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Ultrafast Varifocal Lenses in Laser Material Processing and Particle Tracking Velocimetry

机译:激光材料加工和粒子跟踪测速中的超快变焦透镜

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摘要

Narrow depth-of-field (DOF) comes as a price when tight lateral focusing is required for applications such as high precision manufacturing and three-dimensional (3D) velocimetry. The thesis addresses the challenges in these fields by using an acoustically-driven ultrafast varifocal lens. The first part of this thesis presents the improvement in efficiency of material processing by using an ultrafast varifocal lens. High-throughput laser materials processing demands precise control of the laser beam position to achieve optimal efficiency, but existing methods can be both time-consuming and cost-prohibitive. Here, we demonstrate a new high-throughput material processing technique based on rapidly scanning the laser focal point along the optical axis using the ultrafast variable focal length lens. Our results show that this scanning method enables higher processing rate over a range of defocus distances, and that the effect becomes more significant as the laser energy is increased. This method holds great potential for improving material processing efficiency in traditional systems, and also opens the door to applying laser processing to pieces with uneven topography that have traditionally been difficult to process.;The second part of the thesis presents a novel idea for high-speed 3D imaging system by using the ultrafast varifocal lens. This 3D imaging system provides a means of high-speed 3D particle tracking velocimetry. This contribution is critical because the ability to understand and visualize complex flow structures in micro-fluidic and biological systems relies heavily on the resolving power of 3D particle velocimetry techniques. The simple technique in this thesis is capable of acquiring volumetric particle information with the potential for microsecond time resolution. By utilizing a fast varifocal lens in a modified wide-field microscope, we capture both volumetric and planar information with microsecond time resolution. As a proof of concept, this technique is demonstrated by tracking particle motions in the complex, 3D flow in a high Reynolds number laminar flow at a branching arrow-shaped junction.
机译:当高精度制造和三维(3D)测速仪等应用需要紧密的横向聚焦时,狭窄的景深(DOF)就是价格。本文通过使用声驱动超快变焦镜头解决了这些领域的挑战。本文的第一部分提出了通过使用超快变焦透镜来提高材料加工效率的方法。高通量激光材料加工需要精确控制激光束位置以实现最佳效率,但是现有方法既耗时又成本高昂。在这里,我们演示了一种新的高通量材料处理技术,该技术基于使用超快变焦镜头沿光轴快速扫描激光焦点的过程。我们的结果表明,这种扫描方法可以在一定的散焦距离范围内实现更高的处理速度,并且随着激光能量的增加,其效果变得更加明显。这种方法具有提高传统系统中材料加工效率的巨大潜力,也为在传统上难以加工的形貌不均匀的工件上进行激光加工开辟了大门。通过使用超快变焦镜头实现高速3D成像系统。该3D成像系统提供了一种高速3D粒子跟踪测速技术。之所以至关重要,是因为了解和可视化微流体和生物系统中复杂流动结构的能力在很大程度上取决于3D粒子测速技术的分辨能力。本文中的简单技术能够获得具有微秒时间分辨率潜力的体积粒子信息。通过在改进的宽视野显微镜中使用快速变焦镜头,我们可以捕获具有微秒时间分辨率的体积和平面信息。作为概念的证明,通过在分支箭头形交界处的高雷诺数层流中跟踪复杂的3D流中的粒子运动来演示此技术。

著录项

  • 作者

    Chen, Ting-Hsuan.;

  • 作者单位

    Princeton University.;

  • 授予单位 Princeton University.;
  • 学科 Mechanical engineering.;Materials science.;Optics.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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