Coastal cliff erosion as a source of toxic, essential and nonessential metals in the marine environment

被引:6
作者
Beldowska, Magdalena [1 ]
Beldowski, Jacek [2 ]
Kwasigroch, Urszula [1 ]
Szubska, Marta [2 ]
Jedruch, Agnieszka [2 ,3 ]
机构
[1] Univ Gdansk, Inst Oceanog, Gdynia, Poland
[2] Polish Acad Sci, Inst Oceanol, Sopot, Poland
[3] Polish Acad Sci, Oceanol, Powstancow Warszawy 55, PL-81712 Sopot, Poland
关键词
Metals; Coastal erosion; Cliffs; Sediments; Baltic Sea; RARE-EARTH-ELEMENTS; SOUTHERN BALTIC SEA; HEAVY-METALS; TRACE-METALS; GDANSK; MERCURY; GULF; SEDIMENTS; RIVER; CHROMIUM;
D O I
10.1016/j.oceano.2022.04.001
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Due to the rising environmental awareness, emissions and releases of pollutants, including metals, have been considerably reduced in the last decades. Therefore, the remobilization of natural and anthropogenic contaminants is gaining importance in their biogeochemical cycle. In the marine coastal zone, this process occurs during the erosion of a shore, especially the most vulnerable cliffs. The research was conducted in the Gulf of Gda nsk (southern Baltic Sea) from 2016 to 2017. The sediment cores were collected from four cliffs; additionally, marine surface sediments were also taken. The concentrations of essential (Cr, Mn, Fr, Cu, Zn) and nonessential (Rb, Sr, Y, Zr, Ba) metals were analyzed using the XRF technique. The levels of the analyzed metals were relatively low, typical of nonpolluted areas. However, considering the mass of eroded sediments, the annual load of metals introduced into the sea in this way is significant. In the case of Cu, Zn, and Y the load can amount to a few kilograms, for Cr and Rb - over ten kilograms, for Mn, Sr, and Zr - several tens of kilograms, for toxic Ba - over 100 kg, and in the case of Fe - 4.8 tonnes. During strong winds and storms, when the upper part of a cliff is eroded, especially the load of Zn and Cr entering the sea may increase. The content of Cr, Zr, and Ba in the cliffs was higher compared to marine sediments from the deep accumulation bottom, which indicates that coastal erosion may be an important source of these metals. (c) 2022 Institute of Oceanology of the Polish Academy of Sciences. Production and hosting by Elsevier B.V. This is an open access article under the CC BY-NC-ND license ( http://creativecommons.org/licenses/by-nc-nd/4.0/ ).
引用
收藏
页码:553 / 566
页数:14
相关论文
共 89 条
[21]   Application of airborne LiDAR to investigate rates of recession in rocky coast environments [J].
Earlie, Claire S. ;
Masselink, Gerd ;
Russell, Paul E. ;
Shail, Robin K. .
JOURNAL OF COASTAL CONSERVATION, 2015, 19 (06) :831-845
[22]  
Easterbrook D.J, 1982, SANDSTONE DEPOSITION, P1, DOI [10.1306/M31424C2, DOI 10.1306/M31424C2]
[23]  
EEA, 2021, 52021 EEA
[24]  
Emsley J., 2011, Natures building blocks: an AZ guide to the elements
[25]   Bio-concentration potential and associations of heavy metals in Amanita muscaria (L.) Lam. from northern regions of Poland [J].
Falandysz, Jerzy ;
Medyk, Malgorzata ;
Treu, Roland .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2018, 25 (25) :25190-25206
[26]   Survey on composition and bioconcentration potential of 12 metallic elements in King Bolete (Boletus edulis) mushroom that emerged at 11 spatially distant sites [J].
Falandysz, Jerzy ;
Frankowska, Aneta ;
Jarzynska, Grazyna ;
Dryzalowska, Anna ;
Kojta, Anna K. ;
Zhang, Dan .
JOURNAL OF ENVIRONMENTAL SCIENCE AND HEALTH PART B-PESTICIDES FOOD CONTAMINANTS AND AGRICULTURAL WASTES, 2011, 46 (03) :231-246
[27]  
Gashi F, 2009, FRESEN ENVIRON BULL, V18, P1462
[28]   The Rare Earth Elements: Demand, Global Resources, and Challenges for Resourcing Future Generations [J].
Goodenough, Kathryn M. ;
Wall, Frances ;
Merriman, David .
NATURAL RESOURCES RESEARCH, 2018, 27 (02) :201-216
[29]  
Haroon A.M., 1995, OCEANOLOGIA, V3, P99
[30]  
HELCOM, 2021, BALT SEA ENV P, V179