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利用数字孪生技术增强光学自由曲面的高分辨率3D喷墨打印

Enhancement of High-Resolution 3D Inkjet-Printing of Optical Freeform Surfaces Using Digital Twins.

作者信息

Sieber Ingo, Thelen Richard, Gengenbach Ulrich

机构信息

Institute for Automation and Applied Informatics, Karlsruhe Institute of Technology, Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.

Institute of Microstructure Technology-KNMF, Karlsruhe Institute of Technology, Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.

出版信息

Micromachines (Basel). 2020 Dec 30;12(1):35. doi: 10.3390/mi12010035.

Abstract

3D-inkjet-printing is just beginning to take off in the optical field. Advantages of this technique include its fast and cost-efficient fabrication without tooling costs. However, there are still obstacles preventing 3D inkjet-printing from a broad usage in optics, e.g., insufficient form fidelity. In this article, we present the formulation of a digital twin by the enhancement of an optical model by integrating geometrical measurement data. This approach strengthens the high-precision 3D printing process to fulfil optical precision requirements. A process flow between the design of freeform components, fabrication by inkjet printing, the geometrical measurement of the fabricated optical surface, and the feedback of the measurement data into the simulation model was developed, and its interfaces were defined. The evaluation of the measurements allowed for the adaptation of the printing process to compensate for process errors and tolerances. Furthermore, the performance of the manufactured component was simulated and compared with the nominal performance, and the enhanced model could be used for sensitivity analysis. The method was applied to a highly complex helical surface that allowed for the adjustment of the optical power by rotation. We show that sensitivity analysis could be used to define acceptable tolerance budgets of the process.

摘要

3D喷墨打印在光学领域才刚刚起步。这项技术的优点包括制造速度快、成本效益高且无需模具成本。然而,仍有一些障碍阻碍3D喷墨打印在光学领域的广泛应用,例如形状保真度不足。在本文中,我们通过整合几何测量数据增强光学模型,提出了数字孪生的构建方法。这种方法强化了高精度3D打印过程,以满足光学精度要求。开发了一个从自由形式组件设计、喷墨打印制造、对制造的光学表面进行几何测量到将测量数据反馈到仿真模型的工艺流程,并定义了其接口。对测量结果的评估使得能够调整打印过程以补偿工艺误差和公差。此外,对制造组件的性能进行了模拟,并与标称性能进行了比较,增强后的模型可用于灵敏度分析。该方法应用于一个高度复杂的螺旋面,该螺旋面可通过旋转来调整光焦度。我们表明,灵敏度分析可用于定义该工艺可接受的公差预算。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/316a/7824045/e910576764c9/micromachines-12-00035-g001.jpg

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