Journal of Jilin University(Engineering and Technology Edition) ›› 2024, Vol. 54 ›› Issue (7): 1966-1977.doi: 10.13229/j.cnki.jdxbgxb.20221179

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Threshold value of water stability evaluation index of asphalt mixture under multi-temperature conditions

Rong LUO1,2(),Yu LIANG1,2,Long-chang NIU3,Ting-ting HUANG1,2,Qiang MIAO1,2   

  1. 1.School of Transportation and Logistics Engineering,Wuhan University of Technology,Wuhan 430063,China
    2.Hubei Provincial Highway Engineering Technology Research Center,Wuhan 430063,China
    3.Guangzhou Expressway Co. ,Ltd. ,Guangzhou 510289,China
  • Received:2022-09-13 Online:2024-07-01 Published:2024-08-05

Abstract:

To prevent and reduce the moisture damage of asphalt pavement, based on the surface energy theory and the monthly average temperature of major cities in six regions of China, two evaluation methods, including surface energy test and macroscopic moisture stability test, were combined to accurately evaluate the water stability of asphalt mixture under multi-temperature conditions. First, the surface energy of raw materials was tested in the temperature range of -20 to 50 ℃ to determine the value of adhesive evaluation index ER(Energy Ratio) at various temperatures. Four types of asphalt mixtures were selected for five freeze-thaw cycles splitting tests at -20 ℃, immersion Marshall tests at 10 ℃ and 30 ℃, and immersion Hamburg rut tests at 50 ℃. According to the test indexes determined by the above three macroscopic tests and their corresponding technical requirements, the threshold values of ER corresponding to each temperature were determined. The experimental results show that the threshold values of ER of the asphalt mixture without modifiers at -20, 10, 30, 50 ℃ are 0.992, 1.693, 0.994 and 0.512, respectively. The threshold values of ER of modified asphalt mixture are 1.562, 1.944, 1.144 and 0.512, respectively. Furthermore, based on the threshold values of asphalt mixture water stability evaluation index under multi-temperature conditions, the relationship model between threshold value of asphalt mixture without modifiers and temperature was established as y=-0.000 6x2+0.009 7x+1.472 6, and the relationship model between threshold value of modified asphalt mixture and temperature is y=-0.000 6x2+0.000 4x+1.834 1, in which the x indicates temperature and y indicates the corresponding threshold value.

Key words: asphalt mixture, water stability, surface energy, threshold, temperature

CLC Number: 

  • U416.217

Fig.1

Map of monthly mean temperature variation in major cities in six regions of China"

Fig.2

Automatic surface tensimeter"

Fig.3

Diagram of total surface energy versus temperature"

Table 1

Density and surface energy parameters of chemical reagents"

试剂名称

密度/

(g·cm-3

表面能参数/(mJ·m-2
γRLWγRABγR+γR-γR
蒸馏水1.00021.80051.00025.50025.50072.800
甲酰胺1.13439.00019.0002.28039.60058.000
乙二醇1.11329.00019.0003.00030.10048.000
丙三醇1.26134.00030.0003.92057.40064.000
甲苯0.86728.3000.0000.0002.70028.300
2-戊酮0.80921.7000.0000.00019.20021.700

Table 2

Surface energy parameters of reagents at different temperatures"

试剂名称测试温度/℃表面能参数/(mJ·m-2
γRLWγRABγR+γR-γR
蒸馏水1022.21951.98125.99025.99074.200
3021.36249.70824.98924.98971.340
4020.95549.02224.51124.51169.977
5020.67348.36224.18124.18168.905
甲酰胺1039.68619.3342.32040.29659.020
3038.56318.7872.25439.15657.350
4037.82018.4252.21138.40256.245
5037.23818.1422.17737.81155.380
乙二醇1029.59219.3883.06130.71548.980
3028.60118.7392.95929.68647.340
4027.74918.1802.87128.80145.929
5027.08417.7452.80228.11244.829
丙三醇1034.61130.5393.99058.43165.150
3033.58629.6343.87256.70063.220
4033.02829.1423.80855.75962.170
5032.36728.5603.73254.64460.927
甲苯1028.6300.0000.0002.73128.630
3027.3500.1100.0002.60927.460
4026.8950.0000.0002.56626.895
5026.3000.0000.0002.50926.300
2-戊酮1022.6200.0000.00020.01422.620
3021.1600.0000.00018.72221.160
4020.4550.0000.00018.09820.455
5019.7300.0000.00017.45719.730

Table 3

Surface energy parameters of aggregates at different temperatures"

沥青种类温度/℃表面能参数/(mJ·m-2
γRLWγRABγR+γR-γR

70#基质

沥青

-207.0550.0000.0000.0107.055
1019.9803.4620.7384.06223.443
2017.6671.8060.2752.96719.473
3014.9851.0760.1022.84016.061
4011.9360.0000.0001.20911.936
509.0740.0000.0000.0109.074

SBS改性

沥青

-2010.1380.0000.0000.01010.138
1019.0524.0431.0104.04623.095
2018.3801.7230.3552.09020.103
3016.5580.9290.1501.43817.487
4014.5060.0000.0000.12014.506
5012.0200.0000.0400.00012.020

Fig.4

Relationship between aggregate surface energy parameters and temperature"

Table 4

Surface energy parameters of aggregates at different temperatures"

集料种类温度/℃表面能参数/(mJ·m-2
γRLWγRABγR+γR-γR
石灰岩-20100.86754.37911.83562.462155.246
1078.2511.1250.002194.08679.376
20102.4823.6570.016208.990106.139
30103.60917.2470.293253.841120.856
40196.000136.84517.278270.960332.845
50220.060149.58719.904281.054369.647
花岗岩-2073.803108.25916.453178.078182.062
1059.69510.5720.141198.18370.267
2075.4513.0770.010236.74078.528
3081.16427.8910.733265.308109.055
40106.941107.0279.370305.626213.968
50134.927143.91813.919372.018278.845

Fig.5

Adhesion work of asphalt and aggregate under multi-temperature conditions"

Fig.6

Spalling work of asphalt and aggregate under multi - temperature conditions"

Fig.7

Results of ER value under multi-temperature conditions"

Table 5

Freeze-thaw splitting test results (-20℃, 5 cycles)"

沥青混合料类型宏观指标/%指标ER
石灰岩与SBS改性沥青87.242.222
石灰岩与70#基质沥青76.971.554
花岗岩与SBS改性沥青76.040.666
花岗岩与70#基质沥青68.440.517

Table 6

Improved Immersion Marshall results"

对应温度/℃沥青混合料类型

宏观

指标/%

指标ER
10

石灰岩与SBS

改性沥青

94.212.397

石灰岩与70#

基质沥青

90.692.257

花岗岩与SBS

改性沥青

88.382.093

花岗岩与70#

基质沥青

85.081.955
30

石灰岩与SBS

改性沥青

90.151.320

石灰岩与70#

基质沥青

83.401.119

花岗岩与SBS

改性沥青

86.931.135

花岗岩与70#

基质沥青

78.750.979

Table 7

Comparison of rut depth between asphalt mixture and index ER result"

沥青混合料类型车辙深度/mm指标ER
石灰岩与SBS改性沥青3.100.846
石灰岩与70#基质沥青7.970.628
花岗岩与SBS改性沥青5.150.634
花岗岩与70#基质沥青11.840.467

Fig.8

Relationship between tensile strength ratio and index ER"

Fig.9

Relationship between residual stability and index ER"

Fig.10

Diagram of relationship between rut depth and index ER"

Fig.11

Relationship between threshold and temperature"

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