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Thermoelectric Cooling-Aided Bead Geometry Regulation in Wire and Arc-Based Additive Manufacturing of Thin-Walled Structures

机译:薄壁结构的电线和弧形添加剂制造中的热电冷却辅助珠几何调节

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摘要

Wire and arc-based additive manufacturing (WAAM) is a rapidly developing technology which employs a welding arc to melt metal wire for additive manufacturing purposes. During WAAM of thin-walled structures, as the wall height increases, the heat dissipation to the substrate is slowed down gradually and so is the solidification of the molten pool, leading to variation of the bead geometry. Though gradually reducing the heat input via adjusting the process parameters can alleviate this issue, as suggested by previous studies, it relies on experience to a large extent and inevitably sacrifices the deposition rate because the wire feed rate is directly coupled with the heat input. This study introduces for the first time an in-process active cooling system based on thermoelectric cooling technology into WAAM, which aims to eliminate the difference in heat dissipation between upper and lower layers. The case study shows that, with the aid of thermoelectric cooling, the bead width error is reduced by 56.8%, the total fabrication time is reduced by 60.9%, and the average grain size is refined by 25%. The proposed technique provides new insight into bead geometry regulation during WAAM with various benefits in terms of geometric accuracy, productivity, and microstructure.
机译:电线和基于弧形添加剂制造(WAAM)是一种快速开发的技术,采用焊弧来熔化金属线以用于添加制造目的。在薄壁结构的WAAM期间,随着壁高度的增加,对基板的散热逐渐减慢,因此熔池凝固是熔池的凝固,导致珠几何的变化。虽然通过调整过程参数逐渐减少热量输入可以缓解此问题,如先前研究所提出的,但它依赖于在很大程度上依赖于经验,并且不可避免地牺牲沉积速率,因为送丝速率直接与热输入直接耦合。本研究首次介绍了基于热电冷却技术进入WAAM的过程主动冷却系统,旨在消除上层和下层之间的散热差。案例研究表明,借助热电冷却,珠宽误差减少56.8%,总制造时间减少了60.9%,平均晶粒尺寸精制25%。该技术在WAAM期间具有新的珠子几何调节,在几何精度,生产率和微观结构方面具有各种益处的珠子几何调节。

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