LI Yue, CAI Jing, ZONG Yi-ming. Numerical simulation of critical hydroplaning speed of aircraft tire under wet pavement condition[J]. Journal of Traffic and Transportation Engineering, 2017, 17(5): 90-101.
Citation: LI Yue, CAI Jing, ZONG Yi-ming. Numerical simulation of critical hydroplaning speed of aircraft tire under wet pavement condition[J]. Journal of Traffic and Transportation Engineering, 2017, 17(5): 90-101.

Numerical simulation of critical hydroplaning speed of aircraft tire under wet pavement condition

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  • Author Bio:

    LI Yue(1984-), male, lecturer, PhD, leoliyue@163.com

  • Corresponding author: CAI Jing(1975-), female, associate professor, PhD, jcai@cauc.edu.cn
  • Received Date: 2017-07-13
  • Publish Date: 2017-10-25
  • A fluid-solid coupling analysis model of aircraft tire and wet pavement based on CEL algorithm was developed by using ABAQUS.The expressions of hydrodynamic pressure of tire contact and vertical supporting force of pavement were derived.The taxiing conditions between aircraft take-off and landing process were compared.The concepts of upper and lower limit solutions of critical hydroplaning speed were proposed.The features of static deformation and dynamic hydroplaning of tire model were verified.The influence rules of tire pressure, tire pattern and water-film thickness were discussed. The contact area and distribution of hydrodynamic pressure for tire were analyzed.Simulation result indicates that the tire contact area is0.076 m2 under axle load of 76.6 kN, the vertical deformation at the centre of tire is 3.27 cm, and thecritical hydroplaning speed is 128.5-222.4 km·h-1, which is in consistence with the result of NASA's tire hydroplaning test.Therefore, the rationality and feasibility of simulation model are proved.When tire pressure is 1 140 kPa, the critical hydroplaning speed of aircraft tire under decelerating impact is 163 km·h-1 and lower than upper limit of accelerating impact (226 km·h-1), the tire contact area obviously reduces, and the supporting force from the pavement to the tire is less than 10% of wheel load.In comparison with the calculation result of NASA's empirical equation, the lower limits of critical hydroplaning speed under decelerating impact are more conservative within the scope of tire pressure from 450 kPa to 1 109 kPa, and the difference is30-70 km·h-1.The drainage effect of radial tire pattern can reduce the peak value of hydrodynamic pressure at the leading edge of aircraft tire and increase the tire contact area.The critical hydroplaning speed of aircraft tire with tire pattern under decelerating impact increases by26.9%-28.8% comparing with the speed of smooth tire, and the amplification is twice as much as that of accelerating impact.As the water-film thickness increases from 3 mm to 13 mm, the upper and lower limits of critical hydroplaning speed of aircraft tire respectively reduce by 85 km·h-1 and 43 km·h-1 when the tire pressure is 1 140 kPa.In case of lower tire pressure and thicker water-film, the lower limit of critical hydroplaning speed is merely 127 km·h-1 under decelerating impact and lower than most aircrafts'landing speeds 205-250 km·h-1, so the risk of hydroplaning accident increases.

     

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  • [1]
    SRIRANGAM S K, ANUPAM K, SCARPAS A, et al. Hydroplaning of rolling tires under different operating conditions[C]//ASCE. Airfield and Highway Pavement2013: Sustainable and Efficient Pavements. Reston: ASCE, 2013: 561-572.
    [2]
    霍志勤, 茹毅, 韩松臣. 民航运输航空器着陆阶段偏出跑道事件分析模型[J]. 西南交通大学学报, 2012, 47 (5): 895-900. doi: 10.3969/j.issn.0258-2724.2012.05.026

    HUO Zhi-qin, RU Yi, HAN Song-chen. Analysis model of transport aircraft veering off runway during landing phase[J]. Journal of Southwest Jiaotong University, 2012, 47 (5): 895-900. (in Chinese). doi: 10.3969/j.issn.0258-2724.2012.05.026
    [3]
    霍志勤. 中国民航运输航空器偏/冲出跑道统计分析[J]. 中国安全生产科学技术, 2012, 8 (7): 127-132. https://www.cnki.com.cn/Article/CJFDTOTAL-LDBK201207029.htm

    HUO Zhi-qin. Statistical analysis on runway excursion of transport aircraft in China[J]. Journal of Safety Science and Technology, 2012, 8 (7): 127-132. (in Chinese). https://www.cnki.com.cn/Article/CJFDTOTAL-LDBK201207029.htm
    [4]
    余治国, 李曙林, 朱青云. 机轮动力滑水机理分析[J]. 空军工程大学学报: 自然科学版, 2004, 5 (5): 9-11. doi: 10.3969/j.issn.1009-3516.2004.05.003

    YU Zhi-guo, LI Shu-lin, ZHU Qing-yun. Mechanism analysis of an aircraft tire dynamic hydroplaning[J]. Journal of Air Force Engineering University: Natural Science Edition, 2004, 5 (5): 9-11. (in Chinese). doi: 10.3969/j.issn.1009-3516.2004.05.003
    [5]
    谷润平, 王鹏. 基于多元线性回归的湿/污染跑道着陆距离估算[J]. 中国民航大学学报, 2014, 32 (3): 20-22. doi: 10.3969/j.issn.1674-5590.2014.03.005

    GU Run-ping, WANG Peng. Estimation of wet and contaminated runway landing distance based on multiple linear regression[J]. Journal of Civil Aviation University of China, 2014, 32 (3): 20-22. (in Chinese). doi: 10.3969/j.issn.1674-5590.2014.03.005
    [6]
    李少波, 张宏超, 孙立军. 动水压力的形成与模拟测量[J]. 同济大学学报: 自然科学版, 2007, 35 (7): 915-918. doi: 10.3321/j.issn:0253-374X.2007.07.011

    LI Shao-bo, ZHANG Hong-chao, SUN Li-jun. Development and simulation measurement of dynamic hydraulic pressure[J]. Journal of Tongji University: Natural Science, 2007, 35 (7): 915-918. (in Chinese). doi: 10.3321/j.issn:0253-374X.2007.07.011
    [7]
    季天剑, 高玉峰, 陈荣生. 轿车轮胎动力滑水分析[J]. 交通运输工程学报, 2010, 10 (5): 57-60. doi: 10.3969/j.issn.1671-1637.2010.05.010

    JI Tian-jian, GAO Yu-feng, CHEN Rong-sheng. Dynamic hydroplaning analysis of car tire[J]. Journal of Traffic and Transportation Engineering, 2010, 10 (5): 57-60. (in Chinese). doi: 10.3969/j.issn.1671-1637.2010.05.010
    [8]
    高俊启, 陈昊, 季天剑, 等. 沥青路面动水压力光纤传感测量研究[J]. 传感器与微系统, 2009, 28 (9): 59-61. https://www.cnki.com.cn/Article/CJFDTOTAL-CGQJ200909020.htm

    GAO Jun-qi, CHEN Hao, JI Tian-jian, et al. Study of dynamic hydraulic pressure measurement on asphalt pavement using fiber-optic sensing[J]. Transducer and Microsystem Technologies, 2009, 28 (9): 59-61. (in Chinese). https://www.cnki.com.cn/Article/CJFDTOTAL-CGQJ200909020.htm
    [9]
    吕栋, 胡小弟, 周永莲, 等. 基于五维光纤传感器的沥青路面动水压力测量的研究[J]. 武汉工程大学学报, 2016, 38 (3): 268-272. https://www.cnki.com.cn/Article/CJFDTOTAL-WHHG201603013.htm

    LU Dong, HU Xiao-di, ZHOU Yong-lian, et al. Measurement of dynamic water pressure of asphalt pavement by fivedimensional optical fiber sensor[J]. Journal of Wuhan Institute of Technology, 2016, 38 (3): 268-272. (in Chinese). https://www.cnki.com.cn/Article/CJFDTOTAL-WHHG201603013.htm
    [10]
    WRAYG A, EHRLICH I R. A systematic experimental investigation of significant parameters affecting model tire hydroplaning[R]. Hoboken: Stevens Institute of Technology, 1973.
    [11]
    BROWNE A L. Tire deformation during dynamic hydroplaning[J]. Tire Science and Technology, 1975, 3 (1): 16-28. doi: 10.2346/1.2167192
    [12]
    WIES B, ROEGER B, MUNDL R. Influence of pattern void on hydroplaning and related target conflicts[J]. Tire Science and Technology, 2009, 37 (3): 187-206. doi: 10.2346/1.3137087
    [13]
    AGRAWAL S K, HENRY J J. A simple tire deformation model for the transient aspect of hydroplaning[J]. Tire Science and Technology, 1980, 8 (3): 23-36. doi: 10.2346/1.2151019
    [14]
    HORNE W B, DREHER R C. Phenomena of pneumatic tire hydroplaning[R]. Washington DC: National Aeronautics and Space Administration, 1963.
    [15]
    SETA E, NAKAJIMA Y, KAMEGAWA T, et al, Hydroplaning analysis by FEM and FVM: effect of tire rolling and tire pattern on hydroplaning[J]. Tire Science and Technology, 2000, 28 (3): 140-156. doi: 10.2346/1.2135997
    [16]
    CHO J R, KIM K W, YOO W S, et al. Mesh generation considering detailed tread blocks for reliable 3Dtire analysis[J]. Advances in Engineering Software, 2004, 35 (2): 105-113. doi: 10.1016/j.advengsoft.2003.10.002
    [17]
    CHO J R, KIM K W, JEON D H, et al. Transient dynamic response analysis of 3-D patterned tire rolling over cleat[J]. European Journal of Mechanics A: Solids, 2005, 24 (3): 519-531. doi: 10.1016/j.euromechsol.2005.01.004
    [18]
    CHO J R, LEE H W, SOHN J S, et al. Numerical investigation of hydroplaning characteristics of three-dimensional patterned tire[J]. European Journal of Mechanics A: Solids, 2006, 25 (6): 914-926. doi: 10.1016/j.euromechsol.2006.02.007
    [19]
    OH C W, KIM T W, JEONG H Y, et al. Hydroplaning simulation for a straight-grooved tire by using FDM, FEM and an asymptotic method[J]. Journal of Mechanical Science and Technology, 2008, 22 (1): 34-40. doi: 10.1007/s12206-007-1004-y
    [20]
    赵珍辉, 李子然, 汪洋. 带复杂花纹的轮胎滑水显式动力学分析[J]. 汽车技术, 2010 (4): 34-38. doi: 10.3969/j.issn.1000-3703.2010.04.009

    ZHAO Zhen-hui, LI Zi-ran, WANG Yang. Explicit dynamic analysis of hydroplaning for tire with complex tread pattern[J]. Automobile Technology, 2010 (4): 34-38. (in Chinese). doi: 10.3969/j.issn.1000-3703.2010.04.009
    [21]
    臧孟炎, 陈高军, 林银辉. 湿滑路面轮胎制动距离有限元仿真分析[J]. 中国机械工程, 2012, 23 (10): 1246-1251. doi: 10.3969/j.issn.1004-132X.2012.10.024

    ZANG Meng-yan, CHEN Gao-jun, LIN Yin-hui. FEM analysis on wet-road braking distance of tire[J]. China Mechanical Engineering, 2012, 23 (10): 1246-1251. (in Chinese). doi: 10.3969/j.issn.1004-132X.2012.10.024
    [22]
    SRIRANGAM S K, ANUPAM K, SCARPAS A, et al. Safety aspects of wet asphalt pavement surfaces through field and numerical modeling investigations[J]. Transportation Research Record, 2014 (2446): 37-51.
    [23]
    ANUPAM K, SRIRANGAM S K, SCARPAS A, et al. Study of cornering maneuvers of a pneumatic tire on asphalt pavement surfaces using the finite element method[J]. Transportation Research Record, 2014 (2457): 129-139.
    [24]
    FWA T F, ANUPAM K, ONG G P. Relative effectiveness of grooves in tire and pavement in reducing vehicle hydroplaning risk[C]//TRB. TRB 2010 Annual Meeting. Washington DC: TRB, 2009: 1-21.
    [25]
    PASINDU H R, FWA T F, ONG G P. Computation of aircraft braking distances[J]. Transportation Research Record, 2011 (2214): 126-135.
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