Simplified Viscoelastic Continuum Damage Model as Platform for Asphalt Concrete Fatigue Analysis

Author:

Underwood B. Shane12,Baek Cheolmin3,Kim Y. Richard1

Affiliation:

1. Department of Civil, Construction, and Environmental Engineering, North Carolina State University, 210 Mann Hall, 2501 Stinson Drive, Raleigh, NC 27695-7908.

2. Department of Civil, Environmental, and Sustainable Engineering, Arizona State University, P.O. Box 875306, 229B ISTB 2, Tempe, AZ 85287-5306.

3. Highway Research Division, Infrastructure Research Department, Korea Institute of Construction Technology, 283 Goyangdae-Ro Ilsanseo-Gu, Goyang-Si, Gyeonggi-Do, 411-712, South Korea.

Abstract

Cracking in asphalt concrete pavements is a major form of pavement distress in the United States. Because the cracking phenomenon is complex and cracking is often affected by both material and structural factors, field engineers have no quick and effective test and analysis protocols. A suite of fatigue analysis tools—as well as applications built around the simplified viscoelastic continuum damage (S-VECD) model—is presented. The S-VECD formulation is presented in a summarized form. Next, the characterization protocols, which are consistent with the capabilities of the asphalt mixture performance tester, are shown. Considerable attention is then given to S-VECD–based analysis tools for assessment of material- and pavement-level fatigue performance. Results show that the S-VECD model can be used to predict the number of cycles until fatigue failure for both constant stress and constant strain loading. The S-VECD model's sensitivity to mixture composition and external factors is shown through predictions of the endurance limit. Finally, pavement performance predictions are used to show how the S-VECD model can predict the field performance results of full-scale accelerated pavement tests, quantify the expected performance of pavement design alternatives, and identify factors that affect top-down cracking.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Civil and Structural Engineering

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