基于共振的MEMS粘度传感器的设计与仿真

IF 2.2 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Deeksha Shridhar Vishnampet, Sujan Yenuganti, Sankalp Paliwal, Mythili Peparthi, Kavitha Panneerselvam
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引用次数: 0

摘要

本文介绍了一种基于mems的压电微膜片谐振式粘度传感器的设计与仿真。该传感器包括一个振动膜片作为具有压电激励和检测的谐振元件。随着隔膜下液体粘度的变化,谐振频率也会发生变化。在COMSOL多物理场有限元工具中设计了膜片的数值模型,研究了膜片下不同粘度流体的谐振特性。为了支持数值模拟结果,还使用不锈钢薄片作为隔膜进行了中尺度实验,并验证了所提出传感器的概念证明。所提出的传感器的主要优点是它使用共振测量原理,可以提供良好的稳定性能,分辨率,可靠性和响应时间。所提出的传感器也可以作为手持式实验室产品展示,用于快速粘度测量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Design and simulation of a resonance-based MEMS viscosity sensor

Design and simulation of a resonance-based MEMS viscosity sensor

The paper presents the design and simulation of a MEMS-based resonant viscosity sensor using a piezoelectric micro diaphragm. The sensor comprises a vibrating diaphragm as a resonating element with piezoelectric excitation and detection. As the viscosity of the liquid beneath the diaphragm changes, the resonant frequency also changes. A numerical model of a diaphragm is designed in the COMSOL Multiphysics FEM tool, and its resonance characteristics were studied with a fluid of different viscosities beneath it. To support the numerical simulation results, mesoscale experimentation was also performed using a stainless steel thin sheet as a diaphragm and also to verify the proof of concept of the proposed sensor. The major benefit of the proposed sensor is that it uses the resonance measurement principle and can be shown to offer good stable performance, resolution, reliability, and response time. The proposed sensor can also be showcased as a hand-held laboratory product for quick viscosity measurements.

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来源期刊
Journal of Computational Electronics
Journal of Computational Electronics ENGINEERING, ELECTRICAL & ELECTRONIC-PHYSICS, APPLIED
CiteScore
4.50
自引率
4.80%
发文量
142
审稿时长
>12 weeks
期刊介绍: he Journal of Computational Electronics brings together research on all aspects of modeling and simulation of modern electronics. This includes optical, electronic, mechanical, and quantum mechanical aspects, as well as research on the underlying mathematical algorithms and computational details. The related areas of energy conversion/storage and of molecular and biological systems, in which the thrust is on the charge transport, electronic, mechanical, and optical properties, are also covered. In particular, we encourage manuscripts dealing with device simulation; with optical and optoelectronic systems and photonics; with energy storage (e.g. batteries, fuel cells) and harvesting (e.g. photovoltaic), with simulation of circuits, VLSI layout, logic and architecture (based on, for example, CMOS devices, quantum-cellular automata, QBITs, or single-electron transistors); with electromagnetic simulations (such as microwave electronics and components); or with molecular and biological systems. However, in all these cases, the submitted manuscripts should explicitly address the electronic properties of the relevant systems, materials, or devices and/or present novel contributions to the physical models, computational strategies, or numerical algorithms.
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