Service life analysis of airport grooved asphalt pavements based on full-scale accelerated loading tests and finite element modeling
-
摘要: 相较于水泥混凝土道面,沥青道面刻槽在中国机场应用尚不广泛,且缺乏系统的检测评估技术与寿命演化规律研究。针对上述问题,本文依托足尺加速加载试验,开展沥青道面矩形刻槽与梯形刻槽的变形对比研究。采用高精度数据采集系统与扫描叠加算法,有效消除激光扫描盲区,获得了连续可靠的刻槽形态演变数据;基于试验数据分析,建立了考虑沥青材料黏塑性本构关系的数值模型,提出了刻槽形态随加载次数增加的稳态衰减斜率方程。研究结果表明:在相同荷载条件下,梯形刻槽道面的使用寿命约比矩形刻槽长25%,表现出显著的抗变形优势;在初始加载阶段,刻槽产生的初始变形约为总变形量的1/3,表明早期结构承载对刻槽形态衰减具有重要影响;结合机场道面结构设计软件计算的结构寿命结果,对比刻槽变形数据表明,沥青刻槽寿命显著低于道面结构寿命,刻槽性能成为限制道面服役性能的重要因素;建议在施工阶段适当增加刻槽深度盈余量,并加强刻槽修复与养护技术研究,以延长沥青道面刻槽使用寿命。本研究通过揭示典型刻槽形式的力学响应与寿命差异,为沥青道面刻槽结构优化设计、施工控制及养护决策提供了理论依据和工程参考。Abstract: Compared with cement concrete pavements, asphalt pavement grooving has not been widely applied for airports in China. There is limited systematic research on inspection and evaluation methods as well as the long-term evolution law of service life. To address these issues, a comparative investigation was conducted on the deformation characteristics between rectangular and trapezoidal grooves in asphalt pavements based on full-scale accelerated loading tests. During testing, a high-precision data acquisition system combined with a scanning superposition algorithm was employed to effectively eliminate laser scanning blind zones, enabling continuous and reliable data on groove morphology evolution. Based on the experimental data analysis, a numerical model was developed, incorporating the viscoplastic constitutive relation of asphalt materials. A steady-state degradation equation of groove morphology with increasing load repetitions was proposed. Research results show that, under identical loading conditions, the service life of trapezoidal grooves is approximately 25% longer than that of rectangular grooves, demonstrating a significant advantage in deformation resistance. Additionally, during the initial loading stage, the initial groove deformation accounts for approximately one-third of the total deformation, highlighting the critical influence of early structural load-bearing on groove performance degradation. Furthermore, structural life predictions were obtained from airport pavement design software. By comparing with groove deformation data, it is found that the service life of asphalt grooves is significantly shorter than the structural life of the pavement. Therefore, groove performance becomes a key factor limiting overall pavement service performance. Accordingly, it is recommended to provide an appropriate additional groove depth allowance during construction and to enhance research on groove rehabilitation and maintenance technologies in order to extend the service life of asphalt pavement grooving. In this study, the mechanical response and service life differences between typical groove forms are revealed, providing a theoretical basis and engineering reference for the optimized design, construction control, and maintenance decision-making of asphalt pavement grooving.
-
表 1 加载测试载荷参数
Table 1. Parameters of the applied loads in the loading test
轮胎参数 取值 轮胎接地压力/MPa 1.76 单轮荷载/kN 245 加载轮数量 6(三轴双轮) 横向轮隙宽度/cm 106.5 纵向轮隙长度/cm 91.7 表 2 加载测试的刻槽深度
Table 2. Groove depths in the loading test
参数 刻槽区1深度/mm 刻槽区2深度/mm 刻槽区3深度/mm 梯形槽 矩形槽 梯形槽 矩形槽 梯形槽 矩形槽 加载次数 0 3.904 0 6.504 9 4.450 1 5.628 6 6.477 0 5.567 7 660 3.487 4 6.024 9 4.051 3 5.146 0 6.019 8 5.214 6 30 000 3.327 4 5.034 3 3.779 5 4.097 0 5.458 5 4.213 9 初始变形占比/% 71.99 32.60 59.49 31.65 45.06 26.18 表 3 加载测试的刻槽横截面积
Table 3. Cross-sectional areas of grooves in the loading test
参数 刻槽区1横截面积/mm2 刻槽区2横截面积/mm2 刻槽区3横截面积/mm2 梯形槽 矩形槽 梯形槽 矩形槽 梯形槽 矩形槽 加载次数 0 33.161 2 41.870 9 39.354 8 37.612 8 64.451 5 35.741 9 660 29.354 8 36.064 4 35.290 3 32.322 5 57.548 3 31.935 4 30 000 26.967 7 29.483 8 31.677 4 23.870 9 47.935 4 24.064 4 初始变形占比/% 61.29 46.93 52.81 38.32 41.89 32.56 表 4 沥青面层模型参数
Table 4. Parameters of the asphalt surface layer model
材料 回弹模量/MPa 泊松比 蠕变系数 应力指数 时间指数 AC-25 400 0.35 4.0×10-8 0.776 -0.571 表 5 屈服应力-塑性应变关系
Table 5. Relationship between yield stress and plastic strain
应力/MPa 0.026 0.116 0.200 0.300 0.350 应变/10-3 0 2.065 3.478 4.891 5.761 应力/MPa 0.400 0.452 0.504 0.544 0.564 应变/10-3 7.065 10.000 14.891 20.000 24.783 表 6 国内外对刻槽尺寸的规定
Table 6. Regulations on groove dimensions at home and abroad
mm 检测指标 技术指标及最大允许偏差 中国民用航空管理局规范要求 美国联邦航空管理局规范要求 槽深 5或8 6±1.6 槽宽 5或8 6±1.6 表 7 道面各结构层材料参数
Table 7. Material parameters of pavement structural layers
结构层 材料编号 回弹模量/MPa 泊松比 沥青面层 P-401 1 379 0.30 粒料基层 P-154 145 0.35 土基 SUBGRADE 57 0.40 -
[1] MIDTFJORD A D, DE BIN R, HUSEBY A B. A decision support system for safer airplane landings: Predicting runway conditions using XGBoost and explainable AI[J]. Cold Regions Science and Technology, 2022, 198: 103556. [2] FWA T F. Pavement skid resistance properties for safe aircraft operations[J]. Journal of Road Engineering, 2024, 4(4): 361-385. doi: 10.1016/j.jreng.2024.11.002 [3] International Air Transport Association. IATA annual safety report 2024[R]. Geneva: IATA, 2025: 1-45. [4] 代思, 杨孝思, 谭祺琦. 刻槽沥青路面抗滑性能分析[J]. 科学技术创新, 2021(31): 114-116.DAI Si, YANG Xiao-si, TAN Qi-qi. Analysis of skid resistance of grooved asphalt pavement[J]. Scientific and Technological Innovation, 2021(31): 114-116. [5] National Academies of Sciences, Engineering, and Medicine. Impact of airport rubber removal techniques on runways[R]. Washington DC: Transportation Research Board, 2009: 1-119. [6] AGRAWAL S K, DAIUTUTOLO H. The braking performance of an aircraft tire on grooved Portland cement concrete surfaces[R]. Washington DC: FAA, 1981: 1-16. [7] AGRAWAL S K. Braking of an aircraft tire on grooved and porous asphaltic concrete[R]. Washington DC: FAA, 1983: 1-56. [8] 李林泉. 雨雪天气下机场飞行区道面易损性研究[D]. 天津: 中国民航大学, 2024: 36.LI Lin-quan. Study on pavement vulnerability of airport flight area under rainy and snowy weather[D]. Tianjin: Civil Aviation University of China, 2024: 36. [9] PASINDU H R, FWA T F. Improving wet-weather runway performance using trapezoidal grooving design[J]. Transportation in Developing Economies, 2015, 1(1): 1-10. [10] DAIUTOLO H. Runway grooving and skid resistance[C]//SRAI. Ⅸ ALACPA Seminar of Airport Pavements. Panama City: SRAI, 2012: 1-63. [11] Federal Aviation Administration. Measurement, construction and maintenance of skid resistant airport pavement surfaces[R]. Washington DC: FAA, 1997: 1-45. [12] PATTERSON JR J W. Evaluation of trapezoidal-shaped runway grooves[R]. Washington DC: FAA, 2012: 1-9. [13] LEE M H, CHOU C P, LI K H. Automatic measurement of runway grooving construction for pavement skid evaluation[J]. Automation in Construction, 2009, 18(6): 856-863. doi: 10.1016/j.autcon.2009.03.013 [14] WHITE G, RODWAY B. Distress and maintenance of grooved runway surfaces[J]. Airfield Engineering and Maintenance Summit, 2014, 29: 25-28. [15] WANG Q, DAVIS J. Airport pavement groove identification and analysis at NAPTF[J]. Advanced Materials Research, 2013, 723: 1003-1010. doi: 10.4028/www.scientific.net/AMR.723.1003 [16] PASINDU H R. Analytical evaluation of impact of groove deterioration on runway frictional performance[J]. Transportation Research Procedia, 2020, 48: 3814-3823. doi: 10.1016/j.trpro.2020.08.038 [17] JIANG B Y, WANG H. An analytical solution for friction coefficients of grooved pavements considering tire rubber-groove interaction[J]. Tribology International, 2023, 190: 109052. doi: 10.1016/j.triboint.2023.109052 [18] MIAH M T, OH E, CHAI G, et al. Runway groove closure prediction modelling by gene expression programming (GEP)[J]. Road Materials and Pavement Design, 2023, 24(12): 2929-2958. doi: 10.1080/14680629.2023.2183715 [19] JAMIESON S, WHITE G. Standardised specifications for flexible airport pavements[C]//Australian Flexible Pavement Association. Proceedings of the 19th AfPA International Flexible Pavements Conference. Brisbane: Australian Flexible Pavement Association, 2023: 1-11. [20] QIAO Y, FLINTSCH G, DAWSON A, et al. Examining effects of climatic factors on flexible pavement performance and service life[J]. Transportation Research Record: Journal of the Transportation Research Board, 2013(2349): 100-107. [21] WHITE G. State of the art: Asphalt for airport pavement surfacing[J]. International Journal of Pavement Research and Technology, 2018, 11(1): 77-98. doi: 10.1016/j.ijprt.2017.07.008 [22] 张德津, 王毅, 章洋, 等. 基于三维断面数据的机场道面刻槽检测方法[J]. 中南民族大学学报(自然科学版), 2020, 39(2): 195-204.ZHANG De-jin, WANG Yi, ZHANG Yang, et al. Airport runway grooves detection using 3D laser profiling technology[J]. Journal of South-central Minzu University (Natural Science Edition), 2020, 39(2): 195-204. [23] 彭少龙, 李博, 汤铭锋, 等. 高速公路沥青路面刻纹处治积水研究[J]. 四川水泥, 2025(11): 239-241, 244.PENG Shao-long, LI Bo, TANG Ming-feng, et al. Study on treatment of stagnant water by engraving on asphalt pavement of expressway[J]. Sichuan Cement, 2025(11): 239-241, 244. [24] 甘宏. 三维激光成像技术在路面刻槽及坑槽检测的应用研究[D]. 福州: 福建农林大学, 2019: 55.GAN Hong. Automatic measurement of pavement groove and pothole based on 3D laser imaging technology[D]. Fuzhou: Fujian Agriculture and Forestry University, 2019: 55. [25] 叶珍. 基于ABAQUS的刻槽尺寸与路面磨损的相关性研究与应用[D]. 福州: 福建农林大学, 2018: 24.YE Zhen. The correlation between groove sizes and pavement wear based on ABAQUS[D]. Fuzhou: Fujian Agriculture and Forestry University, 2018: 24. [26] 范慧. 机场沥青混凝土刻槽道面耐久性及安全性研究[D]. 西安: 长安大学, 2009: 82.FAN Hui. Study on durability and safety of groove in airport asphalt pavement[D]. Xi'an: Chang'an University, 2009: 82. [27] 陈逸涵. 基于三维激光扫描的沥青路面构造深度快速测定技术研究[D]. 南京: 东南大学, 2023: 99.CHEN Yi-han. Study on fast measurement technology of asphalt pavement texture depth using 3D laser scanning[D]. Nanjing: Southeast University, 2023: 99. [28] LIU Y Y, WANG R Y, WAN T T. A method determining critical operating parameters for landing aircraft based on runway pavement skid resistance[J]. International Journal of Pavement Engineering, 2024, 25: 2346286. doi: 10.1080/10298436.2024.2346286 [29] 宋波. 既有沥青路面结构评价与延寿设计方法研究[D]. 北京: 北京工业大学, 2019: 154.SONG Bo. Structure evaluation and life-extensional design method of existing asphalt pavement[D]. Beijing: Beijing University of Technology, 2019: 154. [30] ZHANG R, HU P K, ZHONG Y H, et al. Research progress on evaluation and prediction of degradation in service performance for asphalt pavement[J]. Journal of Traffic and Transportation Engineering (English Edition), 2025, 12(4): 1011-1039. doi: 10.1016/j.jtte.2024.11.006 [31] WANG Q, HAYHOE G F. Development and implementation of a beam-bridging filter for use in airport groove identification[J]. Transportation Research Record: Journal of the Transportation Research Board, 2013(2369): 95-103. [32] 姚通. 基于ABAQUS的张承高速公路沥青路面永久变形影响因素分析[D]. 石家庄: 石家庄铁道大学, 2019: 35.YAO Tong. Analysis of factors affecting permanent deformation of asphalt pavement of Zhangcheng Expressway based on ABAQUS[D]. Shijiazhuang: Shijiazhuang Tiedao University, 2019: 35. [33] 刘少鹏. 沥青路面振动压实数据分析方法研究[D]. 南京: 东南大学, 2022: 36.LIU Shao-peng. Research on date analysis method of vibration compaction of asphalt pavement[D]. Nanjing: Southeast University, 2022: 36. [34] 李淼. 泰安市城市主干道交叉口车辙病害分析与防治[D]. 西安: 西安工业大学, 2023: 20.LI Miao. Analysis and prevention of rutting disease at intersections of urban trunk roads in Taian City[D]. Xi'an: Xi'an Technological University, 2023: 20. [35] 陈帅坤. 往复荷载下沥青机场道面受力状态分析[D]. 哈尔滨: 哈尔滨工业大学, 2022: 15.CHEN Shuai-kun. Stressing state analysis of asphalt airport pavements under cyclic loads[D]. Harbin: Harbin Institute of Technology, 2022: 15. [36] 蔡爵威, 赵鸿铎, 钱鑫, 等. 采用实测数据实时修正的机场跑道水膜厚度面域分布预估方法[J]. 交通运输工程学报, 2023, 23(1): 105-114. doi: 10.19818/j.cnki.1671-1637.2023.01.008CAI Jue-wei, ZHAO Hong-duo, QIAN Xin, et al. Estimation method for area distribution of water film thickness on airport runway modified by measured data in real time[J]. Journal of Traffic and Transportation Engineering, 2023, 23(1): 105-114. doi: 10.19818/j.cnki.1671-1637.2023.01.008 [37] 杨明桦. 基于提高寿命的机场沥青道面结构设计研究[D]. 天津: 中国民航大学, 2021: 48-52.YANG Ming-hua. Research on structural design of airport asphalt pavement based on improving service life[D]. Tianjin: Civil Aviation University of China, 2021: 48-52. -
下载: