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Characterisation of ferritic stainless steel by Barkhausen techniques

机译:Barkhausen技术表征铁素体不锈钢

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Magneto-acoustic emission (MAE) and magnetic Barkhausen noise (MEN) sensing techniques were developed and employed to characterise plastically deformed and heat-treated AISI 430 ferritic stainless steel samples. These results have been compared to the mechanical hardness, coercivity and residual stress of the samples. MAE and MBN were shown to decrease with increasing permanent material deformation. It was found that the inverse of MAE (absolute energy) and MBN (RMS) are linearly proportional to hardness. With increased deformation, the resultant change in dislocation density was found to effect material coercivity. It has been shown that the inverse of MAE absolute energy and MBN have an exponential relationship to the change in material coercivity. The results are explained in terms of the different mechanisms that effect dislocation-domain wall interactions. A new measurement parameter has been developed for microstructural characterisation called MAE absolute energy and has proved to be a useful quantitative method in MAE waveform measurement.
机译:磁声发射(MAE)和巴克豪森磁噪声(MEN)传感技术得到了开发,并用于表征塑性变形和热处理过的AISI 430铁素体不锈钢样品。将这些结果与样品的机械硬度,矫顽力和残余应力进行了比较。研究表明,MAE和MBN随着永久材料变形的增加而降低。发现MAE(绝对能量)和MBN(RMS)的倒数与硬度成线性比例。随着变形的增加,发现位错密度的最终变化会影响材料的矫顽力。研究表明,MAE绝对能量和MBN的倒数与材料矫顽力的变化呈指数关系。根据影响位错域壁相互作用的不同机制来解释结果。已经开发出用于微结构表征的称为MAE绝对能量的新测量参数,并已证明是在MAE波形测量中有用的定量方法。

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