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Leakage Detection in Pipeline Based on Second Order Extended Kalman Filter Observer

机译:基于二阶扩展卡尔曼滤波器观察器的管道泄漏检测

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摘要

In this paper, a new technique is proposed in order to detect, locate, as well as approximate the fluid leaks in a straight pipeline (without branching) by taking into consideration the pressure and flow evaluations at the ends of pipeline on the basis of data fusion from two methods: a steady-state approximation and Second-order Extended Kalman Filter (SEKF). The SEKF is on the basis of the second-order Taylor expansion of a nonlinear system unlike to the more popular First-order Extended Kalman Filter (FEKF). The suggested technique in this paper deals with just pressure head and flow rate evaluations at the ends of pipeline that has intrinsic sensor as well as process noise. A simulation example is given for demonstrating the validity of the proposed technique. It shows that the extended Kalman particle filter algorithm on the basis of the second-order Taylor expansion is effective and performs well in decreasing systematic deviations as well as running time.
机译:在本文中,提出了一种新技术,以便在基于数据的基础上考虑管道的末端的压力和流量评估,以检测,定位,找到,定位,定位,以及近似于直线管道(无需分支)的流体泄漏两种方法的融合:稳态近似和二阶扩展卡尔曼滤波器(SEKF)。 SEKF是在非线性系统的二阶泰勒扩展的基础上,与更受欢迎的一阶扩展卡尔曼滤波器(FEKF)为基础。本文的建议技术涉及管道末端的压力头和流量评估,具有内在传感器以及过程噪声。给出了仿真示例以证明所提出的技术的有效性。它表明,扩展卡尔曼粒子滤波器算法基于二阶泰勒膨胀是有效的,并且在减少系统偏差以及运行时间时表现良好。

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