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Heavy metal content in the beach sediment with respect to contamination levels and sediment quality guidelines: a study at Kalpakkam coast, southeast coast of India

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Abstract

Socioeconomic developments and industrialization exert tremendous impact on beaches which is often neglected. Heavy metal (Cr, Mn, Co, Ni, Cu, Zn, Cd, and Pb) contents were estimated in the intertidal region from Kalpakkam to Mamallapuram (20 km), southeast coast of India covering seven locations. To evaluate the level of contamination of these metals; enrichment factor (EF), geoaccumulation index (I geo), contamination factor (CF), pollution load index (PLI) and modified degree of contamination (mCd) were applied. The results were also compared with the sediment quality guidelines (SQGs) to find out the eco-toxicity level. Metal contents in the beach sediment were observed in the order: Fe > Al > Mn > Cr > Cu > Ni > Zn > Pb > Co > Cd. Grain size distribution showed medium to coarse nature of the sediment. Significant positive correlation was found among the metals indicating their common source of input. Based on EF, minor enrichment of Mn and Zn and moderately severe to severe enrichment of Cr, Cu, Pb and Cd were observed which was further confirmed by I geo and CF values. Moreover, Mamallapuram showed a very high CF value for Cd (>6) indicating very high contamination accountable to anthropogenic sources. PLI and mCd in all the stations indicated unpolluted nature except M1 where the values pointed moderate degree of contamination. As per the SQGs, Ni and Cr values exceeded the probable effect limit value implying that these metals can have adverse impacts. None of the metals exceeded the effect range median indicating that the beach sediment is not very toxic.

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References

  • Abraham GMS, Parker RJ (2008) Assessment of heavy metal enrichment factors and the degree of contamination in marinesediments from Tamaki Estuary, Aukland, New Zealand. Environ Monit Assess 136:227–238

    Article  Google Scholar 

  • Arumugam V, Sasidhar P, Lal KB, Ahmed J, Gurumoorthy C, Mathur RK (1997) Preliminary investigation on trend of ground water salinity in deep boreholes drilled at Kokkilimedu, Kalpakkam. In: Proceedings of the international conference on advances in environmental science, Trivandrum, India, pp 173–179

  • Birch GF (2003) A test of normalisation methods for marine sediments, including a new post-extraction normalisation (PEN) technique. Hydrobiologia 492:5–13

    Article  Google Scholar 

  • Blott SJ, Pye K (2001) GRADISTAT: a grain size distribution and statistics package for the analysis of unconsolidated sediments. Earth Surf Process Landf 26:237–1248

    Article  Google Scholar 

  • Feng H, Han X, Zhang W, Yu L (2004) A preliminary study of heavy metal contamination in Yangtze River intertidal zone due to urbanization. Mar Pollut Bull 49:910–915

    Article  Google Scholar 

  • Folk RL, Ward WC (1957) Brazos River bar: a study in the significance of grain size parameters. J Sediment Petrol 27:3–26

    Article  Google Scholar 

  • Friedman GM, Sanders JE (1978) Principles of sedimentology. Wiley, New York

    Google Scholar 

  • Gurumoorthy C, Sasidhar P, Arumugham V, Mathur RK (2004) Sub-surface investigations on deep saline groundwater of charnockite rock formation, Kalpakkam, India. Environ Monit Assess 91:211–222

    Article  Google Scholar 

  • Hakanson L (1980) Ecological risk index for aquatic pollution control, a sedimentological approach. Water Res 14:975–1001

    Article  Google Scholar 

  • Hübner R, Astin KB, Herbert JH (2009) Comparison of sediment quality guidelines (SQGs) for the assessment of metal contamination in marine and estuarine environments. J Environ Monit 11:713–722

    Article  Google Scholar 

  • Issa EI, Al-Ansari NA, Knutsson S (2013) Sedimentation and new operational curve for Mosul Dam, Iraq. Hydrol Sci J 58(7):1–11

    Article  Google Scholar 

  • Klerks PL, Levinton JS (1989) Rapid evolution of metal resistance in a benthic oligochaete inhabiting a metal-polluted site. Biol Bull (Woods Hole) 176:135–141

    Article  Google Scholar 

  • Krishnakumar P, Lakshumanan C, Jonathan MP, Sundararajan M, Navarrete-Lopez M (2013) Trace metal in beach sediments of Velanganni coast, South India: application of autoclave leach method. Arab J Geosci. doi:10.1007/s12517-013-0956-8

    Google Scholar 

  • Leland HV, Luoma SN, Elder JF, Wilkes DJ (1978) Heavy metals and related trace elements. J Water Pollut Control Fed 50:469–514

    Google Scholar 

  • Long ER, MacDonald DD (1998) Recommended uses of empirically derived sediment quality guidelines for marine and estuarine ecosystems. Hum Ecol Risk Asses 4:1019–1039

    Article  Google Scholar 

  • Long ER, Mac Donald DD, Smith SL, Calder FD (1995) Incidence of adverse biological effects within ranges of chemical concentrations in marine and estuarine sediments. Environ Manag 19:81–97

    Article  Google Scholar 

  • MacDonald DD, Carr RS, Calder FD, Long ER, Ingersoll CG (1996) Development and evaluation of sediment quality guidelines for Florida coastal waters. Ecotoxicology 5:253–278

    Article  Google Scholar 

  • MacDonald DD, DiPinto LM, Field J, Ingersoll CG, Long ER, Swartz RC (2000) Development and evaluation of consensus-based sediment effect concentrations for polychlorinated biphenyls (PCBs). Environ Toxicol Chem 19:1403–1413

    Article  Google Scholar 

  • MacDonald TM, Morant SV, Goldstein JL et al (2003) Channeling bias and the incidence of gastrointestinal haemorrhage in users of meloxicam, coxibs, and older, non-specific non-steroidal anti-inflammatory drugs. Gut 52:1265–1270

    Article  Google Scholar 

  • Milenkovic N, Damjanovic M, Ristic M (2005) Study of heavy metal pollution in sediments from the Iron Gate (Danube River), Serbia and Montenegro. Pol J Environ Stud 14:781–787

    Google Scholar 

  • Pempkowiase J, Sikora A, Biernacka E (1999) Speciation of heavy metals in marine sediments and their bioaccumulation by mussels. Chemosphere 39:313–321

    Article  Google Scholar 

  • Rudnick RL, Gao S (2003) Composition of the continental crust. In: Rudnick RL (ed) The crust, vol 3. Elsevier, Amsterdam, pp 1–64

    Google Scholar 

  • Ruiz F (2001) Trace metals in estuarine sediments from the southwestern Spanish coast. Mar Pollut Bull 42:481–489

    Article  Google Scholar 

  • Santhiya G, Lakshumanan C, Jonathan MP, Roy PD, Navarrete-Lopez M, Srinivasalu S, Uma Maheswari B, Krishnakumar P (2011) Metal enrichment in beach sediments from Chennai Metropolis, SE coast of India. Mar Pollut Bull 62:2537–2542

    Article  Google Scholar 

  • Satpathy KK (1996) Seasonal distribution of nutrients in the coastal waters of Kalpakkam, east coast of India. Indian J Mar Sci 25:221–224

    Google Scholar 

  • Satpathy KK, Mohanty AK, Prasad MVR, Natesan U, Sarkar SK, Rajan M (2008) Post-tsunami changes in water quality of Kalpakkam coastal waters, east coast of India with special references to nutrients. Asian J Water Environ Pollut 5:15–30

    Google Scholar 

  • Satpathy KK, Sahu G, Mohanty AK, Prasad MVR, Panigrahy RC (2009) Phytoplankton community structure and its variability during southwest to northeast monsoon transition in the coastal waters of Kalpakkam, east coast of India. Int J Oceans Oceanogr 3:43–74

    Google Scholar 

  • Satpathy KK, Mohanty AK, Prasad MVR, Natesan U, Sarkar SK (2010) Seasonal variation in physicochemical properties of coastal waters of Kalpakkam, east coast of India with special emphasis on nutrients. Environ Monit Assess 164:153–171

    Article  Google Scholar 

  • Satpathy KK, Mohanty AK, Sahu G, Sarguru S, Sarkar SK, Natesan U (2011) Spatio-temporal variation in physico-chemical properties of coastal waters off Kalpakkam, southeast coast of India, during summer, pre-monsoon and post-monsoon period. Environ Monit Assess 180:41–62

    Article  Google Scholar 

  • Satpathy KK, Mohanty AK, Prasad MVR, Natesan U, Sarkar SK (2012) Studies on the variations of heavy metals in the marine sediments off Kalpakkam, east coast of India. Environ Earth Sci 65(1):89–101

    Article  Google Scholar 

  • Selvaraj K, Ram-Mohan V (2003) Textural variation and depositional environments of innershelf sediments, off Kalpakkam, southeast coast of India. J Geol Soc India 61:449–462

    Google Scholar 

  • Selvaraj K, Ram-Mohan V, Srinivasalu S, Jonathan MP, Siddartha R (2003) Distribution of non-detrital trace metals in sediments cores from Ennore creek, southeast coast of India. J Geol Soc India 62:191–204

    Google Scholar 

  • Selvaraj K, Ram-Mohan V, Szefer P (2004) Evaluation of metal contamination in coastal sediments of the Bay of Bengal, India: geochemical and statistical approaches. Mar Pollut Bull 49(3):174–185

    Article  Google Scholar 

  • Singh VS, Saxena VK, Jain SC, Anjaneyulu GR, Prakash BA, Mondal NC (2003) Hydrogeological and geophysical investigations at PFBR site, Kalpakkam, Tamil Nadu. Tech Rept. No. NGRI-2003-GW-396

  • Srinivasalu S, Thangadurai N, Switzer AD, Ram Mohan V, Ayyamperumal T (2007) Erosion and sedimentation in Kalpakkam (N Tamil Nadu, India) from the 26th December 2004 tsunami. Mar Geol 240:65–75

    Article  Google Scholar 

  • Srinivasalu S, Thangadurai N, Jonathan MP, Armstrong-Altrin JS, Ayyamperumal T, Ram-Mohan V (2008) Evaluation of trace-metal enrichments from the 26 December 2004 tsunami sediments along the Southeast coast of India. Environ Geol 53:1711–1721

    Article  Google Scholar 

  • Subramanian V, Mohanachandran G (1990) Heavy metals distribution and enrichment in the sediments of southern east coast of India. Mar Pollut Bull 21:324–330

    Article  Google Scholar 

  • Sujatha CH, Aneeshkumar N, Renjith KR (2008) Chemical assessment of sediment along the coastal belt of Nagapattinam, Tamil Nadu, India, after the 2004 Tsunami. Curr Sci 95:382–385

    Google Scholar 

  • Tomlinson DL, Wilson JG, Harris CR, Jeffrey DW (1980) Problems in the assessments of heavy metal levels in estuaries and formation of a pollution index. Helgol Meeresunters 33:566–575

    Article  Google Scholar 

  • Wentworth CK (1922) A scale of grade and class terms for clastic sediments. J Geol 30:377–392

    Article  Google Scholar 

  • Zhang J, Liu C (2002) Riverine composition and estuarine geochemistry of particulate metals in China—weathering features, anthropogenic impact and chemical fluxes. Estuar Coast Shelf Sci 54:1051–1070

    Article  Google Scholar 

Download references

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Bramha, S.N., Mohanty, A.K., Satpathy, K.K. et al. Heavy metal content in the beach sediment with respect to contamination levels and sediment quality guidelines: a study at Kalpakkam coast, southeast coast of India. Environ Earth Sci 72, 4463–4472 (2014). https://doi.org/10.1007/s12665-014-3346-y

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