Please use this identifier to cite or link to this item: http://dspace.ensta.edu.dz/jspui/handle/123456789/327
Title: Predictive Maintenance based on real-time monitoringof industrial assets
Authors: BRAHIM, Abderraouf
SALHI, Nedjma (Directeur de thèse)
Keywords: Predictive maintenance
real-time monitoring
Internet of Objects (IoT)
Artificial Intelligence (AI)
data analysis
machine learning (ML)
Issue Date: 2024
Publisher: ENSTA
Abstract: Predictive maintenance has become an essential strategy in the industrial equipment management, revolutionizing classical maintenance methods. This article aims to discuss the integration of modern real-time monitoring technologies, including IoT, AI and machine learning, in the development of the predictive maintenance models. It examines the evolution of PdM from reactive to predictive models, highlighting the central role of these technologies in facilitating decision-making based in data. This discussion will address the practical implications of these advances, including significant cost reductions, increased equipment durability and optimized functional efficiency, leading to more accurate AI algorithms for autonomous systems and precise predictive analytics. This exploration shows the importance of real-time monitoring and advanced technologies in shaping the future of predictive maintenance, moving industries towards greater efficiency, minimized downtime and optimized asset management.
Description: Master: Programme Complémentaire d'Ingéniorat: Management et ingénierie de la maintenance industrielle : Alger: Ecole Nationale Supérieure des Technologie Avancées(ex ENST): 2024
URI: http://dspace.ensta.edu.dz/jspui/handle/123456789/327
Appears in Collections:ART- Génie Industriel ( Management et Ingénierie de la Maintenance Industrielle)

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