The multiple stress creep recovery (MSCR) test has been regarded by many as the best available test method to evaluate the high-temperature performance of asphalt binders. However, recent studies have shown that the 9-s recovery time may not allow a full recovery of viscoelastic strain for some modified asphalt binders. In that case, some potential viscoelastic recovery is mistakenly reported as unrecovered strain, leading to an underestimation of the asphalt binder rutting resistance. In order to address the issue of incomplete recovery, this paper developed a mechanistic modeling approach to analyze the MSCR test results of six types of asphalt binders. Before using the mechanistic modeling approach, the steady-state strain response at each stress level was firstly determined for all asphalt binders. It was found that the three neat asphalt binders reached a steady-state condition from the beginning of the last 10 cycles, whereas the SBS-modified asphalt binders reached a relatively steady state in the last 5 cycles. Afterwards, a mechanistic modeling approach was employed to analyze the shear strain data in the last 5 cycles at each stress level based on the Boltzmann superposition principle and the Schapery’s nonlinear viscoelastic theory. The viscoplastic strain at the end of the recovery portion and the viscoelastic strain at the end of the creep portion were utilized to calculate the non-recoverable creep compliance and percent recovery. It was demonstrated that the approach adopted in this study was capable of analyzing the MSCR test results of asphalt binders with improved accuracy.
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Univ Fed Rio de Janeiro, Dept Organ Proc, Sch Chem, BR-21949900 Rio De Janeiro, BrazilUniv Fed Rio de Janeiro, Dept Organ Proc, Sch Chem, BR-21949900 Rio De Janeiro, Brazil
Mothe, Michelle G.
Leite, Leni F. M.
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CENPES, Petrobras R&D Ctr, BR-20035900 Rio De Janeiro, BrazilUniv Fed Rio de Janeiro, Dept Organ Proc, Sch Chem, BR-21949900 Rio De Janeiro, Brazil
Leite, Leni F. M.
Mothe, Cheila G.
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Univ Fed Rio de Janeiro, Dept Organ Proc, Sch Chem, BR-21949900 Rio De Janeiro, BrazilUniv Fed Rio de Janeiro, Dept Organ Proc, Sch Chem, BR-21949900 Rio De Janeiro, Brazil
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Korea Railway Res Inst, 176 Cheldo Bangmulgwan Ro, Uiwang, Gyeonggi Do, South KoreaKorea Railway Res Inst, 176 Cheldo Bangmulgwan Ro, Uiwang, Gyeonggi Do, South Korea
Lee, Seong-Hyeok
Park, Dae-Wook
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Kunsan Natl Univ, Dept Civil Engn, 558 Daehak Ro, Kunsan, Jeonbuk, South KoreaKorea Railway Res Inst, 176 Cheldo Bangmulgwan Ro, Uiwang, Gyeonggi Do, South Korea
Park, Dae-Wook
Hai Viet Vo
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Ton Duc Thang Univ, Fac Civil Engn, Ho Chi Minh City, VietnamKorea Railway Res Inst, 176 Cheldo Bangmulgwan Ro, Uiwang, Gyeonggi Do, South Korea
Hai Viet Vo
Fang, Mingjing
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Wuhan Univ Technol, Sch Civil Engn & Architecture, Wuhan 430070, Hubei, Peoples R ChinaKorea Railway Res Inst, 176 Cheldo Bangmulgwan Ro, Uiwang, Gyeonggi Do, South Korea
机构:
College of Civil and Transportation Engineering, Hohai University, NanjingCollege of Civil and Transportation Engineering, Hohai University, Nanjing
Liu S.
Lin Y.
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College of Civil and Transportation Engineering, Hohai University, NanjingCollege of Civil and Transportation Engineering, Hohai University, Nanjing
Lin Y.
Li M.
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China Design Group, NanjingCollege of Civil and Transportation Engineering, Hohai University, Nanjing
Li M.
Zhou S.
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Guangxi Jiaotou Technology Co.,Ltd., NanningCollege of Civil and Transportation Engineering, Hohai University, Nanjing