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超声脉冲发生器用于自动管道检测的改进。

Improvement of Ultrasonic Pulse Generator for Automatic Pipeline Inspection.

机构信息

Center for Engineering and Industrial Development (CIDESI), Santiago de Queretaro, Queretaro 76125, Mexico.

Academic Group of Automation and Control, Technological University of the State of Queretaro (UTEQ), Santiago de Queretaro, Queretaro 76148, Mexico.

出版信息

Sensors (Basel). 2018 Sep 5;18(9):2950. doi: 10.3390/s18092950.

Abstract

This paper presents the improvement of an ultrasonic pulse generator for a pipeline inspection gauge (PIG), which uses 64 transducers for inspecting distances up to 100 km with an axial resolution fixed at 3 mm and variable speeds between 0 and 2 m/s. An ultrasonic pulse generator is composed of a high-voltage (HV) MOSFETs, driver logic and an HV power supply. We used a DC-HV DC converter device as the HV power supply because it reduces the size of the ultrasound system considerably. However, pipeline geometry and inspection effects such as hammer and shock cause a variable pulse repetition frequency (PRF), producing voltage drops, poor quality of the HV pulse generated, failures in the dimensioning of defects and damage to devices by over-voltage. Our improvement is to implement a control scheme to maintain the high quality of the HV regardless of the variable PRF. To achieve this, we characterized three transfer functions of the DC-HV DC converter, varying the connected load to 10%, 45% and 80%. For the characterization, we used the least squares technique, considering an autoregressive exogenous (ARX) model. Later, we compared three control schemes: (1) proportional-integral-derivative (PID) tuned by simultaneous optimization of several responses (SOSR), (2) PID tuned by a neural network (NN) and (3) PI tuned by the analytical design method (ADM). The metrics used to compare the control schemes were the recovery time, the maximum over-voltage and the excess energy when the shock and hammer effects happen to occur. Finally, to verify the improvement of the HV pulser, we compared the ultrasonic pulses generated for various frequencies and amplitudes using the pulse generator with and without the control scheme.

摘要

本文提出了一种用于管道检测规(PIG)的超声脉冲发生器的改进,该发生器使用 64 个换能器,可检测长达 100 公里的距离,轴向分辨率固定为 3 毫米,速度可在 0 至 2 米/秒之间变化。超声脉冲发生器由高压(HV)MOSFET、驱动逻辑和 HV 电源组成。我们使用直流-高压直流转换器作为 HV 电源,因为它可以大大减小超声系统的尺寸。然而,管道几何形状和检测效果(如冲击和敲击)会导致脉冲重复频率(PRF)发生变化,从而产生电压降、生成的 HV 脉冲质量差、缺陷尺寸测量失败以及设备因过电压而损坏。我们的改进是实施一种控制方案,以保持 HV 的高质量,而不受可变 PRF 的影响。为了实现这一目标,我们对直流-高压直流转换器的三个传递函数进行了特征化,将连接的负载分别变化为 10%、45%和 80%。在特征化过程中,我们使用了最小二乘法,并考虑了自回归外生(ARX)模型。之后,我们比较了三种控制方案:(1)通过同时优化多个响应(SOSR)进行比例-积分-微分(PID)调谐,(2)通过神经网络(NN)进行 PID 调谐,(3)通过解析设计方法(ADM)进行 PI 调谐。用于比较控制方案的指标是恢复时间、最大过电压和冲击和敲击效果发生时的过剩能量。最后,为了验证 HV 脉冲发生器的改进,我们比较了使用和不使用控制方案的脉冲发生器生成的各种频率和幅度的超声脉冲。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f5da/6163491/17a66baa9942/sensors-18-02950-g001.jpg

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