| Literature DB >> 32566493 |
Saeid Khalifeh1, Saeid Akbarifard2, Vahid Khalifeh3, Ebrahim Zallaghi4.
Abstract
In this article applies the Harris Hawks Optimization Algorithm for optimization of the water distribution network of the Homashahr located in Iran for a period of one month (from 30 September 2018 to 30 October 2019). The utilized time-series data included water demand, reservoir storage. In this article, a model based on the Harris Hawks Optimization Algorithm (HHO) was developed for the optimization of the water distribution network. The analysis showed that the best solutions achieved by the Harris Hawks Optimization Algorithm (HHO) were 35,508 $. The results revealed that the HHO algorithm was well in the optimal design of water supply networks problem. At the end, about 12% of the optimization was done by this algorithm.•In this article applied the Harris Hawks Optimization Algorithm for optimization of the water distribution network of the Homashahr located in Iran.•The method presented in this article can be useful for managers of water and wastewater companies, water resource facilities and water distribution system managing director for optimal network design to reduce costs.•The present algorithm performs better than the other algorithms in the discussion of the optimization of water distribution networks.Entities:
Keywords: Harris Hawks optimization algorithm; Homashahr city; Optimization; Water distribution network
Year: 2020 PMID: 32566493 PMCID: PMC7296336 DOI: 10.1016/j.mex.2020.100948
Source DB: PubMed Journal: MethodsX ISSN: 2215-0161
Fig. 1Different level of Harris Hawks optimization (Heidari et al. [14]).
Fig. 2Location of the Homashahr-city in the Kerman Province (Southeastern of Iran).
Fig. 3Homashahr network plan layout.
Identification of the city's water distribution network Pipes before to the optimization.
| Economic analysis before optimization | |||
|---|---|---|---|
| Total Cost ($) | Cost per meter ($) | Length Pipe(m) | Diameter(mm) |
| 9918 | 0.95 | 10,440 | 63 |
| 5968 | 0.995 | 5993 | 90 |
| 8475 | 1.066 | 7945 | 110 |
| 5872 | 1.387 | 4232 | 160 |
| 6286 | 1.445 | 4348 | 200 |
| 1128 | 1.725 | 654 | 250 |
| 3450 | 2.137 | 1614 | 315 |
| 41,097 | Total | ||
Values of used algorithms parameters for problem.
| HHO | parameter | Max iterations | Number of variables | Number of search agents |
|---|---|---|---|---|
| Value | 6000 | 3 | 100 |
Economic analysis after optimization with HHO.
| Total Cost ($) | Cost per meter ($) | Length Pipe(m) | Diameter(mm) |
|---|---|---|---|
| 2831 | 0.95 | 2980 | 63 |
| 3133 | 0.995 | 3149 | 90 |
| 6783 | 1.066 | 6363 | 110 |
| 8957 | 1.387 | 6458 | 160 |
| 5001 | 1.445 | 3461 | 200 |
| 3822 | 1.725 | 2216 | 250 |
| 4981 | 2.137 | 2331 | 315 |
| 35,508 | Total | ||
Fig. 4Nodal heads for Homashahr network.
Fig. 5Converging in HHO Algorithm.
| Subject Area | Engineering |
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