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Design optimization of contactless generator for implantable energy harvesting system utilizing electrically-stimulated muscle

机译:用电刺激肌肉的可植入能量收集系统设计优化

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We propose an energy harvesting device driven by a contraction of an electrically-stimulated skeletal muscle for an alternative battery of implantable medical devices. In order to realize a durable generator, we proposed a contactless plucking mechanism utilizing parallel leaf springs and magnets, with which the generator can be driven without friction. By utilizing this mechanism, the generator can be driven not only in a contraction phase, but also a relaxant phase. We optimized the stiffness of the parallel leaf springs, air gap between the magnets, and magnetic circuit in order to maximize generated power of the generator. The generated power of the prototype in nonliving environment was evaluated. The result showed the protype could achieve 35.8 μW, the value of which is enough to drive the implantable medical devices. Finally, the generated power was evaluated in the ex-vivo experiment using a gastrocnemius muscle of a toad with a weight of 193.4 g. In this experiment, the generator achieved 18.1 μW from only 3.5 g of the skeletal muscle. Also, we confirmed that the generated power exceeded the power consumption of the electrical stimulation on the skeletal muscle. Hence, we concluded the results showed the feasibility of the energy harvesting system with proposed mechanism.
机译:我们提出了一种能量收集装置,其通过用于植入医疗装置的替代电池的电刺激骨骼肌的收缩而驱动。为了实现耐用的发电机,我们提出了利用平行叶子弹簧和磁体的非接触式拔除机构,发电机可以在不摩擦的情况下驱动。通过利用该机制,可以不仅在收缩阶段而且可以驱动发电机,而且可以是一种松弛阶段。我们优化了平行叶片弹簧的刚度,磁体之间的气隙和磁路,以最大化发电机的产生功率。评估了非生环境中的原型的产生功率。结果表明,抗议型可以实现35.8μW,其值足以驱动植入医疗设备。最后,使用重量为193.4g的蟾蜍的胃肠肌肌,在前体内实验中评估所产生的功率。在该实验中,发电机从仅3.5g骨骼肌达到18.1μW。此外,我们确认产生的电力超过骨骼肌电刺激的功耗。因此,我们得出结论,结果表明,具有提出机制的能量收集系统的可行性。

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