首页> 外文会议>ASME(American Society of Mechanical Engineers) Pressure Vessels and Piping Conference vol.5; 20050717-21; Denver,CO(US) >MODELING LEAKAGE IN A FUEL TRANSFER PIPELINE USING COMPUTATIONAL FLUID DYNAMICS TECHNIQUES
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MODELING LEAKAGE IN A FUEL TRANSFER PIPELINE USING COMPUTATIONAL FLUID DYNAMICS TECHNIQUES

机译:利用计算流体动力学技术模拟燃油输送管道的泄漏

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Stress Engineering Services, Inc. (SES) performed an assessment of leaks for an insurance company that occurred in a fuel transfer pipeline at a tank storage facility. Of specific interest were the duration and timing of the leaks, which occurred from a 30 foot section that entered an earthen containment berm. It was originally estimated that 28,900 gallons of gasoline and ethanol leaked periodically from two (2) pin holes in the pipeline during a two month period. Early analysis efforts were not able to estimate the conditions that were necessary to cause the leaking fluid to break through the surface of the earthen berm (a phenomenon known as daylighling). Consequently, SES performed a more rigorous investigation to determine what conditions were required to produce daylighting, the significance of which involved quantifying the estimates of leak duration and the petroleum volumes. This effort integrated assumptions and data from prior analyses to assess the effects of time-dependency using computational fluid dynamics (CFD) modeling techniques. The intent was to take the existing calculations and provide a more technically-defensible model to predict the timing and volume released using reasonable conditions. SES used soil permeability and actual pipe pressure data to simulate the pipeline leak and soil conditions. The results of the CFD analysis showed that it is possible for daylighting to occur within a two-month period. However, a specific combination of conditions associated with leak rates, leak duration, and soil permeability are required to generate daylighting in a relatively short period of time. The predominant observation is that there must be extended periods of continuous leaking involving leak rates of sufficient magnitude. The significance of this work is that it presents a proven analytical method for modeling leaks in pipelines and addressing the effects of specific variables on the amount of released products and the time required to achieve specific leak volumes.
机译:Stress Engineering Services,Inc.(SES)对一家保险公司的泄漏评估进行了评估,该泄漏发生在储罐设施的燃料传输管道中。特别令人关注的是泄漏的持续时间和时间,泄漏发生在30英尺长的部分,进入了土制安全壳。最初估计,在两个月的时间内,有28,900加仑汽油和乙醇从管道上的两(2)个针孔中定期泄漏。早期的分析工作无法估算导致泄漏的流体冲破土质护堤表面的必要条件(这种现象被称为“昼夜滑行”)。因此,SES进行了更严格的调查,以确定产生采光所需的条件,其重要性涉及量化泄漏持续时间和石油量的估计值。这项工作整合了来自先前分析的假设和数据,以使用计算流体力学(CFD)建模技术评估时间依赖性的影响。目的是采用现有的计算,并提供一个技术上更可辩护的模型,以在合理的条件下预测投放的时间和数量。 SES使用土壤渗透率和实际管道压力数据来模拟管道泄漏和土壤状况。 CFD分析的结果表明,有可能在两个月内发生采光。但是,需要与泄漏率,泄漏持续时间和土壤渗透性相关的条件的特定组合,以在相对较短的时间内产生日光。主要观察结果是,必须有连续的泄漏持续时间较长,且泄漏率应足够大。这项工作的意义在于,它提供了一种行之有效的分析方法,可用于建模管道泄漏并解决特定变量对释放产品量的影响以及达到特定泄漏量所需的时间。

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