The effect of electrospark deposition using zirconium electrodes on structure and properties of nickel-containing alloy obtained selective laser melting

A. Kudryashov, P. Kiryukhantsev-Korneev, S. Mukanov, M. Petrzhik, E. Levashov
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引用次数: 1

Abstract

Protective coatings were applied by electrospark deposition (ESD) using zirconium electrodes to improve the performance of the Ni-containing alloy obtained using the selective laser melting (SLM) technology. The kinetics of mass transfer was studied in 5 different frequency-energy processing modes. An analog-to-digital converter was used to determine the average number of pulse discharges, single-pulse energy, and the total energy of pulse discharges for 1 min of processing (ΣЕ) for all the modes used. In low-energy processing modes (ΣЕ = 1459÷2915 J), a weak mass transfer was observed, and the cathode weight gain was recorded only in the first minutes. As the processing time increased, a decrease in the substrate weight was observed. The roughness of coatings (Ra) varied in the range of 3.9–7.2 μm. In high-energy modes (ΣЕ = 5197÷17212 J), due to intense electrode heating, a steady cathode weight gain was observed, but the formed coatings featured by increased roughness: Ra = 7.4÷8.6 μm. The Ra parameter for the original SLM samples was 10.7 μm. The formed coatings featured by a thickness of 15–30 μm, high continuity (up to 100 %), hardness of 9.0–12.5 GPa, elastic modulus of 122–145 GPa, and friction coefficient of 0.36–0.49. The ESD processing promoted an increase in wear resistance of the SLM alloy by 7.5–20 times, and oxidation resistance by 10–20 % (t = 1150 °C, τ = 30 h). It was found that the coating obtained in the low-energy ESD mode with energy ΣЕ = 2915 J featured the best performance (hardness, modulus of elasticity, roughness, wear resistance and oxidation resistance).
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研究了锆电极电火花沉积对选择性激光熔化含镍合金组织和性能的影响
为了提高选择性激光熔化(SLM)技术制备的含镍合金的性能,采用电火花沉积(ESD)技术在锆电极上涂覆保护涂层。研究了5种不同的频率-能量处理模式下的传质动力学。使用模数转换器来确定所使用的所有模式的脉冲放电的平均次数、单脉冲能量和处理1分钟内脉冲放电的总能量(ΣЕ)。在低能处理模式(ΣЕ = 1459÷2915 J)中,观察到弱传质,阴极重量仅在前几分钟增加。随着加工时间的增加,观察到衬底重量的减少。涂层的粗糙度(Ra)在3.9 ~ 7.2 μm之间变化。在高能模式下(ΣЕ = 5197÷17212 J),由于电极的强烈加热,阴极重量稳定增加,但形成的涂层粗糙度增加:Ra = 7.4÷8.6 μm。原始SLM样品的Ra参数为10.7 μm。形成的涂层厚度为15 ~ 30 μm,连续性高(可达100%),硬度为9.0 ~ 12.5 GPa,弹性模量为122 ~ 145 GPa,摩擦系数为0.36 ~ 0.49。静电放电处理使SLM合金的耐磨性提高了7.5 ~ 20倍,抗氧化性提高了10 ~ 20% (t = 1150℃,τ = 30 h),发现能量ΣЕ = 2915 J的低能静电放电模式下获得的涂层具有最佳的性能(硬度、弹性模量、粗糙度、耐磨性和抗氧化性)。
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