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Orthogonal experimental design of polydimethylsiloxane curing for the design of low-frequency vibrational energy harvester

机译:低频振动能量收集器设计中聚二甲基硅氧烷固化的正交实验设计

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Harvesting vibrational kinetic energy from low-frequency vibrations such as human motion is a promising method to power portable electronic devices. Efficient vibrational energy harvesters can be achieved using structures with a resonant frequency matched to that of the applied vibration; however, the high stiffness of traditional materials such as silicon makes it challenging to create a compact structure with a low resonant frequency. Therefore, polydimethylsiloxane is an attractive candidate. The working frequency can be determined by the material's Young's modulus. The processing parameters, such as curing time, curing temperature, and mixing ratio of base and curing agent, which affect the elastic properties of polydimethylsiloxane, have previously been investigated individually but do not take into account the cross effect of these parameters. Here, for the first time using orthogonal experiment design, these parameters were considered together and two comprehensive equations have been established to model the effect of the curing parameters on the elastic properties of polydimethylsiloxane. The model was verified with additional experiments, and an energy harvester with a predicted natural frequency of ~22 Hz has been fabricated and corroborate with the experimental results.
机译:从诸如人体运动的低频振动中收集振动动能是为便携式电子设备供电的一种有前途的方法。使用共振频率与所施加振动的频率相匹配的结构可以实现有效的振动能量收集器。但是,传统材料(如硅)的高刚度使其难以制造出具有低谐振频率的紧凑型结构。因此,聚二甲基硅氧烷是有吸引力的候选物。工作频率可以由材料的杨氏模量确定。先前已经单独研究了影响聚二甲基硅氧烷弹性性能的加工参数,例如固化时间,固化温度以及碱和固化剂的混合比,但没有考虑这些参数的交叉影响。在这里,首次使用正交试验设计,将这些参数一起考虑,并建立了两个综合方程来模拟固化参数对聚二甲基硅氧烷弹性性能的影响。通过额外的实验验证了该模型,并制造了预计固有频率为〜22 Hz的能量采集器,并与实验结果相符。

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