How to Overcome Barriers for Wastewater Agricultural Reuse in Sicily (Italy)?
Abstract
:1. Introduction
- To evaluate the factors hampering the RW agricultural use spreading in Sicily;
- To provide a GIS-based procedure for evaluating the effective potential of RW use in the Sicilian region as a decision support system for its management; and
- To ascertain feasible possibility of RW use in Sicily, with regard to RW physico-chemical and microbiological characteristics. In particular, the restrictive Italian microbial standards for reuse [13], were compared with the findings of the World Health Organization (WHO) microbial risk assessment [14].
2. Materials and Methods
2.1. WWTPs in Sicily
2.2. GIS Approach Description
- Land use/land cover data [17] (scale: 1:100.000); land uses were classified into five general categories: urban areas, agriculture areas, forest and semi-natural area, open water bodies and wetlands. Most of the mapped area is ‘Agriculture’ (69%), being ‘forest and semi-natural’ the second land use (26%). ‘Urban areas’, ‘water bodies’, and ‘wetlands’ habitats contribute to the remaining land surface area (Figure 2a).
- Characteristics of the Sicilian “irrigation public agency” (from now on named as Irrigation Consortia (IC)) (source: specific surveys at the IC); In Sicily, the water for agriculture use is mainly supplied by 11 IC, divided into Eastern IC and Western IC, with a total of 37 irrigation districts (Figure 2c). The Sicilian region, through the IC, promotes and organizes reclamation actions for water resources and environmental defence, the conservation, the valorisation, and the protection, as well as for the development of territory and the agricultural production. The irrigation area extent is about 18 × 104 hectares, of which 7 × 104 hectares are actually irrigated. Irrigation resources are manly derived from artificial reservoirs, providing about 160 × 106 m3 per year. Actually, 31 artificial reservoirs supply Sicilian irrigation networks; 3 new reservoirs are under construction and they will provide an extra water resource of about 107 × 106 m3 per year. For each district, irrigation demand was derived by multiplying the actual irrigated area (ha) and the water volume (m3 ha−1) fixed by the IC for each crop during the irrigation season. By comparing the water volume availability with irrigation demand, the annual water deficits/surplus were determined for each district [12];
- served communities greater than 5000 P.E., with a corresponding flow rate of about 10 L s−1 considering 150 L P.E.−1;
- maximum distance (D) between WWTP and the nearest irrigation district according to the potential volume (Q), as:
- -
- D ≤ 5 km if 10 L s−1 ≤ Q < 15 L s−1;
- -
- 5 km < D ≤ 10 km if 15 L s−1 ≤ Q < 30 L s−1;
- -
- 10 km < D ≤ 20 km if Q ≥ 30 L s−1;
- TW, exceeding the irrigation request of the nearest district, may be shared between neighbouring IC, exhibiting water deficit conditions; and
- WWTP elevation higher than the mean elevation of the irrigation district or WW pumping (ΔH) up to 50 m.
2.3. Microbiological Analysis of TW
3. Results and Discussion
3.1. GIS Results on Wastewater Reuse
3.2. Results of the Risk Assessment Analysis for Selected WWTPs in Sicily
3.3. Barriers Limiting TW Reuse in Agriculture
- the reliability of the "offer" (based on a strengthened quality control system for incoming wastewater to the sewerage system);
- the need to guarantee the TW quality (WWTPs efficiency and the adoption of effective refinement treatments); and
- the certainty of the "demand" (based on TW reuse economic convenience for integrating or replacing conventional waters, and promoting reward and tax relief systems for users’ benefits).
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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P.E. | Wastewater Treatment Plants | ||
---|---|---|---|
In Operation | Not in Operation | Planned | |
<2000 | 87 | 31 | 19 |
2001 ÷ 5000 | 80 | 17 | 9 |
5001 ÷ 10,000 | 77 | 11 | 4 |
10,001 ÷ 100,000 | 95 | 11 | 7 |
>100,001 | 9 | 1 | 1 |
Total | 348 | 71 | 40 |
Irrigation Consortia | Mean Altitude (m a.s.l.) | DS * (106 m3) | WWTP (#) | Annual TW Volume (106 m3) | MinD (m) | MaxD (m) | Mean ΔH (m) |
---|---|---|---|---|---|---|---|
CB1-Trapani | 59.3 | 4.4 | 4 | 11.8 | 20 | 2745 | 36.6 |
CB2-Palermo | 311.0 | 5.3 | 21 | 46.6 | 0 | 15,719 | 53.9 |
CB3-Agrigento | 214.1 | 6.1 | 16 | 12.8 | 0 | 5193 | 40.8 |
CB5-Gela | 155.2 | 0.9 | 6 | 5.7 | 0 | 14,723 | 22.7 |
CB6-Enna | 343.0 | 0.8 | 7 | 5.8 | 369 | 16,651 | 0.0 |
CB7-Caltagirone | 145.7 | −0.5 | 3 | 6.9 | 1460 | 4380 | 0.0 |
CB8-Ragusa | 106.5 | −7.3 | 12 | 20.2 | 0 | 14,647 | 62.0 |
CB9-Catania | 181.4 | 42.9 | 7 | 33.0 | 40 | 13,712 | 22.3 |
CB10-Siracusa | 56.6 | 13.1 | 5 | 19.4 | 508 | 15,831 | 43.6 |
CB11-Messina | 537.6 | 0.1 | 1 | 0.6 | 5280 | - | 0.0 |
Total | 65.8 | 82 | 162.8 |
Selected Sicilian WWTPs | Mean Values of Chemical-Physical Compounds in the Effluent of WWTPs | Percentages Effluent Samples over the Limits (%) | ||||
---|---|---|---|---|---|---|
TSS (mg L−1) | COD (mg L−1) | BOD5 (mg L−1) | TSS | COD | BOD5 | |
Villalba (CB5) | 14 | 80 | 16 | 61 | 6 | 11 |
Mussomeli (CB3) | 16 | 96 | 17 | 90 | 40 | 0 |
Bompensieri (CB5) | 17 | 90 | 15 | 87 | 53 | 13 |
Serradifalco (CB5) | 14 | 76 | 12 | 67 | 0 | 0 |
Gela (CB5) | 19 | 94 | 17 | 100 | 46 | 38 |
Riesi (CB5) | 18 | 89 | 16 | 100 | 10 | 0 |
Giarre-Riposto (CB9) | 10 | 17 | 5 | 48 | 50 | 50 |
S. Michele Ganzaria (CB7) | 21 | 28 | 19 | 100 | 13 | 35 |
Ragusa Consortium (CB8) | 42 | 85 | 21 | 98 | 2 | 48 |
Ragusa Municipality (CB8) | 31 | 66 | 23 | 90 | 0 | 33 |
Scicli-sea (CB8) | 19 | 29 | 10 | 38 | 0 | 19 |
Assoro-Leonforte Consortium (CB6) | 10 | 71 | 17 | 31 | 23 | 31 |
Enna (CB6) | 7 | 47 | 10 | 25 | 0 | 32 |
Siracusa (CB10) | 19 | 79 | 20 | 80 | 25 | 13 |
Mean values | 18 | 67 | 16 | 73 | 19 | 23 |
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Ventura, D.; Consoli, S.; Barbagallo, S.; Marzo, A.; Vanella, D.; Licciardello, F.; Cirelli, G.L. How to Overcome Barriers for Wastewater Agricultural Reuse in Sicily (Italy)? Water 2019, 11, 335. https://doi.org/10.3390/w11020335
Ventura D, Consoli S, Barbagallo S, Marzo A, Vanella D, Licciardello F, Cirelli GL. How to Overcome Barriers for Wastewater Agricultural Reuse in Sicily (Italy)? Water. 2019; 11(2):335. https://doi.org/10.3390/w11020335
Chicago/Turabian StyleVentura, Delia, Simona Consoli, Salvatore Barbagallo, Alessia Marzo, Daniela Vanella, Feliciana Licciardello, and Giuseppe L. Cirelli. 2019. "How to Overcome Barriers for Wastewater Agricultural Reuse in Sicily (Italy)?" Water 11, no. 2: 335. https://doi.org/10.3390/w11020335
APA StyleVentura, D., Consoli, S., Barbagallo, S., Marzo, A., Vanella, D., Licciardello, F., & Cirelli, G. L. (2019). How to Overcome Barriers for Wastewater Agricultural Reuse in Sicily (Italy)? Water, 11(2), 335. https://doi.org/10.3390/w11020335