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A study of magnetostriction mechanism of EMAT on low-carbon steel at high temperature

机译:高温低碳钢磁致伸缩机制研究

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摘要

The Electromagnetic acoustic transducer (EMAT) is used in a number of non-destructive testing applications [1-5]. The EMAT's operation is principally based on one of two mechanisms; the Lorenz force and magnetostriction mechanism [6-9]. The magnetostriction mechanism of an EMAT at elevated temperatures is reported in this paper. An optimized model is developed to describe the magnetostriction of polycrystalline iron, which is based on Brown's magnetic domain wall movement model [10] and Lees magnetic domain rotation model [11]. The magnetostriction curves of polycrystalline iron for the temperature range 300 K-900 K are predicted, which reveal that the saturated magnetostriction coefficient changes from - 4 x 10(-6) to approximately 12 x 10(-6). A non-linear, isotropic magnetostriction, finite element model is developed to simulate the Lamb waves generated in 4 mm thick steel plate by an EMAT, and the results show that the amplitude of S0 Lamb wave is greatly enhanced with an increase of temperature. In the experiments, a magnetostriction-based EMAT is used to generate Lamb waves in 4 mm thick steel plate. Experimental measurements verify that the contribution of the magnetostriction mechanism on steel rises as temperature increases in the range 298 K-873 K, while the contribution to ultrasonic generation from the Lorenz force mechanism decreases, as expected.
机译:电磁声换能器(EMAT)用于许多非破坏性测试应用[1-5]。 EMAT的操作主要基于两个机制之一; Lorenz力和磁致伸缩机制[6-9]。本文报道了EMAT在升高温度下的磁致伸缩机制。开发了一种优化的模型来描述多晶铁的磁致伸缩,基于棕色的磁畴壁运动模型[10]和LEE磁畴旋转模型[11]。预测温度范围300k-900k的多晶铁的磁致伸缩曲线,这表明饱和磁致伸缩系数从-4×10(-6)变为约12×10(-6)。开发出非线性,各向同性的磁致伸缩,有限元模型以通过EMAT模拟在4mm厚钢板中产生的羊羔波,结果表明,随着温度的增加,S0羊棒波的幅度大大提高。在实验中,基于磁致伸缩的EMAT用于在4mm厚的钢板中产生羊毛。实验测量验证磁致伸缩机制对钢上的贡献随着温度的增加而升高,而来自Lorenz力机构的超声产生的贡献降低,如预期的那样。

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