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Design, optimization, and implementation of a volume conduction energy transfer platform for implantable devices.

机译:植入式设备的体积传导能量转移平台的设计,优化和实现。

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摘要

Two significant problems are present which impede the widespread utilization of many implantable devices with great potential: (1) the lack of availability of an efficient energy source suitable for long-term operation, and (2) the lack of a robust, low-power communication path which does not rely on wired connectivity. The creation of a feasible solution to these two power and communication issues is critical to the success of many future implantable devices. This foundational work details the development of a general solution for the above issues, in a power and communications platform technology for implantable devices. The platform is developed based on the volume conduction technology explored in our laboratory. Ultimate devices are small in size, with the incorporation of a rechargeable battery and electrodes used for interfacing with external components through the skin. An external patch, or "energy pad," containing low-profile electrodes and circuitry, is used as the external interface for recharging and communicating with implanted devices. System design focuses on reliability and ease of integration into a variety of implantable systems, making them feasible for clinical application. Because this is the first system that uses volume conduction for both power and communication purposes, a novel "X-Delta model" of the system is created for use in analyzing the energy transfer of such systems to assist in engineering design. The model, which incorporates components to represent actual current pathways in the skin, is also used in finding theoretical maximum limits of volume conduction energy transfer efficiency for specific skin-electrode setups, proving the technology as a viable option for practical implanted devices.;Keywords: volume conduction, skin model, implantable device, energy transfer, optimization.
机译:目前存在两个重大问题,这些问题阻碍了许多具有巨大潜力的可植入设备的广泛使用:(1)缺乏适合长期运行的高效能源,(2)缺乏坚固的低功耗不依赖有线连接的通信路径。针对这两个电源和通信问题创建可行的解决方案对于许多未来的可植入设备的成功至关重要。这项基础工作详细介绍了用于可植入设备的电源和通信平台技术中针对上述问题的通用解决方案的开发。该平台是根据我们实验室探索的体积传导技术开发的。最终设备体积小巧,内置可充电电池和用于通过皮肤与外部组件连接的电极。包含薄型电极和电路的外部贴片或“能量垫”被用作外部接口,用于对植入的设备进行充电和通信。系统设计着重于可靠性和集成到各种可植入系统中的简便性,从而使其可用于临床应用。因为这是第一个将体积传导用于功率和通信目的的系统,所以创建了该系统的新型“ X-Delta模型”,用于分析此类系统的能量传递,从而有助于工程设计。该模型结合了代表皮肤中实际电流路径的组件,还用于寻找特定皮肤电极设置的体积传导能量转移效率的理论最大极限,证明该技术是实际植入设备的可行选择。 :体积传导,皮肤模型,可植入设备,能量转移,优化。

著录项

  • 作者

    Hackworth, Steven A.;

  • 作者单位

    University of Pittsburgh.;

  • 授予单位 University of Pittsburgh.;
  • 学科 Engineering Biomedical.;Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 188 p.
  • 总页数 188
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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