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    Effects of In-Place Volumetric Properties on Field Rutting and Cracking Performance of Asphalt Pavement

    Source: Journal of Materials in Civil Engineering:;2019:;Volume ( 031 ):;issue: 008
    Author:
    Weiguang Zhang
    ,
    Shihui Shen
    ,
    Shenghua Wu
    ,
    Xiao Chen
    ,
    Jiayue Xue
    ,
    Louay N. Mohammad
    DOI: 10.1061/(ASCE)MT.1943-5533.0002767
    Publisher: American Society of Civil Engineers
    Abstract: The effects of in-place volumetric properties on the rutting and cracking of asphalt pavement are of great interest to the pavement industry. As such, the major objectives of this paper are to determine the volumetric properties that correlate with field rutting and cracking and to quantify the field performance difference between low and high magnitudes of the determined volumetric properties. This study included 71 pavement sections from 24 field test roads that were part of the National Cooperative Highway Research Program (NCHRP) 09-49A project and covered different mix designs, volumetric property ranges, pavement ages, and four climate zones across the United States. The volumetric properties investigated are in-place air voids, voids in mineral aggregate (VMA), voids filled with asphalt (VFA), asphalt film thickness, and effective binder content (Vbe). Rutting and cracking (transverse and longitudinal) performance data for all the test sections were collected in accordance with the Long-Term Pavement Performance program’s Distress Survey Manual. The authors identified the volumetric properties that correlated well with field performance and determined threshold values using the fuzzy clustering method to divide the identified volumetric properties into two groups: one with relatively small values, and the other with relatively large values. The rutting and cracking between the two groups were then compared. The results indicate that in wet climate areas, higher in-place air void percentages and lower VFA values correlate with more top-down longitudinal cracking. The sensitivity of the in-place air voids was sufficient to distinguish differences in cracking, whereas VFA sensitivity was not able to do so. Also, thicker asphalt film correlated with less field transverse cracking. The variables that clearly affected rutting were the VMA and Vbe, whereby lower Vbe values indicated better rutting resistance. However, Vbe was unable to distinguish rut depths of various magnitudes. The effect of VMA on rut depth is complicated and there might be a sensitive range of VMA within which the rutting resistance of asphalt pavement can be more sensitive.
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      Effects of In-Place Volumetric Properties on Field Rutting and Cracking Performance of Asphalt Pavement

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    contributor authorWeiguang Zhang
    contributor authorShihui Shen
    contributor authorShenghua Wu
    contributor authorXiao Chen
    contributor authorJiayue Xue
    contributor authorLouay N. Mohammad
    date accessioned2019-09-18T10:36:48Z
    date available2019-09-18T10:36:48Z
    date issued2019
    identifier other%28ASCE%29MT.1943-5533.0002767.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4259393
    description abstractThe effects of in-place volumetric properties on the rutting and cracking of asphalt pavement are of great interest to the pavement industry. As such, the major objectives of this paper are to determine the volumetric properties that correlate with field rutting and cracking and to quantify the field performance difference between low and high magnitudes of the determined volumetric properties. This study included 71 pavement sections from 24 field test roads that were part of the National Cooperative Highway Research Program (NCHRP) 09-49A project and covered different mix designs, volumetric property ranges, pavement ages, and four climate zones across the United States. The volumetric properties investigated are in-place air voids, voids in mineral aggregate (VMA), voids filled with asphalt (VFA), asphalt film thickness, and effective binder content (Vbe). Rutting and cracking (transverse and longitudinal) performance data for all the test sections were collected in accordance with the Long-Term Pavement Performance program’s Distress Survey Manual. The authors identified the volumetric properties that correlated well with field performance and determined threshold values using the fuzzy clustering method to divide the identified volumetric properties into two groups: one with relatively small values, and the other with relatively large values. The rutting and cracking between the two groups were then compared. The results indicate that in wet climate areas, higher in-place air void percentages and lower VFA values correlate with more top-down longitudinal cracking. The sensitivity of the in-place air voids was sufficient to distinguish differences in cracking, whereas VFA sensitivity was not able to do so. Also, thicker asphalt film correlated with less field transverse cracking. The variables that clearly affected rutting were the VMA and Vbe, whereby lower Vbe values indicated better rutting resistance. However, Vbe was unable to distinguish rut depths of various magnitudes. The effect of VMA on rut depth is complicated and there might be a sensitive range of VMA within which the rutting resistance of asphalt pavement can be more sensitive.
    publisherAmerican Society of Civil Engineers
    titleEffects of In-Place Volumetric Properties on Field Rutting and Cracking Performance of Asphalt Pavement
    typeJournal Paper
    journal volume31
    journal issue8
    journal titleJournal of Materials in Civil Engineering
    identifier doi10.1061/(ASCE)MT.1943-5533.0002767
    page04019150
    treeJournal of Materials in Civil Engineering:;2019:;Volume ( 031 ):;issue: 008
    contenttypeFulltext
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