首页> 外文会议>ASME International Pipeline Conference >EFFECT OF GEOMETRY, MATERIAL AND PRESSURE VARIABILITY ON STRAIN AND STRESS FIELDS IN DENTED PIPELINES UNDER STATIC AND CYCLIC PRESSURE LOADING USING PROBABILITY ANALYSIS
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EFFECT OF GEOMETRY, MATERIAL AND PRESSURE VARIABILITY ON STRAIN AND STRESS FIELDS IN DENTED PIPELINES UNDER STATIC AND CYCLIC PRESSURE LOADING USING PROBABILITY ANALYSIS

机译:几何,材料和压力变异性对静态循环压力损伤管道菌株和应力场的影响利用概率分析

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Mechanical damage in transportation pipelines is a threat to its structural integrity. Failure in oil and gas pipelines is catastrophic as it leads to personal fatalities, injuries, property damage, loss of production and environmental pollution. Therefore, this issue is of extreme importance to Pipeline Operators, Government and Regulatory Agencies, and local Communities. As mechanical damage can occur during the course of pipeline life due to many reasons, appropriate tools and procedures for assessment of severity is necessary. There are many parameters that affect the severity of the mechanical damage related to the pipe geometry and material properties, the defect geometry and boundary conditions, and the pipe state of strain and stress. The main objective of this paper is to investigate the effect of geometry, material and pressure variability on strain and stress fields in dented pipelines under static and cyclic pressure loading using probabilistic analysis. Most of the published literate focuses on the strain at the maximum depth for evaluation which is not always sufficient to evaluate the severity of a certain case. The validation and calibration of the base deterministic model was based on full-instrumented full-scale tests conducted by Pipeline Research Council International as part of their active program to fully characterize mechanical damage. A total of 100 cases randomly generated using Monte Carlo simulations are analyzed in the probabilistic model. The statistical distribution of output parameters and correlation between output and input variables is presented. Moreover, regression analysis is conducted to derive mathematical formulas of the output variables in terms of practically measured variables. The results can be used directly into strain based design approach. Moreover, they can be coupled with fracture mechanics to assess cracks, for which the state of stress must be known in the location of crack tip, not necessarily found in the dent peak. Furthermore, probabilities derived from the statistical distribution can be used in risk assessment.
机译:运输管道的机械损坏是对结构完整性的威胁。石油和天然气管道的失败是灾难性的,因为它导致个人死亡,伤害,财产损失,生产损失和环境污染。因此,这个问题对管道运营商,政府和监管机构以及当地社区具有极端重要性。由于由于许多原因,在管道生命过程中可能发生机械损坏,所以需要适当的工具和评估严重性的程序。存在许多参数,影响与管几何和材料特性,缺陷几何和边界条件相关的机械损坏的严重性,以及应变和应力的管道状态。本文的主要目的是研究使用概率分析在静态和循环压力负荷下静态管道损伤和应力场对应变和应力场的影响。大多数出版的识字都专注于最大深度的应变,以评估,这并不总是足以评估某种情况的严重程度。基础确定性模型的验证和校准是基于管道研究委员会国际的全面的全规模测试,作为其主动计划的一部分,以充分表征机械损坏。在概率模型中分析了使用Monte Carlo模拟随机产生的100例。提出了输出参数的统计分布和输出和输入变量之间的相关性。此外,在实际测量的变量方面,进行回归分析以导出输出变量的数学公式。结果可直接用于基于应变的设计方法。此外,它们可以与断裂力学耦合以评估裂缝,其应力状态必须在裂纹尖端的位置中已知,不一定在凹凸峰处发现。此外,源自统计分布的概率可用于风险评估。

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