Modelling of Sub-Sea Gas Transmission Pipeline to Predict Insulation Failure

Ode Samson Chinedu, O. Emmanuel, Ekeinde Evelyn Bose, Dosunmu Adewale
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引用次数: 3

Abstract

Thermally insulated subsea production and transmission systems are becoming more common in deep-water/ offshore operations. Premature failures of the insulation materials for these gas transmission pipelines have had significant operational impacts. The ability to timely detect these failures within these systems has been a very difficult task for the oil and gas industries. Thus, periodic survey of the subsea transmission systems is the present practice. In addition, a new technology called optic-fibre Distributed Temperature Sensing system (DTS) is now being used to monitor subsea transmission pipeline temperatures; but this technology is rather very expensive. However, this study proposed a model which will not only predict premature insulation failure in these transmission pipelines; but will also predict the section of the transmission line where the failure had occurred. From this study, we deduced that in gas pipeline flow, exit temperature for the system increases exponentially with the distance of insulation failure and approaches the normal operation if the failure occurs towards the exit of the gas pipe. This model can also be used to check the readings of an optic-fibre distributed temperature sensors. After developing this model using classical visual basic and excel package, the model was validated by cross plotting the normal temperature profiles of the model and field data; and R-factor of 0.967 was obtained. Analysis of the results obtained from the model showed that insulation failure in subsea gas transmission pipeline can be predicted on a real-time basis by mere reading of the arrival temperature of a gas transmission line.
海底输气管道保温失效预测建模
在深水/海上作业中,隔热海底生产和传输系统变得越来越普遍。这些输气管道保温材料的过早失效已经对运行产生了重大影响。对于油气行业来说,及时检测这些系统中的故障是一项非常困难的任务。因此,目前的做法是对海底传输系统进行定期检查。此外,一种名为光纤分布式温度传感系统(DTS)的新技术现在被用于监测海底传输管道的温度;但这项技术相当昂贵。然而,本研究提出的模型不仅可以预测这些输送管道的过早绝缘失效;但也可以预测故障发生的输电线路部分。通过研究,我们推导出在燃气管道流动中,系统出口温度随着保温失效的距离呈指数增长,当保温失效发生在燃气管道出口时,系统出口温度趋于正常运行。该模型也可用于检查光纤分布式温度传感器的读数。利用经典的visual basic和excel软件包对模型进行了开发,并将模型的常温剖面图与现场数据进行交叉比对,对模型进行了验证;r因子为0.967。对模型结果的分析表明,仅通过读取输气管线到达温度就可以实时预测海底输气管道的保温失效。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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