首页> 外文期刊>Journal of manufacturing science and engineering: Transactions of the ASME >Fundamental Study on Laser Interactions With Nanoparticles-Reinforced Metals-Part II: Effect of Nanoparticles on Surface Tension, Viscosity, and Laser Melting
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Fundamental Study on Laser Interactions With Nanoparticles-Reinforced Metals-Part II: Effect of Nanoparticles on Surface Tension, Viscosity, and Laser Melting

机译:激光与纳米颗粒增强金属相互作用的基础研究-第二部分:纳米颗粒对表面张力,粘度和激光熔化的影响

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It is of great scientific and technical interests to conduct fundamental studies on the laser interactions with nanoparticles-reinforced metals. This part of the study presents the effects of nanoparticles on surface tension and viscosity, thus the heat transfer and fluid flow, and eventually the laser melting process. In order to determine the surface tension and viscosity of nanoparticles-reinforced metals, an innovative measurement system was developed based on the characteristics of oscillating metal melt drops after laser melting. The surface tensions of Ni/Al2O3 (4.4 vol. %) and Ni/SiC (3.6 vol. %) at similar to 1500 degrees C were 1.39 +/- 0.03 N/m and 1.57 +/- 0.06 N/m, respectively, slightly lower than that of pure Ni, 1.68 +/- 0.04 N/m. The viscosities of these Ni/Al2O3 and Ni/SiC MMNCs at similar to 1500 degrees C were 13.3 +/- 0.8 mPa.s and 17.3 +/- 3.1 mPa.s, respectively, significantly higher than that of pure Ni, 4.8 +/- 0.3 mPa.s. To understand the influences of the nanoparticles-modified thermophysical properties on laser melting, an analytical model was used to theoretically predict the melt pool flows using the newly measured material properties from both Part I and Part II. The theoretical analysis indicated that the thermocapillary flows were tremendously suppressed due to the significantly increased viscosity after the addition of nanoparticles. To test the hypothesis that laser polishing could significantly benefit from this new phenomenon, systematic laser polishing experiments at various laser pulse energies were conducted on Ni/Al2O3 (4.4 vol. %) and pure Ni for comparison. The surface roughness of the Ni/Al2O3 was reduced from 323 nm to 72 nm with optimized laser polishing parameters while that of pure Ni only from 254 nm to 107 nm. The normalized surface roughness reduced by nearly a factor of two with the help of nanoparticles, validating the feasibility to tune thermophysical properties and thus control laser-processing outcomes by nanoparticles. It is expected that the nanoparticle approach can be applied to many laser manufacturing technologies to improve the process capability and broaden the application space.
机译:进行与纳米颗粒增强金属的激光相互作用的基础研究具有重大的科学和技术兴趣。研究的这一部分介绍了纳米颗粒对表面张力和粘度的影响,从而影响了热传递和流体流动,最终影响了激光熔化过程。为了确定纳米粒子增强金属的表面张力和粘度,基于激光熔化后金属熔滴的振荡特性,开发了一种创新的测量系统。 Ni / Al2O3(4.4%(体积))和Ni / SiC(3.6%(体积))在接近1500摄氏度时的表面张力分别为1.39 +/- 0.03 N / m和1.57 +/- 0.06 N / m。略低于纯Ni的1.68 +/- 0.04 N / m。这些Ni / Al2O3和Ni / SiC MMNC在类似于1500摄氏度的粘度分别为13.3 +/- 0.8 mPa.s和17.3 +/- 3.1 mPa.s,显着高于纯Ni的4.8 + / -0.3毫帕秒为了了解纳米粒子修饰的热物理性质对激光熔化的影响,使用了分析模型,使用第一部分和第二部分中新测量的材料特性,从理论上预测熔池流动。理论分析表明,由于添加纳米颗粒后粘度显着增加,热毛细流动被大大抑制。为了检验激光抛光可以从这种新现象中显着受益的假设,在Ni / Al2O3(4.4%(体积))和纯Ni上进行了各种激光脉冲能量下的系统激光抛光实验,以进行比较。通过优化的激光抛光参数,Ni / Al2O3的表面粗糙度从323 nm降低到72 nm,而纯Ni的表面粗糙度仅从254 nm降低到107 nm。借助纳米颗粒,归一化的表面粗糙度降低了近两倍,从而验证了调节热物理性质并由此控制纳米颗粒对激光加工结果的可行性。期望纳米粒子方法可以应用于许多激光制造技术以提高处理能力并拓宽应用空间。

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