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Maximizing Wireless Power Transfer to Intraocular Implants Under Unconstrained Eye Movements

机译:在不受约束的眼部运动下最大化到眼内植入物的无线动力转移

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Inductive wireless power transfer empowers microelectronic systems to be implanted in spatially constrained anatomic areas. Due to the need to deliver therapeutic or diagnostic function to sensitive areas, such as the eye, batteries become impractical for reasons of thermal and mechanical safety. In this paper we discuss the requirements and optimization techniques to power an intraocular implant through an inductive coil in the surface of the eye, particularly in the case of a retinal prosthesis. We design and characterize transmitting and receiving inductive coils. Subsequently, through the use of a custom 3D printed mechanical test frame, we characterize the power transfer efficiency at the appropriate geometric parameters. Furthermore, the effect of misalignment, axial displacement, and rotation due to eye movements on power transfer efficiency are quantified in air and through a fragment of animal tissue. These results can be used to model and mitigate movement related power fluctuations.
机译:电感无线电力传输授权在空间约束的解剖区域中植入微电子系统。由于需要向敏感区域提供治疗或诊断功能,例如眼睛,由于热和机械安全的原因,电池变得不切实际。在本文中,我们讨论了通过眼睛表面中的电感线圈为眼内植入物供电的要求和优化技术,特别是在视网膜假体的情况下。我们设计和表征传输和接收电感线圈。随后,通过使用定制3D印刷机械测试框架,我们在适当的几何参数下表征功率传输效率。此外,未对准,轴向位移和旋转引起的对动力传递效率的影响的影响在空气中和通过动物组织的片段量化。这些结果可用于模拟和减轻运动相关功率波动。

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