 Contamination of seabed sediments around a shipyard in the Adriatic Sea (Ugljan island)  Hana Fajković*, Esad Prohić* and Daniela Abramović * Department of Geology, Faculty of Science, University of Zagreb, Horvatovac 95, 10000 Zagreb, Croatia; (hanaf@geol.pmf.hr; eprohic@geol.pmf.hr; daniela.danci@gmail.com) doi: 10.4154/gc.2012.06 Geologia Croatica 66/1 77–82 4 Figs. 2 Tabs. Zagreb 2013 Geologia CroaticaGeologia Croatica Ab STrA CT Geochemical, mineralogical and grain size data from sediment cores in the Lamjana Bay shipyard were obtained to determine the extent of contamination due to ship refits. The concentration and distribution of Ni, Pb, Cr, Zn, Cu, Mn, Cd, As and Fe in 9 sediment samples were measured. No increase of the analysed elements above natural back- ground levels was detected, but contamination was not excluded due to possible dilution of seabed sediment by quartz sand used in process of abrasive blasting. Keywords: marine sediment, geochemistry, contamination, shipyard, adriatic Sea the process of abrasive blasting. The Raša River estuary was used not only as a natural model control system to study the accumulation pattern in a similar environment (SONDI et al., 1994; 2008), but also for observing the fate of the heavy metal contaminants, studied in this investigation. 2. MATErIALS AND METHODS 2.1. Sampling Four sediment samples were collected with a corer by SCUBA diving. These were frozen and divided into smaller sub-samples, each 2 cm thick. Full depth of each core sample was approximately 30 cm. Each core was not analysed in total i.e. not all sub-samples from one core were analysed, but rather only the upper-most part (0–2 cm depth); middle part (6–8 cm depth), and deepest part of the core (13–15 cm depth). All together, nine sub-samples were analysed. Water depths where the samples were taken ranged from 8 to 30 m, and all samples were taken along a single line transect 1. INTrODUCTION Lamjana Vela Bay is located in the southwestern part of Ug- ljan Island, one of the islands of the North Dalmatia region. Ugljan Island is the most inhabited island of the Zadar ar- chipelago in Croatia (MAGAŠ & FARIČIĆ, 2000). The in- vestigated area has been used as a shipyard for ship remounts (repairs) since 1978. The shipyard is located in a natural bay, 300 m wide and up to 30 m deep. The area of interest is shown in Figure 1. The surrounding terrain is composed of Cretaceous and Eocene limestone (MAJCEN et al., 1970). This shipyard has been studied as a source of possible con- tamination of the seabed sediments as connections between harbour activities and contamination of seabed sediment have been demonstrated in many publications (GIBBS & GUER RA, 1997; CEULEMANS et al., 1998; TURNER, 2010; FATO KI & MATHABATHA, 2001; CHAMP, 2003). As a result of similar activity, the most common alterations in seabed sed- iments are an increase in toxic metals, harmful organotin compounds from antifouling paints, and quartz sand used in Geologia Croatica 66/1Geologia Croatica 78 (Fig. 1.). Before further analyses, sub-samples were dried at 50°C and homogenized. 2.2. Grain-size analysis Grain-size analyses were accomplished on all nine dry sam- ples. Sediment grain-size distribution was performed by wet sieving using ASTM standard stainless steel sieves. The In- ternationally accepted classification of sediments (FOLK, 1954) was used to classify samples. 2.3. Mineralogical analysis The mineralogical composition was determined by X-ray powder diffraction (XRD) on a Philips X-pert diffractometer using CuKα radiation. It was applied to three sub-samples from the core taken in the deepest part of the bay, in 30 m of water. Analyses were done on the upper-most part of the core (0–2 cm), middle part of the core (6–8 cm), and deepest part (13–15 cm). The main objective was to identify the mineral composition of the sediment and to see if there were changes connected with the depth of the seabed. 2.4. Chemical analysis The size fraction below 63 μm was used for the chemical analyses. Nickel, Pb, Cr, Zn, Cu, Mn, Cd, As and Fe were determined by AAS with a PerkinElmer AAnalyst700. Esti- mates of total concentrations, or “pseudo-totals”, were de- termined by digesting with aqua regia, for which a widely used procedure was used, one standardized by ISO interna- tional standards (ISO 11466 1995). rESULTS 3.1. Grain-size analysis The results of the grain size analysis are shown in a Table 1. According to FOLK’S (1954) sediment classification, five samples were sand; three were muddy sand and only one was slightly gravelly sand (Fig. 2.). In all samples, sand was a dominant fraction. The results show an absence of vertical Figure 1: Geographic location of the study area with the sampling sites. Figure 2: FOLK classification diagram (1954) with the samples according to their analyses. Fajković et al.: Contamination of seabed sediments around a shipyard in the Adriatic sea (Ugljan island) Geologia Croatica 79 change in grain size, but some distinctions between samples were observed. Samples with the highest proportion of mud were from the deepest point in the bay. Sample JL 5, the one taken closest to the shipyard, cannot be seen as being repre- sentative, since the area of sampling was in a zone of ship- yard reconstruction where the seabed was covered with con- crete blocks. Data from a previous investigation of seabed and surface sediments can be found for the Kvarner region (JURAČIĆ et al., 1999), located north of the study area, and so can be used for comparison, with expectancy in similar sediment grain size distribution for both areas. In Kvarner region, the prevalent type of sediment is sandy mud, while in Lamjana Bay it is sand (i.e. muddy sand) in deeper areas of the bay. The differences between these results could be Table 1: Results of the grain size analysis. Sample Seabed depth (cm) Gravel % Sand % Mud % Sediment type JL 1a 1 0-2 6 89 5 Sand JL 1d 2 6-8 12 80 9 Sand JL 2a 3 0-2 4 90 6 Sand JL 2d 4 6-8 2 86 12 Sand JL 2g 5 12-14 1 86 13 Sand JL 3a 6 0-2 ⁄ 77 23 Muddy sand JL 3d 7 6-8 1 76 23 Muddy sand JL 3h 8 12-14 2 73 25 Muddy sand JL 5 9 0-2 17 79 4 Slightly gravelly sand Figure 3: Distribution of elements in accordance with depth and sample locations. Geologia Croatica 66/1Geologia Croatica 80 connected with the process of abrasive blasting during ship- yard activities, in which tonnes of quartz sand were used, which ended up in the bay. 3.2. results of mineralogical analysis The results of the three analysed samples were uniform. Sub- samples were taken from one core, and vertical variation was not observed. In all samples quartz, calcite and aragonite were determined. After analysis of the bulk mineralogical compo- sition, the samples were treated with HCl (1:5) to dissolve the carbonate components, after which they were again analysed. When carbonate components were removed, quartz, mica and plagioclase minerals were detected. 3.3. results of Chemical analysis The chemical analysis for “pseudo-total” concentrations of the observed elements (Ni, Pb, Cr, Zn, Cu, Mn, Cd, As and Fe) and their distribution are presented in Fig. 3. The results can be divided into two groups. The first group consists of el- ements Ni, Cr and As. These elements show uniformity (hor- izontal and vertical); the concentration of certain elements does not change considerably with the depth, with a mean value for Ni, Cr and As as follows: 14.9 ± 2.68, 23.5 ± 2.70 and 8.6 ± 2.92 mg/kg. In the second group, the elements in- clude Pb, Zn, Cu, Mn, Cd and Fe with a mean value: 13.9 ± 4.64, 41.7 ± 12.43, 27.8 ± 8.49, 82.9 ± 12.52, 0.2 ± 0.12 mg/ kg; 0.8 ± 0.15 %, respectively. These show differences in con- centration according to the depth of the sub-sample, as well as a lateral difference i.e. differences between samples. 4. DISCUSSION Geochemical results are often hard to interpret, due to the com plexity of seabed genesis, anthropogenic impact and fre- quent absence of background information. There is no previ- ous analysis of the study area, though two studies (OB HO- ĐAŠ & VALKOVIĆ, 2010; DOLENC et al., 1998) provide a frame of reference from which to work. OBHOĐAŠ & VAL- KOVIĆ (2010) published natural background values for concentrations of chemical elements in coastal sediments of the Eastern Adriatic Sea, calculated from 101 samples in the region. DOLENC et al. (1998) reported measurements of major, minor and trace elements for 35 locations in the Adri- atic. Their “Sample 70” best compares with the location of Lamjana Bay. Results from these two publications were used to indicate possible natural background values for Lamjana Bay as they are the most suitable according to location and proximity. SONDI et al. (1994, 2008) indicated the possibi- lity of contaminants bound to particles, mostly heavy metals, such as strong adsorption to clay minerals, and their organic coating. The basic statistical parameters of measured ele- ments (Ni, Pb, Cr, Zn, Cu, Mn, As, Fe and Cu) from all sam- ples are presented in Table 2. The concentrations of all elements of interest in Lam- jana Bay, except Cu, are within the background range and no amplification from natural background values was de- tected. The higher value of Cu in the sediments can be due to the use of anti-fouling paints in the shipyard, which up until the late 1960s were almost invariably copper based (WALKER et al., 2005). From these results, it can be con- cluded that the shipyard only has a negative influence on sediment with respect to an increase in the Cu value. Still, it should be kept in mind that the large quantity of quartz sand used in the process of abrasive blasting may have diluted sediment pollution, as has already been noticed (KENNI- CUTT et al. 1996). Further, while analysing the results of chemical analysis, it should be considered that the quartz dilution depends on its content in the <63 μm fraction, in which it has been detected. OBHOĐAŠ & VALKOVIĆ (2010) investigated both natural background values and concentrations of chemical elements in sediments around a marina service area. As pre- sumed, the concentration of analysed elements in the marina service area was several orders of magnitude greater than the background values. The element showing the least increase was arsenic. Its concentration in the sediment of the marina service area is Table 2: Basic statistical parameters of Ni, Pb, Cr, Zn, Cu, Mn, As and Cu expressed in mg/kg; Fe expressed in %. N – number of results, x – mean value, SD – standard deviation. Statistical parameter Ni Pb Cr Zn Cu Mn As Cd Fe * N 9 9 9 9 9 9 9 9 9 x (mg/kg) 14.87 13.91 23.51 41.68 27.77 82.89 8.63 0.22 0.76 SD (mg/kg) 2.68 4.64 2.70 12.43 8.49 12.52 2.92 0.12 0.15 Min. (mg/kg) 9.68 5.98 19.65 25.70 17.73 63.30 2.90 0.03 0.48 Max. (mg/kg) 18.63 19.80 27.30 68.28 45.60 100.70 12.08 0.35 1.01 Median (mg/kg) 14.50 12.93 23.15 38.53 29.13 85.15 8.83 0.23 0.76 O. & V. (a) 15.50 9.80 43.90 33.60 16.20 75.60 6.60 / / O. & V. (b) / 249.00 / 2777.40 3467.90 / 95.70 / / D. et al. 34.00 27.00 73.00 64.00 15.00 242.00 9.00 / 1.79 * Statistical parameters for Fe are expressed in % O. & V. (a) – Natural background values from OBHOĐAŠ and VALKOVIĆ (2010) O. & V. (b) – Values from marine service areas from OBHOĐAŠ and VALKOVIĆ (2010) D. et al. – Natural background values. location "v70" from DOLENC et al. (1998) Fajković et al.: Contamination of seabed sediments around a shipyard in the Adriatic sea (Ugljan island) Geologia Croatica 81 14.5 times the natural background values. With an assump- tion that pollution levels will be similar in similar conditions (a marina service area), it is possible to estimate the amount that the quartz debris diluted the pollution levels. From the value of As (95.7 mg/kg) in the marine pier service area (OBHOĐAŠ & VALKOVIĆ, 2010) and that recorded in Lamjana Bay (8,63 mg/kg), the dilution of seabed sediment by quartz could be determined. The estimated values and that recorded in Lamjana Bay differ by one order of magnitude. It follows from these results that the values of the other ob- served elements are also one order of magnitude greater in terms of their input into the environment, but due to the high amount of quartz, the recorded values are lower. Results of the sampled sediment from Lamjana Bay do not vary significantly from the natural background values; hence the sediment could be considered as unpolluted. But if the measured values are enlarged by one order of magni- tude (the assumed dilution factor), then the situation is rather different. In that scenario, the value of lead, iron, copper, and zinc would be greater than the natural background value, which can be connected to the shipyard and quantity of abra- sives used in the refurbishing process (ALEBIC-JURETIC & MATKOVIC, 2000; SINGH & TURNER, 2009). Figure 4 shows a comparison of the measured values (mean) with the different international values for sediment quality crite- ria, which show the range in which sediments in seawater are considered uncontaminated, moderately contaminated and highly contaminated (CHAPMAN et al., 1999). Concentrations below the grey field are unlikely to have adverse biological effects, and concentrations above the grey field are very likely to have severe adverse biological effects. The grey zone can be observed as suitable for open water marine disposal (CHAPMAN et al., 1999). The range is large since it is a comparison of different international values. All values of the analysed elements from Lamjana Bay sedi- ments, except Pb, are in the lower part of the “moderately contaminated” range, and for one shipyard environment, these results are satisfactory. 5. CONCLUSONS Geochemical analyses of sediments from the studied ship- yard are showing values commensurate with a range of a background values. Nevertheless, a conclusion of no pollu- tion from the shipyard activities should be made with cau- tion due to the high amount of quartz used with the ship re- fitting and its subsequent dilution effect on the seabed sediment. ACKNOWLEDGEMENT This study was supported by the project “Geochemical model of transport of contaminants around waste disposal facilities” (119-0831529-1161) funded by the Ministry of Science, Education and Sports of the Republic of Croatia. The authors would like to thank to Stephanie KRAMER for her suggestions and help with the paper. rEFErENCES ALEBIC-JURETIC, A. & MATKOVIC, N. (2000): Airborne Metal Con- centrations in Shipyard Environment.– Arh Hig Rada Toksikol, 51, 249–256. CEULEMANS, M., SLAETS, S. & ADAMS, F. (1998): Speciation of organotin in environmental sediment samples.– Talanta, 46, 395– 405. doi: 10.1016/S0039-9140(97)00403-7 CHAPMAN, P.M., ALLARD, P.J. & VIGERS, G.A. (1999): Development of Sediment Quality Values for Hong Kong Special Administrative Region: A Possible Model for Other Jurisdictions.– Marine Pollution Bulletin, 38, 161–169. doi: 10.1016/S0025-326X(98)00162-3 CHAPMAN, P.M. & MANN, G.S. (1999): Sediment Quality Values (SQVs) and Ecological Risk Assessment (ERA).– Marine Pollution Bulletin, 38, 339–344. doi: 10.1016/S0025-326X(99)00033-8 CHAMP, M.A. (2003): Economic and environmental impacts on ports and harbors from the convention to ban harmful marine anti-fouling systems.– Marine Pollution Bulletin, 46, 935–940. doi: 10.1016/ S0025-326X(03)00106-1 DOLENEC, T., FAGANELI, J. & PIRC, S. (1998): Major, Minor and Trace Elements in Surficial Sediments from the Open Adriatic Sea: A Regional Geochemical Study.– Geol. Croat., 51/1, 59–73. FATOKI, O.S. & MATHABATHA, S. (2001): An assessment of heavy metal pollution in the East London and Port Elizabeth harbours.– Water SA, 27/2, 233–240. FOLK, R.L. (1954): The distinction between grain size and mineral com- position in sedimentary rock nomenclature.– Journal Geology, 62, 344–356. doi: 10.1086/626171 GIBBS, R.J. & GUERRA, C. (1997): Metals of the bottom muds in Be- lize City Harbor, Belize.– Environmental Pollution, Vol. 98/1, 135– 138. doi: 10.1016/S0269-7491(97)00092-4 ISO 11466 (1995): Soil quality – Extraction of trace elements soluble in aqua regia. Figure 4: The range of world-wide sediment quality values (moderately contaminated sediments) for selected metals and a metalloid (grey zone) (CHAPMAN & MANN, 1999), with the mean value of observed elements (black dot), and one order of magnitude amplified values (white dot). Geologia Croatica 66/1Geologia Croatica 82 JURAČIĆ, M., BENAC, C. & CRMARIĆ, R. (1999): Seabed and Sur- face Sediment Map of the Kvarner Region, Adriatic Sea, Croatia (Lithological Map, 1:500,000).– Geol. Croat., 52/2,131–140. KENNICUTT, II M.C., BOOTHE, P.N., WADE, T.L., SWEET, S.T., REZAK, R., KELLY, F.J., BROOKS, J.M., PRESLEY, B.J. & WIESENBURG, D.A. (1996): Geochemical patterns in sediments near offshore production platforms.– Can. J. Fish. Aquat. Sci., Vol. 53, 2554–2556. doi: 10.1139/f96–214 KRAUSKOPF, K.B. (1979): Introduction to Geochemistry (2nd edition): New York, McGraw-Hill. MAGAŠ, D. & FARIČIĆ, J. (2000): Geographical Elements of the Ugl- jan Island Development.– Geoadria, Vol. 5, 49–92. MAJCEN, Ž., KOROLIJA, B., SOKAČ, B. & NIKLER, L. (1973): Os- novna geološka karta SFRJ 1:100000. Tumač za list Zadar K 33– 139 [Basic Geological Map of SFRY 1:100000, Geology of the Zadar sheet – in Croatian].– Geološki zavod, Zagreb, Savezni geološki zavod, Beograd, 40 p. MAJCEN, Ž., KOROLIJA, B., SOKAČ, B. & NIKLER, L. (1970): Os- novna geološka karta SFRJ 1:100000, list Zadar K 33–139 [Basic Geological Map of SFRY 1:100000, Zadar sheet – in Croatian]. – Geološki zavod, Zagreb, Savezni geološki zavod, Beograd. PROHIĆ, E. & KNIEWALD, G. (1987): Heavy metal distribution in Re- cent sediments of the Krka River estuary-an example of sequential extraction analysis.– Mar. Chem., 32, 279–297. doi: 10.1016/0304- 4203(87)90015-6 PIKELJ, K., ŽIGIĆ, V. & JURAČIĆ, M. (2009): Origin and distribution of surface sediments in the Grgur Channel, Adriatic Sea, Croatia – Geol. Croat., 62/2, 95–105. doi: 10.4154/gc.2009.08 OBHOĐAŠ, J. & VALKOVIĆ, V. (2010): Contamination of the coast- al sea sediments by heavy metals.– Applied Radiation and Isotopes, 68, 807–811. doi: 10.1016/j.apradiso.2009.12.026 SINGH, N. & TURNER, A. (2009): Trace metals in antifouling paint particles and their heterogeneous contamination of coastal sedi- ments.– Marine Pollution Bulletin, 58, 559–564. doi: 10.1016/j. marpolbul.2008.11.014 SONDI, I., LOJEN, S., JURAČIĆ, M. & PROHIĆ, E. (2008): Mecha- nisms of land–sea interactions – the distribution of metals and sed- imentary organic matter in sediments of a river-dominated Mediter- ranean karstic estuary.– Estuarine, Coastal and Shelf Science, 80, 12–20. doi: 10.1016/j.ecss.2008.07.001 SONDI, I., JURAČIĆ, M., PROHÍĆ, E. & PRAVDIĆ, V. (1994): Par- ticulates and the environmental capacity for trace metals: A small river as a model for a land-sea transfer system: the Raša River estu- ary.– Science of The Total Environment, 155, 173–185. doi: 10.1016/0048-9697(94)90290-9 TURNER, A. (2010): Marine pollution from antifouling paint particles.– Marine Pollution Bulletin, 60, 159–171. doi: 10.1016/j.marpol- bul.2009.12.004 WALKER, G.M., HANNA, J.A. & ALLEN, S.J. (2005): Treatment of hazardous shipyard wastewater using dolomitic sorbents.– Water Research, 39, 2422–2428. doi: 10.1016/j.watres.2005.04.025 Manuscript received February 22, 2012 Revised manuscript accepted January 17, 2013 Available online February 28, 2013