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COMPUTATIONAL INVESTIGATION OF COMPOSITE REPAIR MATERIALS PREVENTIVE EFFECTS ON WRINKLE BENDS FATIGUE FAILURE

机译:复合修复材料的计算调查预防皱纹弯曲疲劳失效

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Wrinkle bending was a vintage technique in pipeline construction for aligning pipe sections. However, this process causes severe geometry changes over the pipeline structure and thus stress concentrations are developed. These stress concentrations have the potential to cause catastrophic pipeline failure due to internal pressure cycles, seismic effects and temperature changes. Different techniques have been studied and examined to mitigate the destructive effects that wrinkle bends pose to pipeline integrity. Composite repair methods and materials have been proven as one of the most reliable and efficient technologies to repair different pipeline defects. Designing an economical composite repair for a wrinkled pipe with proper performance requires precise design considerations. Finding an economical balance can be achieved multiple ways, such as performing experimental tests or applying analytical formulas and procedures. Each of these two methods has its own drawbacks: cost, errors and time can prevent accurate experimental tests and poor accuracy. Applicability of suggested analytical design equations can render certain analyses useless. To technically and economically improve the design and application processes of composite repair systems for wrinkle bends, elastic finite element analysis (FEA) was performed. The FEA analysis was conducted to study the effects of applying composite repairs on the elastic stress concentration factor of the wrinkle section of a Grade X52 carbon steel pipe. Moreover, a nonlinear kinematic hardening material model was developed and calibrated for this same steel. An elastic-plastic FEA was implemented to evaluate the stress-strain response of a wrinkled pipe subjected to a cyclic bending loading and constant internal pressure. Different strain based fatigue life estimation approaches were used to estimate the fatigue life enhancement achieved by utilizing a proprietary composite repair installation method.
机译:皱纹弯曲是管道结构中的复古技术,用于对准管道部分。然而,该过程导致对管道结构的严重几何形状改变,因此开发应力浓度。由于内部压力循环,地震效应和温度变化,这些应力浓度具有造成灾难性管道故障的可能性。已经研究了不同的技术,并检查了降低皱纹弯曲对管道完整性的破坏性效果。复合修复方法和材料已被证明是最可靠和最有效的技术之一,以修复不同的管道缺陷。设计具有适当性能的皱纹管道的经济综合修复需要精确的设计考虑因素。找到经济的平衡可以多种方式实现,例如进行实验测试或应用分析公式和程序。这两种方法中的每一个都有自己的缺点:成本,错误和时间可以防止准确的实验测试和差的准确性。建议的分析设计方程的适用性可能会使某些分析无用。在技​​术上和经济上改善复合修复系统的设计和应用过程,用于皱纹弯曲,进行弹性有限元分析(FEA)。进行了FEA分析,研究了应用复合材料修复对X52级碳钢管褶皱截面弹性应力集中因子的影响。此外,为该相同的钢开发并校准了非线性运动硬化材料模型。实施弹性塑料FEA以评估经过循环弯曲负荷和恒定内压的皱纹管的应力 - 应变响应。基于菌株的疲劳寿命估算方法用于估计通过利用专有的复合修复安装方法实现疲劳寿命增强。

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