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Design analysis and simulation of an external helical gear

  • Jinlong Yang (Department of Mechanical Engineering, Inha University) ;
  • Kwang-Hee Lee (Department of Mechanical Engineering, Inha University) ;
  • Chul-Hee Lee (Department of Mechanical Engineering, Inha University)
  • Received : 2023.10.18
  • Accepted : 2023.11.17
  • Published : 2023.12.01

Abstract

This study optimized the parameters of the helical gear based on the original external meshing helical gear pump, combined with the analysis of the stability and flow of the basic parameters of the equipment; herringbone gears were used to eliminate the axial force generated by the helical gears. An optimized helical gear rotor was built with NX. The error between the simulation and calculation results of pump displacement was 3.95% and the simulation results were valid. Analysis of the outlet pressure and lift changes (maximum change rates of 0.38% and 0.25%), pressure analysis of the XY center plane at different times in the same cycle (no pressure surge or drop), and analysis of the axial force of the primary and driven rotors (axis The axial force is close to 0) were performed. The results showed that the flow pulsation of the external gear pump was slight, the operation was smooth, vibration and friction were reduced, the wear of bearings and other components could be diminished, and the service life of the equipment was extended. The simulation results showed that the external gear pump met the design requirements.

Keywords

Acknowledgement

This research was supported by a grant(2023-MOIS35-005) of Policy-linked Technology Development Program on Natural Disaster Prevention and Mitigation funded by Ministry of Interior and Safety (MOIS, Korea).

References

  1. Parker David B, "Positive displacement pumps-performance and application," Proceedings of th e 11th International Pump Users Symposium. Turbomachinery Laboratories, Department of Mechanical Engineering, Texas A&M University, Houston, the US, pp. 137-140, 1994.
  2. Elyamin, G. R. A., Bassily, M. A., Khalil, K. Y., and Gomaa, M. S, "Effect of impeller blades number on the performance of a centrifugal pump," Alexandria Engineering Journal, Alexandria, Egypt, 58.1, pp. 39-48, 2019. https://doi.org/10.1016/j.aej.2019.02.004
  3. Kazama, T., Optimum Hydraulic Oil Viscosity Based on Slipper Model Simulation for Swash plate Axial Piston Pumps/Motors, Journal of Drive and Control, 18(4), pp.84-90, 2021. https://doi.org/10.7839/KSFC.2021.18.4.084
  4. Brinkmann, L., Kock, S., Lang, J., and Knoll, G,"Tribological analysis of the plain bearings in an external gear pump," IOP Conference Series: Materials Science and Engineering. Vol. 1097. No. 1. IOP Publishing, Aachen, Germany, pp.1-11,2021.
  5. Ransegnola, Thomas, Xinran Zhao, and Andrea Vacca, "A comparison of helical and spur external gear machines for fluid power applications: Design and optimization," Mechanism and Machine Theory, 142, 103604, pp.1-20, 2019. https://doi.org/10.1016/j.mechmachtheory.2019.103604
  6. Wang, W., Yin, Y. M., He, S. H., and Liu, G. M.,"Study on flow characteristic of gear pumps by gear tooth shapes," Journal of Applied Science and Engineering, New Taipei City, Taiwan, 20.3, pp. 367-372, 2017.
  7. Togashi, S., and H. Iyo, "The synthesis of tooth profile shapes and helical gears of high hydraulic performance for rotary type pumps," Mechanism and Machine Theory, 8.1, pp.105-123, 1973. https://doi.org/10.1016/0094-114X(73)90009-8
  8. Liu, Dawei, Yanbo Ba, and Tingzhi Ren, "Flow fluctuation abatement of high-order elliptical gear pump by external noncircular gear drive, " Mechanism and Machine Theory, 134, pp.338-348, 2019. https://doi.org/10.1016/j.mechmachtheory.2019.01.011
  9. Xuegang, Zhang, and Liang Zheng, "Geometric Modeling and CFD Simulation of Curvilinear Cylindrical Gear Pumps," Iranian Journal of Science and Technology, Transactions of Mechanical Engineering, 47.1, pp. 1-17, 2023. https://doi.org/10.1007/s40997-022-00502-3
  10. Zhao, Xinran, and Andrea Vacca, "Multi-domain simulation and dynamic analysis of the 3D loading and micromotion of continuous-contact helical gear pumps," Mechanical Systems and Signal Processing, 163, 108116, pp.1-28, 2022. https://doi.org/10.1016/j.ymssp.2021.108116
  11. Park, J. W., Khan, H. A., Jeong, E. A., Kwon, S. J., Yun, S. N., & Lee, H. S, Pressure/Flow Pulsation Characteristics of the Hydraulic System for Behaviour Prediction of the Prefill Valve, Journal of Drive and Control, 18(2), 1-8, 2021. https://doi.org/10.7839/KSFC.2021.18.2.001
  12. Kong, F., He, Y., Zheng, D., Zhang, H., and Xia, B., "Analysis of influence factors on flow rate characteristics in gear pump," Journal of Drainage and Irrigation Machinery Engineering, 32.2, Jiangsu P.R. China, pp. 108-112, 2014.
  13. LIU Kun, XU Lei, YANG Bo, Numerical simulation of external helical gear high-pressure pump with CFD[J]. Journal of drainage and irrigation machinery engineering( JDIME) ,2019,37 ( 4) : 307-312.(In Chinese).
  14. Wu Yifei, Design of Double Circular Arc Helical Gear Hydraulic Pump and Analysis of its Axial Force[D]. Shandong University, 2020. (In Chinese)
  15. Chen Lide, Basics of Mechanical Manufacturing Technology, Higher Education Press, Beijing, pp.106-113,2009.
  16. Liu, Dawei, Yanbo Ba, and Tingzhi Ren. "Flow fluctuation abatement of high-order elliptical gear pump by external noncircular gear drive, " Mechanism and Machine Theory, 134, pp. 338-348, 2019. https://doi.org/10.1016/j.mechmachtheory.2019.01.011
  17. Huang, Kuo Jao, Wen Ruey Chang, and Wun Chuan Lian, "An Optimization approach to the displacement volumes for external spur gear pumps," Materials Science Forum. Vol. 594. Trans Tech Publications Ltd, 2008.
  18. Li, Yulong, and Mao Tang, "Influence analysis of trapped oil pressure on flow pulsation in external gear pumps," Transactions of the Chinese Society of Agricultural Engineering, Beijing, P.R. China 29.20, pp. 60-66, 2013.
  19. Yamaguchi, A, "Cavitation characteristics of long orifices in hydraulic systems," 5th international fluid power symposium, 1978.
  20. Del Campo, D., Castilla, R., Raush, G. A., Gamez Montero, P. J., and Codina, "Numerical analysis of external gear pumps including cavitation," Journal of Fluids Engineering, 081105, p p. 1-12, 2012. https://doi.org/10.1115/1.4007106
  21. Choi, Y. H., Yoo, I. H., & Lee, C. H, Thermal Flow Analysis of an Engine Room using a Porous Media Model for Imitating Flow Rate Reduction at Outlet of Industrial Machines, Journal of Drive and Control, 19(1), pp.62-68, 2022. https://doi.org/10.7839/KSFC.2022.19.1.062
  22. Habchi, C., Oneissi, M., Russeil, S., Bougeard, D., and Lemenand, T. "Comparison of eddy viscosity turbulence models and stereoscopic PIV measurements for a flow past rectangular-winglet pair vortex generator," Chemical Engineering and Processing-Process Intensification, 169, 108637, pp. 1-11, 2021. https://doi.org/10.1016/j.cep.2021.108637
  23. Menter, Florianr, "Zonal two equation kw turbulence models for aerodynamic flows," 23rd fluid dynamics, plasmadynamics, and lasers conference, Florida, U.S.A, 1993.
  24. Chen, Y., Wu, C., Wang, B., and Du, M,"Three-dimensional numerical simulation of vertical vortex at hydraulic intake," Procedia Engineering, 28, pp. 55-60, 2012. https://doi.org/10.1016/j.proeng.2012.01.682
  25. Frosina, Emma, Adolfo Senatore, and Manuel Rigosi, "Study of a high-pressure external gear pump with a computational fluid dynamic modeling approach," Energies, 10.8, 1113, pp. 1-20, 2017. https://doi.org/10.3390/en10081113
  26. Rana, Dipen, and Nirmal Kumar, "Experimental and computational fluid dynamic analysis of external gear pump," International Journal of Engineering Development and Research, 2.2, pp. 2474-2478, 2014.
  27. Shin, J., Pyo, J., Lee, M., Park, S., Park, S., Suh, J., & Jin, M, Hazardous Gas Detecting and Capturing Robot, Journal of Drive and Control, 19(2), pp.27-35,2022. https://doi.org/10.7839/KSFC.2022.19.2.027