Nguyen Huu Dat, Sedao Xxx, Mauclair Cyril, Bidron Guillaume, Faure Nicolas, Moreno Enrique, Colombier Jean-Philippe, Stoian Razvan
Laboratoire Hubert Curien, UMR 5516 CNRS, Institute of Optics Graduate School, Université de Lyon, Université Jean Monnet, 42000 Saint-Etienne, France.
GIE Manutech-USD, 42000 Saint-Etienne, France.
Micromachines (Basel). 2020 Oct 30;11(11):974. doi: 10.3390/mi11110974.
We report the potential use of non-diffractive Bessel beam for ultrafast laser processing in additive manufacturing environments, its integration into a fast scanning platform, and proof-of-concept side-wall polishing of stainless steel-based additively fabricated parts. We demonstrate two key advantages of the zeroth-order Bessel beam: the significantly long non-diffractive length for large tolerance of sample positioning and the unique self-reconstruction property for un-disrupted beam access, despite the obstruction of metallic powders in the additive manufacturing environment. The integration of Bessel beam scanning platform is constructed by finely adapting the Bessel beam into a Galvano scanner. The beam sustained its good profile within the scan field of 35 × 35 mm2. As a proof of concept, the platform showcases its advanced capacity by largely reducing the side-wall surface roughness of an additively as-fabricated workpiece from Ra 10 μm down to 1 μm. Therefore, the demonstrated Bessel-Scanner configuration possesses great potential for integrating in a hybrid additive manufacturing apparatus.
我们报告了非衍射贝塞尔光束在增材制造环境中用于超快激光加工的潜在用途、将其集成到快速扫描平台以及对基于不锈钢的增材制造零件进行概念验证的侧壁抛光。我们展示了零阶贝塞尔光束的两个关键优势:具有很长的非衍射长度,对样品定位的容差大;具有独特的自重建特性,即使在增材制造环境中金属粉末造成阻挡时,光束也能不受干扰地通过。通过将贝塞尔光束精细地适配到振镜扫描仪中,构建了贝塞尔光束扫描平台。光束在35×35平方毫米的扫描区域内保持了良好的轮廓。作为概念验证,该平台通过将增材制造工件的侧壁表面粗糙度从Ra 10μm大幅降低到1μm,展示了其先进的能力。因此,所展示的贝塞尔 - 扫描仪配置在集成到混合增材制造设备方面具有巨大潜力。