Abstract
Wastewater treatment plants (WWTPs) are a type of critical civil infrastructure that play an integral role in maintaining the standard of living and protecting the environment. The sustainable operation of WWTPs requires maintaining the optimal performance of their critical assets (e.g., pumps) at minimum cost. Effective maintenance of critical assets in WWTPs is essential to ensure efficient and uninterrupted treatment services, while ineffective maintenance strategies can incur high costs and catastrophic incidents. Predictive maintenance (PdM) is an emerging facility maintenance technique that predicts the performance of critical equipment based on condition monitoring data and thus estimates when maintenance should be performed. PdM has been proven effective in optimising the maintenance of individual equipment, but its potential in predicting system-level maintenance demands is yet to be explored. This study proposes a digital twin framework to extend the scope of PdM by leveraging Building Information Modelling and Deep Learning.
Original language | English |
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Title of host publication | Proceedings of the 38th International Symposium on Automation and Robotics in Construction, ISARC 2021 |
Editors | Chen Feng, Thomas Linner, Ioannis Brilakis |
Publisher | International Association for Automation and Robotics in Construction (IAARC) |
Pages | 88-93 |
Number of pages | 6 |
ISBN (Electronic) | 9789526952413 |
Publication status | Published - 2021 |
Event | International Symposium on Automation and Robotics in Construction 2021 - Dubai, United Arab Emirates Duration: 2 Nov 2021 → 4 Nov 2021 Conference number: 38 http://www.isarc2021.org/ |
Publication series
Name | Proceedings of the International Symposium on Automation and Robotics in Construction |
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Volume | 2021-November |
ISSN (Electronic) | 2413-5844 |
Conference
Conference | International Symposium on Automation and Robotics in Construction 2021 |
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Abbreviated title | ISARC 2021 |
Country/Territory | United Arab Emirates |
City | Dubai |
Period | 2/11/21 → 4/11/21 |
Internet address |
Keywords
- Building information modelling
- Deep learning
- Digital twin
- Predictive maintenance
- Wastewater treatment plants