Monitoring elastoplastic deformation in ductile metallic materials using sideband peak count - index (SPC-I) technique

Guangdong Zhang, Xiongbing Li, Tianji Li, T. Kundu
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Abstract

Ductile metallic materials such as aluminum alloy, brass and steel are widely used in engineering structures. Monitoring elastoplastic deformation in these materials is important for structural health monitoring (SHM) for ensuring the safety of structures made of metallic materials. This paper presents a newly developed and promising nonlinear ultrasonic (NLU) technique called Sideband Peak Count - Index (or SPC-I) for monitoring the early stages of elastoplastic deformation in ductile metallic alloy Al6061. Experimental results presented in this paper shows that in the elastic range of the Al6061 SPC-I values show slight changes may be due to the inherent inhomogeneities (imperfect grain boundaries or dislocations at the grain boundaries under loadings) of Al6061. Then the SPC-I value changes rapidly as the material enters the plastic range zone. Compared to the linear ultrasonic (LU) parameters (wave velocity and attenuation changes) the SPC-I shows noticeable advantage (higher sensitivity) for monitoring the early stages of the elastoplastic deformation in these ductile metallic specimens investigated in this study. It is concluded that SPC-I technique is useful for monitoring deformations in ductile metallic materials, especially in their plastic zone. This work extends the applicability of the SPC-I technique for monitoring elastoplastic deformations in metallic specimens that has not been reported in earlier works and can provide some guidelines for SHM related to elastoplastic deformation in metallic structures.
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利用边带峰值计数指数(SPC-I)技术监测延性金属材料的弹塑性变形
延展性金属材料如铝合金、黄铜、钢等广泛应用于工程结构中。监测这些材料的弹塑性变形对结构健康监测(SHM)具有重要意义,可以保证金属材料结构的安全。本文提出了一种最新发展的、具有发展前景的非线性超声技术——边带峰值计数指数(SPC-I),用于监测延性金属合金Al6061弹塑性变形的早期阶段。本文的实验结果表明,在Al6061的弹性范围内,SPC-I值的微小变化可能是由于Al6061固有的不均匀性(不完善的晶界或加载时晶界处的位错)。然后,随着材料进入塑性范围区,SPC-I值迅速变化。与线性超声(LU)参数(波速和衰减变化)相比,SPC-I在监测这些延性金属试样弹塑性变形的早期阶段显示出明显的优势(更高的灵敏度)。结果表明,SPC-I技术可用于监测韧性金属材料的变形,特别是塑性区的变形。这项工作扩展了SPC-I技术在监测金属试样弹塑性变形方面的适用性,这在以前的工作中没有报道过,并且可以为与金属结构弹塑性变形相关的SHM提供一些指导。
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CiteScore
3.80
自引率
9.10%
发文量
25
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