THREE DIMENSIONAL NUMERICAL MODELING OF MULTIPHASE FLOW AND TRANSPORT

2001 ◽  
Vol 36 (8) ◽  
pp. 1473-1489 ◽  
Author(s):  
Vincent Lagendijk ◽  
Christian Forkel ◽  
Jürgen Köngeter ◽  
Axel Braxein
2020 ◽  
Vol 408 ◽  
pp. 109222
Author(s):  
Yalchin Efendiev ◽  
Abbas Firoozabadi ◽  
Shuyu Sun ◽  
Mary F. Wheeler ◽  
Bo Yu

Author(s):  
Lianjie Li ◽  
Jianxin Li ◽  
Haibo Xie ◽  
Hongqiang Liu ◽  
Li Sun ◽  
...  

Author(s):  
Stephan Uhkoetter ◽  
Stefan aus der Wiesche ◽  
Michael Kursch ◽  
Christian Beck

The traditional method for hydrodynamic journal bearing analysis usually applies the lubrication theory based on the Reynolds equation and suitable empirical modifications to cover turbulence, heat transfer, and cavitation. In cases of complex bearing geometries for steam and heavy-duty gas turbines this approach has its obvious restrictions in regard to detail flow recirculation, mixing, mass balance, and filling level phenomena. These limitations could be circumvented by applying a computational fluid dynamics (CFD) approach resting closer to the fundamental physical laws. The present contribution reports about the state of the art of such a fully three-dimensional multiphase-flow CFD approach including cavitation and air entrainment for high-speed turbo-machinery journal bearings. It has been developed and validated using experimental data. Due to the high ambient shear rates in bearings, the multiphase-flow model for journal bearings requires substantial modifications in comparison to common two-phase flow simulations. Based on experimental data, it is found, that particular cavitation phenomena are essential for the understanding of steam and heavy-duty type gas turbine journal bearings.


2005 ◽  
Vol 208 (2) ◽  
pp. 626-650 ◽  
Author(s):  
Xiaoming Zheng ◽  
John Lowengrub ◽  
Anthony Anderson ◽  
Vittorio Cristini

Sign in / Sign up

Export Citation Format

Share Document