Assessing the Impact of Partitioning on Optimal Installation of Control Valves for Leakage Minimization in WDNs
Abstract
:1. Introduction
- Waste of energy used to pump and treat water that does not reach customers.
- Potential deterioration of small breaks to pipe bursts.
- Potential intrusion of pollutants through pipe breaks when negative pressure occurs.
- Monitoring and control of consumption and leakage in the network.
- Implementation of pressure management.
- Identification of pipe bursts.
- Protection of the network from contamination events.
- Management practices in intermittent WDNs.
- Placement of sensors for the identification of contamination events.
2. Materials and Methods
2.1. Optimization of Control Valves
2.1.1. Optimization of Valve Settings
2.1.2. Optimization of Control Valve Locations
2.2. WDN Partitioning Based on Minimum Transport
- It is a topological procedure that considers explicitly neither altimetric aspects, which may impact on service pressure in resulting partitions, nor practical engineering criteria, such as the uniformity of partitions in terms of total demand or other variables.
- In this basic formulation, it cannot be applied when the desired number of partitions is different from the number of sources.
3. Applications
3.1. Case Studies
3.2. Results for the WDN of Santa Maria di Licodia
3.2.1. Analysis of Service Pressure in the Unpartitioned WDN
3.2.2. Application of the Sequential Addition Algorithm to the Unpartitioned WDN
3.2.3. WDN Partitioning
3.2.4. Application of the Sequential Addition Algorithm to the Partitioned WDN
3.3. Results for the WDN of Modena
3.3.1. Analysis of Service Pressure in the Unpartitioned WDN
3.3.2. Application of the Sequential Addition Algorithm to the Unpartitioned WDN
3.3.3. WDN Partitioning
3.3.4. Application of the Sequential Addition Algorithm to the Partitioned WDN
4. Discussion
- Analysis of service pressure in the unpartitioned WDN.
- Optimal location of control valves in the unpartitioned WDN.
- WDN partitioning in the absence of control valves.
- Optimal location of control valves in the partitioned WDN.
- When involving physical separation between partitions, WDN partitioning can result per se in the slight lowering in service pressure and, therefore, in leakage attenuation.
- Due to variations in flow distribution, the valve locations optimally selected in a partitioned WDN may differ from those in the unpartitioned WDN.
- The number of optimally installed being the same, the partitioned WDN enables achievement of better leakage reduction performance than the unpartitioned WDN.
- In both the unpartitioned and partitioned WDNs, the installation of control valves makes the daily pattern of leakage outflows flatter, by reducing the variability of service pressure in the day.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
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Nval | Valve Locations on Unpartitioned WDN | WL (m3) on Unpartitioned WDN |
---|---|---|
0 | – | 1243 |
1 | 27 | 1029 |
2 | 27, 7 | 885 |
3 | 27, 7, 3 | 805 |
4 | 27, 7, 3, 14 | 751 |
5 | 27, 7, 3, 14, 33 | 725 |
6 | 27, 7, 3, 14, 33, 4 | 708 |
7 | 27, 7, 3, 14, 33, 4, 2 | 692 |
8 | 27, 7, 3, 14, 33, 4, 2, 41 | 680 |
9 | 27, 7, 3, 14, 33, 4, 2, 41, 6 | 670 |
10 | 27, 7, 3, 14, 33, 4, 2, 41, 6, 30 | 659 |
Nval | Valve Locations on Partitioned WDN | WL (m3) on Partitioned WDN | WL (m3) on Unpartitioned WDN | Benefits (%) of Partitioning |
---|---|---|---|---|
0 | - | 1176 | 1243 | 5.42 |
1 | 27 | 978 | 1029 | 4.94 |
2 | 27, 7 | 867 | 885 | 2.00 |
3 | 27, 7, 3 | 795 | 805 | 1.24 |
4 | 27, 7, 3, 25 | 730 | 751 | 2.82 |
5 | 27, 7, 3, 25, 26 | 699 | 725 | 3.54 |
6 | 27, 7, 3, 25, 26, 2 | 676 | 708 | 4.56 |
7 | 27, 7, 3, 25, 26, 2, 33 | 654 | 692 | 5.45 |
8 | 27, 7, 3, 25, 26, 2, 33, 4 | 637 | 680 | 6.37 |
9 | 27, 7, 3, 25, 26, 2, 33, 24 | 619 | 670 | 7.58 |
10 | 27, 7, 3, 25, 26, 2, 33, 24, 17 | 607 | 659 | 7.85 |
Time Slot | Scenario 1 Unpartitioned WDN, no Control | Scenario 2 Unpartitioned WDN, 4 Valves | Scenario 3 Partitioned WDN, no Control | Scenario 4 Partitioned WDN, 4 Valves |
---|---|---|---|---|
1 | 0.0363 | 0.0233 | 0.0365 | 0.0207 |
2 | 0.0359 | 0.0218 | 0.0359 | 0.0208 |
3 | 0.0354 | 0.0220 | 0.0352 | 0.0209 |
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Creaco, E.; Castagnolo, D.; Pezzinga, G. Assessing the Impact of Partitioning on Optimal Installation of Control Valves for Leakage Minimization in WDNs. Water 2021, 13, 1003. https://doi.org/10.3390/w13071003
Creaco E, Castagnolo D, Pezzinga G. Assessing the Impact of Partitioning on Optimal Installation of Control Valves for Leakage Minimization in WDNs. Water. 2021; 13(7):1003. https://doi.org/10.3390/w13071003
Chicago/Turabian StyleCreaco, Enrico, Dario Castagnolo, and Giuseppe Pezzinga. 2021. "Assessing the Impact of Partitioning on Optimal Installation of Control Valves for Leakage Minimization in WDNs" Water 13, no. 7: 1003. https://doi.org/10.3390/w13071003
APA StyleCreaco, E., Castagnolo, D., & Pezzinga, G. (2021). Assessing the Impact of Partitioning on Optimal Installation of Control Valves for Leakage Minimization in WDNs. Water, 13(7), 1003. https://doi.org/10.3390/w13071003