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Modeling shallow ground temperatures around hot buried pipelines in cold regions

机译:浅地面温度建模浅层埋藏管道寒冷地区

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摘要

Transmitting fluids at high operating temperatures through buried pipelines is common in the oil and gas industry. Pipelines are insulated to maintain the fluid temperature within an operating threshold and reduce heat loss to the subsurface. In cold regions, damaged insulation around pipelines can raise ground temperatures by tens of degrees and keep ground frost free during the winter. This can lead to environmental and geotechnical issues, operational inefficiencies and, in extreme cases, pipeline failure. When supported by field data, modeling of coupled heat and water transfer in the subsurface can be used to understand baseline and disturbed ground temperatures and to design thermal remediation plans. However, simulating ground temperatures under the influence of snow cover, freeze-thaw conditions as well as a shallow heat source is challenging. This case study presents a simple and effective approach using a thermal boundary layer and a time-varying Dirichlet boundary condition to simulate these conditions with coupled vadose zone and groundwater models. The approach was validated by comparing the model results to a temperature survey along a boiler feed water pipeline corridor in northern Alberta, Canada. Model results were used to better understand the influence of high-temperature pipelines on subsurface thermal regimes, to help design a ground temperature monitoring program, and successfully identify and remediate pipeline insulation damage.
机译:通过埋地管道在高效温度下传递流体在石油和天然气工业中是常见的。管道绝缘以保持在操作阈值内的流体温度,并将热量减少到地下。在寒冷地区,管道周围的受损绝缘可以通过几十度升高地面温度,并在冬季保持霜冻。这可以导致环境和岩土内的问题,运作效率低下,以及在极端情况下,管道故障。当通过现场数据支持时,地下耦合热量和水转印的建模可用于了解基线和受扰动的地温度并设计热修复计划。然而,在雪覆盖的影响下,冻融条件以及浅热源的模拟温度是具有挑战性的。这种情况研究呈现了使用热边界层和时变的Dirichlet边界条件的简单有效的方法,以模拟具有耦合的Vadose区和地下水模型的这些条件。通过将模型结果与加拿大北部北部锅炉饲料水管道走廊进行比较来验证该方法。模型结果用于更好地了解高温管道对地下热方案的影响,帮助设计地温监测程序,并成功识别和修复管道绝缘损坏。

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