Thermo-flow modeling of geometry evolution considering the velocity flow fields during pulsed-laser processing

IF 4.9 2区 工程技术 Q1 ENGINEERING, MECHANICAL International Journal of Thermal Sciences Pub Date : 2024-11-10 DOI:10.1016/j.ijthermalsci.2024.109511
Brijesh Kumar Singh, Sajan Kapil, Shrikrishna N. Joshi
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Abstract

This paper evaluates the effectiveness of laser beam micromachining (LBMM) by analyzing the characteristics of the molten metal flow field during the development of micro-features on metallic surfaces. It establishes a foundation for understanding defects such as recast layer thickness, microcracks, and bulges arising from this flow and offers insights on controlling these issues. Effectively managing and optimizing these factors can help reduce the time and costs associated with the process. A transient coupled thermo-flow numerical model has been developed to study the hydrodynamic performance of bio-materials like titanium alloy (Ti-6Al-4V), which is widely used in biomedical and aerospace industries. The model considers the effect of the driving forces, viz., viscous force, thermocapillary force, and recoil pressure, which plays an essential role in geometry evolution. The mechanism of geometry evolution and molten metal flow behavior is analyzed as the pulse number increases, and the effect of pulse energy on geometry evolution is also predicted. The developed model predicted a depth of around 35─40 μm at the end of the 10th pulse. The results obtained from the developed model were compared with the published results, which verified the model's validity. Overall, the developed thermo-flow model and results obtained provided insights into the molten pool formation and geometry evolution during laser processing of Ti-6Al-4V.
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脉冲激光加工过程中考虑速度流场的几何形状演变热流建模
本文通过分析金属表面微特征形成过程中熔融金属流场的特征,评估了激光束微加工(LBMM)的有效性。它为理解由这种流动产生的再铸层厚度、微裂纹和隆起等缺陷奠定了基础,并为控制这些问题提供了见解。有效管理和优化这些因素有助于减少与工艺相关的时间和成本。我们开发了一种瞬态热流耦合数值模型,用于研究生物材料的流体力学性能,如广泛应用于生物医学和航空航天工业的钛合金(Ti-6Al-4V)。该模型考虑了驱动力的影响,即粘性力、热毛细管力和反冲压力,它们在几何形状演变中起着至关重要的作用。随着脉冲数的增加,分析了几何形状演变和熔融金属流动行为的机理,并预测了脉冲能量对几何形状演变的影响。所建立的模型预测,在第 10 个脉冲结束时,熔深约为 35 - 40 μm。将所开发模型获得的结果与已公布的结果进行了比较,从而验证了模型的有效性。总之,所开发的热流模型和获得的结果有助于深入了解 Ti-6Al-4V 激光加工过程中熔池的形成和几何形状的演变。
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来源期刊
International Journal of Thermal Sciences
International Journal of Thermal Sciences 工程技术-工程:机械
CiteScore
8.10
自引率
11.10%
发文量
531
审稿时长
55 days
期刊介绍: The International Journal of Thermal Sciences is a journal devoted to the publication of fundamental studies on the physics of transfer processes in general, with an emphasis on thermal aspects and also applied research on various processes, energy systems and the environment. Articles are published in English and French, and are subject to peer review. The fundamental subjects considered within the scope of the journal are: * Heat and relevant mass transfer at all scales (nano, micro and macro) and in all types of material (heterogeneous, composites, biological,...) and fluid flow * Forced, natural or mixed convection in reactive or non-reactive media * Single or multi–phase fluid flow with or without phase change * Near–and far–field radiative heat transfer * Combined modes of heat transfer in complex systems (for example, plasmas, biological, geological,...) * Multiscale modelling The applied research topics include: * Heat exchangers, heat pipes, cooling processes * Transport phenomena taking place in industrial processes (chemical, food and agricultural, metallurgical, space and aeronautical, automobile industries) * Nano–and micro–technology for energy, space, biosystems and devices * Heat transport analysis in advanced systems * Impact of energy–related processes on environment, and emerging energy systems The study of thermophysical properties of materials and fluids, thermal measurement techniques, inverse methods, and the developments of experimental methods are within the scope of the International Journal of Thermal Sciences which also covers the modelling, and numerical methods applied to thermal transfer.
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