激光定向能沉积碳化钨-钴的参数研究与优化

IF 1.7 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Laser Applications Pub Date : 2023-11-01 DOI:10.2351/7.0001179
Ankit Shrivastava, Anirban Changdar, Abhijit Datta, Samik Dutta, Shitanshu Shekhar Chakraborty
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引用次数: 0

摘要

硬质合金(WC-Co)是一种常规和非常规工艺都难以加工的广泛应用的模具材料。这激发了对这种材料的增材制造(AM)的探索。然而,由于钴耗尽导致的孔隙度、脆性等在文献中已经报道过,但很少成功。对于WC-Co的增材制造,目前的工作重点是定向能沉积,可以在现有的激光切割焊接工作站上进行修改。为了确保即使在沉积过程中不可避免地汽化了一些钴的初始含量后仍能保留钴,通过低能球磨将20wt . %的Co与WC粉末混合。激光功率、扫描速度和粉末流速随实验全因子设计而变化。方差分析表明,实验模型和大部分参数均显著。只有激光功率对接触角的影响不显著。轨迹高度和宽度随激光功率的增大而增大,随扫描速度的增大而减小。接触角随扫描速度的增加而增大,随粉末流量的增加而减小。沉积轨迹的横截面未见孔隙和裂纹。采用灰色关联分析法进行多目标优化,得到接触角、轨迹高度和轨迹宽度同时高值的参数组合。因此,得到的最佳参数组合为700 W激光功率,5 mm/s扫描速度,5 g/min粉末流速。结果显示,履带高度为305±40 μm,宽度为2132±33 μm,接触角为152°±2°。
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Parametric investigation and optimization in laser based directed energy deposition of tungsten carbide-cobalt
Cemented carbide (WC-Co), the widely used tool-die material, is difficult to be machined by conventional and nonconventional techniques. This inspired exploring additive manufacturing (AM) of this material. However, porosity, brittleness due to cobalt depletion, etc. have been reported in the literature with rare success. For the AM of WC-Co, the current work focuses on directed energy deposition, which can be implemented with existing laser cutting-welding workstations, with modifications. To ensure the retention of cobalt even after inevitable vaporization of some of its initial content during deposition, 20 wt. % of Co was mixed with WC powder by low-energy ball milling. Laser power, scan speed, and powder flow rate were varied following a full-factorial design of experiments. The analysis of variance revealed that the experimental model and most of the parameters were significant. Only the laser power came out to be insignificant for the contact angle. The track height and width increased with the laser power and reduced with the scan speed. The contact angle increased with the scan speed and reduced with the powder flow rate. Cross sections of the deposited track showed no pores or cracks. Multiobjective optimization with gray relational analysis was conducted to get the parameter combination giving high values of the contact angle, track height, and width simultaneously. The optimum parameter combination, thus, obtained is 700 W laser power, 5 mm/s scan speed, and 5 g/min powder flow rate. This yielded 305 ± 40 μm track height, 2132 ± 33 μm width, and 152° ± 2° contact angle.
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来源期刊
CiteScore
3.60
自引率
9.50%
发文量
125
审稿时长
>12 weeks
期刊介绍: The Journal of Laser Applications (JLA) is the scientific platform of the Laser Institute of America (LIA) and is published in cooperation with AIP Publishing. The high-quality articles cover a broad range from fundamental and applied research and development to industrial applications. Therefore, JLA is a reflection of the state-of-R&D in photonic production, sensing and measurement as well as Laser safety. The following international and well known first-class scientists serve as allocated Editors in 9 new categories: High Precision Materials Processing with Ultrafast Lasers Laser Additive Manufacturing High Power Materials Processing with High Brightness Lasers Emerging Applications of Laser Technologies in High-performance/Multi-function Materials and Structures Surface Modification Lasers in Nanomanufacturing / Nanophotonics & Thin Film Technology Spectroscopy / Imaging / Diagnostics / Measurements Laser Systems and Markets Medical Applications & Safety Thermal Transportation Nanomaterials and Nanoprocessing Laser applications in Microelectronics.
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