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Design of Island-Bridge Layout Stretchable Electronics for High Spatial Accuracy Deployment

机译:高空间精度部署的岛桥布局可伸缩电子设计

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Stretchable electronics composed of island-bridge layouts are being utilized in numerous research thrusts such as structural health monitoring, energy harvesting and storage, and wearables. Based on this topology, current study presents a design approach aimed at design of stretchable electronics devices to a high spatial accuracy. In our approach, we represent the island-bridge layout device using a surrogate linear spring -rigid node model for high-efficiency simulations. Linear springs are given stiffness and stretchability parameters based on possible serpentine interconnect variations, which are characterized through an automated multi-level optimum design space search and analysis study. Starting with generatively producing a family of designs, we determine the stretchability and stiffness of each design configuration via finite element analysis. Finally, the choice of each interconnect between nodes is determined by posing the objective island locations, local and global constraints, and possible interconnect configurations as a constraint satisfaction problem (CSP) and solving via AC-3 algorithm. We demonstrate the results of our approach via a set of computational simulations in which a non-uniform grid stretchable sensor network is designed. This benchmark study demonstrates the potential of our technique in achieving high accuracy in sensor deployment, as well as the reproducibility of the process.
机译:由岛桥布局构成的可伸缩电子设备被用于许多研究重点,例如结构健康监测,能量收集和存储以及可穿戴设备。基于此拓扑,当前的研究提出了一种旨在将可拉伸电子设备设计为具有较高空间精度的设计方法。在我们的方法中,我们使用替代线性弹簧-刚性节点模型来表示岛桥布局设备,以进行高效仿真。基于可能的蛇形互连变化,为线性弹簧提供了刚度和可拉伸性参数,这些参数通过自动多级最佳设计空间搜索和分析研究来表征。从生成一系列设计开始,我们通过有限元分析确定每种设计配置的可拉伸性和刚度。最后,通过将目标岛位置,局部和全局约束以及可能的互连配置摆成约束满足问题(CSP)并通过AC-3算法求解,来确定节点之间每个互连的选择。我们通过一组计算仿真演示了我们方法的结果,其中设计了一个不均匀的网格可拉伸传感器网络。这项基准研究证明了我们的技术在实现传感器部署的高精度以及过程可重复性方面的潜力。

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