低成本聚合物能量采集器作为振动强度传感器

IF 2.2 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Mark Kantor;Nicola Molinazzi;Tsvi Shmilovich;Slava Krylov
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引用次数: 0

摘要

我们报告了一种简单,可制造且具有成本效益的工业应用聚合物振动强度监测传感器的设计,制造和实验功能演示。在结合传感、能量收集、数据处理、边缘计算和无线连接功能的设备中,电磁采集器的输出用于振动强度传感。该装置的机电核心是由三个独立的聚对苯二甲酸乙二醇酯膜和附着在其上的微磁铁阵列组成的组件。靠近微线圈的磁体的振动在电路中产生电流,并使EEPROM位写入操作成为可能。单位时间内的通/关电压开关和存储器写入事件的次数,每个事件对应于存储能量阈值水平的跨越,作为状态监测指标。输出电压为1.2 Vpp(峰对峰),在3mm厚,直径30mm的收割机上测量,工作加速度≈31 g,频率在860和930 Hz之间。演示了传感器工作周期的可行性,包括能量收集和存储、内存写入和无线数据读取。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Low-Cost Polymeric Energy Harvester as Vibration Intensity Sensor
We report on the design, fabrication, and experimental functionality demonstration of a simple, manufacturable, and cost-effective polymeric vibration intensity monitoring sensor for industrial applications. In the device combining sensing, energy harvesting, data processing, edge computing, and wireless connectivity functionalities, the electromagnetic harvester's output is used for the vibration intensity sensing. The electromechanical core of the device is realized as an assembly of three free-standing polyethylene terephthalate membranes with an array of micromagnets attached to them. The vibration of the magnets in proximity to the microcoils induces an electric current in the circuit and enables the EEPROM bit writing operation. The number of the on / off voltage switching and memory writing events in unit time, each corresponding to the stored energy threshold level crossing, is used as a condition monitoring indicator. The output voltage of 1.2 V pp (peak to peak) was measured in the 3 mm thick and 30 mm in diameter harvester operated at the accelerations of ≈31 g and frequencies between 860 and 930 Hz. The feasibility of the sensor operational cycle, including energy harvesting and storage, memory writing, and wireless data reading, was demonstrated.
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来源期刊
IEEE Sensors Letters
IEEE Sensors Letters Engineering-Electrical and Electronic Engineering
CiteScore
3.50
自引率
7.10%
发文量
194
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