Manufacturing Technology 2020, 20(1):66-71 | DOI: 10.21062/mft.2020.017
Finite Element Analysis and Lightweight Design of Hydro Generator Lower Bracket
- 1 Key Laboratory of Vibration and Noise under Ministry of Education of Yunnan Province, Kunming 650500, China
- 2 Continuing Education College, Kunming University of Science and Technology, Kunming 650051, China
Lower bracket is an important component in hydro generator. Taking lower bracket as the research object, the strength, the stiffness and the dynamic characteristics of lower bracket have been simulated and analyzed by means of establishing a finite element model. With the two design indexes of maximum normal stress and stiffness as the constraint conditions, aiming at an optimized design with the minimum mass and proposed a lightweight optimization method. The design parameters of the optimized model of hydro generator lower bracket are determined by using the compound form method with optimization iteration. Through lightweight optimization design, the maximum normal stress and maximum displacement of lower bracket are within the allowable value range, modal analysis shows that the dynamic characteristics of the optimized structure also meet the requirements, with the potential of material further utilized. The lightweight optimization design reduced the weight of lower bracket in hydro generator by 790kg and the weight-loss ratio reaches 44.38%, thus achieving the purpose of lightweight. The optimization results are applied in the improvement design of lower bracket and the method is practical and suitable for engineering applications.
Keywords: Hydro generator, Lower bracket, Finite element model, Lightweight design, Optimized model
Grants and funding:
National Natural Science Foundation of China grants program (61863016).
Yunnan province science and technology plan project (S2016DC069).
Prepublished online: July 31, 2020; Published: August 6, 2020 Show citation
References
- YANG H., LIU G., LIU Y., et al. (2014). The current research and development analysis of condition monitoring for hydroelectric generating units. In: Journal of China Institute of Water Resources and Hydropower Research, Vol. 12, No. 3, pp. 300-305.
- GUSTAVSSON R. K., AIDANPÄÄ J. O. (2009). Evaluation of impact dynamics and contact forces in a hydro-power rotor due to variations in damping and lateral fluid forces. In: International Journal of Mechanical Sciences, Vol. 51, No. 9, pp. 653-661.
Go to original source...
- Sutasn Thipprakmas, Arkarapon Sontamino, Wiriyakorn Phanitwong. (2017). Finite element analysis of counterbore-shaped parts by using sheet-bulk metal forming process. In: Manufacturing Technology, 2017, Vol. 17, No. 4, pp. 597-602.
Go to original source...
- Jan Majernik, Stefan Gaspar, Martin Podaril, Jan Kolinsky. (2019). Optimization of the runner numerical design dimensions using the simulation program. In: Manufacturing Technology, 2019, Vol. 19, No. 2, pp. 273-279.
Go to original source...
- WANG B., LIU X.L., LIU J. S., et al. (2015). Structural optimization and manufacturing for region of high stress of pelton turbine. In: Journal of Mechanical Engineering, Vol. 51, No. 21, pp.148-155.
Go to original source...
- ZHAO D. L., WANG H. Y., WU Z. J., et al. (2015). Research on rigidity & strength analysis of Francis runner and improvement measures. In: Journal of Mechanical Strength, Vol. 37, No. 4, pp. 748-753.
- SHAO G. H., WANG Q. Y. (2013). Optimization design of the high specific speed Francis turbine of Zangmu power station. In: Water Sciences and Engineering Technology, No. 3, pp. 51-56.
- QI X. Y., LI C. C., ZHNG X. J., et al. (2008). The reliability design and calculation of hydraulic turbine head cover. In: Large Electric Machine and Hydraulic Turbine, No. 2, pp. 40-43.
- MARTIN V., LUMÍR H., ADAM B. (2016). Structural damping of mechanical vibration. In: Manufacturing Technology, 2016, Vol. 16, No. 6, pp. 1379-1382. DOI: 10.21062/ujep/x.2016/a/1213-2489/MT/16/6/1226
Go to original source...
- LI Z. J., YANG X. J., CAI G. W., et al. (2010). Frequency reliability analysis of the runner blade of Francis turbine. In: Machinery Design & Manufacture, No. 6, pp. 128-129.
- LI Z. J., LIU Y., LONG H., et al. (2013). Nonlinear vibration reliability of hydraulic turbine-generator units with multiple failure modes. In: Journal of Mechanical Engineering, Vol. 49, No. 16, pp. 170-176.
Go to original source...
- YUAN X. M., MA L., WU P., et al. (2013). Vibration analysis and optimization for upper bracket of high speed suspended hydro generator. In: Machine Design & Research, Vol. 29, No. 6, pp. 108-111.
- LIAO Y. Y., LIAO B. Y. (2019). Lightweight optimization design of water turbine head cover based on maxi-mum normal stress. In: Journal of Kunming University of Science and Technology (Natural Science), Vol. 44, No. 1, pp. 47-53.
- LIAO Y. Y., LIAO B. Y. (2019). Lightweight design of hydro generator upper bracket based on sizing optimization. In: Water Power, Vol. 45, No. 5, pp. 91-94, 117.
- LIAO Y. Y., LIAO B. Y. (2019). Finite element analysis and sizing optimization of hydro generator stator frame. In: Chinese Journal of Construction Machinery, Vol. 17, No. 3, pp. 215-220.
- YAMASAKI S., NISHIWAKI S., YAMADA T., et al. (2010). A structural optimization method based on the level set method using a new geometry-based re-initialization scheme. In: International Journal for Numerical Methods in Engineering, Vol. 83, No. 12, pp. 1580-1624.
Go to original source...
- CHRISTENSEN P. W., KLARBRING A. (2009). An introduction to structural optimization. Springer, Dordrecht.
- DONG L. L., ZHU Y., NIU X. T., et al. (2010). Multi-objective topological optimization design of ultra-precision mechanical structure. In: China Mechanical Engineering, Vol. 21, No. 7, pp. 761-765.
- MARLER R. T., ARORA J. S. (2004). Survey of multi-objective optimization methods for engineering. In: Structural and Multidisciplinary Optimization, Vol. 26, No. 6, pp. 369-395.
Go to original source...
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