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Numerical Analysis of Crack Failure of Reinforced Thermoplastic Pipe (RTP)

机译:增强热塑性塑料管(RTP)裂纹破坏的数值分析

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Composite pipeline can drastically reduce losses caused by corrosion that occurs in carbon steel pipes in the industry. Multiple numerical testing has been conducted to determine maximum stress and strain a Reinforced Thermoplastic Pipe (RTP) can withstand before hitting failure. Not many studies were done to find the maximum stress intensity a defected RTP can resist before failing. Objectives are to validate the numerical model for Reinforced Thermoplastic Pipeline (RTP) to industry standard and to analyze the maximum stress intensity of Reinforced Thermoplastic Pipes (RTP) can withstand with various size of defects under constant pressure and incremental internal pressure with constant crack defect. Results were, under constant internal pressure of 6 MPa, the pipe will fail with a defect length of 2.05mm and at constant design pressure of 10 MPa, the pipe will fail with a defect length of 0.3mm. At constant crack depth and width, crack tip propagation (failure) is more dependent on internal pressure rather than crack length. However, when comparing the severity of crack depth to internal pressure, crack depth is the major cause of failure.
机译:复合管道可以大大减少工业中碳钢管腐蚀引起的损失。已经进行了多次数值测试,以确定在碰到故障之前,增强的热塑性塑料管(RTP)可以承受的最大应力和应变。没有太多的研究来发现有缺陷的RTP在失效之前可以抵抗的最大应力强度。目的是验证增强热塑性管道(RTP)的数值模型是否符合行业标准,并分析增强热塑性管道(RTP)在恒定压力下能承受各种尺寸缺陷的最大应力强度,以及在恒定裂纹缺陷下能承受的内部增量压力。结果是,在恒定6 MPa的内部压力下,管子将以2.05mm的缺陷长度失效;在恒定设计压力为10 MPa的情况下,管子将以0.3mm的缺陷长度失效。在恒定的裂纹深度和宽度下,裂纹尖端的扩展(失效)更多地取决于内部压力而不是裂纹长度。但是,当将裂纹深度与内部压力的严重程度进行比较时,裂纹深度是导致失效的主要原因。

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