4.4 Article

Rate- and Temperature-Dependent Fracture Characteristics of Asphaltic Paving Mixtures

期刊

JOURNAL OF TESTING AND EVALUATION
卷 41, 期 2, 页码 257-268

出版社

AMER SOC TESTING MATERIALS
DOI: 10.1520/JTE20120174

关键词

asphalt mixtures; fracture; viscoelasticity; cohesive zone; pavement performance

资金

  1. Nebraska Department of Roads in US
  2. MKE (Ministry of Knowledge Economy) - ISTK (Korea Research Council for Industrial Science and Technology) of Republic of Korea
  3. National Research Council of Science & Technology (NST), Republic of Korea [B551179-12-07-00] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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Cracking in asphaltic pavement layers causes primary failure of the roadway structure, and the fracture resistance and characteristics of asphalt mixtures significantly influence the service life of asphaltic roadways. A better understanding of the fracture process is considered a necessary step to the proper development of design-analysis procedures for asphaltic mixtures and pavement structures. However, such effort involves many challenges because of the complex nature of asphaltic materials. In this study, experiments were conducted using uniaxial compressive specimens to characterize the linear viscoelastic properties and semi-circular bending (SCB) specimens to characterize fracture behavior of a typical dense-graded asphalt paving mixture subjected to various loading rates and at different temperatures. The SCB fracture test was also incorporated with a digital image correlation (DIC) system and finite-element model simulations including material viscoelasticity and cohesive-zone fracture to effectively capture local fracture processes and resulting fracture properties. The test results and model simulations clearly demonstrate that: (I) the rate- and temperature-dependent fracture characteristics need to be identified at the local fracture process zone, and (2) the rate- and temperature-dependent fracture properties are necessary in the structural design of asphaltic pavements with which a wide range of strain rates and service temperatures is usually associated.

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