Effect of Heat Treatment Duration and Cooling Conditions on Flexural Strength and Surface Roughness of Cobalt-Chromium Alloys produced by Selective-Laser-Melting

Mohammed Nashwan Almulayounis, Ahmed Asim Ali
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Abstract

Post-heat treatment may enhance mechanical properties of selective laser melting (SLM) Cobalt chromium (Co-Cr) alloys, however it is unknown what duration the heat treatment needs to last and how the rate of cooling impacts the alloy's flexural strength and surface roughness. In this study, SLM Co-Cr alloy specimens were heated at 1150 C for 1 or 6 hours and subsequently cooled by air cooling (AC), furnace cooling (FC), or water quenching (WC). Flexural strength and surface roughness were then tested. Aim of this study: Investigate the effect of heat treatment and different cooling conditions on the flexural strength and surface roughness of SLM Co-Cr alloy specimens. The heat treatment will be conducted at 1150 C for two different durations (1-hour and 6-hours) and under three cooling conditions (AC, FC, and WC). Materials and methods: A total of forty-two rectangular specimens, measuring (34×13×1.5 mm) were manufactured through SLM and divided into seven groups, six specimens for each group as follows: The first group denoted as control with no heat treatment and no cooling applied, second and third groups heated for 1 or 6 hours then cooled in the air (AH-1 and AH-6), fourth and fifth groups heated for 1 or 6 hours and left inside the furnace until they cooled (FH-1 and FH-6), sixth and seventh groups heated for 1 or 6 hours and cooled by water quenching (WH-1 and WH-6). Flexural strength and surface roughness tests were performed on the specimens. A flexural strength value of (2147.33 MPa) was indicated that the control group exhibited the highest flexural strength, whereas the FH-6 group exhibited the lowest flexural strength value (1282.66 MPa). The control group showed the worst surface roughness (1.63 μm) while all other groups demonstrated no significant differences in surface roughness ranging from (0.32 to 0.49 μm) with a slight increase in the 6-hours heated groups. Conclusions: Slow cooling rate inside the furnace affects flexural strength negatively. Therefore, a high cooling rate is recommended to get a better flexural strength. On the other hand, surface roughness results suggests that 1-hour is better than 6-hours in terms of heat treatment duration and time saving
热处理持续时间和冷却条件对选择性激光熔炼法生产的钴铬合金挠曲强度和表面粗糙度的影响
后热处理可以提高选择性激光熔化 (SLM) 钴铬(Co-Cr)合金的机械性能,但热处理需要持续多长时间以及冷却速度如何影响合金的抗弯强度和表面粗糙度,目前尚不清楚。在这项研究中,SLM Co-Cr 合金试样在 1150 摄氏度下加热 1 或 6 小时,然后通过空气冷却 (AC)、炉冷 (FC) 或水淬 (WC) 进行冷却。然后测试弯曲强度和表面粗糙度。本研究的目的研究热处理和不同冷却条件对 SLM Co-Cr 合金试样抗弯强度和表面粗糙度的影响。热处理将在 1150 摄氏度、两种不同的持续时间(1 小时和 6 小时)和三种冷却条件(AC、FC 和 WC)下进行。材料和方法:通过 SLM 制造了 42 个矩形试样,尺寸为(34×13×1.5 毫米),并将其分为以下七组,每组六个试样:第一组为对照组,不进行热处理和冷却;第二组和第三组加热 1 或 6 小时后在空气中冷却(AH-1 和 AH-6);第四组和第五组加热 1 或 6 小时后留在炉内直至冷却(FH-1 和 FH-6);第六组和第七组加热 1 或 6 小时后通过水淬冷却(WH-1 和 WH-6)。对试样进行了抗弯强度和表面粗糙度测试。结果表明,对照组的抗弯强度值最高(2147.33 兆帕),而 FH-6 组的抗弯强度值最低(1282.66 兆帕)。对照组的表面粗糙度最差(1.63 μm),而其他各组的表面粗糙度在(0.32 至 0.49 μm)之间无明显差异,加热 6 小时组的表面粗糙度略有增加。结论炉内冷却速度过慢对抗弯强度有负面影响。因此,建议采用较高的冷却速度,以获得更好的抗弯强度。另一方面,表面粗糙度结果表明,就热处理持续时间和节省时间而言,1 小时比 6 小时更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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