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contributor authorYuqing Zhang
contributor authorRong Luo
contributor authorRobert L. Lytton
date accessioned2017-05-08T21:56:14Z
date available2017-05-08T21:56:14Z
date copyrightSeptember 2013
date issued2013
identifier other%28asce%29mt%2E1943-5533%2E0000702.pdf
identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/67058
description abstractWhen an asphalt mixture is subjected to a destructive compressive load, it experiences a sequence of three deformation stages, as follows: the (1) primary, (2) secondary, and (3) tertiary stages. Most literature research focuses on plastic deformation in the primary and secondary stages, such as prediction of the flow number, which is in fact the initiation of the tertiary stage. However, little research effort has been reported on the mechanistic modeling of the damage that occurs in the tertiary stage. The main objective of this paper is to provide a mechanistic characterizing method for the damage modeling of asphalt mixtures in the tertiary stage. The preliminary study conducted by the writers illustrates that deformation during the tertiary flow of the asphalt mixtures is principally caused by the formation and propagation of cracks, which was signaled by the increase of the phase angle in the tertiary phase. The strain caused by the growth of cracks is the viscofracture strain, which can be obtained by conducting the strain decomposition of the measured total strain in the destructive compressive test. The viscofracture strain is employed in the research reported in this paper to mechanistically characterize the time-dependent fracture (viscofracture) of asphalt mixtures in compression. By using the dissipated pseudostrain energy-balance principle, the damage density and true stress are determined and both are demonstrated to increase with load cycles in the tertiary stage. The increased true stress yields extra viscoplastic strain, which is the reason why the permanent deformation is accelerated by the occurrence of cracks. To characterize the evolution of the viscofracture in the asphalt mixtures in compression, a pseudo J-integral Paris’ law in terms of damage density is proposed and the material constants in the Paris’ law are determined, which can be employed to predict the fracture of asphalt mixtures in compression.
publisherAmerican Society of Civil Engineers
titleMechanistic Modeling of Fracture in Asphalt Mixtures under Compressive Loading
typeJournal Paper
journal volume25
journal issue9
journal titleJournal of Materials in Civil Engineering
identifier doi10.1061/(ASCE)MT.1943-5533.0000667
treeJournal of Materials in Civil Engineering:;2013:;Volume ( 025 ):;issue: 009
contenttypeFulltext


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