A Framework for Smart Geospatial Systems: Integrating Wireless Sensor Networks and Web GIS for Real -Time Monitoring – LISCO (Libyan Iron & Steel Company) Case Study
DOI:
https://doi.org/10.59743/jmset.v10i2.215Keywords:
Smart Geospatial Systems, Wireless Sensor Networks, Web GIS, Real-Time Monitoring, Industrial IoT, Predictive Maintenance, Libyan Iron & Steel CompanyAbstract
The integration of Wireless Sensor Networks (WSNs) and Web-based Geographic Information Systems (Web GIS) offers a powerful foundation for smart geospatial systems capable of real-time monitoring and decision-making in industrial environments. This paper presents a comprehensive framework that combines WSNs with Web GIS to enable continuous environmental and infrastructure monitoring, with a focus on the Libyan Iron & Steel Company (LISCO) as a case study. The system collects real-time data from sensors deployed across critical locations within the plant premises, including air quality, temperature, humidity, and structural vibrations. This data is integrated into a web-based GIS platform, enabling visual analytics, alerting mechanisms, and predictive maintenance capabilities. The proposed framework demonstrates how sensor-GIS integration enhances situational awareness, improves safety, and supports sustainable operations in heavy industries.
Downloads
References
أولاً: مراجع باللغة العربية
العيساوي، ستار جابر؛ و حبريشة، سليم محمد (2015). تأثير نوع الوقود على انبعاث الملوثات البيئية الناتجة من محطة التوليد للشركة الليبية للحديد والصلب مصراتة. المؤتمر العلمي الثاني لعلوم البيئة، 2015، 797.
عكاشة، علي يوسف؛ الأطرش، مختار سالم؛ والصل، محمد محمد (2015). الانبعاثات الغازية والجسيمية لمجمع الحديد والصلب بمصراتة ومعدلات انتشارها في هواء المدينة. المؤتمر العلمي الثاني لعلوم البيئة، 2015، 432444-.
معيتيق، عبد العظيم سالم؛ الترجمان، وسام محمد؛ والجمل، جمال محمد (2022). دور نظم المعلومات الجغرافية في حماية البيئة ومراقبة التلوث: أنموذج عملي (الشركة الليبية للحديد والصلب). مجلة علوم البحار والتقنيات البيئية، 8(2)، 24-37.
ثانياً: مراجع باللغة الإنجليزية
Akyildiz, I. F., Su, W., Sankarasubramaniam, Y., & Cayirci, E. (2002). Wireless sensor networks: a survey. Computer networks, 38(4), 393-422.
Botts, M., Percivall, G., Reed, C., & Davidson, J. (2006). OGC® sensor web enablement: Overview and high-level architecture. In: International conference on GeoSensor Networks. Berlin, Heidelberg: Springer Berlin Heidelberg, 175-190.
Brovelli, M. A., Giori, G., Mussin, M., & Negretti, M. (2011). Improving the Monitoring of the Status of the Environment Through Web Geo‐services: The Example of Large Structures Supervision. Transactions in GIS, 15(2), 173-188.
Delin, K. A., Jackson, S. P., Johnson, D. W., Burleigh, S. C., Woodrow, R. R., McAuley, J. M., Dohm, J. M., Ip, F., Ferré, T. P. A., Rucker, D. F., & Baker, V. R. (2005). Environmental studies with the sensor web: Principles and practice. Sensors, 5(1), 103-117.
Elbir, T. (2004). A GIS based decision support system for estimation, visualization and analysis of air pollution for large Turkish cities. Atmospheric Environment, 38(27), 4509-4517.
Elbir, T., Mangir, N., Kara, M., Simsir, S., Eren, T., & Ozdemir, S. (2010). Development of a GIS-based decision support system for urban air quality management in the city of Istanbul. Atmospheric Environment, 44(4), 441-454.
Gkatzoflias, D., Mellios, G., & Samaras, Z. (2013). Development of a web GIS application for emissions inventory spatial allocation based on open-source software tools. Computers & Geosciences, 52, 21-33.
Hart, J. K., & Martinez, K. (2006). Environmental sensor networks: A revolution in the earth system science?. Earth-Science Reviews, 78(3-4), 177-191.
Imhamed, R., A Razek, T. M., & Al-Haddad, A. H. S. (2024). ASSESSMENT OF INDOOR AIR POLLUTION LEVELS WITH GASES IN THE LIBYAN IRON AND STEEL COMPANY. Journal of Environmental Science, 53(4), 1111-1125.
Sari, F. (2020). Development of a WebGIS based air quality geoportal for monitoring and managing air quality in Istanbul. Konya Journal of Engineering Sciences, 8(2), 354-368.
Triantafyllou, A. G., Evagelopoulos, V., & Zoras, S. (2006). Design of a web-based information system for ambient environmental data. Journal of Environmental Management, 80(3), 230-236.
Voutos, Y., Mylonas, P., Spyrou, E., & Charou, E. (2017). A social environmental sensor network integrated within a Web GIS platform. Journal of Sensor and Actuator Networks, 6(4), 27.
Walter, K. (2010). Geocoding Sensor Data–Applying OGC’s Sensor Web Enablement Specifications. In: GEOTECHNOLOGIEN Science Report, Münch, U. & Buchmann, A. (Eds.),15(1), 143–149.
Zhao, Y. L., Tang, J., Huang, H. P., Wang, Z., Chen, T. L., Chiang, C. W., & Chiang, P. C. (2020). Development of IoT technologies for air pollution prevention and improvement. Aerosol and Air Quality Research, 20(12), 2874-2888.
Downloads
Published
Issue
Section
License
Copyright (c) 2024 عبد العظيم سالم معيتيق، عبد الله ابورويص

This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.