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Characterization of Real-world Vibration Sources with a View Towards Optimal Energy Harvesting Architectures

机译:借助最佳能量收集架构表征真实世界的振动源

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A tremendous amount of research has been performed on the design and analysis of vibration energy harvester architectures with the goal of optimizing power output; most studies assume idealized input vibrations without paying much attention to whether such idealizations are broadly representative of real sources. These "idealized input signals" are typically derived from the expected nature of the vibrations produced from a given source. Little work has been done on corroborating these expectations by virtue of compiling a comprehensive list of vibration signals organized by detailed classifications. Vibration data representing 333 signals were collected from the NiPS Laboratory "Real Vibration" database, processed, and categorized according to the source of the signal (e.g. animal, machine, etc.), the number of dominant frequencies, the nature of the dominant frequencies (e.g. stationary, band-limited noise, etc.), and other metrics. By categorizing signals in this way, the set of idealized vibration inputs commonly assumed for harvester input can be corroborated and refined, and heretofore overlooked vibration input types have motivation for investigation. An initial qualitative analysis of vibration signals has been undertaken with the goal of determining how often a standard linear oscillator based harvester is likely the optimal architecture, and how often a nonlinear harvester with a cubic stiffness function might provide improvement. Although preliminary, the analysis indicates that in at least 23% of cases, a linear harvester is likely optimal and in no more than 53% of cases would a nonlinear cubic stiffness based harvester provide improvement.
机译:为了优化功率输出,已经对振动能量收集器架构的设计和分析进行了大量研究。大多数研究假设理想化的输入振动,而没有过多关注这种理想化是否能广泛代表真实来源。这些“理想化的输入信号”通常是从给定源产生的振动的预期性质中得出的。通过编译按详细分类组织的振动信号的完整列表,在证实这些期望方面所做的工作很少。从NiPS实验室的“真实振动”数据库中收集了代表333个信号的振动数据,并根据信号源(例如动物,机器等),主导频率的数量,主导频率的性质对信号进行了处理和分类。 (例如固定噪声,带限噪声等)和其他指标。通过以这种方式对信号进行分类,可以证实和完善通常被认为是收割机输入的一组理想化振动输入,并且迄今为止被忽略的振动输入类型具有研究的动机。已经对振动信号进行了初步的定性分析,目的是确定基于标准线性振荡器的收割机多久可能是最佳结构,以及具有三次刚度函数的非线性收割机多久提供一次改进。尽管是初步的,但分析表明,在至少23%的情况下,线性收割机很可能是最佳选择,在不超过53%的情况下,基于非线性立方刚度的收割机将提供改进。

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