Modeling the effect of backfill on dynamic fracture propagation in steel pipelines

IF 4.8 Q2 ENERGY & FUELS
Chris Bassindale , Xin Wang , William R. Tyson , Su Xu
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引用次数: 1

Abstract

In this paper, dynamic ductile fracture propagation simulations were conducted to study the use of smoothed particle hydrodynamics (SPH) for modeling the effects of backfill in pipeline burst simulations.  The effect of SPH parameters on fracture velocity was studied using the Battelle Two-Curve Method (BTCM) approach of decoupling mechanics and gas decompression but characterizing propagation toughness by crack tip opening angle (CTOA) rather than Charpy absorbed energy (CVN).  The backfilled pipe model was developed and studied using the commercial finite element code ABAQUS 2017.  Ductile fracture propagation was simulated using a shell based constant CTOA model.  The current study examined the numerical aspects of applying SPH through comparing results with literature.  The effects of particle size, various backfill material properties, and backfill depth on the fracture velocity were examined.  It was found that the particle size had a minor effect on the fracture velocity and should be selected in proportion to the diameter of the pipe being examined.  The numerical study showed that increasing the density and shear modulus of the backfill material resulted in a reduction of the fracture velocity.  The effect of backfill depth up to 1.4 m was also examined numerically and found to have little effect on the fracture velocity, agreeing well with literature.  The present study illustrates the sensitivity of the fracture velocity to the various parameters used in SPH models.

充填体对钢管管道动态断裂扩展影响的模拟
本文采用动态延性断裂扩展模拟方法,研究了利用光滑颗粒流体力学(SPH)模拟充填体在管道爆破模拟中的影响。采用解耦力学和气体减压的Battelle双曲线方法(BTCM)研究了SPH参数对断裂速度的影响,但用裂纹尖端张开角(CTOA)而不是Charpy吸收能(CVN)来表征扩展韧性。利用商业有限元程序ABAQUS 2017开发并研究了回填管模型。采用基于壳的恒定CTOA模型对延性断裂扩展进行了模拟。本研究通过与文献的比较研究了应用SPH的数值方面。考察了充填体粒径、各种充填材料性能和充填体深度对断裂速度的影响。研究发现,颗粒尺寸对断裂速度的影响较小,应与被测管径成比例选择。数值研究表明,随充填体密度和剪切模量的增大,充填体破裂速度减小。数值研究了1.4 m以下充填深度对断裂速度的影响,发现充填深度对断裂速度影响不大,与文献结果吻合较好。本研究说明了裂缝速度对SPH模型中使用的各种参数的敏感性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
7.50
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0.00%
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