The Korean Society For New And Renewable Energy
[ Article ]
New & Renewable Energy - Vol. 22, No. 3, pp.2-2
ISSN: 1738-3935 (Print) 2713-9999 (Online)
Online publication date 14 Sep 2026
Received 10 May 2026 Revised 04 Jun 2026 Accepted 18 Jun 2026
DOI: https://doi.org/10.7849/ksnre.2026.0022

유연화 운전 범위에서의 프란시스 수차 축소 및 실물 모형 구조안정성 연구

쉬레스트 우즈왈1) ; 김승준2) ; 박준관3) ; 고권후4) ; 최영도1), 5), *
Investigation on the Structural Stability of Scale-down and Prototype Francis Hydro Turbine Models in the Range of Flexible Operation
Ujjwal Shrestha1) ; Seung-Jun Kim2) ; Jungwan Park3) ; Kweon-Hoo Ko4) ; Young-Do Choi1), 5), *
1)Academic Research Professor, Institute of New and Renewable Energy Technology Research, Mokpo National University
2)Senior Researcher, Hydro-power Research and Training Center, Korea Hydro & Nuclear Power Co., Ltd.
3)Principal Researcher, Hydro-power Research and Training Center, Korea Hydro & Nuclear Power Co., Ltd.
4)General Manager, Hydro-power Research and Training Center, Korea Hydro & Nuclear Power Co., Ltd.
5)Professor, School of Mechanical and Ocean Engineering, Mokpo National University

Correspondence to: * ydchoi@mnu.ac.kr Tel: +82-61-450-2419 Fax: +82-61-452-6376

Copyright © 2026 by the New & Renewable Energy
This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/4.0) which permits unrestricted non-commercial use, distribution, and reproduction in any medium, provided the original work is properly cited.

Abstract

Hydraulic turbines, essential for making accurate predictions of structural behavior under varying hydraulic loads, are increasingly operated under flexible conditions to support modern electricity grids. This study presents a comparative fluid-structure interaction (FSI) analysis of scaled-down and full-scale prototype Francis turbine models over a wide range of unit discharges representative of flexible operation. High-fidelity computational fluid dynamics (CFD) simulations capture the evolution of internal flow structures from part-load vortex-rope behavior to overload trailing-edge separation, whereas mapped transient pressure fields enable the structural evaluation of equivalent stress and total deformation. The results showed that the hydraulic performance improved toward the best efficiency point, whereas part-load conditions exhibited a strong vortex region and eddies in the blade passage. The prototype experienced significantly higher stress (100–120 MPa) and deformation (0.44–0.50 mm) than the scale-down model (<20 MPa, <0.01 mm). Based on the normalized results, the similarity between the scaled-down and prototype runners was most consistent with hydraulic performance, whereas pronounced deviations occurred in the structural analysis. This behavior demonstrates that scaled-down model predictions cannot be directly extrapolated to full-scale without accounting for scale-dependent structural effects, thereby emphasizing the importance of an integrated FSI analysis in evaluating runner stability across flexible operating regimes.

Keywords:

Francis hydro turbine, Flexible operation, FSI analysis, Deformation, Scale-down model, Prototype, Structural stability

키워드:

프란시스 수차, 유연화 운전, 유체-구조 연성해석, 변형, 실물 모형, 축소 모형, 구조안정성