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AN ANALYSIS MODEL AND ITS PRACTICAL APPLICATIONS IN PGE GAS TRANSMISSION PIPELINE STRENGTH TEST PROJECTS

机译:PG&E输气管道强度试验项目分析模型及其实际应用

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This article presents a complete set of calculations (referred to as Model) PG&E developed to monitor, assess and approve strength tests on insitu (pipelines currently in service) gas transmission pipelines. How the Model is used in the field, 2017 test results, and process improvements that resulted from the implementation of the model are also discussed. In compliance with CPUC directives, the Code of Federal Regulations'11 and PG&E's internal standards, PGE has performed strength tests on approximately 1,100 miles of insitu pipelines from 2011 through 2017. The model was specifically designed to assess the strength test of a closed section of gas pipeline for both leaks and ruptures. The model was originally designed for strength tests using water as the test medium and updated to accommodate nitrogen as a test medium. A future enhancement will be to incorporate a blend of Nitrogen and Helium as the test medium. The model plots the pressure-temperature and pressure-volume curves over the test duration (field test measurements) and compares them to the theoretically calculated curves. The curves are used to determine if the change in pressure is due to temperature influence or leakage. When water is the test medium, the model calculates the net corrected medium volume change from start to end of the static test period. When nitrogen is the test medium, the model calculates and analyzes net mass change of the medium by considering nitrogen under both the real gas state and the ideal gas state. By calculating restrained (buried) pipeline section and unrestrained (exposed) pipeline section separately, the model gains more accuracy. Accurate temperature measurements play a critical role in the model. The model makes it possible for engineers to monitor, analyze and direct strength tests with real-time test data. The model is also used to evaluate the pipeline fill condition on the day prior to the actual test, which resulted in fewer test restarts due to incomplete fill or temperature stabilization issues. An additional benefit is the tests were typically completed earlier in the day. The model is utilized on all PG&E insitu pipeline strength projects today. Authors also provide improvement suggestions of this model in future application.
机译:本文介绍了PG&E的完整计算集(称为模型),旨在监测,评估和批准就地(当前正在使用的管道)输气管道的强度测试。还讨论了该模型在现场的使用方式,2017年的测试结果以及该模型的实施带来的流程改进。为了遵守CPUC指令,《联邦法规》 11和PG&E的内部标准,PGE从2011年至2017年对大约1100英里的现场管道进行了强度测试。该模型专门用于评估封闭区域的强度测试。燃气管道的泄漏和破裂。该模型最初是为使用水作为测试介质的强度测试而设计的,并进行了更新以容纳氮气作为测试介质。未来的改进将是掺入氮气和氦气的混合物作为测试介质。该模型绘制了测试期间(现场测试测量)的压力-温度和压力-体积曲线,并将它们与理论计算的曲线进行比较。曲线用于确定压力变化是否是由于温度影响或泄漏引起的。当水是测试介质时,模型将计算从静态测试周期开始到结束的净校正介质体积变化。当氮气为测试介质时,该模型通过考虑实际气体状态和理想气体状态下的氮气来计算和分析介质的净质量变化。通过分别计算约束(埋藏)管道部分和未约束(裸露)管道部分,该模型可获得更高的准确性。准确的温度测量在模型中起着至关重要的作用。该模型使工程师可以使用实时测试数据来监视,分析和指导强度测试。该模型还用于评估实际测试前一天的管道填充状况,由于填充不完全或温度稳定问题,导致重新启动的次数较少。另一个好处是测试通常在一天中的早些时候完成。该模型已在当今所有PG&E现场管道强度项目中使用。作者还提供了对该模型的改进建议,以供将来应用。

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