Strain control for optimization of piezoelectric energy harvesting

M. S. Woo, S. Hong, H. Jung, C. Yang, D. Song, T. Sung
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Abstract

A novel piezoelectric energy harvesting module with controllable strain was designed to allow investigations into the correlations among strain, frequency, and output power. Specifically, although conventional vibration modules allow control over strain only through variation in tip mass, the proposed module allows more accurate strain control through adjustment of the displacement of the free end of the cantilever (5-45 mm). Experiments showed that both types of modules exhibit an increase in open circuit output voltage with strain, but the piezoelectric material fails at severe strain. In addition, it was confirmed that the proposed module design can keep the output voltage constant by controlling the strain, which allows investigation into the relationship between frequency and output power. Thus, at constant strain, the matching impedance was found to be low at high frequency. Therefore, optimum conditions for harvesting maximum power are high frequency and the largest strain that does not damage the piezoelectric material.
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压电能量收集优化的应变控制
为了研究应变、频率和输出功率之间的关系,设计了一种具有可控应变的新型压电能量收集模块。具体来说,虽然传统的振动模块只能通过尖端质量的变化来控制应变,但该模块可以通过调整悬臂自由端的位移(5-45毫米)来实现更精确的应变控制。实验表明,两种模组的开路输出电压均随应变的增加而增加,但压电材料在严重应变下失效。此外,还证实了所提出的模块设计可以通过控制应变来保持输出电压恒定,从而可以研究频率与输出功率之间的关系。因此,在恒定应变下,匹配阻抗在高频处较低。因此,获取最大功率的最佳条件是高频率和不损坏压电材料的最大应变。
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