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Nanosecond laser processing of Zr41.2Ti13.8Cu12.5Ni10Be22.5 with single pulses

机译:单脉冲Zr41.2Ti13.8Cu12.5Ni10Be22.5的纳秒激光加工

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摘要

In addition to their attractive mechanical properties, the amorphous structure of bulk metallic glasses (BMGs) leads to favourable conditions for their processing using micro machining operations. At the same time, the generally high hardness and strength of such amorphous metals make short or ultra-short pulsed laser ablation a fabrication technology of interest for generating micro scale features on BMG workpieces in comparison with mechanical material removal means. In spite of this, relatively little research has been reported on the prediction and observation of the thermal phenomena that take place when processing BMGs with pulsed laser irradiation for a range of delivered fluence values and pulse lengths. Such investigations are important however as they underpin reliable laser processing operations, which in turn lead to more predicable material removal at micro scale. In this context, this paper reports complementary theoretical and experimental single pulse laser irradiation analyses conducted in the nanosecond (ns) regime for possibly the most prominent BMG material due to its relatively high glass forming ability, namely Zr41.2Ti13.8Cu12.5Ni10Be22.5, which is also known as Vitreloy 1. To achieve this, different pulse lengths comprised between 15 ns and 140 ns and varied fluence values were considered when delivering single pulses on a Vitreloy 1 substrate using a Yb fibre laser system. A simple thermal model of the laser material interaction process for single pulses was also developed to support the observations and interpretations of the experimental data obtained. One of the main conclusions from this research, with respect to potential micro machining applications, is that shorter pulses, i.e. 25 ns and less, could lead to the formation of relatively clean craters. For higher pulse lengths, the low thermal conductivity and melt temperature of this BMG substrate mean that laser irradiation easily leads to the formation of a relatively large melt pool and thus to the re-solidification of material ejected outside craters.
机译:除了具有吸引力的机械性能外,块状金属玻璃(BMG)的非晶态结构还为使用微加工操作进行加工提供了有利条件。同时,与机械材料去除装置相比,这种非晶态金属通常具有较高的硬度和强度,使得短脉冲或超短脉冲激光烧蚀成为在BMG工件上产生微米级特征的重要制造技术。尽管如此,关于预测和观察热现象的报道很少,有关热现象的研究和观察是在一定范围的通量值和脉冲长度下用脉冲激光辐照处理BMG时发生的。但是,这样的研究很重要,因为它们为可靠的激光加工操作提供了基础,而这反过来又导致了可预测的微观材料去除。在此背景下,本文报告了由于其相对较高的玻璃形成能力,即Zr41.2Ti13.8Cu12.5Ni10Be22.5,在纳秒(ns)范围内对可能最杰出的BMG材料进行的理论和实验单脉冲激光补充分析, ,也称为Vitreloy1。为达到此目的,当使用Yb光纤激光系统在Vitreloy 1基板上传递单个脉冲时,要考虑15 ns至140 ns之间的不同脉冲长度和变化的注量值。还开发了用于单脉冲的激光材料相互作用过程的简单热模型,以支持对获得的实验数据的观察和解释。关于潜在的微加工应用,该研究的主要结论之一是较短的脉冲(即25 ns或更短的脉冲)可能导致形成相对干净的弹坑。对于较高的脉冲长度,此BMG基板的低导热性和熔融温度意味着激光辐照容易导致形成相对较大的熔池,从而使喷出弹坑的材料重新凝固。

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