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Methods of frequency tuning vibration based micro-generator

机译:基于频率调谐振动的微型发电机的方法

摘要

A vibration based micro-generator is an energy harvesting device that couples a certain transduction mechanism to the ambient vibration and converts mechanical energy to electrical energy. In order to maximize available power, micro-generators are typically inertial devices that operate at a single resonant frequency. The maximum output power is generated when the resonant frequency of the generator matches the ambient vibration frequency. The output power drops significantly if these two frequencies do not match due to the high Q-factor of the generator. This thesis addresses possible methods to overcome this limit of vibration based micro-generators, in particular, method of tuning the resonant frequency of the generator to match the ambient vibration frequency. This thesis highlights mechanical and electrical methods of resonant frequency tuning of a vibration based micro-generator. The mechanical frequency tuning is realized by applying an axial tensile force to strain the cantilever structure of the generator. A tunable micro-generator with a tuning range from 67.6 Hz to 98Hz and a maximum output power of 156.6?W at a constant low vibration acceleration level of 0.59m·s-2 was designed and tested. The tuning mechanism was found not to affect the damping of the generator. A closed loop frequency tuning system as well as the frequency searching algorithms has been developed to realize automatic frequency tuning using the proposed mechanical tuning method. The model of duty cycle of the system was established and it was proved theoretically that a reasonable duty cycle can be achieved if the generator and tuning system is designed properly.The electrical tuning method is realized by changing the load capacitance of the generator. Models of piezoelectric and electromagnetic generators using electrical tuning methods were derived. The model of the electromagnetic generator has also been experimentally verified. The electrically tunable generator tested has a maximum 3dB bandwidth of 4.2Hz. In conclusion, resonant frequency tuning using mechanical methods presented in the thesis have larger tuning range than that using electrical methods. However, frequency tuning using electrical tuning methods consumes less power than that using mechanical methods for the same amount of tuning range.
机译:基于振动的微型发电机是一种能量收集设备,它将某种转换机制耦合到环境振动并将机械能转换为电能。为了最大化可用功率,微型发电机通常是在单个谐振频率下运行的惯性设备。当发电机的共振频率与环境振动频率匹配时,将产生最大输出功率。如果这两个频率由于发生器的高Q因数不匹配,则输出功率将显着下降。本文提出了克服基于振动的微型发电机这一局限性的可能方法,特别是调整发电机的谐振频率以匹配环境振动频率的方法。本文着重介绍了基于振动的微型发电机共振频率调谐的机械和电气方法。机械频率调谐是通过施加轴向拉力来使发电机的悬臂结构变形来实现的。设计并测试了可调微型发电机,其调谐范围为67.6 Hz至98Hz,在恒定的低振动加速度为0.59m·s-2的情况下最大输出功率为156.6?W。发现调谐机构不会影响发电机的阻尼。已经开发出一种闭环频率调谐系统以及频率搜索算法,以使用所提出的机械调谐方法来实现自动频率调谐。建立了系统的占空比模型,从理论上证明了如果对发电机和整定系统进行适当的设计,就可以达到一个合理的占空比。通过改变发电机的负载电容来实现电整定方法。推导了使用电调谐方法的压电和电磁发电机的模型。电磁发生器的模型也已通过实验验证。经过测试的电可调发生器的最大3dB带宽为4.2Hz。综上所述,采用机械方法进行谐振频率调谐的调谐范围要大于采用电气方法进行谐振频率调谐的范围。但是,对于相同的调谐范围,使用电调谐方法进行频率调谐比使用机械方法消耗的功率少。

著录项

  • 作者

    Zhu Dibin;

  • 作者单位
  • 年度 2009
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"en","name":"English","id":9}
  • 中图分类

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