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首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Self sustained thermally induced gas-damped oscillations of bimetal cantilevers with application to the design of a new pyroelectric micro energy harvester
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Self sustained thermally induced gas-damped oscillations of bimetal cantilevers with application to the design of a new pyroelectric micro energy harvester

机译:自持续热诱导的双金属悬臂振荡器,适用于设计新的热电微能收割机的设计

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Low efficiency is the main drawback of many MEMS thermal energy harvesters. Recently, energy harvesting micro-devices that operate using the pyroelectric effect gained attention due to their potential superior performance. Operation of these devices is based on the cyclic motion of a pyroelectric capacitor that operates between a high temperature and a low temperature reservoirs. In this paper, we investigate the dynamics of oscillations of a pyroelectric capacitor self sustained by thermally actuated bimetal micro-cantilevers, a topic which is so far under investigated. In addition to highlighting key thermodynamic aspects of the operation, we explore conditions for self-sustained oscillations and discuss the viability of operation at the mechanical resonance frequency. The analysis is presented for a new design inspired by the device proposed in Hunter et al (2011 SPIE Defense, Security, and Sensing (International Society for Optics and Photonics) p 80350V); Hunter et al (2012 SPIE Defense, Security, and Sensing (International Society for Optics and Photonics) p 83770D), where in contrast, our proposed design boasts the following features: the pyroelectric capacitor remains parallel to the heat reservoirs, by virtue of its symmetric support by two bimetallic cantilever beams; in addition, the cyclic operation of the device does not require physical contact, thus lowering the risk of mechanical failure. To adjust the damping force imparted by the surrounding gas, the thermal reservoirs are equipped with trenches. To study the dynamic operation of the device, we developed a physically based reduced order, yet accurate, model that accounts for the heat transfer between and within the different components, and for the various forces including the gas damping force. The model is embedded within an optimization algorithm to produce optimal designs over the range 26 degrees C-38 degrees C of temperature difference between the two reservoirs. The corresponding range of harvested power density is 0.4-0.65 mW cm(-2).
机译:低效率是许多MEMS热能收割机的主要缺点。最近,由于其潜在的卓越性能,能量收集使用热电效应的微型器件进行了关注。这些装置的操作基于热电电容器的循环运动,该电容器在高温和低温储存器之间工作。在本文中,我们研究了热驱动的双臂微悬臂上的热电电容器振荡的动态,这是迄今为止正在研究的主题。除了突出显示操作的关键热力学方面之外,我们还探讨了自我持续振荡的条件,并讨论了机械共振频率的操作的可行性。通过亨特等人(2011年Spie Defense,Security和Senve)(2011年Spie Defense,Security,Senve)(国际光学和光子学协会)P 80350V),介绍了一种新设计的新设计。 Hunter等人(2012年Spie Defense,Security,Senve(国际光学和光子学会)P 83770D),在相反,我们的建议设计拥有以下特征:热电电容器凭借其依次保持平行于热藏两个双金属悬臂梁的对称支持;另外,设备的循环操作不需要物理接触,从而降低机械故障的风险。为了调节周围气体赋予的阻尼力,热容器配有沟槽。为了研究设备的动态操作,我们开发了一种物理上的减少顺序,但准确的模型,其考虑了不同部件之间和内部的传热,以及包括气体阻尼力的各种力。该模型嵌入在优化算法中,以在两个储存器之间的温差26摄氏度C-38摄氏度的范围内产生最佳设计。相应的收获功率密度范围为0.4-0.65mm cm(-2)。

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