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The analysis of two-phase flow and heat transfer using a multidimensional, four field, two-fluid model

机译:使用多维四场双流体模型分析两相流动和传热

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This paper reviews the state-of the-art in the prediction of multidimensional multiphase flow and heat transfer phenomena using a four field, two-fluid model. It is shown that accurate mechanistic computational fluid dynamic (CFD) predictions are possible for a wide variety of adiabatic and diabatic flows using this computational model. In particular, the model is able to predict the bubbly air/water upflow data of Serizawa (Serizawa, A., 1974. Fluid dynamic characteristics of two-phase flow. Ph.D. thesis, (Nuclear Engineering), Kyoto University, Japan), the downflow data of Wang et al. (Wang, S.K., Lee, S.J., Lahey Jr., R.T., Jones, O.C., 1987. 3-D turbulence structure and phase distribution measurements in bubbly two-phase flows. Int. J. Multiphase Flow 13 (3), 327 343), the isosceles triangle upflow data of Lopez de Bertodano et al. (Lopez de Bertodano, M., Lahey Jr., R.T., Jones, O.C., 1994b. Phase distribution in bubbly two-phase flow in vertical ducts. Int. J. Multiphase Flow 20 (5), 805--818), the heated annular R-113 subcooled boiling data of Velidandala, et al. (Velidandla, V., Pulta, S., Roy, P., Kaira, S.P., 1995. Velocity field in turbulent subcooled boiling flow. ASME Preprint HTD-314, 107- 123) and the R-113 CHF data of Hino and Ueda (Hino, R., Ueda, T., 1985. Studies on heat transfer and flow characteristics in subcooled boiling-part 2, flow characteristics. Int. J. Multiphase Flow 11, 283 297). It can also predict external two-phase flows, such as those for spreading two-phase jets (Bonetto, F., Lahey Jr., R.T., 1993. An experimental study on air carryunder due to a plunging liquid jet. Int. J. Multiphase Flow 19 (2), 281-294) and multiphase flows around the hull of naval surface ships (Carrica, P.M., Bonetto, F., Drew, D.A., Lahey, R.T., 1999. A polydispersed model for bubbly two-phase flow around a surface ship. Int. J. Multiphase Flow 25 (2), 257-305).
机译:本文回顾了使用四场两流体模型预测多维多相流动和传热现象的最新技术。结果表明,使用该计算模型,对于各种绝热和绝热流,准确的机械计算流体动力学(CFD)预测是可能的。尤其是,该模型能够预测Serizawa的气泡水/水上升数据(Serizawa,A.,1974年。两相流的流体动力学特性。),博士学位论文,(核工程),日本京都大学,日本),王等人的下降流量数据。 (Wang,SK,Lee,SJ,Lahey Jr.,RT,Jones,OC,1987。气泡状两相流中的3-D湍流结构和相分布测量。国际J.多相流13(3),327 343 ),Lopez de Bertodano等人的等腰三角形上流资料。 (Lopez de Bertodano,M.,Lahey Jr.,RT,Jones,OC,1994b。垂直管道中气泡两相流的相分布.Int.J.Multiphase Flow 20(5),805--818), Velidandala等人加热的环形R-113过冷沸腾数据。 (Velidandla,V.,Pulta,S.,Roy,P.,Kaira,SP,1995.湍流过冷沸腾速度中的速度场。ASMEPreprint HTD-314,107-123)和Hino和R-113 CHF数据上田(Hino,R.,Ueda,T.,1985.过冷沸腾部分2,流动特性的传热和流动特性研究。国际J. Multiphase Flow 11,283 297)。它还可以预测外部两相流,例如散布两相射流的流(Bonetto,F.,Lahey Jr.,RT,1993。由于液体射流急速下降而导致的空气夹带的实验研究。多相流19(2),281-294)和海军水面舰艇船体周围的多相流(Carrica,PM,Bonetto,F.,Drew,DA,Lahey,RT,1999.多泡模型,用于气泡两相流Int。J. Multiphase Flow 25(2),257-305)。

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