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基于哈尔巴赫阵列的高温电磁超声周向导波传感器研究

Research on a High-Temperature Electromagnetic Ultrasonic Circumferential Guided Wave Sensor Based on Halbach Array.

作者信息

Li Yuanxin, Zhou Jinjie, Wen Jiabo, Wang Zehao, Li Liu

机构信息

School of Mechanical Engineering, North University of China, Taiyuan 030051, China.

Shanxi Key Laboratory of Intelligent Equipment Technology in Harsh Environment, Taiyuan 030051, China.

出版信息

Micromachines (Basel). 2025 Mar 24;16(4):367. doi: 10.3390/mi16040367.

Abstract

High-temperature pipelines, as core facilities in the fields of petrochemical and power, are constantly exposed to extreme working conditions ranging from 450 to 600 °C, facing risks of stress corrosion, creep damage, and other defects. Traditional shutdown inspections are time-consuming and costly. Meanwhile, existing electromagnetic acoustic transducers (EMATs) are restricted by their high-temperature tolerance (≤500 °C) and short-term stability (effective working duration < 5 min). This paper proposes a high-frequency circumferential guided wave (CLamb wave) EMAT based on a Halbach permanent magnet array. Through magnetic circuit optimization (Halbach array) and multi-layer insulation design, it enables continuous and stable detection on the surface of 600 °C pipelines for 10 min. The simulations revealed that the Halbach array increased the magnetic flux density by 1.4 times and the total displacement amplitude by 2 times at a magnet's large lift-off (9 mm). The experimental results show that the internal temperature of the sensor remained stable below 167 °C at 600 °C. It was capable of detecting the smallest defect of a φ3 mm half-hole (depth half of the wall thickness), with a signal attenuation rate of only 0.32%/min. The signal amplitude of Q235 pipelines under high-temperature short-term detection (<5 min) was 1.5 times higher than that at room temperature. However, material degradation under high temperature led to insufficient long-term stability. This study breaks through the bottleneck of long-term detection of high-temperature EMATs, providing a new scheme for efficient online detection of high-temperature pipelines.

摘要

高温管道作为石化和电力领域的核心设施,经常暴露在450至600°C的极端工作条件下,面临应力腐蚀、蠕变损伤等缺陷风险。传统的停机检查既耗时又昂贵。同时,现有的电磁超声换能器(EMAT)受其高温耐受性(≤500°C)和短期稳定性(有效工作时长<5分钟)的限制。本文提出了一种基于哈尔巴赫永磁阵列的高频周向导波(CLamb波)EMAT。通过磁路优化(哈尔巴赫阵列)和多层绝缘设计,它能够在600°C管道表面连续稳定检测10分钟。模拟结果表明,在磁体大提离(9毫米)时,哈尔巴赫阵列使磁通密度提高了1.4倍,总位移幅值提高了2倍。实验结果表明,传感器在600°C时内部温度保持在167°C以下稳定。它能够检测到最小为φ3毫米半孔(深度为壁厚的一半)的缺陷,信号衰减率仅为0.32%/分钟。Q235管道在高温短期检测(<5分钟)下的信号幅值比室温下高1.5倍。然而,高温下材料退化导致长期稳定性不足。本研究突破了高温EMAT长期检测的瓶颈,为高温管道高效在线检测提供了新方案。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1cf5/12029705/55a0aa92cc44/micromachines-16-00367-g001.jpg

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