Salem Mona S, Zekry Abdelhalim, Abouelatta Mohamed, Shaker Ahmed, Salem Marwa S
Electronics and Communications Engineering Department, Faculty of Engineering, Ain Shams University (ASU), Cairo 11517, Egypt.
Physics and Mathematics Engineering Department, Faculty of Engineering, Ain Shams University (ASU), Cairo 11517, Egypt.
Micromachines (Basel). 2022 May 31;13(6):868. doi: 10.3390/mi13060868.
In this current study, the validation and evaluation of a behavioral circuit model of electrostatic MEMS converters are presented. The main objective of such a model is to accurately find the converter behavior through the proper choice of its circuit elements. In this regard, the model enables the implementation of the electrostatic MEMS converter using commercially available off-shelf circuit elements. Thus, the overall vibration energy harvesting system can be implemented and tested without the need for fabricating the converter. As a result, the converter performance can be verified and evaluated before its fabrication which saves the expenses of fabricating trailed prototypes. To test the model, we apply it to an enhanced converter in which the conventional electrostatic MEMS converter is modified by depositing the tantalum pentoxide, TaO, a high dielectric constant material, on its fingers' sidewalls. Such a deposition technique causes an appreciable increase in the overall converter capacitance and, in turn, the output power, which is boosted from the range of µw to the range of mW. Next, the converter behavioral circuit model, which is based on representing its capacitances variations with respect to the input displacement, caused by the vibration signal, - curve, is built up. The model is qualitatively validated and quantitatively evaluated. The enhanced converter performance is investigated through the interaction of its model with the power conditioning circuit. From the simulation results, it is revealed that the converter behavioral circuit model accurately accomplishes the vibration energy conversion operation. As a result, the specification of the required controlling pulses for the converter operation is accurately determined. Finally, the model accuracy is validated by calibrating its performance with a traditionally simulated and fabricated electrostatic MEMS converter.
在当前这项研究中,展示了对静电微机电系统(MEMS)转换器行为电路模型的验证与评估。这种模型的主要目标是通过合理选择其电路元件来准确找出转换器的行为。在这方面,该模型能够使用市售的现成电路元件来实现静电MEMS转换器。因此,无需制造转换器就能实现并测试整个振动能量收集系统。结果,可以在制造转换器之前对其性能进行验证和评估,从而节省制造后续原型的费用。为了测试该模型,我们将其应用于一个增强型转换器,在该转换器中,通过在其指状侧壁上沉积五氧化二钽(TaO,一种高介电常数材料)对传统的静电MEMS转换器进行了改进。这种沉积技术使整个转换器的电容显著增加,进而使输出功率从微瓦级提升到毫瓦级。接下来,基于表示其电容随由振动信号引起的输入位移变化的曲线,建立了转换器行为电路模型。对该模型进行了定性验证和定量评估。通过其模型与功率调节电路的相互作用来研究增强型转换器的性能。从仿真结果可以看出,转换器行为电路模型准确地完成了振动能量转换操作。结果,准确确定了转换器运行所需控制脉冲的规格。最后,通过将其性能与传统模拟和制造的静电MEMS转换器进行校准,验证了模型的准确性。