High-strength low-alloy steel fabricated by in situ interlayer hot forging arc-based directed energy deposition assisted with direct cooling: Microstructural and mechanical properties evaluation

IF 6.1 1区 工程技术 Q1 ENGINEERING, MANUFACTURING Journal of Manufacturing Processes Pub Date : 2024-09-04 DOI:10.1016/j.jmapro.2024.08.064
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Abstract

Controlling thermal cycles during arc-based Directed Energy Deposition (DED), typically known as Wire Arc Additive Manufacturing (WAAM), is crucial to reduce heat buildup and prevent issues such as distortions, formation of brittle microstructures, grain growth, anisotropy, and consequent reduction in mechanical properties. In-situ interlayer hot forging coupled with WAAM (HF-WAAM) provides grain refinement and pore closure. The effect of HF-WAAM can be combined with the control of peak temperature and cooling rates, benefiting the material's microstructure and mechanical properties. In this context, the aim of this work was to evaluate the effect of direct cooling on the mechanical and microstructural properties of a high-strength low-alloy (HSLA) steel manufactured by WAAM and HF-WAAM. A pneumatically actuated system with a cooling system was specifically designed, where two pumps with a flow rate of 1.8 kg/min each were used to pump G13 antifreeze fluid at approximately −25 °C. In the actuator design, a double counterflow cooling system was used, as it promotes greater thermal homogenization and higher heat transfer rate, thus allowing greater thermal energy removal. Analyses of the mechanical and microstructural properties of the parts were carried out through uniaxial tensile testing, scanning electron microscopy (SEM), and electron backscatter diffraction (EBSD). Thermal cycles and cooling system control were conducted using a thermal imaging camera and thermocouples installed at the inlet and outlet of the actuator's cooling ducts. The results showed that samples manufactured with HF-WAAM had a greater number of less hard structures in their microstructure than those manufactured by conventional WAAM. The fabricated samples exhibited high tensile and yield strength values, with calculated anisotropy below 2 %. All samples showed ductile fracture characteristics after the tensile test, confirmed by fractography.

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通过原位层间热锻电弧式定向能沉积辅助直接冷却制造高强度低合金钢:微观结构和机械性能评估
在基于电弧的定向能量沉积(DED)(通常称为线弧增材制造(WAAM))过程中,控制热循环对于减少热量积聚、防止出现变形、形成脆性微结构、晶粒长大、各向异性以及随之而来的机械性能降低等问题至关重要。原位层间热锻结合 WAAM(HF-WAAM)可实现晶粒细化和孔隙闭合。HF-WAAM 的效果可与峰值温度和冷却速率的控制相结合,从而改善材料的微观结构和机械性能。在此背景下,本研究旨在评估直接冷却对通过 WAAM 和 HF-WAAM 生产的高强度低合金 (HSLA) 钢的机械和微观结构特性的影响。我们专门设计了一个带有冷却系统的气动致动系统,使用两个流量各为 1.8 kg/min 的泵在约 -25 °C 的温度下泵送 G13 防冻液。在传动装置的设计中,使用了双逆流冷却系统,因为它能促进更高的热均匀性和更高的热传递率,从而可以去除更多的热能。通过单轴拉伸测试、扫描电子显微镜(SEM)和电子反向散射衍射(EBSD)对部件的机械和微观结构特性进行了分析。使用安装在致动器冷却管道入口和出口处的热像仪和热电偶进行了热循环和冷却系统控制。结果表明,与传统 WAAM 相比,使用 HF-WAAM 制造的样品在微观结构中具有更多硬度较低的结构。制造出的样品具有较高的拉伸强度和屈服强度,计算出的各向异性低于 2%。所有样品在拉伸试验后都显示出延展性断裂特征,这一点已通过断口扫描得到证实。
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来源期刊
Journal of Manufacturing Processes
Journal of Manufacturing Processes ENGINEERING, MANUFACTURING-
CiteScore
10.20
自引率
11.30%
发文量
833
审稿时长
50 days
期刊介绍: The aim of the Journal of Manufacturing Processes (JMP) is to exchange current and future directions of manufacturing processes research, development and implementation, and to publish archival scholarly literature with a view to advancing state-of-the-art manufacturing processes and encouraging innovation for developing new and efficient processes. The journal will also publish from other research communities for rapid communication of innovative new concepts. Special-topic issues on emerging technologies and invited papers will also be published.
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