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Modelling Crack Propagation and Arrest in Gas Pipes Using CTOA Criterion

机译:利用CTOA标准建模裂纹繁殖与燃气管逮捕

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In this paper, the resistance to ductile crack extension is discussed in terms of Charpy or DWTT energy, R curve and CTOA. Methods used in numerical simulations of ductile crack extension are presented including the cohesive zone model, a critical damage with the Gurson-Tvergaard-Needleman model, critical damage given by SRDD model or a critical crack opening angle (CTOA). Selection of CTOA is based on the reduced number of parameters and the low sensitivity to pipe geometry. Numerical simulations of crack propagation and arrest based on CTOA, use the node release technique, which is described. Results on a pipe made in steel API L X65 are presented. The influence of geometrical and material parameters on crack arrest and velocity using this technique are presented. Finally, an arrest pressure equation similar to the BTCM's equation but including critical CTOA is introduced. For the same decompression wave pressure, the crack propagation velocity is inversely proportional to the resistance to crack extension of the material, which is the dominant parameter. The crack velocity versus decompression is expressed by a CTOA_c function of resistance to crack extension.
机译:在本文中,根据夏比或DWTT能量,R曲线和CTOA讨论了对延展性裂缝延伸的抵抗力。介绍了延展区裂缝延伸的数值模拟中的方法,包括粘性区域模型,对Gurson-Tvergaard-Calleleman模型的临界损坏,SRDD模型或临界裂缝开启角度(CTOA)给出的临界损坏。 CTOA的选择是基于减少的参数数量和对管几何形状的低灵敏度。基于CTOA的裂纹传播和逮捕的数值模拟,描述了所述节点释放技术。提出了钢铁API L X65制造的管道的结果。介绍了几何和材料参数对使用该技术的裂缝停滞和速度的影响。最后,介绍了类似于BTCM方程但包括关键CTOA的逮捕压力方程。对于相同的减压波压力,裂缝传播速度与抗裂纹延伸的抗裂纹延伸成反比,这是优势参数。裂缝速度与解压缩是由CTOA_C抗性裂缝延伸的函数表示的。

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