...
首页> 外文期刊>Journal of intelligent material systems and structures >A parametrically excited vibration energy harvester
【24h】

A parametrically excited vibration energy harvester

机译:参数激励的振动能量收集器

获取原文
获取原文并翻译 | 示例
           

摘要

In the arena of vibration energy harvesting, the key technical challenges continue to be low power density and narrow operational frequency bandwidth. While the convention has relied upon the activation of the fundamental mode of resonance through direct excitation, this article explores a new paradigm through the employment of parametric resonance. Unlike the former, oscillatory amplitude growth is not limited due to linear damping. Therefore, the power output can potentially build up to higher levels. Additionally, it is the onset of non-linearity that eventually limits parametric resonance; hence, this approach can also potentially broaden the operating frequency range. Theoretical prediction and numerical modelling have suggested an order higher in oscillatory amplitude growth. An experimental macro-sized electromagnetic prototype (practical volume of ~1800 cm~3) when driven into parametric resonance, has demonstrated around 50% increase in half power band and an order of magnitude higher peak power density normalised against input acceleration squared (293 μW cm~(-3) m~(-2) s~4 with 171.5 mW at 0.57 m s~(-2)) in contrast to the same prototype directly driven at fundamental resonance (36.5 μW cm~(-3) m~(-2) s~4 with 27.75 mW at 0.65 m s~(-2)). This figure suggests promising potentials while comparing with current state-of-the-art macro-sized counterparts, such as Perpetuum's PMG-17 (119μW cm~(-3)m~(-2)s~4).
机译:在振动能量收集领域,关键的技术挑战仍然是低功率密度和狭窄的工作频率带宽。尽管惯例依赖于通过直接激励来激活共振的基本模式,但本文还是通过采用参数共振来探索一种新的范例。与前者不同,由于线性阻尼,振荡幅度的增长不受限制。因此,功率输出可能会累积到更高的水平。另外,非线性的开始最终限制了参数共振。因此,这种方法还可能潜在地扩大工作频率范围。理论预测和数值模拟表明,振荡幅度的增长要高一个数量级。实验的大型电磁原型(实际体积为〜1800 cm〜3)在进入参数共振时,显示出半功率带增加了约50%,并且峰值功率密度相对于输入加速度平方(293μW)进行了归一化cm〜(-3)m〜(-2)s〜4在0.57 ms〜(-2)时为171.5 mW),而同一原型直接在基本谐振下驱动(36.5μWcm〜(-3)m〜( -2)s〜4,在0.65 ms〜(-2)时为27.75 mW。与目前最先进的大型同类产品(例如Perpetuum的PMG-17(119μWcm〜(-3)m〜(-2)s〜4))相比,该图表明了潜力无限的潜力。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号