吉林大学学报(工学版) ›› 2026, Vol. 56 ›› Issue (9): 2373-2381.doi: 10.13229/j.cnki.jdxbgxb.20250203

• 交通运输工程·土木工程 • 上一篇    

基于纳米压痕试验的沥青油膜微观力学特征

王莹1,2(),李淑明2,蔡易辰1,袁玉卿3()   

  1. 1.同济大学 道路与交通工程教育部重点实验室,上海 201804
    2.同济大学 交通学院,上海 201804
    3.河南大学 建筑工程学院,河南 开封 475004
  • 收稿日期:2025-03-14 出版日期:2026-09-01 发布日期:2026-09-07
  • 通讯作者: 袁玉卿 E-mail:lexiying@outlook.com;yroad@126.com
  • 作者简介:王莹(1993-),女,博士研究生.研究方向:沥青混合料级配设计理论及集料颗粒图像卷积网络分类.E-mail: lexiying@outlook.com
  • 基金资助:
    河南省高等学校重点科研项目(26A580001)

Micromechanical characterization of asphalt films based on nanoindentation testing

Ying WANG1,2(),Shu-ming LI2,Yi-chen CAI1,Yu-qing YUAN3()   

  1. 1.Key Laboratory of Road and Traffic Engineering,Ministry of Education,Tongji University,Shanghai 201804,China
    2.College of Transportation Engineering,Tongji University,Shanghai 201804,China
    3.School of Civil Engineering and Architecture,Henan University,Kaifeng 475004,China
  • Received:2025-03-14 Online:2026-09-01 Published:2026-09-07
  • Contact: Yu-qing YUAN E-mail:lexiying@outlook.com;yroad@126.com

摘要:

选取4种不同类型的沥青混合料(AC?25、AC?13、AM?13、OGFC?13)进行纳米压痕试验,探究沥青油膜在沥青混合料中的分布特征。试验结果表明,沥青油膜是普遍存在于沥青混合料内(杨氏模量为13~17 GPa,厚度在2~7 μm范围内)紧附于集料颗粒表面的结构层。沥青油膜的承载能力介于集料颗粒和沥青之间,抗变形能力较差,易发生塑性变形,且在卸载后无法完全恢复。虽然沥青油膜中普遍存在纳米级孔隙,但其力学性能主要由其他因素决定。本文提出了沥青油膜的脱层模型,脱层模型揭示了在加载-卸载循环下,沥青油膜与集料颗粒及沥青之间力学响应不同步导致沥青油膜从集料颗粒表面脱落的破坏机理。

关键词: 道路工程, 沥青油膜, 纳米压痕试验, 杨氏模量, 微观力学特征, 脱层模型

Abstract:

This study selected four different types of asphalt mixtures(AC-25, AC-13, AM-13, OGFC-13) and conducted nanoindentation testing to investigate the distribution characteristics of asphalt binder films within the mixtures. The test results indicated that asphalt binder films are widely present in asphalt mixtures, with an elastic modulus ranging from 13 to 17 GPa and a thickness between 2-7 μm. These films form a structural layer that closely adheres to the surface of aggregate particles. The asphalt binder film exhibits a load-bearing capacity intermediate between that of aggregate particles and asphalt, but with poor resistance to deformation. It tends to undergo plastic deformation and cannot fully recover after unloading. Although nanoscale pores are commonly present within the binder film, its micromechanical properties are primarily determined by other factors. This paper proposes a Delamination Model for the asphalt binder film, which reveals the failure mechanism whereby, under loading-unloading cycles, the mechanical responses of the binder film, aggregates, and asphalt are not synchronized, leading to the detachment of the binder film from the aggregate surface.

Key words: road engineering, asphalt binder films, nanoindentation testing, Young's modulus, micromechanical properties, delamination model

中图分类号: 

  • U414

图1

沥青混合料膜结构示意图"

表1

关键筛孔质量通过率 (%)"

级配类型筛孔孔径/mm油石比/%
4.752.360.075
AC?2541.330.55.63.5
AC?1354.738.85.94.0
AM?1324.215.64.14.0
OGFC?1324.314.94.34.0

表2

集料基本性能指标"

试验项目石灰岩
压碎值/%11.8
洛杉矶磨耗损失/%17.8
表观相对密度/(t·m-32.791
坚固性/%8.2
吸水率/%0.31
针片状质量分数/%10.1
矿粉质量分数(水洗法)/%0.65
软石质量分数/%1.56

表3

沥青基本性能指标"

基性性能数值
针入度(25 ℃,100 g,5 s),0.1 mm68.7
软化点(环球法)/℃52.3
粘度(135 ℃)/(Pa·s)0.425
溶解度/%99.7
闪点(COC)/℃277
密度/(g·cm-31.022
延度(5 cm/min,15℃)/cm>150

薄膜加热试

验(163 ℃,5 h)

质量变化/%0.2
残余针入度比/%77
延度(15 ℃)/cm59

图2

沥青混合料截面选点取样示意图"

图3

纳米压痕试样"

图4

纳米压痕测试荷载位移曲线示意图"

图5

Berkovich压头压点与试样表面接触示意图和压痕图示"

图6

沥青混合料纳米压痕试验图"

图7

四类混合料纳米压痕杨氏模量热力图"

图8

沥青混合料内荷载-位移曲线示例"

图9

网格计数法图示"

表4

各混合料试样总失效点个数"

AC25AC13OGFC13AM13
192927314

图10

脱层模型"

[1] Craus J, Ishai I, Sides A. Some physico-chemical aspects of the effect and the role of the filler in bituminous paving mixtures[J]. Asphalt Paving Technol,1978, 47:558-588.
[2] National Center for Asphalt Technology. Asphalt film thickness debunked[EB/OL]. [2025-04-26]. .
[3] 吕得保, 刘寒冰, 关长禄. 沥青混合料的集料比表面积确定方法的研究[J]. 公路交通科技, 2011(5): 28-32.
De-bao Lü, Liu Han-bing, Guan Chang-lu. Study on ascertaining specific surface area of asphalt mixture aggregate[J]. Journal of Highway and Transportation Research and Development, 2011(5): 28-32.
[4] 何娟, 张京锋. 沥青混合料沥青膜厚度计算方法之维姆模型修正[J]. 广州大学学报: 自然科学版, 2010, 9(2): 68-71.
He Juan, Zhang Jing-feng. Revise of hveem model and the optimum asphalt film thickness of asphalt mixture[J]. Journal of Guangzhou University(Natural Science Edition), 2010, 9(2): 68-71.
[5] Zhang Y, Chen H, Xiao P, et al. Investigation of average asphalt film thickness of dense graded asphalt mixtures with compaction effects[J]. Construction and Building Materials, 2022, 326: No.126696.
[6] 侯芸, 魏道新, 田波, 等. 沥青混合料油膜厚度计算方法[J]. 交通运输工程学报,2007(4): 58-62.
Hou Yun, Wei Dao-xin, Tian Bo, et al. Calculation method of asphalt film thickness in mixture[J]. Journal of Traffic and Transportation Engineering, 2007(4): 58-62.
[7] Radovskiy B. Analytical formulas for film thickness in compacted asphalt mixture[J]. Transportation Research Record, 2003, 1829(1): 26-32.
[8] 成志强, 陈先勇, 陈辉强, 等. RAP中有效沥青膜厚度测定[J]. 重庆交通大学学报: 自然科学版, 2012(6): 1149-1153, 1161.
Cheng Zhi-qiang, Chen Xian-yong, Chen Hun-qiang, et al. Thickness testing of effective asphalt film in RAP[J]. Journal of Chong Qing Jiaotong University(Natural Science), 2012(6): 1149-1153, 1161.
[9] Nanjegowda V H, Silva F, Sousa J B, et al. Forensic approach to predict film thickness of reacted and activated rubber(RARX) modified asphalt mixtures[J]. Road Materials and Pavement Design, 2020, 21(Sup.1): 19-36.
[10] Huurman M. Lifetime optimisation tool(LOT), main report 7-07-170-1[R]. Delft: Delft University of Technology, Laboratory of Road and Railway Engineering, 2008.
[11] Al-Khateeb G G. Conceptualizing the asphalt film thickness to investigate the Superpave VMA criteria[J]. International Journal of Pavement Engineering, 2018, 19(11): 957-965.
[12] Dong M S, Sun W, Li L L, et al. Effect of asphalt film thickness on shear mechanical properties of asphalt-aggregate interface[J]. Construction and Building Materials, 2020, 263: No.120208.
[13] de Rezende L R, Kommidi S R, Kim Y R, et al. Strain sweep fatigue testing of sand asphalt mortar to investigate the effects of sample geometry, binder film thickness, and testing temperature[J]. Transportation Research Record, 2021, 2675(10): 516-529.
[14] Kandhal P S, Chakraborty S. Effect of asphalt film thickness on short-and long-term aging of asphalt paving mixtures[J]. Transportation Research Record, 1996, 1535(1): 83-90.
[15] Zhai H, Bahia H U, Erickson S. Effect of film thickness on rheological behavior of asphalt binders[J]. Transportation Research Record, 2000, 1728(1): 7-14.
[16] Yi Y, Jiang Y, Tian T, et al. Research on the optimum asphalt film thickness of asphalt mixtures and its influence on the pavement performance based on the CT and Blaine method[J]. Journal of Materials in Civil Engineering, 2022, 34(12): No.04022324.
[17] 于辉. 沥青膜厚度对沥青混合料性能影响的研究[D]. 长春: 吉林大学交通学院, 2007.
Yu Hui. Research on influence of thickness of asphaltum to the performance of asphaltum mixture[D]. Changchun: College of Transportation, Jilin University,2007.
[18] Sukkari A, Al-Khateeb G G, Ziada W, et al. Estimating asphalt film thickness in asphalt mixtures using microscopy to further enhance the performance of UAE roadways[C]∥The 18th International Road Federation World Meeting & Exhibition, Dubai, UAE, 2021: 87-96.
[19] Karim F, Hussain J. Assessing the asphalt binder film thickness in recycled asphalt mixtures using micro-level techniques[J]. Materials, 2021, 14(24): No.7891.
[20] Karim F, Hussain J, Hafeez I. Estimating the asphalt binder film thickness using scanning electron microscope and energy dispersive X-ray spectroscopy[J]. Advances in Materials Science and Engineering, 2021(1):No. 8894970.
[21] Vieira L H, de Souza T D, Enríquez-León A J, et al. Experimental testing and analysis procedure to determine the apparent film thickness of asphalt binder in fine aggregate matrix mixtures[J]. Transportation Research Record, 2021, 2675(7): 166-179.
[22] Jiang J, Zhao Y, Lu G, et al. Effect of binder film distribution on the fatigue characteristics of asphalt binder/filler composite based on image analysis method[J]. Construction and Building Materials, 2020, 260: No.119876.
[23] Jiang J, Ni F, Gu X, et al. Evaluation of aggregate packing based on thickness distribution of asphalt binder, mastic and mortar within asphalt mixtures using multiscale methods[J]. Construction and Building Materials, 2019, 222: 717-730.
[24] Jiang J, Li Y, Zhang Y, et al. Distribution of mortar film thickness and its relationship to mixture cracking resistance[J]. International Journal of Pavement Engineering, 2022, 23(3): 824-833.
[25] Al-Khateeb G G, Sukkari A, Zeiada W, et al. Microscopy-based approach for measuring asphalt film thickness and its impact on hot-mix asphalt performance[J]. Case Studies in Construction Materials, 2023, 18: No.e01711.
[26] Elseifi M A, Al-Qadi I L, Yang S H, et al. Validity of asphalt binder film thickness concept in hot-mix asphalt[J]. Transportation Research Record, 2008, 2057(1): 37-45.
[27] Hinrichsen J A, Heggen J. Minimum voids in mineral aggregate in hot-mix asphalt based on gradation and volumetric properties[J]. Transportation Research Record, 1996, 1545(1): 75-79.
[28] Al-Khateeb G G, Shenoy A. Mixture-property-independent asphalt film thickness model[J]. Materials Today Communications, 2019, 19: 482-486.
[29] 程永喜. 开放量子点系统中的近藤效应及量子输运[M]. 北京: 北京邮电大学出版社, 2022: 1-20.
[30] Zhu X, Yuan Y, Li L, et al. Identification of interfacial transition zone in asphalt concrete based on nano-scale metrology techniques[J]. Materials & Design, 2017, 129: 91-102.
[31] .公路沥青路面施工技术规范 [S].
[32] 交通部公路科学研究所. .公路工程集料试验规程 [S].
[33] .公路工程沥青及沥青混合料试验规程 [S].
[34] Oliver W C, Pharr G M. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments[J]. Journal of Materials Research, 1992, 7(6): 1564-1583.
[35] Zhao L, Zhang J, Pfetzing J, et al. Depth-sensing ductile and brittle deformation in 3C-SiC under Berkovich nanoindentation[J]. Materials and Design, 2021, 197: No.109223.
[36] 张峥 编. 工程材料的力学性能[M]. 北京: 北京航空航天大学出版社, 2022: 132-140.
[1] 陈鲁川,张凯,王亮,赵晓康,张久鹏,王铭,何印章. 混掺纤维改性沥青制备及增强增韧机理[J]. 吉林大学学报(工学版), 2026, 56(9): 2317-2328.
[2] 高英力,刘伟祥,朱俊材,祝张煌,陈腾飞,熊浩宇. Na2SiO3/NaAlO2协同电石渣激发矿渣的增强机理[J]. 吉林大学学报(工学版), 2026, 56(7): 1915-1925.
[3] 张航,熊宇豪,吕能超. 基于停车视距的高速公路下坡段货车制动可靠性[J]. 吉林大学学报(工学版), 2026, 56(2): 383-392.
[4] 李博,梁媛,马云东,于露. 寒区高铁隧道口边坡冻融失稳智能监测预警方法[J]. 吉林大学学报(工学版), 2025, 55(9): 2985-2997.
[5] 张航,孙煜,马宝林,牛世豪,王星月,吕能超. 高速公路双车道出口辅助车道长度可靠性设计[J]. 吉林大学学报(工学版), 2025, 55(8): 2611-2618.
[6] 徐凌,王小兵,袁捷,任华平,韩乙锋,徐西永. 回填狭窄区粉砂基可控低强度材料制备与性能[J]. 吉林大学学报(工学版), 2025, 55(8): 2657-2668.
[7] 田耀刚,蒋静,赵成,杨小敏,张军,贾侃. 水性环氧树脂改性高早强砂浆的耐温机制[J]. 吉林大学学报(工学版), 2025, 55(7): 2203-2211.
[8] 龙志友,万昭龙,董是,杨超,刘肖扬. 基于变分模态分解和极端梯度提升的公路边坡位移预测[J]. 吉林大学学报(工学版), 2025, 55(7): 2320-2332.
[9] 姚康,董侨,陈雪琴,史斌,颜世傲,王翔. 基于相场正则化黏聚区模型的混凝土混合型细观断裂行为[J]. 吉林大学学报(工学版), 2025, 55(7): 2286-2297.
[10] 韦万峰,张洪刚,张仰鹏,杨帆,唐伯明,孔令云. 废胶粉改性沥青改性机理、制备及性能研究进展[J]. 吉林大学学报(工学版), 2025, 55(6): 1834-1853.
[11] 杨轸,郑瑞平,巩喆. 路网道路服役性能和交通状态耦合仿真预测[J]. 吉林大学学报(工学版), 2025, 55(6): 1973-1983.
[12] 张安顺,付伟,张军辉,高峰. 长沙压实黏土剪切特性及应力-应变关系表征[J]. 吉林大学学报(工学版), 2025, 55(5): 1604-1616.
[13] 王黎明,宋子坤,周辉,魏文,袁浩. 超声处置石油沥青的流变学响应及响应机理[J]. 吉林大学学报(工学版), 2025, 55(4): 1346-1355.
[14] 徐俊鹏,郑传峰,杜艳韬,王雨航,路政,范文军. 寒区沥青混合料在水-热-力三场耦合作用下的损伤效应[J]. 吉林大学学报(工学版), 2025, 55(3): 877-887.
[15] 俞靖洋,李东钊,张志清,王真,孙海林,布海玲,李明春. 环保型蓄盐沥青混合料性能损伤演变[J]. 吉林大学学报(工学版), 2025, 55(3): 888-898.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!