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      A three‐dimensional heat transfer and thermal cracking model considering the effect of cracks on heat transfer

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          Summary

          A simple three‐dimensional heat transfer model is developed to consider the hindering effect of cracks on heat transfer. The 3D heat transfer model can also be applied to numerical methods such as the combined finite‐discrete element method (FDEM), discrete element method (DEM), discontinuous deformation analysis (DDA), the numerical manifold method (NMM), and the finite element method (FEM) to construct thermo‐mechanical coupling models that allow these methods to solve thermal cracking problems and dynamically consider the hindering effect of cracks on heat transfer. In the 3D heat transfer model, the continuous‐discontinuous medium is discretized into independent tetrahedral elements, and joint elements are inserted between adjacent tetrahedral elements. Heat transfer calculations for continuous‐discontinuous media are converted to heat conduction in tetrahedral elements and the heat exchange between the adjacent tetrahedral elements through the joint element. If the joint element between adjacent tetrahedral elements breaks (ie, a crack generates), the heat exchange coefficient of the joint element is reduced to account for the hindering effect of cracks on heat conduction. Then the model and the FDEM are combined to build a thermo‐mechanical coupling model to simulate thermal cracking. The thermally induced deformation, stress, and cracking are investigated by the thermo‐mechanical coupling model, and the numerical results are compared with analytical solutions or experimental results. The 3D heat transfer model and thermo‐mechanical model can provide a powerful tool for simulating heat transfer and thermal cracking in a continuous‐discontinuous medium.

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          Most cited references46

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          The Combined Finite-Discrete Element Method

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            Formulation of a three-dimensional distinct element model—Part I. A scheme to detect and represent contacts in a system composed of many polyhedral blocks

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              A combined finite‐discrete element method in transient dynamics of fracturing solids

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                Author and article information

                Contributors
                Journal
                International Journal for Numerical and Analytical Methods in Geomechanics
                Num Anal Meth Geomechanics
                Wiley
                0363-9061
                1096-9853
                July 2019
                April 17 2019
                July 2019
                : 43
                : 10
                : 1825-1853
                Affiliations
                [1 ] Faculty of Engineering China University of Geosciences Wuhan 430074 China
                [2 ] International Joint Research Center for Deep Earth Drilling and Resource Development China University of Geosciences Wuhan 430074 China
                [3 ] The Key Laboratory of Urban Security and Disaster Engineering Beijing University of Technology, Ministry of Education Beijing China
                Article
                10.1002/nag.2937
                98c91b4b-ab59-4c97-b645-f95e01ef1b77
                © 2019

                http://onlinelibrary.wiley.com/termsAndConditions#vor

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