Performance Analysis of a Cross Flow Hydro Turbine by Runner Blade Number

2008 ◽  
Vol 32 (5) ◽  
pp. 698-706
Author(s):  
Young-Do Choi ◽  
Chang-Fu Jin ◽  
Jae-Ik Lim ◽  
You-Taek Kim ◽  
Young-Ho Lee
Author(s):  
Y D Choi ◽  
H Y Yoon ◽  
M Inagaki ◽  
S Ooike ◽  
Y J Kim ◽  
...  

Author(s):  
Seung-Jun Kim ◽  
Jin-Hyuk Kim ◽  
Young-Seok Choi ◽  
Yong Cho ◽  
Jong-Woong Choi

Abstract This study presents the numerical analysis on the inter-blade vortex characteristics along with the blockage effects of runner blade in a Francis hydro turbine model with various flow rate conditions. The turbine model showed different flow characteristics in the runner blade passages according to operating conditions, and inter-blade vortex was observed at lower flow rate conditions. This inter-blade vortex can lead to performance reduction, vibration, and instability for smooth operation of turbine systems. The previous study on blockage effects on various runner blade thickness, showed its influence on hydraulic performance and internal flow characteristics at low flow rate conditions. Therefore, the inter-blade vortex characteristics can be altered with the blockage effects at low flow rate conditions in a Francis hydro-turbine. For investigating the internal flow and unsteady pressure characteristics, three-dimensional steady and unsteady Reynolds-averaged Navier-Stokes calculations are performed. These inter-blade vortices were captured at the leading and trailing edges close to the runner hub. These vortex regions showed flow separation and stagnation flow while blockage effects contributed for decreasing the inter-blade vortex at low flow rate conditions.


Author(s):  
Kiran Lankalapalli ◽  
Ahmed ElSawy ◽  
Stephen Idem

A steady state sensible performance analysis of multi-pass cross-flow finned-tube heat exchangers is reported. The investigation considers various flow circuiting, such as counter cross-flow, parallel cross-flow, and cross-flow where the tube-side flow is in parallel. A previously developed matrix approach is used to evaluate the heat exchanger performance in each tube pass. The equations required to model the thermal performance of these configurations are presented, and the thermal performance is compared for each type of flow circuiting. Thereafter a parametric study on cross-flow heat exchanger performance is performed by varying physically significant parameters such as number of transfer units (NTU) and capacity rate ratios, and the graphical results for each type of flow circuiting are presented both for both two-pass and three-pass arrangements. A consistent criterion is proposed for each case, wherein increasing the NTU beyond a certain threshold value does not significantly improve heat exchanger thermal performance.


2015 ◽  
Vol 80 ◽  
pp. 819-826 ◽  
Author(s):  
Nirmal Acharya ◽  
Chang-Gu Kim ◽  
Bhola Thapa ◽  
Young-Ho Lee

2008 ◽  
Vol 32 (3) ◽  
pp. 413-420
Author(s):  
Young-Do Choi ◽  
Jae-Ik Lim ◽  
You-Taek Kim ◽  
Young-Ho Lee
Keyword(s):  

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