Bani-Hani Muath A, Husein Malkawi Dima A, Bani-Hani Khaldoon A, Kouritem Sallam A
Department of Aeronautical Engineering, Jordan University of Science and Technology, Irbid 22110, Jordan.
Department of Civil and Environmental Engineering, German Jordanian University, Amman 11180, Jordan.
Materials (Basel). 2023 Jan 18;16(3):911. doi: 10.3390/ma16030911.
In this paper, rainfall droplet impact force is transformed into a measurable voltage signal output via the piezoelectric material direct effect utilized for sensing purposes. The motivating sensor is utilized to measure the peak impact forces of rainfall droplets for further analysis and processing. Constructing a sense for the impact force of rainfall droplets has great implications in many real-life applications that can provide vital information regarding the amplifications of the impact force of rainfall on soil erosion, and the impact on small creatures and plants, etc. The rainfall droplet is set to collide on a very thin aluminum plate with negligible mass that can be presented geometrically as an extended segment of the proposed sensing device. The proposed sensing device is composed of a bimorph simply supported composite-piezoelectric beam that buckles due to the effect of the rain droplets' vertical impact force. The proposed device is designed for optimal performance in terms of the amount of voltage that can be measured. This is accomplished by having the first critical buckling load of the device as less than the impact force of the rainfall droplet. Accordingly, the well-known genetic algorithm (GA) automated optimization technique is utilized in this paper to enhance the measured voltage signal. A proof mass is added to the middle of the beam to amplify the magnitude of the measured voltage signal. The voltage signal is intended to be transferred to the PC via a data acquisition system. The rainfall droplets' peak impact forces are obtained analytically due to the nonlinear behavior of the beam using the Euler-Bernoulli thin beams assumptions. The FE model using COMSOL 6.0 Multiphysics commercial software is used to verify the analytical results.
在本文中,雨滴冲击力通过用于传感目的的压电材料直接效应转化为可测量的电压信号输出。激励传感器用于测量雨滴的峰值冲击力,以便进一步分析和处理。构建对雨滴冲击力的感知在许多实际应用中具有重要意义,这些应用可以提供有关降雨对土壤侵蚀冲击力放大以及对小型生物和植物影响等重要信息。雨滴被设置为撞击在一块质量可忽略不计的非常薄的铝板上,该铝板在几何上可表示为所提出传感装置的延伸部分。所提出的传感装置由一个双压电晶片简支复合压电梁组成,该梁由于雨滴垂直冲击力的作用而发生屈曲。所提出的装置在可测量的电压量方面设计为具有最佳性能。这是通过使装置的第一临界屈曲载荷小于雨滴的冲击力来实现的。因此,本文利用著名的遗传算法(GA)自动优化技术来增强测量的电压信号。在梁的中间添加一个质量块以放大测量电压信号的幅度。电压信号旨在通过数据采集系统传输到个人计算机。利用欧拉 - 伯努利薄梁假设,由于梁的非线性行为,通过解析方法获得雨滴的峰值冲击力。使用COMSOL 6.0多物理场商业软件的有限元模型来验证分析结果。