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Pipeline Inspection Gauge’s Velocity Simulation Based on Pressure Differential Using Artificial Neural Networks

机译:基于人工神经网络的压差管道检测仪速度模拟

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摘要

Industrial pipelines must be inspected to detect typical failures, such as obstructions and deformations, during their lifetime. In the petroleum industry, the most used non-destructive technique to inspect buried pipelines is pigging. This technique consists of launching a Pipeline Inspection Gauge (PIG) inside the pipeline, which is driven by the pressure differential produced by fluid flow. The purpose of this work is to study the application of artificial neural networks to calculate the PIG’s velocity based on the pressure differential. We launch a prototype PIG inside a testing pipeline, where this PIG gathers velocity data from an odometer-based system, while a supervisory system gathers pressure data from the testing pipeline. Then we train a Multilayer Perceptron (MLP) and a Nonlinear Autoregressive Network with eXogenous Inputs (NARX) network with the gathered data to predict velocity. The results suggest it is possible to use a neural network to model the PIG’s velocity from pressure differential measurements. Our method is a new approach to the typical speed measurements based only on odometer, since the odometer is prone to fail and present poor results under some circumstances. Moreover, it can be used to provide redundancy, improving reliability of data obtained during the test.
机译:必须检查工业管道,以检测其使用寿命期间的典型故障,例如障碍物和变形。在石油工业中,最常用的无损检测管道技术是清管。该技术包括在管道内部启动管道检查仪表(PIG),该仪表由流体流动产生的压差驱动。这项工作的目的是研究人工神经网络基于压力差计算PIG速度的应用。我们在测试管道内启动了一个PIG原型,该PIG从基于里程表的系统中收集速度数据,而监控系统则从测试管道中收集压力数据。然后,我们使用收集的数据训练多层感知器(MLP)和带有外源输入的非线性自回归网络(NARX)网络,以预测速度。结果表明,可以使用神经网络通过压力差测量对PIG的速度进行建模。我们的方法是一种仅基于里程表进行典型速度测量的新方法,因为里程表在某些情况下容易出现故障并显示不良结果。此外,它可用于提供冗余,从而提高测试期间获得的数据的可靠性。

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