A Multiphase Printing Process for Freeform Optics Manufacturing
A Multiphase Printing Process for Freeform Optics Manufacturing
批准号:
1538439
负责人:
Lei Li
金额:
$29.9万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2015
资助国家:
美国
项目状态:
已结题
起止时间:
2015-08-01 至 2019-07-31
中文摘要
通过使用较少的光学元件,自由曲面光学元件可以形成具有较小像差的高质量图像。目前,制造自由形状光学元件是非常耗时的。按需滴印已被用于制造简单曲率的球面或非球面微透镜,但由于对称表面张力的限制,无法产生更复杂的设计。通过施加外界面力,可以克服这种约束,形成自由形状。该奖项支持一种新的多相打印工艺的基础研究,该工艺集成了直接打印和界面力,以制造高精度的自由形状微光学元件。该项目将通过为低成本和高质量的光学产品提供一种新的高精度制造工艺,使美国光学行业受益。研究结果可应用于其他使用可调界面力的制造领域,例如航空航天、汽车和生物医学工业中光滑流线型表面的3D打印。研究目标是建立透镜表面曲率与多相条件(如支撑液体的厚度和倾斜度)之间的关系;(2)自由形状透镜轮廓与液滴动态变形之间的关系;(3)自由形状透镜形状与非均匀材料性质(如液滴表面共存的不同表面张力和粘度)之间的关系。实验将在混合多相打印平台上进行。在该平台上,可紫外光固化的单体液滴将在不同多相条件下打印在固-液-气或液-气多相表面上。将使用精密直线和倾斜台来控制支持液相的厚度和倾斜度。透镜表面曲率将由白光干涉仪和组合的Twyman-Green和Mach-Zehnder干涉仪测量。为了实现第一个目标,单体液滴在多相表面上达到平衡状态后将被固化。用有限元方法确定了不同多位相条件下的透镜轮廓曲率。为了实现第二个目标,单体液滴将在瞬时固化。将安装一台高速摄像机来识别液滴的瞬时形状。在不同的瞬变状态下获得的透镜轮廓将被分析并与高速图像相关联。为了实现第三个目标,将使用无掩模光刻来调节单体液滴的局部表面张力和粘度,以实现非均匀性质,这将导致液滴变形不均匀。
英文摘要
Freeform optics can form high quality images with smaller aberrations by using fewer optical components. At the present time, fabrication of a freeform optical component is extremely time consuming. Drop-on-demand printing has been used to fabricate spherical or aspherical microlenses with simple curvatures, but is not able to produce more complicated designs due to the constraint of symmetric surface tension forces. By applying external interfacial forces, this constraint can be overcome and freeform shapes can be formed. This award supports fundamental research of a novel multiphase printing process that integrates direct printing and interfacial forces in order to fabricate high precision freeform micro optics. This project will benefit the U.S optical industry by providing a new high precision manufacturing process for low-cost and high quality optical products. Research results can be readily applied to other manufacturing areas that utilize tunable interface forces, for example, 3D printing of smooth streamline surfaces in aerospace, automobile, and biomedical industries.The research objectives are to establish relationships (1) between lens surface curvatures and the multiphase conditions (such as thickness and tilting of the supporting liquid phase); (2) between freeform lens profiles and dynamic deformation of droplets; and (3) between the freeform lens shapes and non-uniform material properties (e.g. different surface tension and viscosity coexisted on the droplet surface). Experiments will be conducted on a hybrid multiphase printing platform. On this platform, ultraviolet curable monomer droplets will be printed on a solid-liquid-air or liquid-air multiphase surface under different multiphase conditions. A precision linear and tilting stage will be used to control the thickness and tilting of the supporting liquid phase. Lens surface curvatures will be measured by a white light interferometer and a combined Twyman-Green and Mach-Zehnder interferometer. To achieve the first objective, monomer droplets will be cured after the droplets reaching equilibrium status on the multiphase surface. Finite element method will be used to determine lens profile curvatures under different multiphase conditions. To achieve the second objective, monomer droplets will be cured at transient state. A high speed camera will be installed to identify the droplet transient shape. Lens profiles obtained at different transient state will be analyzed and correlated to high speed images. To achieve the third objective, maskless lithography will be used to tune the local surface tension and viscosity of the monomer droplet to achieve non-uniform properties, which will cause non-uniform droplet deformation.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
DOI:
10.1088/1361-6439/aa68c8
发表时间:
2017-05-01
期刊:
JOURNAL OF MICROMECHANICS AND MICROENGINEERING
影响因子:
2.3
作者:
[Sun, Rongrong, Yang, Hanry, Li, Lei]
通讯作者:
Li, Lei
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