Development of piezoresistive flexible sensor with dual-height cylindrical microstructure surfaces to achieve vehicle vibration monitoring

IF 2.4 4区 工程技术 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC Journal of Micromechanics and Microengineering Pub Date : 2024-06-17 DOI:10.1088/1361-6439/ad5564
Decheng Zhang, Jiaqing Xie, Xiaoyu Meng, Haoran Pang, Ruqian Sun, Haiyan Fan, Xiaohui Nan and Zhikang Zhou
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Abstract

This research proposed a vibration monitoring device based on a piezoresistive flexible sensor with microstructured surfaces to achieve a simple acquisition of vibration information in the driver’s cabin of automobiles. The shape, size and arrangement mode of microstructures on the piezoresistive flexible sensor performance were investigated by finite element simulation. The polydimethylsiloxane/hydroxylated multi walled carbon nanotubes (PDMS/MWCNTs-COOH) composite membranes were prepared by the combination of high-pressure spraying and spinning coating method. The electromechanical response curves of the piezoresistive flexible sensor composed of a double-layer PDMS/MWCNTs-COOH composite membranes based on a dual-height cylindrical microstructure were tested. A vibration monitoring device was developed to process the signals obtained by the fabricated piezoresistive flexible sensor, and the vibration response of the car cab under different driving conditions was investigated. The results indicated that the cylindrical microstructure with small size can improve the sensitivity of the fabricated piezoresistive flexible sensor. Compared with the single-height and dual-height cylindrical microstructure, the piezoresistive flexible sensor with dual-height cylindrical microstructure can expand the detection range, and improve the linearity and sensitivity. The piezoresistive flexible sensor exhibits excellent performance, with a sensitivity of 1.774 kPa−1 and a detection range is 0–0.5 kPa. The above advances can improve the authenticity of the collected data, and provide a basis for the processing and analysis of the vibration signal before improving the noise, vibration and harshness performance of the vehicle.
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开发具有双高圆柱形微结构表面的压阻柔性传感器,实现车辆振动监测
本研究提出了一种基于具有微结构表面的压阻柔性传感器的振动监测装置,以实现对汽车驾驶室内振动信息的简单采集。通过有限元模拟研究了微结构的形状、尺寸和排列方式对压阻柔性传感器性能的影响。采用高压喷涂和旋涂相结合的方法制备了聚二甲基硅氧烷/羟基多壁碳纳米管(PDMS/MWCNTs-COOH)复合膜。测试了基于双高圆柱形微结构的双层 PDMS/MWCNTs-COOH 复合膜组成的压阻柔性传感器的机电响应曲线。开发了一种振动监测装置来处理所制造的压阻柔性传感器获得的信号,并研究了汽车驾驶室在不同驾驶条件下的振动响应。结果表明,小尺寸的圆柱形微结构可以提高制作的压阻柔性传感器的灵敏度。与单高和双高圆柱形微结构相比,双高圆柱形微结构的压阻柔性传感器可以扩大检测范围,提高线性度和灵敏度。这种压阻柔性传感器性能优异,灵敏度为 1.774 kPa-1,检测范围为 0-0.5 kPa。上述进展可以提高采集数据的真实性,并为振动信号的处理和分析提供依据,进而改善车辆的噪声、振动和颠簸性能。
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来源期刊
Journal of Micromechanics and Microengineering
Journal of Micromechanics and Microengineering 工程技术-材料科学:综合
CiteScore
4.50
自引率
4.30%
发文量
136
审稿时长
2.8 months
期刊介绍: Journal of Micromechanics and Microengineering (JMM) primarily covers experimental work, however relevant modelling papers are considered where supported by experimental data. The journal is focussed on all aspects of: -nano- and micro- mechanical systems -nano- and micro- electomechanical systems -nano- and micro- electrical and mechatronic systems -nano- and micro- engineering -nano- and micro- scale science Please note that we do not publish materials papers with no obvious application or link to nano- or micro-engineering. Below are some examples of the topics that are included within the scope of the journal: -MEMS and NEMS: Including sensors, optical MEMS/NEMS, RF MEMS/NEMS, etc. -Fabrication techniques and manufacturing: Including micromachining, etching, lithography, deposition, patterning, self-assembly, 3d printing, inkjet printing. -Packaging and Integration technologies. -Materials, testing, and reliability. -Micro- and nano-fluidics: Including optofluidics, acoustofluidics, droplets, microreactors, organ-on-a-chip. -Lab-on-a-chip and micro- and nano-total analysis systems. -Biomedical systems and devices: Including bio MEMS, biosensors, assays, organ-on-a-chip, drug delivery, cells, biointerfaces. -Energy and power: Including power MEMS/NEMS, energy harvesters, actuators, microbatteries. -Electronics: Including flexible electronics, wearable electronics, interface electronics. -Optical systems. -Robotics.
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