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Processes and factors regulating the distribution of metals in mudflat sedimentary environment within tropical estuaries, India

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Abstract

The present study investigates processes and factors which determine the distribution of grain size, organic carbon and metals in mudflat sediment cores collected from lower regions of three tropical estuaries, viz., Mandovi, Sharavathi and Gurupur. The three rivers are similar in terms of monsoonal characteristics and discharge pattern, but are different in tidal range, catchment area geology and anthropogenic activities. The data revealed increase in finer sediments, organic carbon and metals in the recent years in Mandovi and Sharavathi estuaries, while the data revealed decrease in the Gurupur estuary. The increase in finer sediments in Mandovi and Sharavathi estuaries was attributed to catchment area activities, rainfall and runoff and mixing behaviour within estuaries. The change in the morphology of the Mangalore spit led to an increase in coarser sediments in the recent years in the Gurupur estuary. The similarity in distribution pattern of metals to that of finer sediments and organic carbon in three estuaries indicated the role of finer sediments and organic carbon in distribution of metals. In addition, correlation, factor and cluster analyses suggested the role of Fe and/or Mn oxide in adsorption of metals onto sediments. However, the factors regulating distribution of metals varied among the three estuaries, which are attributed to variations in rock types in their basins, in addition to changes in response to natural forces and human activities.

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References

  • Abílio G, Cupelo ACG, Rezende CE (2006) Heavy metal distribution in sediments of an offshore exploration area, Santos basin, Brazil. Geochim Bras 20(1):71–86

    Google Scholar 

  • Avinash KG, Diwakar PG, Joshi NV, Ramachandra TV (2008) Landslide susceptibility mapping in the downstream region of Sharavathi river basin, Central Western Ghats. In: Proceedings of the 24th annual symposium on space and technology ISRO­IISc technology cell, Indian Institute of Science, Bangalore

  • Badr NBE, El-Fiky AA, Mostafa AR, Al-Mur BA (2008) Metal pollution records in core sediments of some Red Sea coastal areas, Kingdom of Saudi Arabia. Environ Monit and Assess 155:509–526

    Article  Google Scholar 

  • Bannur CR, Sherieff AN, Basappa RM, Shreedhara V (1991) Application of remote sensing technique in detection of morphological changes in the vicinity of estuarine mouths—a case study pertaining to D.K. district. Workshop on Indian remote sensing satellite mission and its application

  • Basaham AS (2009) Geochemistry of Jizan shelf sediments, southern Red Sea coast of Saudi Arabia. Arab J Geosci 2:301–310

    Article  Google Scholar 

  • Bowen HJM (1979) The environmental chemistry of the elements. Academic Press, London, New York

    Google Scholar 

  • Brown ET, Callonnec LL, German CR (2000) Geochemical cycling of redox-sensitive metals in sediments from Lake Malawi: a diagnostic paleotracer for episodic changes in mixing depth. Geochim Cosmochim Acta 64(20):3515–3523

    Article  Google Scholar 

  • Bukhari SS (1994) Studies on mineralogy and geochemistry of bed and suspended sediment of Mandovi river and its tributaries in Goa, west coast of India. Thesis, Goa University

  • Chatterjee M, Filho EVS, Sarkar SK, Sella SM, Bhattacharya A, Satpathy KK, Prasad MVR, Chakraborty S, Bhattacharya BD (2007) Distribution and possible source of trace elements in the sediment core of a tropical macrotidal estuary and their ecotoxicological significance. Environ Int 33(3):346–356

    Article  Google Scholar 

  • Clark M (1992) The physical and geochemical controls on heavy metal cycling in Mangal sediments, Wynnum, Brisbane. Thesis, University of Canterbury

  • Dolch T, Hass HC (2008) Long-term changes of intertidal and subtidal sediment compositions in a tidal basin in the northern Wadden Sea (SE North Sea). Helgol Mar Res 62:3–11

    Article  Google Scholar 

  • Dulaiova H, Gonneea ME, Henderson PB, Charette MA (2008) Geochemical and physical sources of radon variation in a subterranean estuary—implications for groundwater radon activities in submarine groundwater discharge studies. Mar Chem 110(1–2):120–127

    Article  Google Scholar 

  • El-Kashouty M, El-Sabbagh A (2011) Distribution and immobilization of heavy metals in Pliocene aquifer sediments in Wadi El Natrun depression, Western Desert. Arab J Geosci 4(5–6):1019–1039

    Article  Google Scholar 

  • Emam A, Saad-Eldin M (2013) Distribution and environmental geochemistry of some heavy metals in stream sediments of Wadi Allaqi, south eastern desert of Egypt. Arab J Geosci 6(5):1325–1332

    Article  Google Scholar 

  • Fernandes L, Nayak GN (2009) Distribution of sediment parameters and depositional environment of mudflats of Mandovi estuary, Goa, India. J Coast Res 25(2):273–284

    Article  Google Scholar 

  • Folk RL (1974) Petrology of sedimentary rocks. Hemphill, Austin

    Google Scholar 

  • Fox WM, Johnson MS, Jones SR, Leah RT, Copplestone D (1999) The use of sediment cores from stable and developing salt marshes to reconstruct historical contamination profiles in the Mersey Estuary, UK. Mar Environ Res 47:311–329

    Article  Google Scholar 

  • Gangadhar BH (1995) Long-term shoreline changes of Mulki-Pavanje and Nethravati- Gurpur estuaries, Karnataka. J Indian Soc Remote Sens 23:147–153

    Article  Google Scholar 

  • Gaudette HE, Flight WR, Toner L (1974) An inexpensive titration method for the determination of organic carbon in recent sediment. J Sediment Petrol 44(1):249–253

    Google Scholar 

  • German J, Svensson G (2002) Metal content and particle size distribution of street sediments and street sweeping waste. Water Sci Technol 46(6–7):191–198

    Google Scholar 

  • Harikumar PS, Nasir UP, Mujeebu Rahman MP (2009) Distribution of heavy metals in the core sediments of a tropical wetland system. Int J Environ Sci Technol 6(2):225–232

    Article  Google Scholar 

  • Hegde AV, Raveendra B (2000) Short-term and long-term geomorphological dynamics of Mangalore spits using IRS-1A/1C data. J Indian Soc Remote Sens 28(4):233–247

    Article  Google Scholar 

  • Jarvis IJ, Jarvis K (1985) Rare earth element geochemistry of standard sediments: a study using inductively coupled plasma spectrometry. Chem Geol 53:335–344

    Article  Google Scholar 

  • Jingchun L, Chongling Y, Spencer KL, Ruifeng Z, Haoliang L (2010) The distribution of acid-volatile sulfide and simultaneously extracted metals in sediments from a mangrove forest and adjacent mudflat in Zhangjiang Estuary, China. Mar Pollut Bull 60(8):1209–1216

    Article  Google Scholar 

  • Jordao CP, Pereira MG, Bellato CR, Pereira JL, Matos AT (2002) Assessment of water systems for contaminants fromdomestic and industrial seweage. Environ Monit Assess 79:55–100

    Article  Google Scholar 

  • Kaiser HF (1960) The application of electronic computers to factor analysis. Educ Psychol Meas 20:141–151

    Article  Google Scholar 

  • Kappler A, Straub KL (2005) Geomicrobiological cycling of iron. Rev Mineral Geochem 59:85–105

    Article  Google Scholar 

  • Kessarkar PM, Rao VP, Shynu R, Mehra P, Viegas BE (2010) The nature and distribution of particulate matter in the Mandovi estuary, central west coast of India. Estuar Coast 33(1):30–44

    Article  Google Scholar 

  • Kristiansen KD, Kristensen E, Jensen MH (2002) The influence of water column hypoxia on the behaviour of manganese and iron in sandy coastal marine sediment. Estuar Coast Shelf Sci 55:645–654

    Article  Google Scholar 

  • Kulahcl F, Şen Z (2008) Multivariate statistical analyses of artificial radionuclides and heavy metals contaminations in deep mud of Keban Dam Lake, Turkey. Appl Radiat Isot 66:236–246

    Article  Google Scholar 

  • Kumar SP, Edward JKP (2009) Assessment of metal concentration in the sediment cores of Manakudy estuary, south west coast of India. Indian J Mar Sci 38(2):235–248

    Google Scholar 

  • Kumar SP, Sheela MS (2013) Studies on the sediment characteristics of Manakudy estuary, south west coast of India. Int Res J Environ Sci 2(11):78–83

    Google Scholar 

  • Kumar A, Jayappa KS, Deepika B, Dinesh AC (2010) Hydrological-drainage analysis for evaluation of groundwater potential in a watershed basin of southern Karnataka, India: a remote sensing and GIS approach. In: Proceedings of the 1st international applied geological congress, Department of Geology, Islamic Azad University—Mashad Branch, Iran

  • Kumar VS, Dora GU, Philip S, Pednekar P, Singh J (2011) Variations in tidal constituents along the nearshore waters of Karnataka, west coast of India. J Coast Res 27(5):824–829

    Article  Google Scholar 

  • Kunte PD, Wagle BG (1991) Spit evolution and shore drift direction along south Karnataka coast, India. Giorn Geol 53:71–80

    Google Scholar 

  • Lacuraj C, Maria S (2006) Geochemical index of trace metals in the surficial sediments from the western continental shelf of India, Arabian Sea. Environ Geochem Health 28:509–518

    Article  Google Scholar 

  • Lee GF (1975) Role of hydrous metal oxides in the transport of heavy metals in the environment. In: Krenkel PA (ed) Heavy metals in the aquatic environment. Pergamon press, Oxford, pp 137–153

    Chapter  Google Scholar 

  • Lin CY, Abdullah MH, Musta B, Praveena MS, Aris AZ (2011) Stability behaviour and thermodynamic states of iron and manganese in sandy soil aquifier Manukan island, Malaysia. Nat Resour Res 20(1). doi: 10.1007/s11053-011-9136-2

  • Liu B, Hu K, Jiang Z, Yang J, Luo X, Liu A (2011) Distribution and enrichment of heavy metals in a sediment core from the Pearl River Estuary. Environ Earth Sci 62:265–275

    Article  Google Scholar 

  • Lu XQ, Werner I, Young TM (2005) Geochemistry and bioavailability of metals in sediments from northern San Francisco Bay. Environ Int 31:593–602

    Article  Google Scholar 

  • Madkour HA, Obirikorang KA, Amisah S, Otchere FA, Adjei-Boateng D (2011) Relationship between heavy metal concentrations in bottom sediments and the clam, Galatea Paradoxa (Born 1778) from the Volta estuary, Ghana. J Environ Prot 2:720–728

    Article  Google Scholar 

  • Mukherjee S (2013) Clays as neutralizers against environmental protection. In: Mukherjee S (ed) The science of clays: applications in industry, engineering and environment. Springer, Netherlands, p 252

    Chapter  Google Scholar 

  • Mukhopadhyay R, Karisiddaiah SM (2014) The Indian coastlines: processes and landforms. In: Kale VS (ed) Landscapes and landforms of India. Springer, Dordrecht, pp 91–105

    Chapter  Google Scholar 

  • Murray JW (1987) Mechanisms controlling the distribution of trace elements in oceans and lakes. Sources and fate of aquatic pollutants. Am Chem Soc, In, pp 91–130

    Google Scholar 

  • Nair MNM, Ramachandran KK (2002) Textural and trace elemental distribution in sediments of the Beypore estuary (SW coast of India) and adjoining inner shelf. Indian J Mar Sci 31(4):295–304

    Google Scholar 

  • Naqvi SM (2005) Geology and evolution of the Indian Plate (from Hadean to Holocene—4 Ga to 4 Ka). Capital Publishing Company, New Delhi, p 450

    Google Scholar 

  • Nesbitt HW, Young GM (1996) Petrogenesis of sediments in absence of chemical weathering: effects of abrasion and sorting on bulk composition and mineralogy. Sedimentology 43:341–358

    Article  Google Scholar 

  • Pathak MC, Kotnala KL, Prabaharan N (1988) Effects of bridge piers on a tropical estuary in Goa, India. J Coast Res 4(3):475–481

    Google Scholar 

  • Pejrup M (1988) The triangular diagram for classification of estuarine sediments: a new approach. In: de Boer PL, van Gelder A and Nios SD (eds) Tide influenced sedimentary environments and facies, pp 289–300

  • Pichaimani SV, Jonathan MP, Srinivasalu S, Rajeshwara-Rao N, Mohan SP (2008) Enrichment of trace metals in surface sediments from the northern part of Point Calimere, SE coast of India. Environ Geol 55:1811–1819

    Article  Google Scholar 

  • Radhakrishna BP, Vaidyanadhan R (1994) Geology of Karnataka. Geol Soc India, Bangalore, pp 9–17

  • Radheshyam B, Rao S, Shirlal KG (2010) On numerical modelling of waves, currents and sediment movement around Gurupur–Netravathi river mouth. Int J Earth Sci Eng 3(4):538–552

    Google Scholar 

  • Raghavan BR, Vinod BT, Dimple KA, Prabhu HV, Udayashankar HN, Murthy TRS (2001) Evaluation of the Nethravathi spit complex, west coast of India: Integrated change detection study using topographic and remotely sensed data. Indian J Mar Sci 30(4):268–270

    Google Scholar 

  • Raj S, Jee PK, Panda CR (2013) Textural and heavy metal distribution in sediments of Mahanadi estuary, east coast of India. India J GeoMar Sci 42(3):370–374

    Google Scholar 

  • Ram A, Borole DV, Rokade MA, Zingde MD (2009) Diagenesis and bioavailability of mercury in the contaminated sediments of Ulhas Estuary, India. Mar Pollut Bull 58(11):1685–1693

    Article  Google Scholar 

  • Ramachandra TV, Subhashchandran MD, Sreekantha DM, Rao GR, Ali S (2004) Cumulative impact assessment in the Sharavathi river basin. Int J Environ Dev 1(1):113–135

    Google Scholar 

  • Rao VP, Shynu R, Kessarkar PM, Sundar D, Michael GS, Narvekar T, Blossom V, Mehra P (2011) Suspended sediment dynamics on a seasonal scale in the Mandovi and Zuari estuaries, central west coast of India. Estuar Coast Shelf Sci 91:78–86

    Article  Google Scholar 

  • Richard AJ, Dean WW (2002) Applied multivariate statistical analysis. Prenticee Hall, London, p 265

    Google Scholar 

  • Salomons W, Forstner U (1984) Metals in the hydrocycle. Springer, Berlin, p 349

    Book  Google Scholar 

  • Shetye SR, Kumar MD, Shankar D (2007) The Mandovi and Zuari estuaries. National Institute of Oceanography, Goa, p 145

    Google Scholar 

  • Singh KT, Nayak GN (2009) Sedimentary and geochemical signatures of depositional environment of sediments in mudflats from a microtidal Kalinadi estuary, central west coast of India. J Coast Res 25(3):641–650

    Article  Google Scholar 

  • Tam NFY, Wong YS (2000) Spatial variation of heavy metals in surface sediments of Hong Kong mangrove swamps. Environ Pollut 110(2):195–205

    Article  Google Scholar 

  • Tessier A, Campbell PGC (1982) Particulate trace metal speciation in stream sediments and relationship with grain size: implications for geochemical exploration. J Geochem Explor 6:77–104

    Article  Google Scholar 

  • Thamdrup B (2000) Bacterial manganese and iron reduction in aquatic sediments. Adv Microb Ecol 16:41–84

    Article  Google Scholar 

  • Valette-Silver NJ (1993) The use of sediment cores to reconstruct historical trends in contamination of estuarine and coastal sediment. Estuaries 16:577–588

    Article  Google Scholar 

  • Venkatramanan S, Ramkumar T, Anithamary I (2013) Distribution of grain size, clay mineralogy and organic matter of surface sediments from Tirumalairajan estuary, Tamilnadu, east coast of India. Arab J Geosci 6:1371–1380

    Article  Google Scholar 

  • Venkatramanan S, Ramkumar T, Anithamary I, Vasudevan S (2014) Heavy metal distribution in surface sediments of the Tirumalairajan River estuary and the surrounding coastal area, east coast of India. Arab J Geosci 7:123–130. doi:10.1007/s12517-012-0734-z

    Article  Google Scholar 

  • Vinodhini R, Narayanan M (2008) Bioaccumulation of heavy metals in organs of fresh water fish Cyprinus carpio (Common carp). Int J Environ Sci Technol 5(2):179–182

    Article  Google Scholar 

  • Violante A, Krishnamurti GSR, Pigna M (2008) Mobility of trace elements in soil environments. In: Violante A, Huang PM, Gadd GM (eds) Biophysico-chemical processes of metals and metalloids in soil environments. Wiley, Hoboken, pp 169–213

    Google Scholar 

  • Volvoikar SP, Nayak GN (2013) Factors controlling the distribution of metals in intertidal mudflat sediments of Vaitarna estuary, North Maharashtra coast, India. Arab J Geosci. doi:10.1007/s12517-013-1162-4

    Google Scholar 

  • Walkley A, Black JA (1934) The determination of organic carbon by rapid titration method. Soil Sci 37:29–38

    Article  Google Scholar 

  • Wallbrink P, Olley J (2004) Sources of fine grained sediment in incised and un-incised channels, Jugiong Creek, NSW, Australia. In Golosov V, Belyaez V, Walling DE (ed) Sediment transfer through the fluvial system, vol 288. IAHS, Pub., Oxfordshire, pp 165–169

  • Wangersky PJ (1986) Biological control of trace metal residence time and speciation: a review and synthesis. Mar Chem 18:269–297

    Article  Google Scholar 

  • Willams TP, Bubb JM, Lester JN (1994) Metal accumulation within saltmarsh environments: a review. Mar Pollut Bull 28:277–290

    Article  Google Scholar 

  • Zabetoglou K, Voutsa D, Samara C (2002) Toxicity and heavy metal contamination of surficial sediments from the Bay of Thessaloniki (Northwestern Aegean Sea) Greece. Chemosphere 49:17–26

    Article  Google Scholar 

  • Zeng H, Wu J (2013) Heavy metal pollution of lakes along the mid-lower reaches of the Yangtze river in China: intensity, sources and spatial patterns. Int J Environ Res Public Health 10(3):793–807

    Article  Google Scholar 

  • Zhou G, Zhang M, Ji D, Zhu Q (2007) Tree-kernel based relation extraction with context-sensitive structured parse tree in formation. In EMNLP/CoNLL

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Acknowledgement

One of the authors (Maheshwar R. Nasnodkar) wishes to thank the Department of Science and Technology (DST) for granting fellowship under “Innovation in Science Pursuit for Inspired Research” (INSPIRE) programme

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Correspondence to G. N. Nayak.

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Nasnodkar, M.R., Nayak, G.N. Processes and factors regulating the distribution of metals in mudflat sedimentary environment within tropical estuaries, India. Arab J Geosci 8, 9389–9405 (2015). https://doi.org/10.1007/s12517-015-1823-6

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