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http://dx.doi.org/10.12989/scs.2019.32.3.313

Ratcheting boundary of pressurized pipe under reversed bending  

Chen, Xiaohui (School of Control Engineering, Northeastern University)
Chen, Xu (School of Mechanical Engineering & Automation, School of Tianjin University)
Li, Zifeng (School of Mechanical Engineering & Automation, Yanshan University)
Publication Information
Steel and Composite Structures / v.32, no.3, 2019 , pp. 313-323 More about this Journal
Abstract
Ratcheting boundary is firstly determined by experiment, elastic-plastic finite element analysis combined with C-TDF and linear matching method, which is compared with ASME/KTA and RCC-MR. Moreover, based on elastic modulus adjustment procedure, a novel method is proposed to predict the ratcheting boundary for a pressurized pipe subjected to constant internal pressure and cyclic bending loading. Comparison of ratcheting boundary of elbow pipe determined by the proposed method, elastic-plastic finite element analysis combined with C-TDF and linear matching method, which indicates that the predicted results of the proposed method are in well agreement with those of linear matching method.
Keywords
pressurized pipe; finite element analysis; constitutive model; ratcheting boundary; elastic modulus adjustment procedure;
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Times Cited By KSCI : 2  (Citation Analysis)
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