| Literature DB >> 29644604 |
Josep Mas-Pla1,2, Anna Menció3.
Abstract
Climate change will affect the dynamics of the hydrogeological systems and their water resources quality; in particular nitrate, which is herein taken as a paradigmatic pollutant to illustrate the effects of climate change on groundwater quality. Based on climatic predictions of temperature and precipitation for the horizon of 2021 and 2050, as well as on land use distribution, water balances are recalculated for the hydrological basins of distinct aquifer systems in a western Mediterranean region as Catalonia (NE Spain) in order to determine the reduction of available water resources. Besides the fact that climate change will represent a decrease of water availability, we qualitatively discuss the modifications that will result from the future climatic scenarios and their impact on nitrate pollution according to the geological setting of the selected aquifers. Climate effects in groundwater quality are described according to hydrological, environmental, socio-economic, and political concerns. Water reduction stands as a major issue that will control stream-aquifer interactions and subsurface recharge, leading to a general modification of nitrate in groundwater as dilution varies. A nitrate mass balance model provides a gross estimation of potential nitrate evolution in these aquifers, and it points out that the control of the fertilizer load will be crucial to achieve adequate nitrate content in groundwater. Reclaimed wastewater stands as local reliable resource, yet its amount will only satisfy a fraction of the loss of available resources due to climate change. Finally, an integrated management perspective is necessary to avoid unplanned actions from private initiatives that will jeopardize the achievement of sustainable water resources exploitation under distinct hydrological scenarios.Entities:
Keywords: Climate change; Groundwater; Nitrate; Scarcity; Sustainability
Mesh:
Substances:
Year: 2018 PMID: 29644604 PMCID: PMC6338701 DOI: 10.1007/s11356-018-1859-8
Source DB: PubMed Journal: Environ Sci Pollut Res Int ISSN: 0944-1344 Impact factor: 4.223
Fig. 1Geographical locations and geological setting of the studied areas (Catalonia, NE Spain). Geological background form ICGC (2017)
Aquifer, land use, and hydrological characteristics of the studied hydrogeological systems used in the nitrate mass balance model
| Osona | Selva | Onyar | Garrotxa | Baix Ter | Baix Fluvià | ||
|---|---|---|---|---|---|---|---|
| Area | km2 | 316 | 670 | 41 | 57 | 96 | 64 |
| Crop area | km2 | 225 | 450 | 37 | 52 | 86 | 59 |
| Rainfall, | mm | 648 | 575 | 703 | 927 | 600 | 559 |
| Rainfall, | hm3 | 204.8 | 385.3 | 28.8 | 52.8 | 57.6 | 35.8 |
| Depth | m | 60 | 80 | 12 | 30 | 22 | 18 |
| Porosity | [−] | 0.10 | 0.08 | 0.12 | 0.12 | 0.13 | 0.15 |
| Groundwater resources | hm3 | 1896 | 4288 | 59 | 205 | 275 | 173 |
| Recharge ratio, | [−] | 0.100 | 0.120 | 0.292 | 0.380 | 0.238 | 0.216 |
| Inflow/outflow, | hm3 | 20.48 | 46.23 | 8.42 | 20.08 | 13.71 | 7.73 |
| Average initial concentration, | mg/L | 165 | 65 | 61 | 35 | 78 | 43 |
| Turnover time, | year−1 | 92.6 | 92.8 | 7.0 | 10.2 | 20.0 | 22.4 |
| Excess nitrate | % | 0.096 | 0.1085 | 0.1515 | 0.099 | 0.1163 | 0.1201 |
| Nitrate load, | kg NO3/year | 1,626,171 | 422,014 | 3,675,825 | 387,571 | 752,993 | 533,467 |
Comments:
• Average aquifer mean parameters (depth, porosity) are taken from hydrogeological reports and field data.
• R/P—ratio among available water resources (R) and rainfall (P) taken as total recharge ratio in the mass balance model for alluvial aquifers
• The aquifer inflow/outflow rate is estimated as the product of rainfall magnitude times the R/P value.
• Average crop nitrogen uptake is estimated using the values given in Appendix 3.
• Total nitrate mass input considers the maximum allowed nitrogen mass per year by the EU Nitrates Directive (170 kg N/ha/year), the crop area, and the average nitrogen uptake.
Annual average values per crop type in the studied region
|
| Annual average N uptakea | Annual average crop productionb | Annual average N uptake | Annual applied N as manure | Annual N excess |
|---|---|---|---|---|---|
| Crop | kg N/tonne crop | Tonne/ha | kg N/ha | kg N/ha | kg N/ha |
| Cereal | 29.0 | 4.95 | 143.6 | 170 | 26.4 |
| Citric | 3.5 | 22.20 | 77.7 | ||
| Forage | 165.0 | 2.85 | 470.8 | 170 | Deficit |
| Olive trees | 15.0 | 1.35 | 20.3 | ||
| Potato | 3.5 | 22.54 | 78.9 | ||
| Sunflower/rapeseed | 47.0 | 2.15 | 101.2 | 170 | 68.8 |
| Sweet and dry fruit | 8.2 | 6.80 | 55.61 | ||
| Vineyards | 7.0 | 7.23 | 50.6 |
aBoixadera J, Sió J, Àlamos M, Torres E (2000). Manual del codi de bones pràctiques agràries. DARP, Generalitat de Catalunya, 59 pp
bSuperfícies i produccions dels conreus agrícoles. Any 2016 (DARP): http://agricultura.gencat.cat
Crop surfaces in hectare
| County | Osona | Selva | Gironès | Garrotxa | Baix Empordà | Alt Empordà |
|---|---|---|---|---|---|---|
| Associated aquifer | Osona | Selva Basin | Onyar | Garrotxa | Baix Ter | Baix Fluvià |
| Cereal | 14,616 | 6020 | 7814 | 3860 | 12,152 | 21,286 |
| Citric | 6 | 3 | 4 | 1 | 0 | 1 |
| Forage | 10,276 | 2303 | 2660 | 2656 | 4051 | 6795 |
| Sweet and dry fruit | 5 | 275 | 369 | 10 | 1274 | 1040 |
| Olive tree | 36 | 16 | 61 | 3 | 274 | 2185 |
| Potato | 56 | 118 | 6 | 19 | 19 | 14 |
| Sunflower/rapeseed | 708 | 437 | 2230 | 324 | 1047 | 2914 |
| Vineyards | 12 | 21 | 72 | 10 | 171 | 1923 |
| Other crops | 919 | 1057 | 749 | 496 | 889 | 1181 |
| Total | 26,634 | 10,250 | 13,965 | 7379 | 19,877 | 37,339 |
Crop surfaces are expressed per counties in the official annuaries. Similar percentages are attributed to the studied aquifer surfaces as they concentrate most of the agricultural activity
Summary of the main hydrogeological and chemical status of the distinct aquifers considered in this study. Data after references cited in the text
| Osona | La Selva | Onyar | Garrotxa | Baix Ter | Baix Fluvià | |
|---|---|---|---|---|---|---|
| Aquifer lithology: bedrock, sedimentary infilling, alluvial | B - A | S - A | A | B - A | S - A | A |
| Recharge origin: local, regional | L - R | L - R | L | L | L - R | L |
| Aquifer type: unconfined/multilayered/leaky | M | U - M | U | U - M | U - M | U |
| [NO3] (mg/L): mean/median/% > 50 mg/L | 165/92/72% | 65/59/51% | 61/47/45% | 35/29/22% | 78/67/57% | 43/19/22% |
| δ15NNO3 (‰): mean/median/% > 15‰a | 14.0/13.4/28% | 10.8/10.4/7% | [No data] | 9.9/9.4/6% | 12.9/12.2/22% | 9.2/9.1/0% |
| Land use (%): agricultural/irrigated crops/others | A (21%) | A (28%) | A (64%) | A (16%)—mostly forested | A (37%) | A (54%) |
| Groundwater exploitation: seasonal, non-seasonal | NS (livestock)—S (agriculture) | NS (livestock)—S (agriculture) | NS (livestock)—S (agriculture) | S (agriculture) | NS (urban)—S (agriculture) | NS (livestock)—S (agriculture) |
| Alternative resources | Ter River (mid-basin)—water reclamation | Water reclamation | Water reclamation | Fluvià River | Ter River (lower-basin)—water reclamation | Fluvià River |
| Other pressures, hazards | (None) | Local As, F high levels | Over-exploitation | (None) | Seawater intrusion—over-exploitation | (None) |
aValues of δ15NNO3 > 15‰ are assumed to be indicative of denitrification processes
Fig. 2Box plot of the nitrate concentration distribution in each of the studied aquifer systems. Data from the diverse references cited within the text
Annual median temperature and rainfall variations for the 2021 and 2050 horizons in Catalonia with respect to 1971–2000. Data in parenthesis correspond to the 5th and 95th percentile. Data after Calbó et al. (2016)
| Climatic area: | Pyrenees | Inland areas | Coastal areas | Catalonia (surface weighted average) | |
|---|---|---|---|---|---|
| 2021 | Δ | 0.8 (0.5/1.1) | 0.7 (0.5/1.0) | 0.7 (0.5/1.0) | 0.8 (0.5/1.0) |
| Rainfall (%) | − 0.2 (− 7.8/8.0) | 0.7 (− 14.1/8.0) | − 2.4 (− 20.7/6.0) | − 2.4 (− 13.4/5.8) | |
| 2050 | Δ | 1.6 (0.9/2.2) | 1.4 (0.9/2.1) | 1.4 (0.9/2.0) | 1.4 (0.9/2.0) |
| Rainfall (%) | − 5.3 (− 16.1/− 1.2) | − 6.5 (− 23.7/1.4) | − 8.5 (− 27.1/2.3) | − 6.8 (− 22.0/− 0.7) |
Summary of available resources, as R/P, according to published data
| Osona | La Selva | Onyar | Garrotxa | Baix Ter | Baix Fluvià | ||
|---|---|---|---|---|---|---|---|
| 0.307 | 0.202 | 0.292 | 0.380 | 0.238 | 0.216 | ||
| 0.262 | 0.188 | 0.278 | 0.357 | 0.229 | 0.208 | ||
| 0.256 | 0.165 | 0.254 | 0.338 | 0.206 | 0.186 | ||
| Average GW Rec, | 0.100 | 0.120 | 0.150 | 0.170 | 0.150 | 0.150 | |
| 2015 | 0.207 | 0.082 | 0.142 | 0.210 | 0.088 | 0.066 | |
| 2021 | 0.162 | 0.068 | 0.128 | 0.187 | 0.079 | 0.058 | |
| 2050 | 0.156 | 0.045 | 0.104 | 0.168 | 0.056 | 0.036 | |
sw surface water, gw groundwater
aMas-Pla 2018
bAlcalá and Custodio (2014)
Fig. 3Regional distribution of the R/P ratio, as the ratio between available resources and precipitation, for each sub-basin including the inner basins and those of the tributaries of Ebro basin within (or partially within) Catalonia, at a present (2015), and the future scenarios at b 2021 and c 2050; after Mas-Pla et al. (2016). Rectangle in map (a) indicates the location of Fig. 1
Fig. 4Evolution of nitrate concentration in the aquifer based on the mass balance model for the distinct aquifers considered in this study, under different future hydrological conditions (present, 2050, and a linearly variation of recharge rates), and considering two simulation scenarios according to nitrate input load and decay rates
Crop surfaces in %
| County | Osona | Selva | Gironès | Garrotxa | Baix Empordà | Alt Empordà |
|---|---|---|---|---|---|---|
| Associated aquifer | Osona | Selva Basin | Onyar | Garrotxa | Baix Ter | Baix Fluvià |
| Cereal | 54.88 | 58.73 | 55.95 | 52.31 | 61.14 | 57.01 |
| Citric | 0.02 | 0.03 | 0.03 | 0.01 | 0.00 | 0.00 |
| Forage | 38.58 | 22.47 | 19.05 | 35.99 | 20.38 | 18.20 |
| Sweet and dry fruit | 0.02 | 2.68 | 2.64 | 0.14 | 6.41 | 2.79 |
| Olive tree | 0.14 | 0.16 | 0.44 | 0.04 | 1.38 | 5.85 |
| Potato | 0.21 | 1.15 | 0.04 | 0.26 | 0.10 | 0.04 |
| Sunflower/rapeseed | 2.66 | 4.26 | 15.97 | 4.39 | 5.27 | 7.80 |
| Vineyards | 0.05 | 0.20 | 0.52 | 0.14 | 0.86 | 5.15 |
| Other crops | 3.45 | 10.31 | 5.36 | 6.72 | 4.47 | 3.16 |
| Total | 100.00 | 100.00 | 100.00 | 100.00 | 100.00 | 100.00 |
| % AreacCereal + forage + sunflower/rapeseed | 93.46 | 81.20 | 75.00 | 88.30 | 81.52 | 75.21 |
Estimation of the percentage of nitrogen excess
| Excess, as kg N/ha/year | 16.32 | 18.44 | 25.76 | 16.83 | 19.76 | 20.42 |
| Excess, as kg NO3/ha/year | 72.26 | 81.66 | 114.07 | 74.54 | 87.53 | 90.43 |
| Percentage of N excess, % | 9.60 | 10.85 | 15.15 | 9.90 | 11.63 | 12.01 |