Study on Numerical Simulation Method of Fracture Behavior of Pipeline Girth Weld

Author:

Qingshan Feng12,Qun Chang3,Haidong Jia4,Yi Wu4,Lianshuang Dai5,Yuguang Cao67

Affiliation:

1. PipeChina Company , Beijing 100013 , China ; , Qingdao 266580 , China

2. College of Pipeline and Civil Engineering, China University of Petroleum , Beijing 100013 , China ; , Qingdao 266580 , China

3. College of Pipeline and Civil Engineering, China University of Petroleum , Qingdao 266580 , China

4. PipeChina West Pipeline Company , Urumqi 830013 , China

5. PipeChina Company, Beijing 100013 , China

6. China University of Petroleum , Qingdao 266580 , China

7. , Qingdao 266580 , China

Abstract

Abstract The failure accidents in girth weld of pipelines occur frequently due to the combination of internal defects and external loads. However, the research on the fracture behavior of girth weld defects is relatively poor at present. To solve this problem, the cracking behavior and strain evolution law of the inner wall defects of the pipe girth weld are studied in combination with full-scale tests (FST). The constitutive and Gurson-Tvergaard-Needleman damage parameters of the pipe base metal zone, weld zone and heat-affected zone (HAZ) are calibrated through the small punch test (SPT) and single edge notch bending (SENB) test. On this basis, the welded pipe model with inner wall defects is established, and a numerical simulation method for dynamic fracture behavior based on damage mechanics is formed. The numerical simulation method is verified by FST data and theoretical calculation. The results show that the numerical results are consistent with the FST and theoretical calculation in the elastic stage, plastic stage, and fracture stage, and the error is within 10%. The novel numerical simulation method is provided as a means for the fracture behavior research of pipeline girth weld.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Safety, Risk, Reliability and Quality

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