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A smart knee implant using triboelectric energy harvesters

机译:使用摩擦电能收割机的智能膝盖植入物

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Although the number of total knee replacement (TKR) surgeries is growing rapidly, functionality and pain-reduction outcomes remain unsatisfactory for many patients. Continual monitoring of knee loads after surgery offers the potential to improve surgical procedures and implant designs. The goal of this study is to characterize a triboelectric energy harvester under body loads and to design compatible frontend electronics to digitize the load data. The harvester prototype would be placed between the tibial component and polyethylene bearing of a TKR implant. The harvester generates power from the compressive load. To examine the harvester output and the feasibility of powering a digitization circuitry, a triboelectric energy harvester prototype is fabricated and tested. An axial tibiofemoral load profile from normal walking (gait) is approximated as a 1 Hz sine wave signal and is applied to the harvester. Because the root mean square of voltages generated via this phenomenon is proportional to the applied load, the device can be simultaneously employed for energy harvesting and load sensing. With an approximated knee cyclic load of 2.3 kN at 1 Hz, the harvester generated output voltage of 18 V rms, and an average power of 6 mu W at the optimal resistance of 58 M Omega. The harvested signal is rectified through a negative voltage converter rectifier and regulated through a linear-dropout regulator with a combined efficiency of 71%. The output of the regulator is used to charge a supercapacitor. The energy stored in the supercapacitor is used for low resolution sensing of the load through a peak detector and analog-to-digital converter. According to our analysis, sensing the load several times a day is feasible by relying only on harvested power. The results found from this work demonstrate that triboelectric energy harvesting is a promising technique for self-powering load sensors inside knee implants.
机译:虽然总膝盖替换(TKR)手术的数量正在迅速增长,但许多患者仍然不满意,但功能性和疼痛还原仍然不令人满意。手术后膝关节载荷的持续监测提供了改善外科手术和植入设计的潜力。本研究的目标是在体重负荷下的摩擦电能收割机,并设计兼容的前端电子设备来数字化负载数据。收割机原型将被置于TKR植入物的胫骨组分和聚乙烯轴承之间。收割机从压缩负载产生电力。为了检查收割机输出和供电数字化电路的可行性,制造和测试了摩擦电能收割机原型。来自正常行走(步态)的轴向胫骨型载荷曲线近似为1 Hz正弦波信号,并应用于收割机。因为通过该现象产生的电压的均方根平方与施加的负载成比例,所以该装置可以同时采用能量收集和负载感测。在1 Hz的近似膝关节循环负载为2.3 kn,收割机产生的输出电压为18 V rms,并且在58米ω的最佳电阻下的平均功率为6μW。收获的信号通过负电压转换器整流器整流,并通过线性丢弃调节器调节,效率为71%。调节器的输出用于为超级电容器充电。存储在超级电容器中的能量用于通过峰值检测器和模数转换器的负载的低分辨率感测。根据我们的分析,通过仅依赖于收获的电力,每天感测多次的负荷是可行的。本工作中发现的结果表明,摩擦电能量采火是膝关节内部自动负荷传感器的有希望的技术。

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