Assessment of the grindability of robocast silicon carbide

IF 2 Q3 ENGINEERING, MANUFACTURING
Taylor Barrett , Beth L. Armstrong , Corson L. Cramer , Brigid Mullany
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Abstract

The demand for high-performance lightweight optics has driven interest in silicon carbide (SiC) due to its exceptional thermal stability, hardness, and strength-to-weight ratio. This study investigates the potential of robocasting, an additive manufacturing process, as a viable method for producing lightweighted SiC components for optical applications. Four samples with varied starting powder phases (α and β) and sintering conditions were fabricated and evaluated. Post-sintering surface and form were assessed using coherence scanning interferometry (CSI) and coordinate measuring machine (CMM) techniques. A three-stage grinding process was applied to each sample, with surface roughness assessed at each stage. Results demonstrate that samples with predominantly α-phase SiC and smaller particle sizes achieved superior surface finish, particularly sample D2-α-2135 °C, which displayed the lowest post-grinding Sq value of 0.178 µm. The analysis also indicated no significant print-through effect from the lightweighting structure, or print artifacts, at this stage of grinding. However, β-phase samples showed poorer grindability, increased surface roughness, and pitting. These findings suggest that phase composition and particle size are critical for achieving the desired surface quality in robocast SiC optics. Future work will incorporate additional samples and finer grinding wheels to refine surface quality further, supporting the development of SiC for high-precision optical applications.
Click here to enter text.
机器人铸造碳化硅可磨削性评价
由于碳化硅(SiC)具有优异的热稳定性、硬度和强度重量比,对高性能轻质光学器件的需求推动了人们对其的兴趣。本研究探讨了机器人铸造的潜力,一种增材制造工艺,作为一种可行的方法来生产用于光学应用的轻质SiC组件。制备了具有不同起始粉末相(α和β)和烧结条件的4种样品,并对其进行了评价。使用相干扫描干涉测量(CSI)和坐标测量机(CMM)技术评估烧结后的表面和形状。对每个样品进行三个阶段的磨削过程,并在每个阶段评估表面粗糙度。结果表明,以α相SiC为主、粒径较小的样品具有较好的表面光洁度,特别是D2-α-2135 °C样品,其磨后Sq值最低,为0.178 µm。分析还表明,在磨削的这个阶段,轻量化结构或打印工件没有显著的打印穿过效应。然而,β相样品表现出较差的可磨性,表面粗糙度增加和点蚀。这些发现表明,相组成和粒度对于实现机器铸造SiC光学器件所需的表面质量至关重要。未来的工作将包括更多的样品和更精细的砂轮,以进一步改善表面质量,支持SiC用于高精度光学应用的发展。点击这里输入文本。
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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来源期刊
Manufacturing Letters
Manufacturing Letters Engineering-Industrial and Manufacturing Engineering
CiteScore
4.20
自引率
5.10%
发文量
192
审稿时长
60 days
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