Seasonal variability in the concentrations of Irgarol 1051 in Brighton Marina, UK; including the impact of dredging

被引:53
作者
Bowman, JC
Readman, JW
Zhou, JL [1 ]
机构
[1] Univ Sussex, Sch Chem Phys & Environm Sci, Brighton BN1 9QJ, E Sussex, England
[2] Plymouth Marine Lab, Plymouth PL1 3DH, Devon, England
关键词
booster biocides; antifouling; Irgarol; 1051; water; sediment; dredging; re-mobilisation;
D O I
10.1016/S0025-326X(02)00464-2
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Variations in Irgarol 1051 concentrations in the UK's largest marina at Brighton were determined regularly over a period of one year. Aqueous concentrations ranged from < 1 to 960 ng l(-1) with highest mean concentrations generally associated with berths for larger vessels and with the main channels. Temporally, highest concentrations were recorded in November through to January and were probably associated with maintenance of vessels in an adjacent boatyard. Elevated levels were also encountered at the beginning of the season, coinciding with the introduction of newly antifouled vessels. Increased concentrations also followed dredging, possibly through re-mobilisation of Irgarol 1051. No correlations were found between dissolved Irgarol 1051 concentrations and pH, temperature or salinity. With the exception of sporadically high concentrations recorded for water samples (probably taken in close proximity to recently antifouled vessels), concentrations rarely exceeded the no observed effect concentration for marine periphyton of 63 ng l(-1). Concentrations of Irgarol 1051 in sediments sampled from the marina ranged from < 1 to 77 ng g(-1). Apparent distribution coefficients (K-d) calculated from sedimentary and aqueous samples (collected simultaneously) are generally within the range of K-d's reported from laboratory experiments. (C) 2003 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:444 / 451
页数:8
相关论文
共 23 条
[1]   Multiresidue method for the analysis of five antifouling agents in marine and coastal waters by gas chromatography-mass spectrometry with large-volume injection [J].
Agüera, A ;
Piedra, L ;
Hernando, MD ;
Fernández-Alba, AR .
JOURNAL OF CHROMATOGRAPHY A, 2000, 889 (1-2) :261-269
[2]  
ANDERSSON S, 1995, ALGAL TEST FUCUS VES
[3]   Concentrations of the antifouling compound Irgarol 1051 and of organotins in water and sediments of German North and Baltic Sea marinas [J].
Biselli, S ;
Bester, K ;
Hühnerfuss, H ;
Fent, K .
MARINE POLLUTION BULLETIN, 2000, 40 (03) :233-243
[4]   Inputs, monitoring and fate modelling of antifouling biocides in UK estuaries [J].
Boxall, ABA ;
Comber, SD ;
Conrad, AU ;
Howcroft, J ;
Zaman, N .
MARINE POLLUTION BULLETIN, 2000, 40 (11) :898-905
[5]   Partitioning of marine antifoulants in the marine environment [J].
Comber, SDW ;
Franklin, G ;
Gardner, MJ ;
Watts, CD ;
Boxall, ABA ;
Howcroft, J .
SCIENCE OF THE TOTAL ENVIRONMENT, 2002, 286 (1-3) :61-71
[6]   Toxic effects of the antifouling agent Irgarol 1051 on periphyton communities in coastal water microcosms [J].
Dahl, B ;
Blanck, H .
MARINE POLLUTION BULLETIN, 1996, 32 (04) :342-350
[7]   Pilot survey for determination of the antifouling agent Irgarol 1051 in enclosed seawater samples by a direct enzyme-linked immunosorbent assay and solid-phase extraction followed by liquid chromatography diode array detection [J].
Ferrer, I ;
Ballesteros, B ;
Marco, MP ;
Barcelo, D .
ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1997, 31 (12) :3530-3535
[8]   A SURVEY OF SOUTHERN ENGLAND COASTAL WATERS FOR THE S-TRIAZINE ANTIFOULING COMPOUND IRGAROL-1051 [J].
GOUGH, MA ;
FOTHERGILL, J ;
HENDRIE, JD .
MARINE POLLUTION BULLETIN, 1994, 28 (10) :613-620
[9]  
Hall LW, 1999, CRIT REV TOXICOL, V29, P367
[10]  
*HSE, 2000, BIOC PEST ASS UN HLT