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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Design study of piezoelectric energy-harvesting devices for generation of higher electrical power using a coupled piezoelectric-circuit finite element method
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Design study of piezoelectric energy-harvesting devices for generation of higher electrical power using a coupled piezoelectric-circuit finite element method

机译:压电耦合有限元法用于发电的压电能量收集装置的设计研究

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This paper presents a design study on the geometric parameters of a cantilever-based piezoelectric energyharvesting devices (EHD), which harvest energy from motion (vibration), for the purpose of scavenging more energy from ambient vibration energy sources. The design study is based on the coupled piezoelectric-circuit finite element method (CPCFEM), previously presented by Dr. Zhu. This model can calculate the power output of piezoelectric EHDS directly connected to a load resistor and is used in this paper to obtain the following simulation results for variations in geometric parameters such as the beam length, width and thickness, and the mass length, width, and height: 1) the current flowing through and the voltage developed across the load resistor, 2) the power dissipated by the resistor and the corresponding vibrational displacement amplitude, and 3) the resonant frequency. By studying these results, straightforward design strategies that enable the generation of more power are obtained for each geometric parameter, and a physical understanding of how each parameter affects the output power is given. It is suggested that, in designing with the aim of generating more power, the following strategies be used: 1) for the beam, a shorter length, larger width, and lower ratio of piezoelectric layer thickness to total beam thickness are preferred in the case of a fixed mass; 2) for the mass, a shortened mass length and a higher mass height are preferred in the case of variation in the mass length and the mass height with mass width and mass value remain fixed, and a wider width and small mass height are preferred in the case of variation in mass width and height (mass length and value remain fixed; and 3) for the case of a fixed total length, a shorter beam length and longer mass length are preferred. With the design strategies, output powers from the device can reach above 1 to 2 mW/cm3, much higher than the 200 ;C;W/cm3 currently achie-nved in the published literature. This is an encouraging prospect for enabling a wider range of applications of the EHDs. In addition, physical insights into how each parameter influences output power are also discussed in detail.
机译:本文介绍了一种基于悬臂的压电能量收集装置(EHD)的几何参数的设计研究,该装置从运动(振动)中收集能量,目的是从环境振动能量源中清除更多的能量。该设计研究基于朱博士先前提出的压电电路有限元耦合方法(CPCFEM)。该模型可以计算直接连接到负载电阻器的压电EHDS的功率输出,并在本文中用于获得以下几何参数变化的仿真结果,这些几何参数如梁的长度,宽度和厚度以及质量的长度,宽度,高度:1)流过负载电阻的电流和两端产生的电压; 2)电阻消耗的功率和相应的振动位移幅度; 3)谐振频率。通过研究这些结果,可以为每个几何参数获得能够产生更多功率的简单设计策略,并给出每个参数如何影响输出功率的物理理解。建议在以产生更多功率为目标的设计中,采用以下策略:1)对于梁,在这种情况下,最好采用较短的长度,较大的宽度以及较低的压电层厚度与总梁厚度的比率固定质量的; 2)对于质量,在质量长度变化并且质量高度与质量宽度和质量值保持固定的情况下,优选缩短质量长度并提高质量高度,优选在质量宽度较宽且质量高度小的情况下。在质量宽度和高度变化的情况下(质量长度和值保持固定;以及3),对于总长度固定的情况,优选较短的射束长度和较长的质量长度。通过设计策略,该器件的输出功率可以达到1至2 mW / cm3以上,远高于目前已发表文献中达到的200 C / W / cm3。这是实现EHD广泛应用的令人鼓舞的前景。此外,还将详细讨论有关每个参数如何影响输出功率的物理见解。

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