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Manufacturing and metrology for IR conformal windows and domes

机译:红外共形窗口和圆顶的制造和计量

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Freeform and conformal optics have the potential to dramatically improve optical systems by enabling systems with fewer optical components, reduced aberrations, and improved aerodynamic performance. These optical components differ from standard components in their surface shape, typically a non-symmetric equation based definition, and material properties. Traditional grinding and polishing tools are unable to handle these freeform shapes. Additionally, standard metrology tools cannot measure these surfaces. Desired substrates are typically hard ceramics, including poly-crystalline alumina or aluminum oxynitride. Notwithstanding the challenges that the hardness provides to manufacturing, these crystalline materials can be highly susceptible to grain decoration creating unacceptable scatter in optical systems. In this presentation, we will show progress towards addressing the unique challenges of manufacturing conformal windows and domes. Particular attention is given to our robotic polishing platform. This platform is based on an industrial robot adapted to accept a wide range of tooling and parts. The robot's flexibility has provided us an opportunity to address the unique challenges of conformal windows. Slurries and polishing active layers can easily be changed to adapt to varying materials and address grain decoration. We have the flexibility to change tool size and shape to address the varying sizes and shapes of conformal optics. In addition, the robotic platform can be a base for a deflectometry-based metrology tool to measure surface form error. This system, whose precision is independent of the robot's positioning accuracy, will allow us to measure optics in-situ saving time and reducing part risk. In conclusion, we will show examples of the conformal windows manufactured using our developed processes.
机译:自由形式和共形光学元件具有使光学元件更少,像差减少和空气动力学性能提高的潜力,从而可以极大地改善光学系统。这些光学组件的表面形状(通常是基于非对称方程的定义)和材料属性与标准组件不同。传统的研磨和抛光工具无法处理这些自由形状。此外,标准计量工具无法测量这些表面。期望的基底通常是硬质陶瓷,包括多晶氧化铝或氮氧化铝。尽管硬度给制造带来了挑战,但这些晶体材料仍极易受到晶粒装饰的影响,从而在光学系统中产生不可接受的散射。在本演示中,我们将展示在解决制造共形窗户和圆顶的独特挑战方面的进展。我们的机器人抛光平台特别受到关注。该平台基于一个工业机器人,适合于接受各种工具和零件。机器人的灵活性为我们提供了应对共形窗口独特挑战的机会。可以轻松更改浆料和抛光活性层,以适应各种材料并解决谷物装饰问题。我们可以灵活地更改工具的尺寸和形状,以解决共形光学器件变化的尺寸和形状。另外,该机器人平台可以作为基于折光法的度量工具来测量表面形状误差的基础。该系统的精度独立于机器人的定位精度,将使我们能够现场测量光学器件,从而节省了时间并降低了部件风险。总之,我们将展示使用我们开发的工艺制造的保形窗的示例。

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