A Model for Material Strengthening under the Combined Effect of Cavitation-Bubble Collapse and Al2O3 Particles, and Its Test Verification

Liu Lei, Huafeng Guo, P. Yu
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引用次数: 1

Abstract

A magnesium alloy was subjected to strengthening treatment by coupling cavitation bubbles with Al2O3 nanoparticles. The samples were strengthened by embedding Al2O3 nanoparticles with the energy generated by cavitation-bubble collapse, following which a strengthening model was established to perform test verification. The result showed that, after experiencing the combined effect for 5 min, nanoparticles appear on the sample surface, observed under the scanning electron microscope (SEM); by applying the X-ray diffractometer (XRD) and X-ray photoelectron spectrometer (XPS), it is found that the Al2O3 content increases, implying that Al2O3 particles have been embedded in the sample surface. The microhardness of the samples improves by 36 %. In terms of the strengthening mechanism under the combined effect, the energy generated due to cavitation-bubble collapse is transferred to the Al2O3 particles to enable them to strike the sample surface. Thus, the samples have a more gentle impact, and the transition zone with pits formed on the sample surface is significantly smoother and more continuous. Moreover, the samples are further strengthened after Al2O3 nanoparticles are embedded within the sample surface, as these nanoparticles present high strength and microhardness. However, with the increasing duration of the strengthening process, the failure characteristics of surface morphologies of the samples gradually develop; after experiencing the combined effect for 10 min, a large area of the surface is damaged. XRD and XPS results indicate that Al2O3 particles induce a decrease in the binding capacity with the surface layer of the samples and thus gradually separate from the samples. Therefore, the properties of the samples are adversely affected.
空化-气泡崩塌与Al2O3颗粒联合作用下的材料强化模型及其试验验证
采用空化气泡与Al2O3纳米颗粒耦合的方法对镁合金进行强化处理。利用空泡崩塌产生的能量包埋Al2O3纳米颗粒,建立强化模型并进行试验验证。结果表明:在经历复合作用5 min后,样品表面出现纳米颗粒,扫描电镜(SEM)观察到;通过x射线衍射仪(XRD)和x射线光电子能谱仪(XPS)分析,发现Al2O3含量增加,表明Al2O3颗粒已经在样品表面嵌入。样品的显微硬度提高了36%。综合作用下的强化机理为:空化气泡坍塌产生的能量传递给Al2O3颗粒,使其能够撞击样品表面。因此,样品的冲击更温和,并且样品表面形成凹坑的过渡区明显更光滑,更连续。此外,由于Al2O3纳米颗粒具有较高的强度和显微硬度,在样品表面嵌入Al2O3纳米颗粒后,样品得到了进一步的强化。但随着强化时间的延长,试样表面形貌的破坏特征逐渐发育;在经历10分钟的综合作用后,表面大面积受损。XRD和XPS结果表明,Al2O3颗粒与样品表层的结合能力下降,逐渐与样品分离。因此,样品的性能受到不利影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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