Promoting densification and strengthening effect of ultrasonic impact treatment on Haynes 230 alloy manufactured by laser powder bed fusion

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Materials Science & Technology Pub Date : 2024-08-22 DOI:10.1016/j.jmst.2024.07.036
Wenjie Liu, Hui Li, Qianxing Yin, Xin Zhou
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Abstract

Laser powder bed fusion (LPBF) has been extensively investigated owing to its high geometry formation accuracy and excellent mechanical properties. However, the LPBFed Haynes 230 parts typically display poor tensile and wear properties due to internal porosity. In this work, the ultrasonic impact treatment (UIT) was applied as a post-treatment to the LPBFed Haynes 230 alloy, and porosity and microstructure modulation were performed to improve the strength properties and wear resistance. The pore closure and microstructure were studied by numerical simulations and experiments, and the mechanisms of increasing densification and strength were discussed. Results show that UIT can effectively close pores and reduce porosity, the internal porosity of the ultrasonic impacted layer for one, two, and three times decreases by 63.64%, 71.25%, and 81.97%, respectively. Pore closure is attributed to the residual compressive stress and shear stress introduced by UIT. Besides, the UIT weakened texture strength and refined grains, especially promoting the formation of fine grains. Meanwhile, it also promotes the formation of a high dislocation density and improves the phase structure distribution. Furthermore, the ultimate tensile and yield strengths of the optimal impact process increased by 9.63% and 34.56%, respectively. The improvement in strength was attributed to dislocation, grain boundary, and promoting densification strengthening. The average friction coefficient reduces by 4.90%–14.59% by refining the surface grains and increasing dislocation density. This work has verified the feasibility of improving the mechanical properties and pore closure of the LPBFed Haynes 230 alloy by UIT.

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激光粉末床熔融法制造的 Haynes 230 合金的超声冲击处理的致密化促进和强化效果
激光粉末床熔融技术(LPBF)具有较高的几何成型精度和优异的机械性能,因此已被广泛研究。然而,由于内部存在孔隙,LPBF 制成的海恩斯 230 部件通常显示出较低的拉伸和磨损性能。在这项工作中,对 LPBFed Haynes 230 合金进行了超声波冲击处理(UIT)作为后处理,并对孔隙率和微观结构进行了调节,以改善其强度性能和耐磨性。通过数值模拟和实验研究了孔隙闭合和微观结构,并讨论了提高致密化和强度的机制。结果表明,UIT 能有效封闭孔隙并降低孔隙率,超声波冲击层 1 次、2 次和 3 次的内部孔隙率分别降低了 63.64%、71.25% 和 81.97%。孔隙封闭的原因是 UIT 带来的残余压应力和剪应力。此外,UIT 还削弱了质地强度,细化了晶粒,特别是促进了细晶粒的形成。同时,它还促进了高位错密度的形成,改善了相结构分布。此外,最佳冲击工艺的极限拉伸强度和屈服强度分别提高了 9.63% 和 34.56%。强度的提高归因于位错、晶界和促进致密化强化。通过细化表面晶粒和提高位错密度,平均摩擦系数降低了 4.90%-14.59% 。这项工作验证了利用 UIT 改善 LPBFed Haynes 230 合金机械性能和孔隙封闭性的可行性。
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来源期刊
Journal of Materials Science & Technology
Journal of Materials Science & Technology 工程技术-材料科学:综合
CiteScore
20.00
自引率
11.00%
发文量
995
审稿时长
13 days
期刊介绍: Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.
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