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High-Precision Surface Profiling Using Multi-Hundred Watts Ultrashort Pulse Lasers and Ultrafast Polygon-Mirror Based Scanner

机译:高精度表面分析使用多百瓦超短脉冲激光器和超快多边形镜像扫描仪

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High-precision surface profiling is studied by using ultrashort pulse lasers up to 450 W laser powers and 40 MHz maximum pulse repetition frequency. A polygon-mirror based scan system is applied for ultrafast and flexible laser beam raster scanning providing up to 560 m/s laser beam moving speeds. By investigating the high-average power picosecond and femtosecond laser systems in large-area processing, optimum parameter settings are derived with regard to machining quality, efficiency and throughput. In addition, the influence of the focus spot size on top width and tip angle of trapezoidal micro structures (Riblets) is evaluated. Inspired by bionic surface functionalities, the laser made Riblets are tested in a Goettingen-type wind tunnel to identify their effectiveness for aerodynamic drag reduction in turbulent flows. For the optimum Riblet geometries, a maximum total pressure loss reduction of 1.76% is achieved that is remarkable when comparing with literature data. The drag reducing effect of the Riblets is further confirmed by empirical-analytical and CFD analyses showing up to 6.4% skin friction reduction. By taking into account the effective processing time of 6.0 cm2/min with potential to be further scaled-up with higher laser powers, ultrafast laser-based Riblet profiling could be a key enabling technology to enhance the operational performance in the energy machinery sector.
机译:通过使用超短脉冲激光器和40 MHz最大脉冲重复频率的超短脉冲激光和40 MHz的高精度表面分析。基于多边形镜像扫描系统适用于超快和柔性激光束光栅扫描,提供高达560米/秒的激光束移动速度。通过在大面积处理中调查高平均电源PICOSECOND和Femtosecond激光系统,可以在加工质量,效率和吞吐量方面推导出最佳参数设置。另外,评估聚焦点尺寸对梯形微结构(Riblets)的顶部宽度和尖端角度的影响。通过仿生表面功能的启发,激光制造的Riblets在Goettingen型风洞中测试,以确定其对湍流流动减少的空气动力学阻力的有效性。对于最佳RiBlet几何形状,实现了1.76%的最大总压力损失,而与文献数据相比,这是显着的。通过经验分析和CFD分析进一步证实RIBLet的阻力降低效果,CFD分析显示出高达6.4%的皮肤摩擦还原。考虑到6.0 cm2 / min的有效处理时间,电位具有更高的激光功率的进一步扩大,基于超自递激光的Riblet分析可能是一个关键的能力,可以提高能源机械领域的操作性能。

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