Integrated Low-Cost Water Quality Monitoring System Based on LoRa Network

被引:2
作者
Georgantas, Ioannis [1 ]
Mitropoulos, Spyridon [2 ]
Katsoulis, Stylianos [1 ]
Chronis, Ioannis [1 ]
Christakis, Ioannis [1 ]
机构
[1] Univ West Att, Dept Elect & Elect Engn, P Ralli & Thivon 250, Egaleo 12244, Greece
[2] Univ West Attica, Dept Surveying & Geoinformat Engn, 28 Ag Spyridonos St, Egaleo 12243, Greece
关键词
water quality monitoring; LoRa network; TDS measurements; pH measurements; low-cost IoT; distance communications; water quality; IOT; INTERNET;
D O I
10.3390/electronics14050857
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
Water quality is crucial for public health, especially in areas with water scarcity, such as remote islands. Although reliable measuring devices are available, on-site manual testing, such as in water tanks, is still necessary. In order to determine the quality of drinking water, a set of measurements should be carried out automatically, at regular intervals and without delay, thus ensuring the monitoring of its suitability. In this research work, an integrated low-cost water quality monitoring system is presented. The proposed system consists of the monitoring stations and an information system. Each monitoring station includes a microcontroller and sensors, and is installed in the water reservoir, while the information system is used to capture, store, and visualize the measurement data. Data transmission is carried out over a long-range (LoRa) network, providing extensive coverage for receiving data from Internet of Things (IoT) devices. Additionally, linear and non-linear correction factors are proposed to improve the accuracy of measurements from low-cost sensors, resulting in more reliable data. In this way, the end users, such as local authorities or citizens, are given the possibility of immediate information on water quality via the web.
引用
收藏
页数:17
相关论文
共 54 条
[41]   Building the Internet of Things with bluetooth smart [J].
Raza, Shahid ;
Misra, Prasant ;
He, Zhitao ;
Voigt, Thiemo .
AD HOC NETWORKS, 2017, 57 :19-31
[42]  
Rimpas D., 2023, Eng. Proc, V58, DOI [10.3390/ecsa-10-16146, DOI 10.3390/ECSA-10-16146]
[43]   Correlation between conductivity and total dissolved solid in various type of water: A review [J].
Rusydi, Anna F. .
GLOBAL COLLOQUIUM ON GEOSCIENCES AND ENGINEERING 2017, 2018, 118
[44]  
Santos S., 2023, Maker Advisor
[45]  
Sowmya C, 2017, IEEE INT ADV COMPUT, P546, DOI [10.1109/IACC.2017.109, 10.1109/IACC.2017.0118]
[46]  
Syafirah M., 2024, ELECTRON J. Ilm. Tek. Elektro, V5, P106, DOI [10.33019/electron.v5i1.149, DOI 10.33019/ELECTRON.V5I1.149]
[47]  
Taru YK, 2017, 2017 INTERNATIONAL CONFERENCE ON COMPUTING METHODOLOGIES AND COMMUNICATION (ICCMC), P416, DOI 10.1109/ICCMC.2017.8282722
[48]  
Thiyagarajan K., 2017, Int. J. Appl. Eng. Res., V12, P5447
[49]  
United Nations, 2024, Progress on the sustainable development goals: The gender snapshot
[50]   Comparative study of zigBee topologies for IoT-based lighting automation [J].
Varghese, Susan G. ;
Kurian, Ciji Pearl ;
George, V., I ;
John, Anupriya ;
Nayak, Varsha ;
Upadhyay, Anil .
IET WIRELESS SENSOR SYSTEMS, 2019, 9 (04) :201-207