scholarly journals Numerical simulation of gas flow and droplet motion in a wave-plate eliminator of the separator-steam-generator system in the waste-heat-utilisation complex

2017 ◽  
Vol 159 ◽  
pp. 00002
Author(s):  
Valerij Artemov ◽  
Konstantin Minko ◽  
Georgij Yankov ◽  
Anton Ptakhin ◽  
Anton Kondratev ◽  
...  
2008 ◽  
Vol 63 (23) ◽  
pp. 5639-5652 ◽  
Author(s):  
Chiara Galletti ◽  
Elisabetta Brunazzi ◽  
Leonardo Tognotti

Author(s):  
Ho-Tien Shu ◽  
Simion C. Kuo ◽  
M. Keith Ellingsworth

The results of a study to investigate the effect of nonuniform gas flow distribution on the design and performance of gas turbine waste-heat steam generators particularly for marine propulsion applications are presented. Also included are a review of major design requirements and critical problems associated with nonuniform flow distribution in waste-heat steam generators and a two-dimensional heat exchanger model developed for parametric design and performance analysis of gas turbine waste-heat steam generators. This study is based on actual gas flow distribution data measured at the exit of the collector box for a typical marine gas turbine operated at full and half power conditions. The results indicate that 1) the overall heat transfer rate of a steam generator with nonuniform inlet flow is approximately 16% less than that obtainable based on uniform flow distribution, which represents a decrease in the exit steam temperature from 700 to 450 F; and 2) with appropriate flow distribution controls (using one flow guide vane and one location for flow injection to suppress boundary layer separation), the steam generator performance can be improved by approximately 20% as compared with that for the uncontrolled nonuniform flow conditions.


2018 ◽  
Author(s):  
Xiang Yu ◽  
Baozhi Sun ◽  
Jianxin Shi ◽  
Wanze Wu ◽  
Zhirui Zhao

Author(s):  
Pengju Huo ◽  
Xiaohong Li ◽  
Yang Liu ◽  
Haiying Qi

AbstractThe influences of loose gas on gas-solid flows in a large-scale circulating fluidized bed (CFB) gasification reactor were investigated using full-loop numerical simulation. The two-fluid model was coupled with the QC-energy minimization in multi-scale theory (EMMS) gas-solid drag model to simulate the fluidization in the CFB reactor. Effects of the loose gas flow rate, Q, on the solid mass circulation rate and the cyclone separation efficiency were analyzed. The study found different effects depending on Q: First, the particles in the loop seal and the standpipe tended to become more densely packed with decreasing loose gas flow rate, leading to the reduction in the overall circulation rate. The minimum Q that can affect the solid mass circulation rate is about 2.5% of the fluidized gas flow rate. Second, the sealing gas capability of the particles is enhanced as the loose gas flow rate decreases, which reduces the gas leakage into the cyclones and improves their separation efficiency. The best loose gas flow rates are equal to 2.5% of the fluidized gas flow rate at the various supply positions. In addition, the cyclone separation efficiency is correlated with the gas leakage to predict the separation efficiency during industrial operation.


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