Open Access
Issue |
MATEC Web Conf.
Volume 410, 2025
2025 3rd International Conference on Materials Engineering, New Energy and Chemistry (MENEC 2025)
|
|
---|---|---|
Article Number | 01017 | |
Number of page(s) | 8 | |
Section | Recent Advances in Energy Storage Systems and Sustainable Fuel Technologies | |
DOI | https://doi.org/10.1051/matecconf/202541001017 | |
Published online | 24 July 2025 |
- J. Y. Liu, Research on capacity expansion and transformation technology of hydro- generator sets. Electron. Paradise (16), 2 (2019) [Google Scholar]
- C. J. Zeng, Y. X. Xiao, W. Zhu, Numerical simulation of cavitation flow characteristic on Pelton turbine bucket surface. Proc. Int. Symp. Cavitation Multiphase Flow (Beijing, 2015) [Google Scholar]
- Y. Peng, Y. C. Zheng, Research on operation and maintenance of Pelton turbine runner. Sichuan Water Power 37 (S2), 64-65 (2018) [Google Scholar]
- B. Ji, X. Luo, X. Wang, Unsteady numerical simulation of cavitating turbulent flow around a highly skewed model marine propeller. J. Fluids Eng. 133, 011102 (2011) [Google Scholar]
- G. Schnerr, J. Sauer, Physical and numerical modeling of unsteady cavitation dynamics. Proc. 4th Int. Conf. Multiphase Flow (New Orleans, 2001) [Google Scholar]
- A. Singhal, M. Athavale, H. Li, Mathematical basis and validation of the full cavitation model. J. Fluids Eng. 124, 617 (2002) [Google Scholar]
- P. Zwart, A. Gerber, T. Belamri, A two-phase flow model for predicting cavitation dynamics. Proc. 5th Int. Conf. Multiphase Flow (Yokohama, Japan, 2004) [Google Scholar]
- I. Senocak, W. Shyy, Interfacial dynamics-based modeling of turbulent cavitating flows. Part-1: Model development and steady-state computations. Int. J. Numer. Methods Fluids 44, 975-995 (2004) [Google Scholar]
- B. Huang, G. Y. Wang, Z. Y. Yu, Detached-eddy simulation for time-dependent turbulent cavitating flows. Chin. J. Mech. Eng. 25, 484-490 (2012) [Google Scholar]
- X. Luo, W. Wei, B. Ji, Comparison of cavitation prediction for a centrifugal pump with or without volute casing. J. Mech. Sci. Technol. 27, 1643-1648 (2013) [Google Scholar]
- X. Q. Luo, G. J. Zhu, J. J. Feng, Progress and development trends in hydraulic turbine technology. J. Hydroelectr. Eng. 39, 1-18 (2020) [Google Scholar]
- B. P. Shi, W. Cheng, X. L. Tan, Cavitation and repair of turbines in Ertan Hydropower Station. Sichuan Hydropower 33, 5 (2014) [Google Scholar]
- Z. R. Cheng, Y. Wang, J. Gao, S. D. Huang, L. Ruan, Optimization design of stator core tube structure of evaporative cooling wind turbine considering electromagnetic- heat transfer effects. Trans. China Electrotech. Soc. (6), 39 (2024) [Google Scholar]
- S. R. Zhang, P. Q. Jiang, Z. Q. Wu, Advances in research of lean construction technology of integrated design and construction for hydropower projects: Exploration of digital twin application mode. J. Hydroelectr. Eng. 40, 1-12 (2021) [Google Scholar]
- C. Boje, A. Guerriero, S. Kubicki, Towards a semantic construction digital twin: directions for future research. Autom. Constr. 114, 103179 (2020) [CrossRef] [Google Scholar]
Current usage metrics show cumulative count of Article Views (full-text article views including HTML views, PDF and ePub downloads, according to the available data) and Abstracts Views on Vision4Press platform.
Data correspond to usage on the plateform after 2015. The current usage metrics is available 48-96 hours after online publication and is updated daily on week days.
Initial download of the metrics may take a while.