The effects of climate change on groundwater recharge for different soil types of the west shore of Lake Urmia—Iran
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Abbasnia M, Tavousi T, Khosravi M (2017) A comprehensive assessment of seasonal changes in future maximum temperature of Iran during the warm period based on GCM models. Geographical Planning of Space 7:121–134
Abo RK, Merkel BJ (2015) Comparative estimation of the potential groundwater recharge in Al Zerba catchment of Aleppo basin, Syria. Arab J Geosci 8:1339–1360. https://doi.org/10.1007/s12517-013-1222-9
Allen DM, Mackie DC, Wei M (2004) Groundwater and climate change: a sensitivity analysis for the Grand Forks aquifer, southern British Columbia, Canada. J Hydrol 12. https://doi.org/10.1007/s10040-003-0261-9
Alley WM (2001) Ground water and climate. Ground Water 39:161. https://doi.org/10.1111/j.1745-6584.2001.tb02295.x
Anderson E (1973) National Weather Service River forecast system snow accumulation and ablation model. Hydrologic Research Laboratory, National Oceanic and Atmospheric Administration, Silver Spring, MD
Bates B (2008) IPCC technical paper on climate change and water. Cambridge University Press, Cambridge, United Kingdom and New York: IPCC. (No prelo)
Brekke LD, Miller NL, Bashford KE, Quinn NW, Dracup JA (2004) Climate change impacts uncertainty for water resources in the san Jaoquin River Basin, California. J Am Water Resour Assoc 40:149–164. https://doi.org/10.1111/j.1752-1688.2004.tb01016.x
Cetin M (2015a) Determining the bioclimatic comfort in Kastamonu City. Environ Monit Assess 187(10):640. https://doi.org/10.1007/s10661-015-4861-3
Cetin M (2015b) Evaluation of the sustainable tourism potential of a protected area for landscape planning: a case study of the ancient city of Pompeipolis in Kastamonu. Int J Sust Dev World 22(6):490–495. https://doi.org/10.1080/13504509.2015.1081651
Cetin M (2015c) Using GIS analysis to assess urban green space in terms of accessibility: case study in Kutahya. Int J Sust Dev World 22(5):420–424. https://doi.org/10.1080/13504509.2015.1061066
Cetin M (2016a) Determination of bioclimatic comfort areas in landscape planning: a case study of Cide Coastline. Turkish JAF Sci. Tech 4(9):800–804. https://doi.org/10.24925/turjaf.v4i9.800-804.872
Cetin M (2016b) Sustainability of urban coastal area management: a case study on Cide. J Sustain For 35(7):527–541. https://doi.org/10.1080/10549811.2016.1228072
Cetin M, Topay M, Kaya LG, Yılmaz B (2010) Efficiency of bioclimatic comfort in landscape planning process: case of Kutahya. Turkish Journal of Forestry 1(1):83–95
Cetin M, Sevik H, Zeren I (2017) Coastal biocomfort mapping for Doganyurt planning: a case study of the Yesilyuva Nature Park. The effects of environmental policies on sustainability: theory and methods, p.43
Cetin M, Onac AK, Sevik H, Canturk U, Akpinar H (2018a) Chronicles and geoheritage of the ancient Roman city of Pompeiopolis: a landscape plan. Arab J Geosci 11:798. https://doi.org/10.1007/s12517-018-4170-6
Cetin M, Adiguzel F, Kaya O, Sahap A (2018b) Mapping of bioclimatic comfort for potential planning using GIS in Aydin. Environ Dev Sustain 20(1):361–375. https://doi.org/10.1007/s10668-016-9885-5
Cetin M, Yildirim E, Canturk U, Sevik H (2018c) Chapter 25: Investigation of bioclimatic comfort area of Elazig city centre. book title: Recent researches in science and landscape management (Edited by Recep Efe, Murat Zencirkiran and Isa Curebal), Cambridge Scholars Publishing. ISBN (10), pp 1–5275
Cetin M, Zeren I, Sevik H, Cakir C, Akpinar H (2018e) A study on the determination of the natural park’s sustainable tourism potential. Environ Monit Assess 190(3):167. https://doi.org/10.1007/s10661-018-6534-5
Crowley TJ (1990) Are there any satisfactory geologic analogs for a future greenhouse warming? J Clim 3:1282–1292
Dragoni W, Sukhija BS (2008) Climate change and groundwater: a short review. Geol Soc Lond, Spec Publ 288:1–12. https://doi.org/10.1144/sp288.1
Earman S, Dettinger M (2011) Potential impacts of climate change on groundwater resources—a global review. J Water Clim Change 2:213–229. https://doi.org/10.2166/wcc.2011.034
Elçi A (2010) Assessing the impact of climate change on groundwater resources using groundwater flow models. J Water Clim Change:63–75. https://doi.org/10.1007/978-94-007-1143-3_8
Feizi V, Mollashahi M, Farajzadeh M, Azizi G (2014) Spatial and temporal trend analysis of temperature and precipitation in Iran. Ecopersia 2:727–742
Goodarzi E, Dastorani M, Massah Bavani A, Talebi A (2015) Evaluation of the change-factor and LARS-WG methods of downscaling for simulation of climatic variables in the future (case study: Herat Azam watershed, Yazd—Iran). Ecopersia 3:833–846
Hartmann A, Gleeson T, Wada Y, Wagener T (2017) Enhanced groundwater recharge rates and altered recharge sensitivity to climate variability through subsurface heterogeneity. Proc Natl Acad Sci 114(11):2842–2847. https://doi.org/10.1073/pnas.1614941114
IPCC (1995) IPCC second assessment climate change 1995—a report of the intergovernmental panel on climate change. IPCC, Geneva
Iran Meteorological Organization [online] (2017) Available at: http://www.irimo.ir [Accessed: (10 6 2017)]
Jyrkama MI, Sykes JF (2007) The impact of climate change on spatially varying groundwater recharge in the Grand River watershed (Ontario). J Hydrol 338:237–250. https://doi.org/10.1016/j.jhydrol.2007.02.036
Karamuz M, Abulpur A, Nazif S (2011) Assessment of climate change impact on groundwater resources, case study: Rafsanjan plain. 4th Iran Water Resources Management Conference
Kaya E, Agca M, Adiguzel F, Cetin M (2018) Spatial data analysis with R programming for environment. Hum Ecol Risk Assess:1–10. https://doi.org/10.1080/10807039.2018.1470896
Koukidis EN, Berg AA (2009) Sensitivity of the Statistical DownScaling Model (SDSM) to reanalysis products. Atmosphere-Ocean 47:1–18. https://doi.org/10.3137/AO924.2009
Kravkaz-Kuscu IS, Sariyildiz T, Cetin M, Yigit N, Sevik H, Savaci G (2018) Evaluation of the soil properties and primary forest tree species in Taskopru (Kastamonu) district. Fresenius Environ Bull 27(3):1613–1617
Kuscu IS, Cetin M, Yigit N, Savaci G, Sevik H (2018) Relationship between enzyme activity (urease-catalase) and nutrient element in soil use. Pol J Environ Stud 27(5):2107–2112. https://doi.org/10.15244/pjoes/78475
McBean E, Motiee H (2008) Assessment of impact of climate change on water resources: a long term analysis of the Great Lakes of North America. Hydrol Earth Syst Sci Discuss 12:239–255. https://doi.org/10.5194/hess-12-239-2008
Mohan C, Western AW, Wei Y, Saft M (2018) Predicting groundwater recharge for varying land cover and climate conditions—a global meta-study. Hydrol Earth Syst Sci 22(5):2689–2703. https://doi.org/10.5194/hess-22-2689-2018
Moriasi DN, Arnold JG, Van Liew MW, Bingner RL, Harmel RD, Veith TL (2007) Model evaluation guidelines for systematic quantification of accuracy in watershed simulations. Trans ASABE 50:885–900
Motiee H, McBean E (2017) Assessment of climate change impacts on groundwater recharge for different soil types—Guelph Region in Grand River Basin, Canada. Ecopersia 5:1731–1744
Parry M, Parry ML, Canziani O, Palutikof J, Van der Linden P, Hanson C (eds) (2007) Climate change 2007—impacts, adaptation and vulnerability: working group II contribution to the fourth assessment report of the IPCC, vol 4. Cambridge University Press
Penner JE, Lister D, Griggs DJ, Dokken DJM, Farland M (2014) PCC report about aviation and global atmosphere. Cambridge University Press, Cambridge, p 373
Pulido-Velazquez D, García-Aróstegui JL, Molina JL, Pulido-Velazquez M (2015) Assessment of future groundwater recharge in semi-arid regions under climate change scenarios (Serral-Salinas aquifer, SE Spain). Could increased rainfall variability increase the recharge rate? Hydrol Process 29:828–844. https://doi.org/10.1002/hyp.10191
Richardson CW, Wright DA (1984) WGEN: a model for generating daily weather variables, ARS-8, Agricultural Research Service, USDA. 83 pp.
Rivard C, Paniconi C, Gauthier MJ, François G, Sulis M, Camporese M, Larocque M, Chaumont D (2008) A modeling study of climate change impacts on recharge and surface–groundwater interactions for the Thomas brook catchment (Annapolis Valley, Nova Scotia). In: Proceedings of GeoEdmonton, Canadian Geotechnical Society—International Association of Hydrogeologists—Canadian National Chapter Joint Annual Conference, Edmonton, Canada
Sanderson M, Smith J (1990) Climate change and water in the Grand River, Ontario. In Proc. of the 43rd Annual Conf. of the Canadian Water Resources Association, 16–18 pp
Schroeder PR, Dozier TS, Zappi PA, McEnroe BM, Sjostrom JW, Peyton RL (1994) The Hydrologic Evaluation of Landfill Performance (HELP) model: engineering documentation for version 3, “EPA/600/R-94/168b, September 1994”, U.S. Environmental Protection Agency Office of Research and Development, Washington, DC
Scibek J, Allen DM (2006) Modeled impacts of predicted climate change on recharge and groundwater levels. Water Resour Res 42. https://doi.org/10.1029/2005WR004742
Sevik H, Ozel HB, Cetin M, Özel HU, Erdem T (2018) Determination of changes in heavy metal accumulation depending on plant species, plant organism, and traffic density in some landscape plants. Air Qual Atmos Health 2018:1–7. https://doi.org/10.1007/s11869-018-0641-x
Toews MW (2007) Modelling climate change impacts on groundwater recharge in a semi-arid region, southern Okanagan, British Columbia. Doctoral dissertation, Dept. of Earth Sciences-Simon Fraser University
Treidel H, Martin-Bordes JL, Gurdak JJ (eds) (2011) Climate change effects on groundwater resources: a global synthesis of findings and recommendations. CRC Press, Boca Raton
Turkyilmaz A, Cetin M, Sevik H, Isinkaralar K, Saleh EA (2018a) Variation of heavy metal accumulation in certain landscaping plants due to traffic density. Environ Dev Sustain:1–4. https://doi.org/10.1007/s10668-018-0296-7
Turkyilmaz A, Sevik H, Isinkaralar K, Cetin M (2018b) Using Acer platanoides annual rings to monitor the amount of heavy metals accumulated in air. Environ Monit Assess 190(10):578. https://doi.org/10.1007/s10661-018-6956-0
Turkyilmaz A, Sevik H, Cetin M, Saleh EA (2018c) Changes in heavy metal accumulation depending on traffic density in some landscape plants. Pol J Environ Stud 27(5):2277–2284. https://doi.org/10.15244/pjoes/78620
Turkyilmaz A, Sevik H, Cetin M (2018d) The use of perennial needles as biomonitors for recently accumulated heavy metals. Landsc Ecol Eng 14(1):115–120
Turkyilmaz A, Sevik H, Isinkaralar K, Cetin M (2019) Use of tree rings as a bioindicator to observe atmospheric heavy metal deposition. Environ Sci Pollut Res 27:1–9. https://doi.org/10.1007/s11356-018-3962-2
Waterloo Hydrologic Inc. (WHI) (2001) User’s manual of Visual HELP. p. 335
Watson RT, Zinyowera MC, Moss RH (1996) Climate change 1995: impacts, adaptations and mitigation of climate change: scientific-technical analyses. Cambridge University Press, Cambridge
Wilby RL, Dawson WC (2007) SDSM 4.2—a decision support tool for the assessment of regional climate change impacts, SDSM manual version 4.2. Environment Agency of England and Wales:94
Wilby RL, Dawson CW, Barrow EM (2002) SDSM—a decision support tool for the assessment of regional climate change impacts. Environ Model Softw 17:145–157. https://doi.org/10.1016/S1364-8152(01)00060-3
