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Design Method for Piezoelectric Bending Generators in Energy Harvesting Systems

机译:能量收集系统中压电弯曲发生器的设计方法

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The increased demand for mobile systems using low-power electronics leads to a need for new power sources. Using batteries as power source may be inapplicable in distributed systems like wireless sensor networks because the batteries have to be exchanged frequently. Energy Harvesting systems are one possible energy source for such systems exploiting environmental energy like mechanical vibrations. One good solution to convert vibration energy is the use of piezoelectric generators usually realised as piezoelectric bending beams. The generators convert mechanical energy to electrical energy due to resulting strain of the element. However, the power output of piezoelectric generators is a challenging task even if low-power applications have to be driven. Due to the low electric power output of piezoelectric generators, it is an important task to obtain a suitable geometric design of the transducer element. Beside the element dimensions the electric power output depends on the input excitation as well as on the electric load to be powered. To analyse the system behaviour, input variables and the generator itself have to be described in a mathematical model. This enables the calculation of optimal elements in principle. A modal electro-mechanical model of the piezoelectric element assuming to be base-excited is used in this paper. Although the modal model is very helpful to analyse the system, it cannot be easy used to determine a proper design of the piezoelectric elements. The problem is that the parameters of the model do not show any apparent relations to geometric dimensions or material data. Therefore, a mathematical method to obtain the parameters from the physical properties of a piezoelectric bending element is briefly described. The knowledge of the link between physical and modal parameters allows the usage of the mathematical model as a qualified design method. The input parameters of the linked model are the material data which can be found on data sheets. Additionally, boundary conditions of the environment like the impedance of the driven load and the vibration excitation has to be specified. The linked model shows the influences on power output to connected electric loads. The given power demands of applications which have to be satisfied yields in a design space of suitable elements. The design method enables the development engineer to select piezoelectric generator elements.
机译:对使用低功率电子设备的移动系统的需求增加,导致需要新的电源。使用电池作为电源可能不适用于像无线传感器网络这样的分布式系统,因为必须经常更换电池。能量收集系统是此类系统利用环境能量(如机械振动)的一种可能的能源。转换振动能量的一种好的解决方案是使用通常以压电弯曲梁形式实现的压电发生器。由于元件产生的应变,发电机将机械能转换为电能。然而,即使必须驱动低功率应用,压电发电机的功率输出也是一项艰巨的任务。由于压电发电机的低功率输出,获得换能器元件的合适的几何设计是一项重要的任务。除了元件尺寸外,电力输出还取决于输入励磁以及要供电的电力负载。为了分析系统行为,必须在数学模型中描述输入变量和生成器本身。原则上可以计算出最佳元素。本文使用假定为基极激励的压电元件的模态机电模型。尽管模态模型对分析系统非常有帮助,但要确定压电元件的正确设计并不容易。问题在于模型的参数没有显示出与几何尺寸或材料数据的任何明显关系。因此,简要描述了一种从压电弯曲元件的物理性质获得参数的数学方法。物理参数和模态参数之间的联系的知识允许将数学模型用作合格的设计方法。链接模型的输入参数是可以在数据表上找到的材料数据。另外,必须指定环境的边界条件,例如驱动负载的阻抗和振动激励。链接的模型显示了对连接的电气负载的功率输出的影响。在适当的元件的设计空间中产生了必须满足的给定功率需求。该设计方法使开发工程师可以选择压电发电机元件。

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