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Failure analysis based on J-integral values: A case study of hydrogen blistering defect

机译:基于J积分值的失效分析:以氢起泡缺陷为例

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摘要

Hydrogen blistering defect, which is one of the common material degradation types caused by hydrogen with high-pressure, is paid more and more attention in the vessel safety research field. This article proposed a procedure of failure analysis to one of the liquefied natural gas tank with defects of hydrogen blistering, J-integral value, which was calculated by using finite element method, was used as a failure criterion for ensuring no crack growth in service. At first, based on the inspected database, a three-dimensional finite element analysis was performed by using Abaqus code to analyse the stress distribution and calculate/-integral values of a crack tip through direct definition and stress intensity factor. Then, the calculated/-integral values were compared with a critical value of the material to evaluate the propagative tendency of the crack under static loading. The results indicated that the existing crack in hydrogen blistering defect was likely to propagate in design and the actual operating pressure, thus the liquefied natural gas tank should be out of service timely. However, it may be used continuously with proper monitoring tools when the operating pressure is less than 0.5 MPa. The example shows that failure analysis based on J-integral values will be useful for engineering application with the advantage of time-saver, low cost and high reliability.
机译:氢起泡缺陷是高压氢引起的常见材料降解类型之一,在船舶安全研究领域越来越受到重视。提出了对其中一个氢气起泡缺陷的液化天然气罐进行故障分析的程序,采用有限元法计算出J积分值,作为保证运行中无裂纹增长的失效准则。首先,基于所检查的数据库,使用Abaqus代码执行三维有限元分析,以通过直接定义和应力强度因子分析裂纹尖端的应力分布并计算/积分值。然后,将计算的/积分值与材料的临界值进行比较,以评估在静态载荷下裂纹的扩展趋势。结果表明,现有的氢气起泡缺陷裂纹可能会在设计和实际工作压力下传播,因此液化天然气罐应及时停用。但是,当工作压力小于0.5 MPa时,可以与适当的监测工具连续使用。该示例表明,基于J积分值的故障分析具有节省时间,低成本和高可靠性的优势,将对工程应用非常有用。

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