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Transcutaneous Energy Transmission for Medical Implants

机译:医用植入物的经皮能量传递

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Surgical implants are undergoing a major transition from being most often purely mechanical systems, to more and more mechatronic, implantable systems. Formerly public funded R&D projects (e.g. DLR Artificial Heart [16, 17]), are entering the commercialization phase. To guarantee a sufficient power supply and an acceptable implant lifespan, inductive transcutaneous energy transmission systems combined with secondary batteries come to the fore. Guiding the development through the requirements, integration, verification and testing phase by the v-Model, a method for the management of high-risk system developments, leads to reduced remaining risks and a higher product quality. The technical capabilities and the significance of a simulation based development process for medical mechatronic systems is shown in this paper. A FEM based EM-Field simulation is embedded into a v-Model based development process. The capabilities of the method to be a tool for the study of design variations, optimization and failure mode analyses are shown.
机译:外科植入物正经历着从最纯粹的机械系统到越来越多的机电一体化可植入系统的重大转变。以前由公共资助的研发项目(例如DLR人造心脏[16,17])正在进入商业化阶段。为了保证足够的电源供应和可接受的植入物寿命,感应式经皮能量传输系统与二次电池的结合就显得尤为重要。通过v-Model指导需求,集成,验证和测试阶段的开发,这是管理高风险系统开发的一种方法,可以降低残留风险并提高产品质量。本文展示了基于技术的医疗机电系统开发过程的技术能力和意义。基于FEM的EM-Field仿真被嵌入到基于v-Model的开发过程中。显示了该方法作为研究设计变化,优化和故障模式分析的工具的功能。

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