Next Article in Journal
Machine Learning Meets Compressed Sensing in Vibration-Based Monitoring
Next Article in Special Issue
Fast Constant-Time Modular Inversion over Fp Resistant to Simple Power Analysis Attacks for IoT Applications
Previous Article in Journal
Correlation Analysis of Noise, Vibration, and Harshness in a Vehicle Using Driving Data Based on Big Data Analysis Technique
Previous Article in Special Issue
Blockchain Based Authentication and Cluster Head Selection Using DDR-LEACH in Internet of Sensor Things
 
 
Font Type:
Arial Georgia Verdana
Font Size:
Aa Aa Aa
Line Spacing:
Column Width:
Background:
Article

An Ultra-Low-Cost RCL-Meter

1
CEOT—Center for Electronics, Optoelectronics and Telecommunications, University of Algarve, Campus Gambelas, 8005-139 Faro, Portugal
2
Department of Physics, University of Algarve, Campus Gambelas, 8005-139 Faro, Portugal
3
Department of Electronics and Computer Engineering, University of Algarve, Campus Gambelas, 8005-139 Faro, Portugal
*
Author to whom correspondence should be addressed.
Sensors 2022, 22(6), 2227; https://doi.org/10.3390/s22062227
Submission received: 18 January 2022 / Revised: 1 March 2022 / Accepted: 8 March 2022 / Published: 14 March 2022
(This article belongs to the Special Issue IoT Multi Sensors)

Abstract

An ultra-low-cost RCL meter, aimed at IoT applications, was developed, and was used to measure electrical components based on standard techniques without the need of additional electronics beyond the AVR® micro-controller hardware itself and high-level routines. The models and pseudo-routines required to measure admittance parameters are described, and a benchmark between the ATmega328P and ATmega32U4 AVR® micro-controllers was performed to validate the resistance and capacitance measurements. Both ATmega328P and ATmega32U4 micro-controllers could measure isolated resistances from 0.5 Ω to 80 MΩ and capacitances from 100 fF to 4.7 mF. Inductance measurements are estimated at between 0.2 mH to 1.5 H. The accuracy and range of the measurements of series and parallel RC networks are demonstrated. The relative accuracy (ar) and relative precision (pr) of the measurements were quantified. For the resistance measurements, typically ar, pr < 10% in the interval 100 Ω–100 MΩ. For the capacitance, measured in one of the modes (fast mode), ar < 20% and pr < 5% in the range 100 fF–10 nF, while for the other mode (transient mode), typically ar < 20% in the range 10 nF–10 mF and pr < 5% for 100 pF–10 mF. ar falls below 5% in some sub-ranges. The combination of the two capacitance modes allows for measurements in the range 100 fF–10 mF (11 orders of magnitude) with ar < 20%. Possible applications include the sensing of impedimetric sensor arrays targeted for wearable and in-body bioelectronics, smart agriculture, and smart cities, while complying with small form factor and low cost.
Keywords: impedance meter; RCL-bridges; portable instrument; AVR® micro-controller; low-cost; internet of things impedance meter; RCL-bridges; portable instrument; AVR® micro-controller; low-cost; internet of things

Share and Cite

MDPI and ACS Style

Inácio, P.M.C.; Guerra, R.; Stallinga, P. An Ultra-Low-Cost RCL-Meter. Sensors 2022, 22, 2227. https://doi.org/10.3390/s22062227

AMA Style

Inácio PMC, Guerra R, Stallinga P. An Ultra-Low-Cost RCL-Meter. Sensors. 2022; 22(6):2227. https://doi.org/10.3390/s22062227

Chicago/Turabian Style

Inácio, Pedro M. C., Rui Guerra, and Peter Stallinga. 2022. "An Ultra-Low-Cost RCL-Meter" Sensors 22, no. 6: 2227. https://doi.org/10.3390/s22062227

APA Style

Inácio, P. M. C., Guerra, R., & Stallinga, P. (2022). An Ultra-Low-Cost RCL-Meter. Sensors, 22(6), 2227. https://doi.org/10.3390/s22062227

Note that from the first issue of 2016, this journal uses article numbers instead of page numbers. See further details here.

Article Metrics

Back to TopTop