Application of Innovative Technologies for Active Control and Energy Efficiency in Water Supply Systems
1. Introduction
- Definition of dependencies and patterns in the big data analysis to be considered in a proactive multilevel historian application for water networks [14]
- Methodology for historian analysis of malfunctions in sewer networks as a support tool for the management authorities [15]
- Estimates of nodal demands for numerical simulation of water distribution networks [16]
- Assessment of the interaction between head and leak flow in innovative materials for pressurized hydraulic systems [17]
- Existing and emerging desalination technologies, their economic and environmental benefit, their potential application in arid zones [21]
2. Contributed Papers
2.1. Big Data Analysis
2.2. Technologies for Micro to Pico Hydropower
2.3. Industrial Technologies and Control Algorithms
3. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
Acronyms
CFD | Computational Fluid Dynamics |
DMA | District Metered Area |
EPD | Energy Production Device |
ESOB | End Suction Own Bearing |
GVS | GreenValve System |
IoT | Internet of Things |
MEI | Minimum Efficiency Index |
MHP | Micro-hydropower |
MPC | Model Predictive Control |
MSV | Multi-Stage Vertical |
MSH | Multi-Stage Horizontal |
MSS | Multi-Stage Submersible |
NPV | Net Present Value |
PAT | Pump as turbine |
PRV | Pressure reducing valve |
PSH | Pumped-storage hydropower |
WDN | Water distribution network |
WSS | Water supply system |
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City | Plant | Length (km) Height (m) | Water Flow (M3/day) | Existing Plan Transmission Pipeline + Current Plants | Proposed Plan Decentralized-ADD without Pipeline | ||
---|---|---|---|---|---|---|---|
Water-Transmission Energy Cost (MUSD/year) | Emissions (tons CO2/year) | Water-Production Energy Cost (MUSD/year) | Emissions (tons CO2/year) | ||||
Makkah | Shoaibah | 90 240 | 550,000 | 82.9 | 653,943 | 12.8 | 101,671 |
Madinah | Yanbu | 162 631 | 450,000 | 99.5 | 784,530 | 10.5 | 83,186 |
Abha | Shoqaiq | 105 2084 | 100,000 | 25.1 | 198,165 | 2.3 | 18,485 |
Riyadh | Jubail | 400 612 | 950,000 | 290.6 | 2,291,034 | 22.2 | 175,615 |
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Carravetta, A.; Giugni, M.; Malavasi, S. Application of Innovative Technologies for Active Control and Energy Efficiency in Water Supply Systems. Water 2020, 12, 3278. https://doi.org/10.3390/w12113278
Carravetta A, Giugni M, Malavasi S. Application of Innovative Technologies for Active Control and Energy Efficiency in Water Supply Systems. Water. 2020; 12(11):3278. https://doi.org/10.3390/w12113278
Chicago/Turabian StyleCarravetta, Armando, Maurizio Giugni, and Stefano Malavasi. 2020. "Application of Innovative Technologies for Active Control and Energy Efficiency in Water Supply Systems" Water 12, no. 11: 3278. https://doi.org/10.3390/w12113278
APA StyleCarravetta, A., Giugni, M., & Malavasi, S. (2020). Application of Innovative Technologies for Active Control and Energy Efficiency in Water Supply Systems. Water, 12(11), 3278. https://doi.org/10.3390/w12113278