0.4 m长,内径为10 mm的垂直裸管中向上流动的超临界水中获得的。温度数据是在管内多个高度,压力约为24 MPa,入口温度为300°C,质量通量值为6.6至10 kg / m〜2 s,外壁温度为300°的情况下收集的C导致体液温度超过拟临界温度。温度结果的比较表明,在实验数据和数值数据之间,低通量具有良好的一致性。在这些低流量条件下,2D模型可预测入口附近的再循环区域,从而导致更复杂的模拟。由于设置的实际限制,无法根据实验数据正确评估更高通量的2D模型的准确性。但是,由于浮力效应较小,因此在流量计算中的复杂性较低,因此对于较高质量流量的情况,二维模型的精度有望更高。最后,将二维模型在较高质量流量下的模拟结果与文献中几种常用的一维相关性进行了比较,这些相关性是有关超临界压力下传热的。

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