Kuglics Lajos, Géczy Attila, Dusek Karel, Busek David, Illés Balázs
Department of Electronics Technology, Faculty of Electronic Engineering and Informatics, Budapest University of Technology and Economics, H-1111 Budapest, Hungary.
Department of Electrotechnology, Faculty of Electrical Engineering, Czech Technical University, 166 27 Prague, Czech Republic.
Sensors (Basel). 2024 Apr 18;24(8):2601. doi: 10.3390/s24082601.
In this paper, the design and research of a sensor-based personal air-quality monitoring device are presented, which is retrofitted into different personal protective face masks. Due to its small size and low power consumption, the device can be integrated into and applied in practical urban usage. We present our research and the development of the sensor node based on a BME680-type environmental sensor cluster with a wireless IoT (Internet of Things)-capable central unit and overall low power consumption. The integration of the sensor node was investigated with traditional medical masks and a professional FFP2-type mask. The filtering efficiency after embedding was validated with a head model and a particle counter. We found that the professional mask withstood the embedding without losing the protective filtering aspect. We compared the inner and outer sensor data and investigated the temperature, pressure, humidity, and AQI (Air Quality Index) relations with possible sensor data-fusion options. The novelty is increased with the dual-sensor layout (inward and outward). It was found that efficient respiration monitoring is achievable with the device. With the analysis of the recorded data, characteristic signals were identified in an urban environment, enabling urban altimetry and urban zone detection. The results promote smart city concepts and help in endeavors related to SDGs (Sustainable Development Goals) 3 and 11.
本文介绍了一种基于传感器的个人空气质量监测设备的设计与研究,该设备可改装到不同的个人防护口罩中。由于其体积小、功耗低,该设备可集成并应用于实际城市环境中。我们展示了基于BME680型环境传感器集群、具备无线物联网功能的中央单元以及整体低功耗的传感器节点的研究与开发。研究了该传感器节点与传统医用口罩和专业FFP2型口罩的集成情况。使用头部模型和粒子计数器验证了嵌入后的过滤效率。我们发现专业口罩在嵌入后仍能保持防护过滤性能。我们比较了传感器内外的数据,并研究了温度、压力、湿度和空气质量指数与可能的传感器数据融合选项之间的关系。双传感器布局(向内和向外)增加了创新性。结果表明该设备能够实现高效的呼吸监测。通过对记录数据的分析,在城市环境中识别出特征信号,实现了城市测高和城市区域检测。这些结果推动了智慧城市概念,并有助于实现与可持续发展目标3和11相关的努力。