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May 17, 2026Applied Sciences0 citationsOpen Access

Quantification of Hydrogen from Electrolysis by Combining a Resistive Electronic Sensor with the Standard Volumetric Method

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EMEmanuel MangoUniversidade Nova de LisboaAFAlessandro FantoniInstituto Politécnico de LisboaMVM. VieiraUniversity of Lisbon

Key Points

  • This research aims to quantify hydrogen production from electrolysis by integrating resistive sensors with traditional methods.
  • Combined the MQ-8 resistive sensor with volumetric methods and BME280 sensor for temperature, pressure, and humidity.
  • Evaluated sensor validation metrics to confirm reliability.
  • Maintained constant pressure during experiments to determine hydrogen volume based on sensor output.
  • At 1 A current, the volume of hydrogen was estimated from the MQ-8 sensor output voltage.
  • For currents between 0.76 to 250 mA, hydrogen flow rates were approximated from sensor voltage readings.
  • Suggests potential for MQ-8 and BME280 sensors in hydrogen environments with further research.

Abstract

Currently, hydrogen has become an indispensable topic when discussing the energy transition. Determining the amount of hydrogen produced or lost through leaks is a critical issue. Recently, with the emergence of the low-cost MQ-8 resistive semiconductor sensor, which is sensitive to hydrogen and responds with an output voltage Vout, there has been considerable interest in its use in small laboratory experiments. The combination of the volumetric method, the MQ-8 sensor, and the BME280 sensor (for temperature, pressure, and humidity) is of significant interest and has industrial applications. This work presents an in-depth study of the combination of the traditional volumetric method with the MQ-8 and BME sensors. Sensor validation metrics were evaluated to ensure the reliability of the results. The pressure remained approximately constant due to the system configuration. The results indicate that for a current of 1 A, it is possible to determine the approximate volume of hydrogen as a function of the sensor’s output voltage. For low currents ranging from 0.76 to 250 mA, the results indicate that it is possible to determine the approximate hydrogen flow rate as a function of the voltage detected by the sensor. With further investigation, it will be possible to propose the use of MQ-8 and BME280 sensors in environments containing hydrogen.

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Cite This Study

Mango et al. (2026) studied this question.

synapsesocial.com/papers/6a095b5d7880e6d24efe10d6https://doi.org/10.3390/app16104863
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