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Morphotectonic analysis of the Madhumati watershed, northeast Kashmir Valley

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Abstract

The present study examined the morphotectonic parameters of the Madhumati basin with the emphasis on its implication for tectonic activity. Data for this study were obtained from toposheets in digital format which were subjected to field confirmation. We performed digital elevation model (DEM) analysis, and we extracted several geomorphic indices: mountain front sinuosity, valley floor width to valley height ratio, hypsometric curve and integral, stream length gradient index, transverse topography symmetry, drainage basin asymmetry and basin elongation ratio. These morphometric parameters may indicate tectonic activity with a tilt to the south of the northern margin of the Kashmir Basin (Madhumati Catchment). The results reveal that the basin area was 453.71 km2 and the basin was found to be tectonically active with average S mf value 1.14, stream gradient index (SL) 1026.7, Vf 0.13 and T 0.56. The results of elongation ratio 0.15 reveal that the basin is strongly elongate and active. Also, the calculated result of AF 68.52 % reveals that the basin has shifted up right to the trunk stream facing downstream. The results of hypsometric integral 0.49 and convex-up hypsometric curve reveal that the basin has high elevation relative to mean, narrow and incised valleys and has rugged topography, is in youthful stage and is tectonically active.

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References

  • Agarwal KK, Agrawal GK (2005) A genetic model of thrust bounded intermontane basin using scaled sandbox analogue models: an example from the Karewa Basin, Kashmir Himalayas, India. Int J Earth Sci (Geol. Rundsch) 94(1):47–52

  • Ahmad S, Bhat MI (2012) Tectonic geomorphology of Rambiara basin, SW Kashmir Valley reveals emergent out-of-sequence active fault system. Himalayan Geol 33(2):162–172

    Google Scholar 

  • Ahmad S, Bhat MI, Madden C, Bali BS (2013) Geomorphic analysis reveals active tectonic deformation on the eastern flank of the Pir Panjal Range, Kashmir Valley. India Arabian J Geosci. doi:10.1007/s12517-013-0900-y

    Google Scholar 

  • Alam A, Ahmad S, Bhat MS, Ahmad B (2015) Tectonic evolution of Kashmir basin in NW Himalayas. Geomorphology 239:114–126

    Article  Google Scholar 

  • Babault J, Nicholas L, Driessche JVD, Castelltort S, Bonnet S, Davy P (2006) Did the Ebro basin connect to the Mediterranean before the Messinian salinity crisis. Sci direct geomorphology 81:155–165

    Article  Google Scholar 

  • Babault J, Teixell A, Struth L, Arboleya LM, Teson E (2013) Shortening, structural relief and drainage evolution in inverted rifts: insights from the Atlas Mountains, the eastern Cordillera of Colombia and the Pyrenees.

  • Bull WB (1977) Tectonic geomorphology of Mojave Desert: Menlo Park, California. U.S. Geological Survey Office of Earthquakes, Volcanoes, and Engineering Contract report, 14–08-001-G-394, 188p.

  • Bull WB, Mc Fadden LD (1977) Tectonic geomorphology north and south of the Garlock Fault California, in arid regions. Proceedings eighth Annual Geomorphology System, State University, New York, Binghamton, pp. 115–138

    Google Scholar 

  • Burbank DW, Johnson GD (1983) The late Cenozoic chronologic and stratigraphicdevelopment of the Kashmir intermontane basin, northwestern Himalaya. Palaeogeogr Palaeoclimatol Palaeoecol 43(1983):205–235

  • Burbank W, Anderson RS (2001) Tectonic geomorphology. Science, Blackwell

    Google Scholar 

  • Chow VT (1964a) Handbook of applied hydrology: a compendium of water-resources technology. McGraw-Hill, New York

    Google Scholar 

  • Chow VT (1964b) Handbook of applied hydrology: a compendium of water resources technology. McGraw Hill, New York

    Google Scholar 

  • Cox RT (1994) Analysis of drainage basin symmetry as a rapid technique to identify areas of possible Quaternary Tilt-block tectonics: an example from the Mississippi Embayment. Geol Soc Am Bull 106:571–581

    Article  Google Scholar 

  • Demoulin A (1998) Testing the tectonic significance of some parameters of longitudinal river profiles: the case of the Ardenne (Belgium, NW Europe). Geomorphology 24(2):189–208

    Article  Google Scholar 

  • El Hamdouni R, Irigaray C, Fernandez T, Chacón J, Keller EA (2007) Assessment of relative active tectonics, southwest border of Sierra Nevada (southern Spain). Geomorphology 96:150–173

  • Hack JT (1973) Stream-profile analysis and stream gradient index. US Geological Survey J Res 1:1421–1429

    Google Scholar 

  • Hare PW, Gardner TW (1984) Geomorphic indicators of vertical neotectonism along the convergent plate margins, Nicoya Peninsula, Costa Rica. In: M. M, Hack JT (eds) Tectonic geomorphology: Proceedings of the 15th Annual Binghamton Geomorphology Symposium, September 1984. Allen & Unwin, Boston

    Google Scholar 

  • Hovius N (1996) Regular spacing of drainage outlets from linear mountain belts. Basin Res 8(1):29–44

    Article  Google Scholar 

  • Huang XJ, Niemann JD (2006) Modelling the potential impacts of groundwater hydrology on long-term drainage basin evolution. Earth Surf Process Landf 31:1802–1823

    Article  Google Scholar 

  • Keller EA (1986) Investigation of active tectonics: use of surficial earth processes. in: Panel on active tectonics. National Academy Press, Washington, D.C., pp. 138–147

    Google Scholar 

  • Keller EA (2002) Active tectonics: earthquakes, uplift, and landscapes 2nd Edition. Prentice Hall, New Jersey, p. 362

    Google Scholar 

  • Keller EA, Pinter N (1996) Active tectonics: earthquakes uplift and landscapes. 2nd. Prentice Hall, New Jersey, p. 338

    Google Scholar 

  • Madden C, Ahmad S, Meigs A (2011) Geomorphic and paleoseismic evidence for late quaternary deformation in the southwest Kashmir Valley, India: out-of-sequence thrusting, or deformation above a structural ramp? AGU abstracts T54B-07

  • Miller VC (1953) A Quantitative geomorphic study of drainage basin characteristics in the Clinch Mountain area, Virginia and Tennessee, Tech Rep 3. Columbia University, Department of Geology, ONR, New York, Proj. NR, pp. 389–402

    Google Scholar 

  • Moglen GE, Bras RL (1995) The effect of spatial heterogeneities ongeomorphic expression in a model of basin evolution. Water Resour Res 31:2613–2623

    Article  Google Scholar 

  • Molin P, Pazzaglia FJ, Dramis F (2004) Geomorphic expression of active tectonics in a rapidly-deforming forearc, Sila Massif, Calabria, Southern Italy. Am J Sci 304:559–589

    Article  Google Scholar 

  • Nakata T (1989) Active faults of the Himalaya of India and Nepal. Geol Soc Am Spec Pap 232:234–264

    Google Scholar 

  • Pike RJ, Wilson SE (1971) Elevation relief ratio, hypsometric integral and geomorphic area-altitude analysis. Geol Soc Am Bull 62:1079–1084

    Article  Google Scholar 

  • Raina AK, Munshi CL (1991) Chemical mineralogy of Panjal Traps around Bandipura, Kashmir Himalaya (J&K), Journal of Himalayan Geology. Vol 2(1):17–22

    Google Scholar 

  • Raza M, Ahmad A, Mohammad A (1978) The valley of Kashmir, a geographical interpretation of the land, vol 1. Vikas Publishing House Pvt, Ltd New Delhi

    Google Scholar 

  • Rockwell TK, Keller EA, Jhonson DL (1985) Tectonic Geomorphology of alluvial fans and mountain fronts near Ventura, California. In: Morisawa M, Hack JT (eds) Pr. Allen Unwin Boston Binghantom (15th Ann. Tec.. geomorph.. symp.) Sept. 1984, pp 183–208

  • Schumm SA (1956) Evolution of drainage systems and slope badlands at Perth Amboy, N. Geol Soc Am Bull 67:597–646

    Article  Google Scholar 

  • Seeber L, Gornitz VM (1983) River profiles along the Himalayan arc as indicator of active tectonics. Tectonophysics 92:335–367

    Article  Google Scholar 

  • Snow RS, Slingerland RL (1987) Mathematical modelling of graded river profiles. J Geol 95:15–33

    Article  Google Scholar 

  • Strahler AN (1952) Hypsometric (area-altitude) analysis of erosional topology. Geol Soc Am Bull 63(11):1117–1142

    Article  Google Scholar 

  • Strahler AN (1957) Quantitative analysis of watershed geomorphology. Am Geophys Union Transac 38:913–920

    Article  Google Scholar 

  • Madden C, Trench D, Meigs A, Ahmad S, Bhat MI, Yule JD (2010) Late Quaternary shortening and earthquake chronology of an active fault in the Kashmir basin, Northwest Himalaya (Abstract), Annual Meeting of the Seismological Society of America, Portland, Oregon, USA. April, 2010.

  • Upreti BN, Sakai H, Rai SM (2000) Geology of the Taplejung window and frontal belt, far eastern Nepal Himalaya. Suppl 15th Himalaya Karakorum–Tibet workshop, abstract volume Earth science frontiers, 7, 39–40. China university of Geosciences, Beijing

    Google Scholar 

  • Wadia DN (1975) Geology of India, 4th edn. Tenth reprint, Tata McGraw-Hill, New Delhi

  • Wells SG, Bullard TF, Menges TM, Drake PG, Karas PA, Kelson KI, Ritter JB, Wesling JR (1988) Regional variations in tectonic geomorphology along segmented convergent plate boundary, Pacific Coast of Costa Rica. Geomorphology 1:239–265

    Article  Google Scholar 

  • Willgoose G, Hancock G (1998) Revisiting the hypsometric curve as an indicator of form and process in transport-limited catchment. Earth Surf Process Landf 23:611–623

    Article  Google Scholar 

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Correspondence to Bikram Singh Bali.

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Bali, B.S., wani, A.A., Khan, R.A. et al. Morphotectonic analysis of the Madhumati watershed, northeast Kashmir Valley. Arab J Geosci 9, 390 (2016). https://doi.org/10.1007/s12517-016-2395-9

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