Al-Okby Mohammed Faeik Ruzaij, Roddelkopf Thomas, Huang Jiahao, Bukhari Mohsin, Thurow Kerstin
Center for Life Science Automation (Celisca), University of Rostock, 18119 Rostock, Germany.
Technical Institute of Babylon, Al-Furat Al-Awsat Technical University (ATU), Kufa 54003, Iraq.
Sensors (Basel). 2025 Jun 29;25(13):4061. doi: 10.3390/s25134061.
Ambient monitoring in chemical laboratories and industrial sites that use toxic, hazardous, or flammable materials is essential to protect the lives of workers, material resources, and infrastructure at these sites. In this research paper, we present an innovative approach for developing a low-cost and portable sensor node that detects and warns of hazardous chemical gas and vapor leaks. The system also enables leak location tracking using an indoor tracking and positioning system operating in ultra-wideband (UWB) technology. An array of sensors is used to detect gases, vapors, and airborne particles, while the leak location is identified through a UWB unit integrated with an Internet of Things (IoT) processor. This processor transmits real-time location data and sensor readings via wireless fidelity (Wi-Fi). The real-time indoor positioning system (IPS) can automatically select a tracking area based on the distances measured from the three nearest anchors of the movable sensor node. The environmental sensor data and distances between the node and the anchors are transmitted to the cloud in JSON format via the user datagram protocol (UDP), which allows the fastest possible data rate. A monitoring server was developed in Python to track the movement of the portable sensor node and display live measurements of the environment. The system was tested by selecting different paths between several adjacent areas with a chemical leakage of different volatile organic compounds (VOCs) in the test path. The experimental tests demonstrated good accuracy in both hazardous gas detection and location tracking. The system successfully issued a leak warning for all tested material samples with volumes up to 500 microliters and achieved a positional accuracy of approximately 50 cm under conditions without major obstacles obstructing the UWB signal between the active system units.
在使用有毒、有害或易燃材料的化学实验室和工业场所进行环境监测,对于保护这些场所工人的生命、物质资源和基础设施至关重要。在本研究论文中,我们提出了一种创新方法,用于开发一种低成本的便携式传感器节点,该节点可检测有害化学气体和蒸汽泄漏并发出警告。该系统还能够使用运行在超宽带(UWB)技术中的室内跟踪和定位系统来跟踪泄漏位置。使用一系列传感器来检测气体、蒸汽和空气中的颗粒,同时通过与物联网(IoT)处理器集成的UWB单元来识别泄漏位置。该处理器通过无线保真(Wi-Fi)传输实时位置数据和传感器读数。实时室内定位系统(IPS)可以根据从可移动传感器节点的三个最近锚点测量的距离自动选择跟踪区域。环境传感器数据以及节点与锚点之间的距离通过用户数据报协议(UDP)以JSON格式传输到云端,这允许实现尽可能快的数据速率。用Python开发了一个监控服务器,以跟踪便携式传感器节点的移动并显示环境的实时测量数据。通过在测试路径中选择几个相邻区域之间的不同路径,并在其中存在不同挥发性有机化合物(VOC)的化学泄漏的情况下对系统进行了测试。实验测试表明,该系统在有害气体检测和位置跟踪方面都具有良好的准确性。该系统成功地对所有体积达500微升的测试材料样本发出了泄漏警告,并且在没有重大障碍物阻碍有源系统单元之间的UWB信号的条件下,实现了约50厘米的定位精度。