Processing Parameters for Selective Laser Sintering or Melting of Oxide Ceramics

Haidong Zhang, S. LeBlanc
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引用次数: 13

Abstract

In this chapter, we present a detailed introduction to the factors which influence laser powder bed fusion (LPBF) on oxide ceramics. These factors can be in general divided in three main categories: laser-related factors (wavelength, power, scanning speed, hatch distance, scan pattern, beam diameter, etc.), powderand material-related factors (flowability, size distribution, shape, powder deposition, thickness of deposited layers, etc.), and other factors (preor post-processing, inert gas atmosphere, etc.). The process parameters directly affect the amount of energy delivered to the surface of the thin layer and the energy density absorbed by the powders; therefore, decide the physical and mechanical properties of the built parts, such as relative density, porosity, surface roughness, dimensional accuracy, strength, etc. The parameter-property relation is hence reviewed for the most studied oxide ceramic materials, including families from alumina, silica, and some ceramic mixtures. Among those parameters, reducing temperature gradient which decreases the thermal stresses is one of the key factors to improve the ceramic quality. Although realizing crack-free ceramics combined with a smooth surface is still a major challenge, through optimizing the parameters, it is possible for LPBF processed ceramic parts to achieve properties close to those of conventionally produced ceramics.
选择性激光烧结或熔化氧化陶瓷的工艺参数
在本章中,我们详细介绍了影响氧化物陶瓷激光粉末床熔接的因素。这些因素大致可分为三大类:与激光有关的因素(波长、功率、扫描速度、孵化距离、扫描模式、光束直径等),与粉末和材料有关的因素(流动性、尺寸分布、形状、粉末沉积、沉积层厚度等),以及其他因素(前后处理、惰性气体气氛等)。工艺参数直接影响传递到薄层表面的能量和粉末吸收的能量密度;因此,决定所造零件的物理和机械性能,如相对密度、孔隙率、表面粗糙度、尺寸精度、强度等。因此,综述了目前研究最多的氧化陶瓷材料的参数-性能关系,包括氧化铝、二氧化硅和一些陶瓷混合物。其中,降低温度梯度降低热应力是提高陶瓷质量的关键因素之一。虽然实现无裂纹陶瓷与光滑表面的结合仍然是一个主要挑战,但通过优化参数,LPBF加工的陶瓷部件有可能达到接近传统生产陶瓷的性能。
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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