Experimental and numerical investigation of mixed mode fracture of high‐performance grouting materials based on peridynamics

Author:

Yao Jiaxu12,Chen Tao1,Chen Ke3,Yuan Guokai3,Xiao Zhigang4

Affiliation:

1. Key Laboratory of Performance Evolution and Control for Engineering Structures (Ministry of Education), Department of Structural Engineering Tongji University Shanghai China

2. Department of Civil Engineering The University of Tokyo Tokyo Japan

3. China Energy Engineering Group Guangdong Electric Power Design Institute Co. Ltd Guangzhou China

4. School of Engineering, Information Technology and Physical Sciences Federation University Churchill Victoria Australia

Abstract

AbstractThis paper investigates the fracture behavior of high‐performance grouting materials in the grouted connection section of marine structures, where they are subjected to complex stress states. This study utilizes a combination of experimental and numerical simulation methods to establish a reliable numerical simulation technique for the fracture process of high‐performance grouting materials. The mixed mode fracture behavior is analyzed using six different types of specimens, and the strain contour is analyzed using the Digital Image Correlation technique. An extended peridynamics model is proposed for the numerical simulation, which adopts a fracture criterion based on strain energy density. The accuracy of the model is verified qualitatively and quantitatively, and the simulation results are consistent with the experiments. Overall, this study provides insights into the fracture behavior of high‐performance grouting materials in complex stress states and presents a reliable numerical simulation technique for the fracture process.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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