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A multisource energy harvesting utilizing highly efficient ferroelectric PMN-PT single crystal

机译:利用高效铁电PMN-PT单晶进行多源能量收集

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摘要

This paper demonstrates a multi-source energy harvester that is able to utilize simultaneously both piezoelectric and pyroelectric effects in lead magnesium niobate-lead titanate (PMN-PT) single crystal. The paper presents a study of PMN-PT single crystal with a (67:33) composition grown in our laboratory via a vertical gradient freeze method without any flux. The performance of the piezoelectric and pyroelectric energy harvester using uni-morph device structure was evaluated via modeling and experiment. The theoretical study was implemented based on a distributed parameter electromechanical model and the modelling procedure was approximated using finite element analysis to predict the electromechanical behavior of the harvester. The maximum power density at a resonance frequency of 50 Hz and optimum resistance of 2 MΩ. was 16.7 nW/(g~2 cm~3) under a 1 g acceleration of vibration. The measured values of electrical output parameters were in good agreement with theoretical and modelling results using MATLAB and COMSOL Multiphysics, respectively. By using the pyroelectric effect along with the piezoelectric effect, the output voltage of the energy harvester was found to be enhanced at the optimum resistance and specific frequency values. It was noticed that the output voltage was increased monotonically with temperature-difference (AT) and reaches up to 180 % of its original value under temperature difference of 1.7 ℃ at a frequency value of 49 Hz.
机译:本文演示了一种多源能量收集器,该能量收集器能够同时利用铌酸铅镁-钛酸铅(PMN-PT)单晶中的压电和热电效应。本文介绍了通过垂直梯度冻结法在没有任何助熔剂的情况下在我们实验室中生长的(67:33)成分的PMN-PT单晶的研究。通过建模和实验评估了采用单晶器件结构的压电和热电能量采集器的性能。基于分布式参数机电模型进行了理论研究,并使用有限元分析对建模过程进行了近似,以预测收割机的机电行为。谐振频率为50 Hz时的最大功率密度,最佳电阻为2MΩ。在1 g的振动加速度下为16.7 nW /(g〜2 cm〜3)。电气输出参数的测量值分别与使用MATLAB和COMSOL Multiphysics进行的理论和建模结果吻合良好。通过结合使用热电效应和压电效应,发现能量收集器的输出电压在最佳电阻和特定频率值下得到了增强。可以看出,输出电压随温度差(AT)单调增加,在1.7℃温差和49 Hz频率值下达到其原始值的180%。

著录项

  • 来源
    《Journal of materials science 》 |2016年第10期| 10020-10030| 共11页
  • 作者单位

    Department of Physics, Chemistry, and Mathematics (Materials Science Group-Clean Energy Laboratory) College of Engineering, Technology and Physical Sciences, Alabama A&M University, Normal, AL 35762, USA;

    Department of Physics, Chemistry, and Mathematics (Materials Science Group-Clean Energy Laboratory) College of Engineering, Technology and Physical Sciences, Alabama A&M University, Normal, AL 35762, USA;

    Department of Physics, Chemistry, and Mathematics (Materials Science Group-Clean Energy Laboratory) College of Engineering, Technology and Physical Sciences, Alabama A&M University, Normal, AL 35762, USA;

    Department of Mechanical Engineering, University of Bath, Bath BA2 7AY, UK;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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