EMAT与MFL相结合的锅炉水冷壁管缺陷检测新系统

Shu-juan Wang, Pu Zhao, Zhengyang Qu, K. Wang
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引用次数: 3

摘要

水冷壁管作为锅炉的主要部件,在危险环境下运行,可能会导致严重的锅炉事故,引起水冷壁管的失效。因此,对水冷壁管缺陷进行全面检测是非常必要的。然而,单一的传统无损检测方法在识别不同类型缺陷的能力方面受到限制。为了满足全尺寸检测的要求,本文采用电磁声换能器(EMAT)和漏磁(MFL)技术相结合的方法设计了一种新型检测系统。在这个新系统中,EMAT利用了用于MFL检测的水平磁场来激发超声波。在这种情况下,EMAT的激励机制不同于一般的主要基于洛伦兹力的激励机制。实验结果表明,将传感器移出管外,该系统可以有效地测量残余壁厚,识别针孔、周向裂纹等不同类型的缺陷。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A New System for Defects Inspection of Boiler Water Wall Tubes Using a Combination of EMAT and MFL
As the main part of the boiler, the water wall tube which runs on hazardous environment may lead to serious boiler accidents, causing of the tubes’ failure. For this reason, inspecting the defects on the water wall tube comprehensively is extremely required. However, single traditional NDT inspection method is limited in terms of the ability of identifying different kinds of defects. In order to meet the requirement of full-scale inspection, in this paper, a new system is designed using a combination of the electromagnetic acoustic transducer (EMAT) and the magnetic flux leakage (MFL) technology. In this new system, EMAT takes advantage of the horizontal magnetic field that is used for MFL detection to excite the ultrasound. Under this circumstance, the excitation mechanism of the EMAT is different from the general mechanism that is mainly based on the Lorentz-force. After experiment, the new system can effectively measure the remaining wall thickness and identify different kinds of defects including pinholes and circumferential cracks with the sensor being moved outside the tubes.
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