ST Hydrogeological and Geophysical Characterization of Kozlupınar and Bentpınarı Water Springs (Denizli, SW Turkey)

  • Suat Tasdelen Pamukkale University
Keywords: Kozlupınar, Bentpınarı, Babadağ Fault, Water table map

Abstract

This study focusses on describing the hydrodynamic interactions of the Kozlupınar - Bentpınarı   springs, aquifer units, groundwater, water table, Babadağ fault zone, and topography, with each other. Due to rapid urbanization and increasing population densities in Denizli, the safe water supply becomes more and more difficult every day. Kozlupınar and Bentpınar springs are historically significant water supply sites for Denizli city. Although the expansion of the city has resulted in the destruction of numerous springs, both springs are still in their natural state, and have great value for urban use in Denizli and vicinity. Kozlupınar's average flow is 0,100 m3/s; Bentpınarı   is 0.130 m3/s. The average base flows calculated using the Maillet equation (1977-1979) are to 4.75×106 m3/year, and 7.41×106 m3/year respectively. The spring variability estimated as 0.22 for Kozlupınar and 0.12 for Bentpınarı  . Recession coefficients, to 0.00199 days−1, and 0.00109 days−1 respectively. The spring waters emerge from sediments that accumulate on the slopes of the southern mountainous terrain along the Babadağ fault.  Hydrologic process of the groundwater, start by the infiltration of precipitation on the high hills on the north side of the Babadağ fault. Almost all aquifers in the region, which feeds springs, and extends to wider areas outside the study area, is heterogeneous and anisotropic due to the different origins and tectonic forces affecting the region. Groundwater flows from south and south-west highland parts of the catchment towards the springs areas in the north and northeast direction.

Downloads

Download data is not yet available.

References

Alessio MA Martel SJ (2004) Fault terminations and barriers to fault growth. Journal of Structural Geology 26:1885–1896.
Anderson E, Bakker M (2008) Groundwater flow through anisotropic fault zones in multi-aquifer systems. Water Resources Research 44:W11433.
Antonellini M, Aydin A (1994) Effect of faulting on fluid flow in porous sandstones: petrophysical properties.m. Assoc. Petrol. Geol. Bull., 78:355–377
Atkinson TC (1977) Diffuse flow and conduit flow in limestone terrain in Mendip Hills, Somerset (Great Britain). J. Hydrol. 35:93-100
Bakalowicz M (2005) Karst groundwater: a challenge for new resources. Hydrogeology Journal 13 (1):148-160
Bense VF, Gleeson T, Loveless SE, Bour O, Scibek J, (2013) Fault zone hydrogeology, Earth-Science Reviews, 127:171-192
Bense VF, Van den Berg EH, Van Balen RT (2003a) Deformation mechanisms and hydraulic properties of fault zones in unconsolidated sediments; the Roer Valley Rift System, The Netherlands. Hydrogeol. J., 11:319–332.
Bense, V.F., R.T. Van Balen, and J.J. De Vries. (2003b) The impact of faults on the hydrogeological conditions in the Roer Valley Rift System: An overview. Netherlands Journal of Geosciences 82: 41–53.
Bonacci O (1987) Karst Hydrology. Springer Verlag, Herdelberg, Germany
Bonacci O, Jelin J (1988) Identification of a karst hydrological system in the Dinaric karst (Yugoslavia). Hydro. Sci. J. 33(5):483-497
Bozkurt E (2003) Origin of NE-trending basins in western Turkey. Geodynamica Acta 16:61–81.
Caine JS, Evans JP, Forster CB (1996) Fault zone architecture and permeability structure. Geology, 24:1025– 1028.
Castany G (1967) Traité Pratique des Eaux Souterraines. Dunod, Paris, France,
Curewitz D Karson JA, (1997) Structural settings of hydrothermal outflow: fracture permeability maintained by fault propagation and interaction. J. Volcanol. Geotherm. Res., 79:149-168,
Dewey JF, Sengor AMC (1979) Aegean and surrounding regions: complex multiple and continuum tectonics in a convergent zone, Geological Society America Bulletin 90:84–92.
Dreiss SJ (1982) Linear kernels for karst aquifers. Water Resources Research 18 (4):865-876
Drogue C (1972) Analyse statistique des hydrogrammes dedécruesdes sources karstiques. X Hydrol. 16:49-68
E Anderson, M Bakker (2008) Groundwater flow through anisotropic fault zones in multi-aquifer systems Water Resour Res 44: W11433.
Eyidogan H, Jackson JA, (1985) A seismological study of normal faulting in the Demirci, Alasehir and Gediz earthquake of 1969–1970
Fetter CW (2001) Applied hydrology. Prentice-Hall, inc. upper Saddle River, New Jersey.
Ford DC, Williams PW (1994) Karst geomorphology and hydrology: Winchester, Massachusetts, Unwin Hyman, 601 p.
Goddard JV, Evans JP, (1995) Chemical changes and fluid-rock interaction in faults of crystalline thrust sheets, northwestern Wyoming, U.S.A. J. Struct. Geol., 17:33–547.
H Rajabpour, A Vaezihir, M Hasanpour Sedghi (2016) The North Tabriz Fault, a barrier to groundwater flow in an alluvial aquifer northwest of Tabriz Iran, Environ Earth Sci 75:849
Haneberg WC (1995) Steady state groundwater flow across idealized faults. Water Resources Research 31, 7:1815–1820.
Jackson JA, McKenzie DP, (1984) Active tectonics of the Alpine– Himalayan Belt between western Turkey and Pakistan. Geophysical
Karanjac J, Altug A (1980) Karstic spring recession hydrograph and water temperature analysis: Oymapinar Dam Project, Turkey. J. Hydrol. 45:203-217
Kaymakcı N (2006) Kinematic development and paleo stress analysis of the Denizli Basin (Western Turkey): Implications of spatial variation of relative paleo stress magnitudes and orientations. Journal of Asian Earth Sciences, 27:207–222.
Koçyiğit A (2005) Denzili Graben-Horst System and the eastern limit of the west Anatolian continental extension: Basin fill, structure, deformational mode, throw amount and episodic evolutionary history, SW Turkey, Geodinamica Acta, 18:167–208
Korkmaz N (1989) A survey on classification of aquifers by recession coefficients (in Turkish), DSI Technical Bulletin, Ankara 69:1-58
Korkmaz N (1990) The estimation of groundwater recharge from spring hydrographs. Hydrol. Sci. J. 35 (2):209-217
Le Pichon X Angelier J, (1979) The Aegean arc and trench system: a key to the neotectonic evolution of the Eastern Mediterranean area. Tectonophysics 60:1–42.
Leonardi V, Arthaud F, Tovmassian A, Krakhanian A (1998) Tectonic and seismic conditions for changes in spring discharge along the Gami fight lateral strike-slip fault (Armenia Upland), Geodinamica Acta, 11:85-103,
Mangin A (1975) Contribution a` l`etude hydrodynamique des aquiferes karstiques. DES Thesis: Dijon University, France.
Melchiorre EB, Criss RE, Davidson ML (1999) Relationship between seismicity and subsurface fluids, central Coast Ranges, California, J. Geophys. Res., 104:921-939
Muirwood R, GCP King, (1993) Hydrologic signatures of earthquake strain, J. Geophys. Res., 98:22,035-22,068,
Newman J, Mitra G, (1994) Fluidinfluenced deformation and recrystallization of dolomite at low temperatures along a natural fault zone, Mountain City window, Tennessee. Geol. Soc. Am. Bull., 106:1267–1280.
Rojstaczer S, Wolf S, Michel R, (1995) Permeability enhancement in the shallow crust as a cause of earthquake-induced hydrological changes, Nature, 373:237-239,
Schôeller H (1967) Hydrodynamique dans le karst (écoulement etemmagasinement). Proc. Dubrovnik Symp. Hydrology of Fractured Rocks, 1:3-20.
Sengor AMC (1987) Cross-faults and differential stretching of hanging walls in regions of low-angle normal faulting: examples from western Turkey. In: Coward, MP Dewey, JF Hancock PL (Eds.), Continental Extensional Tectonics. Geological Society London, Special Publications 28:575–589.
Seyitoglu G, Scott BC, (1991) Late Cenozoic crustal extension and basin formation in west Turkey. Geological Magazine 128:155–166.
Seyitoglu G, Scott BC, (1996) The cause of N–S extensional tectonics in western Turkey: tectonic escape vs back-arc spreading vs. orogenic collapse. Journal of Geodynamics 22:145–153.
Soulios G (1991) Contribution à l'étude des courbes de récession des sources karstiques: Exemples du pays Hellénique. /. Hydrol. 127:29-42
Steiakakis E (2018) Evaluation of Exploitable Groundwater Reserves in Karst Terrain: A Case Study from Crete, Greece. Geosciences 2018,8,19;doi:10.3390/geosciences8010019www.mdpi.com/journal/geosciences.
Taymaz T, Jackson JA, Mc Kenzie DP, (1991) Active tectonics of the north and central Aegean Sea. Geophysical Journal International 106:433–490.
Taymaz T, Price S, (1992) The 1971 May 12 Burdur Earthquake sequence, SW Turkey—a synthesis of seismological and geological observations. Geophysical Journal International 108:589–603.
TUBITAK (2012) Environmental Institute, Preparation of Watershed Protection Action Plans – Büyük Menderes Basin, (in Turkish)
Westaway R (1994) Evidence for dynamic coupling of surface processes with isostatic compensation in the lower crust during active extension of western Turkey. Journal of Geophysical Research 99:20203–20223.
Published
2019-01-17
How to Cite
Tasdelen, S. (2019). ST Hydrogeological and Geophysical Characterization of Kozlupınar and Bentpınarı Water Springs (Denizli, SW Turkey). IJRDO-Journal of Applied Science, 4(12), 08-21. https://doi.org/10.53555/as.v4i12.2597