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Precision Assembly of Optical Backplanes

机译:光学背板的精确组装

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Full optical backplanes can be seen as a promising technology for high bandwidth ICT (Information and Communication Technology) apparatuses and high performance computing systems. According to a recent frame-based solution, the backplane mounts a number of independent optical interconnect circuits mainly consisting of a set of optical fiber ribbons of different lengths arranged to fulfill a specific planar ribbon routing. A non-negligible problem is related to the development of suitable techniques for the efficient and cost-effective assembly of such sub-circuits. New systems are required that combine ultimate hardware and software capabilities and derive from a synergic implementation of digital and advanced manufacturing technologies. The successful assembly of the optical interconnection circuits lies in the development of cyber-physical production systems within the framework of Industry 4.0. In this context, this work will present and discuss how different innovative technologies and consolidated technologies applied in a novel context were exploited to demonstrate the feasibility of the automated backplane assembly. The achieved results are discussed in terms of design of the work-cell layout and related equipment, simulation tests, tool path planning, and final task execution.
机译:全光背板可以被看作是一个有前途的技术的高带宽ICT(信息和通信技术)的设备和高性能计算系统。根据最近的基于帧的方案中,所述背板安装多个独立的光学互连电路主要由一组不同长度的光纤带芯线的布置来满足特定的平面带状路由。不可忽略的问题是关系到用于这种子电路的效率和成本效益的组件适合的技术的开发。需要新的系统结合了最终的硬件和软件功能,并从中获得协同实现的数字化和先进制造技术。光互连电路在于网络物理生产系统的工业4.0的框架内发展的成功组装。在这方面,这项工作将介绍和讨论不同创新的技术和以新的环境中应用的综合技术如何被利用来装配演示自动背板的可行性。取得的成果是在工作单元布局的设计及相关设备,模拟测试,刀具路径规划,并最终执行任务的角度来讨论。

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