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Energy harvesting through arterial wall deformation: A FEM approach to fluid-structure interactions and magneto-hydrodynamics

机译:通过动脉壁变形收集能量:一种有限元方法,用于流体-结构相互作用和磁流体动力学

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摘要

Engineers are confronted with the energy demand of active medical implants in patients with increasing life expectancy. Scavenging energy from the patient's body is envisioned as an alternative to conventional power sources. Joining in this effort towards human-powered implants, we propose an innovative concept that combines the deformation of an artery resulting from the arterial pressure pulse with a transduction mechanism based on magneto-hydrodynamics. To overcome certain limitations of a preliminary analytical study on this topic, we demonstrate here a more accurate model of our generator by implementing a three-dimensional multiphysics finite element method (FEM) simulation combining solid mechanics, fluid mechanics, electric and magnetic fields as well as the corresponding couplings. This simulation is used to optimize the generator with respect to several design parameters. A first validation is obtained by comparing the results of the FEM simulation with those of the analytical approach adopted in our previous study. With an expected overall conversion efficiency of 20% and an average output power of 30 μV, our generator outperforms previous devices based on arterial wall deformation by more than two orders of magnitude. Most importantly, our generator provides sufficient power to supply a cardiac pacemaker.
机译:随着预期寿命的延长,工程师面临着有源医疗植入物的能量需求。设想从患者体内清除能量可以替代常规电源。为了实现这种动力,我们提出了一种创新的概念,将动脉压力脉冲引起的动脉变形与基于磁流体动力学的转导机制结合在一起。为了克服对此主题的初步分析研究的某些局限性,我们在此处通过结合固体力学,流体力学,电场和磁场的三维多物理场有限元方法(FEM)模拟,展示了发电机的更精确模型作为相应的联轴器。该仿真用于优化发电机的几个设计参数。通过将FEM模拟的结果与我们先前研究中采用的分析方法的结果进行比较,可以获得第一个验证。我们的发电机具有20%的预期整体转换效率和30μV的平均输出功率,比基于动脉壁变形的先前设备要高出两个数量级以上。最重要的是,我们的发电机可提供足够的功率来为心脏起搏器供电。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2014年第13期|3325-3338|共14页
  • 作者单位

    ARTORG Center for Biomedical Engineering Research, University of Bern, Murtenstrasse 50, Postfach 44, 3010 Bern, Switzerland,Engineering and Information Technology, Bern University of Applied Sciences, Quellgasse 21, 2501 Biel, Switzerland;

    Engineering and Information Technology, Bern University of Applied Sciences, Quellgasse 21, 2501 Biel, Switzerland;

    Engineering and Information Technology, Bern University of Applied Sciences, Quellgasse 21, 2501 Biel, Switzerland;

    ARTORG Center for Biomedical Engineering Research, University of Bern, Murtenstrasse 50, Postfach 44, 3010 Bern, Switzerland,Institute of Fluid Dynamics, ETH Zurich, Sonneggstrasse 3, 8092 Zurich, Switzerland;

    ARTORG Center for Biomedical Engineering Research, University of Bern, Murtenstrasse 50, Postfach 44, 3010 Bern, Switzerland,Department of Cardiology, Bern University Hospital, 3010 Bern, Switzerland,Department of Cardiology, Solothurn Hospitals, 4500 Solothurn, Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Human energy scavenging; Electromagnetism; Arterial pulse propagation; Multiphysics simulation; Moving mesh;

    机译:清除人类能量;电磁动脉脉冲传播;多物理场仿真;移动网格;

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