Explosive crystallisation of metal glasses based on Fe-B during pulsed laser heating. Experiment and modelling

O. Smolyakov, V. Girzhon, S. Mudry, Y. Nykyruy
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Abstract

The structure evolution of amorphous metallic alloys during different kinds of thermal effects is an important problem of disordered systems physics. A precise evolutional model would allow predicting the formation of such a structural state, providing the necessary physical and mechanical alloy properties.The paper is devoted to the problem of modelling the explosive crystallisation process in metal glasses induced by laser, supplemented by experimental results.A theoretical model of laser-induced explosive crystallisation in metal glasses is proposed. A pulse laser heating method for the surface processing was developed, making it possible to obtain two-layer structures with an adjustable thickness of the amorphous crystalline layer.The proposed model is assumed to test and optimes for metal glasses of other chemical compositions.A theoretical model of laser-induced explosive crystallisation in metal glasses allows for predicting and controlling structure changes to obtain the desired properties.The investigation of structure changes at rapid heating of amorphous alloys by experimental methods is very limited in obtaining data and their interpretation. For that reason, combining the modelling with experimental measurements is proposed. The results of this work have value for a scientist in material science, physics and engineering, which use nonequilibrium physical processes to obtain new materials, including nanoscale systems.
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脉冲激光加热过程中基于Fe-B的金属玻璃的爆炸结晶。实验和建模
非晶态金属合金在不同热效应下的结构演化是无序系统物理学的一个重要问题。精确的演化模型可以预测这种结构状态的形成,提供必要的合金物理和机械性能。本文致力于模拟激光诱导金属玻璃的爆炸结晶过程,并辅以实验结果。提出了金属玻璃中激光诱导爆炸结晶的理论模型。开发了一种用于表面处理的脉冲激光加热方法,使获得非晶晶体层厚度可调的双层结构成为可能。假设所提出的模型用于测试和优化其他化学成分的金属玻璃。金属玻璃中激光诱导爆炸结晶的理论模型允许预测和控制结构变化以获得所需的性能。用实验方法研究非晶合金快速加热时的结构变化,在获得数据及其解释方面非常有限。因此,建议将建模与实验测量相结合。这项工作的结果对材料科学、物理和工程领域的科学家来说有价值,这些领域使用非平衡物理过程来获得新材料,包括纳米系统。
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来源期刊
Archives of materials science and engineering
Archives of materials science and engineering Materials Science-Materials Science (all)
CiteScore
2.90
自引率
0.00%
发文量
15
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