2023Journal of Nanoelectronics and OptoelectronicsRequires access

Design of a Multi-Channel Gas Sensor Detection System Based on STM32 Microcontroller and LabVIEW

Lei Liu, Mingsong Wang, Shahid Hussain, Torki Altameem, Junlin Liu, Hassan Fouad, M. Shaheer Akhtar, Guanjun Qiao, Guiwu Liu

Open publisher page 14 citations

Abstract

To address the needs of gas sensitivity performance testing, a multi-channel gas sensor detection system based on an STM32 microcontroller and LabVIEW was designed. This system combines signal acquisition, data processing, date display, and storage into a single unit. The target gases are detected using the sensor array, and the regulated electrical signal is supplied to the MCU. Through the built-in A/D converter, the electrical signal is converted to digital data, which is then evaluated and processed. Finally, the serial communication function is performed in the upper computer to realize the OLED display and dynamic display of the data waveform graph. The test results from the fixed resistance test system error demonstrate that: the system test error between 1.4%–2.0%, to achieve multi-channel gas sensor signal collection and detection, and the design of low cost, good stability, to fulfil the gas sensor detection needs.

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What this paper is about

To address the needs of gas sensitivity performance testing, a multi-channel gas sensor detection system based on an STM32 microcontroller and LabVIEW was designed. This system combines signal acquisition, data processing, date display, and storage into a single unit. The target gases are detected using the sensor array, and the regulated electrical signal is supplied to the MCU. Through the built-in A/D converter, the electrical signal is converted to digital data, which is then evaluated and processed. Finally, the serial communication function is performed in the upper computer to realize the OLED display and dynamic display of the data waveform graph. The test results from the fixed resistance test system error demonstrate that: the system test error between 1.4%–2.0%, to achieve multi-channel gas sensor signal collection and detection, and the design of low cost, good stability, to fulfil the gas sensor detection needs.

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OpenAlex reports 14 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

To address the needs of gas sensitivity performance testing, a multi-channel gas sensor detection system based on an STM32 microcontroller and LabVIEW was designed. This system combines signal acquisition, data processing, date display, and storage into a single unit. The target gases are detected using the sensor array, and the regulated electrical signal is supplied to the MCU. Through the built-in A/D converter, the electrical signal is converted to digital data, which is then evaluated and processed. Finally, the serial communication function is performed in the upper computer to realize the OLED display and dynamic display of the data waveform graph. The test results from the fixed resistance test system error demonstrate that: the system test error between 1.4%–2.0%, to achieve multi-channel gas sensor signal collection and detection, and the design of low cost, good stability, to fulfil the gas sensor detection needs.

Key concepts: STM32, Microcontroller, Computer hardware, SIGNAL (programming language), Channel (broadcasting), Waveform, Computer science, Data acquisition

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