Fluid Mechanics and Flight Mechanics

Accessibility of metal particles in three-phase flow of helicopter intermediate gearbox

  • Fengxia LU ,
  • Kun WEI ,
  • Chunlei WANG ,
  • Heyun BAO ,
  • Rupeng ZHU
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  • 1.National Key Laboratory of Science and Technology on Helicopter Transmission,Nanjing University of Aeronautics and Astronautics,Nanjing 210016,China
    2.AECC Hunan Aviation Powerplant Research Institute,Zhuzhou 412002,China

Received date: 2023-02-02

  Revised date: 2023-04-21

  Accepted date: 2023-05-24

  Online published: 2023-05-31

Supported by

National Natural Science Foundation of China(52075241);National Science and Technology Major Project (J2019-Ⅲ-0023-0067);National Key Laboratory of Science and Technology on Helicopter Transmission Fund(HTL-A-21G05)

Abstract

The helicopter intermediate gearbox operates under splash lubrication, and the bearing will produce metal particles due to insufficient lubrication or wear. If the metal particles signal at the bottom of the gearbox fails to absorb and alarm in time, it will lead to the helicopter failure. Therefore, based on Computational Fluid Dynamics (CFD) theory, this paper established the solid-liquid-gas three-phase flow model of the intermediate gearbox, using Fluent 18.2 software. Based on the Euler-Lagrange coupling calculation method, the accessibility of metal particles was calculated and analyzed by applying the RNG k-ɛ turbulence model and dynamic grids and the VOF-DPM coupling model simulation, which achieved good consistency with tests. The results show that the motion of the metal particles is mainly dominated by their own state upon initial entry into casing. After the gear completely stirs the lubricating oil, the motion state of the gear dominates, and the randomness and disorder of the movement are fairly great. The trajectory will abruptly change after bouncing off the casing wall. All metal particles in the gearbox tend to move centrifugally around the gear, and the average velocity of the metal particles shows a nonlinear negative correlation with the distance from the gear. The accessibility of metal particles in the gearbox is weak, and the metal particles will deposit in the grooves and return holes of the oil guide pipe, which prevents the helicopter from achieving real-time alarm monitoring. The gearbox structure, where the metal particles are easy to deposit, should be improved.

Cite this article

Fengxia LU , Kun WEI , Chunlei WANG , Heyun BAO , Rupeng ZHU . Accessibility of metal particles in three-phase flow of helicopter intermediate gearbox[J]. ACTA AERONAUTICAET ASTRONAUTICA SINICA, 2024 , 45(1) : 128524 -128524 . DOI: 10.7527/S1000-6893.2023.28524

References

1 吴亮. 含固体颗粒的两相流界面变化的数值研究: DEM-VOF方法的实现[D]. 天津: 天津大学, 2018.
  WU L. Development of a DEM-VOF model for the turbulent free-surface flows with particle[D]. Tianjin: Tianjin University, 2018 (in Chinese).
2 孙茂川. 多相流系统中微颗粒的运动特性研究[D]. 成都: 西南交通大学, 2017.
  SUN M C. The study of micro-partical movement characteristics in multiphase flow system[D]. Chengdu: Southwest Jiaotong University, 2017 (in Chinese).
3 赵海鸣, 谢信, 廖小乐, 等. 径向直叶片风机三相除尘数值模拟[J]. 合肥工业大学学报(自然科学版)201740(8): 1020-1025.
  ZHAO H M, XIE X, LIAO X L, et al. Numerical simulation of three-phase dust removal in radial-straight-blade fan[J]. Journal of Hefei University of Technology (Natural Science)201740(8): 1020-1025 (in Chinese).
4 夏铖. 基于CFD-DEM方法的两级混流泵内部粗颗粒固液两相流特性研究[D]. 镇江: 江苏大学, 2019.
  XIA C. Study on solid-liquid two-phase flow characteristics of coarse particles in two-stage mixed-flow pump based on CFD-DEM method[D].Zhenjiang: Jiangsu University, 2019 (in Chinese).
5 YU J C, LUO X T, WANG B, et al. Analysis of gas-liquid-solid three-phase flows in hydrocyclones through a coupled method of volume of fluid and discrete element model[J]. Journal of Fluids Engineering2021143(11): 111402.
6 XIAO Y L, TIAN Y F, WANG Q, et al. Numerical investigation of lime particle motion in steelmaking BOF process[J]. JOM202173(9): 2733-2740.
7 ZHANG T, ZENG X J, GUO J C, et al. Numerical simulation on oil-water-particle flows in complex fractures of fractured-vuggy carbonate reservoirs[J]. Journal of Petroleum Science and Engineering2022208: 109413.
8 WANG H K, YU Y, YU J X, et al. Numerical simulation of the erosion of pipe bends considering fluid-induced stress and surface scar evolution[J]. Wear2019440-441: 203043.
9 ZHANG Y, CHANG Q, GE W. Coupling DPM with DNS for dynamic interphase force evaluation[J]. Chemical Engineering Science2021231: 116238.
10 YANG Y, WEN C. CFD modeling of particle behavior in supersonic flows with strong swirls for gas separation[J]. Separation and Purification Technology2017174: 22-28.
11 SONG C M, PEI B B, JIANG M T, et al. Numerical analysis of forces exerted on particles in cyclone separators[J]. Powder Technology2016294: 437-448.
12 LI L C, XU B. CFD simulation of gas-liquid floating particles mixing in an agitated vessel[J]. Chemical Industry and Chemical Engineering Quarterly201723(3): 377-389.
13 MITHUN M G, KOUKOUVINIS P, KARATHANASSIS I K, et al. Numerical simulation of three-phase flow in an external gear pump using immersed boundary approach[J]. Applied Mathematical Modelling201972: 682-699.
14 GALLETTI C, RUM A, TURCHI V, et al. Numerical analysis of flow field and particle motion in a dynamic cyclonic selector[J]. Advanced Powder Technology202031(3): 1264-1273.
15 YANG K, HU W H. Simulation on debris particles conveying process in lubricant between gear engagement[J]. Wear2019426-427: 1391-1398.
16 HIRT C W, NICHOLS B D. Volume of fluid (VOF) method for the dynamics of free boundaries[J]. Journal of Computational Physics198139(1): 201-225.
17 GOSMAN A D, LOANNIDES E. Aspects of computer simulation of liquid-fueled combustors[J]. Journal of Energy19837(6): 482-490.
18 MORSI S A, ALEXANDER A J. An investigation of particle trajectories in two-phase flow systems[J]. Journal of Fluid Mechanics197255(2): 193.
19 陆凤霞, 王孟, 王春雷, 等. 直升机中减飞溅润滑流场分析与优化方法[J]. 航空学报202041(11): 123659.
  LU F X, WANG M, WANG C L, et al. Analysis and optimization method for flow field of intermediate gearbox splash lubrication in helicopters[J]. Acta Aeronautica et Astronautica Sinica202041(11): 123659 (in Chinese).
20 LEMFELD F, FRANA K, UNGER J. Numerical simulation of unsteady oil flows in the gearboxes[J]. Journal of Applied Science in the Thermodynamics and Fluid Mechanics20071(1): 1-5.
21 LIN Y H, HU Z H, XIONG C Q, et al. Research of flow field simulation for lubrication system and effect evaluation on a 7-speed dual clutch transmission[C]∥Proceedings of the FISITA 2012 World Automotive Congress. Berlin: Springer, 2013: 285-298.
22 MOSHAMMER T, MAYR F, KARGL K, et al. Simulation of oil flow in gear box housing[C]∥SAE World Congress & Exhibition. Detroit: SAE, 2006.
23 GORLA C, CONCLI F, STAHL K, et al. Hydraulic losses of a gearbox: CFD analysis and experiments[J]. Tribology International201366: 337-344.
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