Skip to main content

Advertisement

Log in

Potential health risks associated to heavy metal contamination of soils in the Yellow River Delta, China

  • Published:
Journal of Coastal Conservation Aims and scope Submit manuscript

Abstract

The level of inhalable particulate matter (PM10) in the Yellow River Delta (YERD), an oil production area in north China, are generally high, resulting in an increase exposure to heavy metals (HMs) from soil. This exposure increases during winter and spring periods. In order to determine potential health risks posed by 9 HMs (i.e. Cr, Cd, As, Cu, Hg, Ni, Mn, Zn and Pb) in this area, high density sampling of surface soils across the YERD was undertaken. Results indicate that even through PM10 is generally high, no significant carcinogenic and non-carcinogenic health risks in YERD were identified. Ingestion rather than inhalation or dermal contact is the main exposure pathway. Hazard Index (HI) and total probability of carcinogenic risk (TCR) values indicated that children experienced higher carcinogenic and non-carcinogenic risks. Arsenic contributed the most to carcinogenic and non-carcinogenic health risks, while the effects of other HMs were minor. Our results also demonstrate that, based on the spatial trending of HI and TCR of high-risk areas, oil production will cause an unacceptable level of health risk. Due to the close proximity of this area to the coast, the wash effect of sea water will remove HMs from the soil and lower the health risks. Therefore, investigations related to coastal oilfields should investigate the transfer of HMs to seawater or local sediments. Our results provide a basis for environmental management in the YERD and other rapidly developing industrial regions around the world.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1
Fig. 2
Fig. 3

Similar content being viewed by others

References

  • Bai J, Huang L, Yan D, Wang Q, Gao H, Xiao R, Huang C (2011) Contamination characteristics of heavy metals in wetland soils along a tidal ditch of the Yellow River estuary, China. Stoch Env Res Risk A 25(5):671–676

    Article  Google Scholar 

  • Bai J, Xiao R, Zhang K, Gao H (2012) Arsenic and heavy metal pollution in wetland soils from tidal freshwater and salt marshes before and after the flow-sediment regulation regime in the Yellow River Delta, China. J Hydrol 450:244–253

    Article  Google Scholar 

  • China National Environmental Monitoring Center (CNEMC) (1990) Chinese Elemental Background Values for Soils. Chinese Environmental Science Press, Beijing

  • Chen J, Wei F, Zheng C, Wu Y, Adriano DC (1991) Background concentrations of elements in soils of China. Water Air Soil Pollut 57-58(1):699–712

  • CMA (China Meteorological Administration) (2017) Past weather report. https://www.tianqihoubao.com/lishi/dongying/month/201301.html. Accessed 01 February 2018

  • Dou Y, Li J, Zhao J, Hu B, Yang S (2013) Distribution, enrichment and source of heavy metals in surface sediments of the eastern Beibu Bay, South China Sea. Mar Pollut Bull 67(1):137–145

    Article  Google Scholar 

  • Duan X (2013) Chinese population exposure parameter manual. China Environmental Press

  • EPA, U (2001) Supplemental guidance for developing soil screening levels for superfund sites. Peer Rev Draft OSWER 9355:4–24

    Google Scholar 

  • Ergenekon P, Ulutaş K (2014) Heavy metal content of total suspended air particles in the heavily industrialized town of Gebze, Turkey. Bull Environ Contam Toxicol 92(1):90–95

    Article  Google Scholar 

  • Ferreira-Baptista L, De Miguel E (2005) Geochemistry and risk assessment of street dust in Luanda, Angola: a tropical urban environment. Atmos Environ 39(25):4501–4512

    Article  Google Scholar 

  • Fu K, Su B, He D, Lu X, Song J, Huang J (2012) Pollution assessment of heavy metals along the Mekong River and dam effects. J Geogr Sci 22(5):874–884

    Article  Google Scholar 

  • Gan H-y, Liang K, Zheng Z-c (2010) Background values, contamination assessment and zoning of heavy metals in sediments of the Pearl River estuary. Earth Environ 38(3):344–350

    Google Scholar 

  • Gilham RJJ, Spencer SJ, Butterfield D, Seah MP, Quincey PG (2008) On the applicability of XPS for quantitative total organic and elemental carbon analysis of airborne particulate matter. Atmos Environ 42(16):3888–3891

    Article  Google Scholar 

  • Guan R, Shi Y, Liang S, Wenbo YU, Song J, Xinyu XU, Chao LI, Xiao J, Chen Y, Jiukun HU (2017) Speciation Distribution of Heavy Metals in Pyrolysis Residue of Dewatered Sewage Sludge after Conditioned with the Composite Conditioners. Environ Sci Technol

  • Han X (2009) Quantitative Assessment of Environmental Impacts of Petroleum Development in the Yellow River Delta. In: Ocean university of China, pp. 49/106pp

  • He Q, Ye X, Zhang B (2004) Geological environment assessment and prediction of oil and gas accumulation area in the Yellow River Delta. China Land Press, Beijing

    Google Scholar 

  • Hu N, Shi X, Liu J, Huang P, Yang G, Liu Y (2011) Distributions and impacts of heavy metals in the surface sediments of the Laizhou Bay. Adv Mar Sci 29:63–72

    Google Scholar 

  • Hu B, Li G, Li J, Bi J, Zhao J, Bu R (2013) Spatial distribution and ecotoxicological risk assessment of heavy metals in surface sediments of the southern Bohai Bay, China. Environ Sci Pollut Res 20(6):4099–4110

    Article  Google Scholar 

  • Hu W, Huang B, He Y, Kalkhajeh YK (2016) Assessment of potential health risk of heavy metals in soils from a rapidly developing region of China. Huma Ecol Risk Assess Int J 22(1):211–225

    Article  Google Scholar 

  • Hu B, Wang J, Jin B, Li Y, Shi Z (2017a) Assessment of the potential health risks of heavy metals in soils in a coastal industrial region of the Yangtze River Delta. Environ Sci Pollut Res 24(24):1–11

    Article  Google Scholar 

  • Hu B, Wang J, Jin B, Li Y, Shi Z (2017b) Assessment of the potential health risks of heavy metals in soils in a coastal industrial region of the Yangtze River Delta. Environ Sci Pollut Res Int 24(24):19816–19826

    Article  Google Scholar 

  • Hua Y, Cui B, He W (2012) Changes in water birds habitat suitability following wetland restoration in the Yellow River Delta, China. CLEANSoil Air Water 40(10):1076–1084

    Article  Google Scholar 

  • Kong S (2014) Similarities and differences in PM2.5, PM10 and TSP chemical profiles of fugitive dust sources in a coastal Oilfield City in China. Aerosol Air Qual Res 14(7):2017–2028

  • Lai TM, Lee W, Hur J, Kim Y, Huh I-A, Shin H-S, Kim C-K, Lee J-H (2013) Influence of sediment grain size and land use on the distributions of heavy metals in sediments of the Han River basin in Korea and the assessment of anthropogenic pollution. Water Air Soil Pollut 224(7):1609

    Article  Google Scholar 

  • Li P, Xue S, Wang S, Nan Z (2014a) Pollution evaluation and health risk assessment of heavy metals from atmospheric deposition in Lanzhou. Huan Jing Ke Xue Huanjing kexue 35(3):1021–1028

    Google Scholar 

  • Li Y, Zhang H, Chen X, Tu C, Luo Y, Christie P (2014b) Distribution of heavy metals in soils of the Yellow River Delta: concentrations in different soil horizons and source identification. J Soils Sediments 14(6):1158–1168

    Article  Google Scholar 

  • Lu Guang HM, Min W (2017) Temporal and spatial variation of vegetation fraction in the modern Yellow River Delta. Ecol Environ 26(3):422–428

    Google Scholar 

  • Ma X, Zuo H, Tian M, Zhang L, Meng J, Zhou X, Chang X, Liu Y (2016) Assessment of heavy metals contamination in sediments from three adjacent regions of the Yellow River using metal chemical fractions and multivariate analysis techniques. Chemosphere 144(3):264–272

    Article  Google Scholar 

  • Ministry of Environmental Protection of the People′s Republic of China (2013) Exposure Factors Handbook of Chinese Population. China Environmental Science Press, Beijing (in Chinese)

  • Mezamontenegro MM, Gandolfi AJ, Santanaalcántar ME, Klimecki WT, Aguilarapodaca MG, Del RR, De lOM, Gómezalvarez A, Mendivilquijada H, Valencia M (2012) Metals in residential soils and cumulative risk assessment in Yaqui and Mayo agricultural valleys, northern Mexico. Sci Total Environ 433:472–481

    Article  Google Scholar 

  • Miao X, Hao Y, Zhang F, Zou S, Ye S, Xie Z (2019) Spatial distribution of heavy metals and their potential sources in the soil of Yellow River Delta: a traditional oil field in China. Environ Geochem Health (4):1–20

  • Mu L, Yang C, Hu Y, Zhang Y (1998) Yellow River delta swamp protection and the concord progress with oil field development. Environ Prot Oil Gas Fields(04)

  • National Standard of PR China (1995) Environmental quality standard for soils. Standards Press of China, Beijing (in Chinese). GB 15618–1995

  • Obiajunwa E, Pelemo D, Owolabi S, Fasasi M, Johnson-Fatokun F (2002) Characterisation of heavy metal pollutants of soils and sediments around a crude-oil production terminal using EDXRF. Nucl Instrum Methods Phys Res, Sect B 194(1):61–64

    Article  Google Scholar 

  • Park J-H, Choi K-K (2013) Risk assessment of the abandoned Jukjeon metal mine in South Korea following the Korean guidelines. Hum Ecol Risk Assess Int J 19(3):754–766

    Article  Google Scholar 

  • Protection CMoE (2012) Ambient air quality standards. Chinese Ministry of Environmental Protection, Beijing

    Google Scholar 

  • Rösler HJ, Lange H, Crockett JH (1975) Geochemical tables. J Geochem Explor 3(2):208

    Google Scholar 

  • Santschi PH, Presley BJ, Wade TL, Garcia-Romero B, Baskaran M (2001) Historical contamination of PAHs, PCBs, DDTs, and heavy metals in Mississippi river Delta, Galveston bay and Tampa bay sediment cores. Mar Environ Res 52(1):51–79

    Article  Google Scholar 

  • Talbi A, Kerchich Y, Kerbachi R, Boughedaoui M (2017) Assessment of annual air pollution levels with PM1, PM2.5, PM10 and associated heavy metals in Algiers, Algeria. Environ Pollut 232

  • U.S. DoE (US Department of Energy) (2005) RAIS: Risk Assessment Information System

  • U.S. EPA (1989) Risk-assessment guidance for Superfund. Volume 1. Human Health Evaluation Manual. Part A. Interim report (Final). Environmental Protection Agency, Washington, DC (USA). Office of Solid Waste and Emergency Response

  • U.S. EPA (1996) Soil screening guidance: Technical background document. U.S. Environmental Protection Agency, Superfund Program. Report No: EPA/540/R96/018, Washington, DC

  • U.S. EPA (2002) Supplemental guidance for developing soil screening levels for superfund sites OSWER United States Environmental Protection Agency, Washington, DC 9355. 4–24.

  • U.S. EPA (2010) Integrated risk information system (IRIS). United States Environmental Protection Agency, Washington, DC

  • Wang X, Wang Q, Liu G, Li H (2002) Remote sensing analysis of land use change in oil fields of the Yellow River Delta. Geo-Inf Sci 4(4):75–79

    Google Scholar 

  • Wang HM, Zheng-Hai L, Han GD, Han JW (2007) Analysis of dynamical characteristics of landscape patterns in Yellow River Delta. Bull Soil Water Conserv

  • Wang C, Yang C, Sun Z, Yan Y, Qu C, Wang Y (2010a) Contamination characteristics and its relationship with Physico-chemical properties of oil polluted soils in the Yellow River Delta swamp. J Soil Water Conserv 24(2):214–217

    Google Scholar 

  • Wang Z, Chai L, Yang Z, Wang Y, Wang H (2010b) Identifying sources and assessing potential risk of heavy metals in soils from direct exposure to children in a mine-impacted city, Changsha, China. J Environ Qual 39(5):1616–1623

    Article  Google Scholar 

  • Wang J, Hu Z, Chen Y, Chen Z, Xu S (2013) Contamination characteristics and possible sources of PM10 and PM2.5 in different functional areas of Shanghai, China. Atmos Environ 68(2):221–229

    Article  Google Scholar 

  • Wu S, Peng S, Zhang X, Wu D, Luo W, Zhang T, Zhou S, Yang G, Wan H, Wu L (2015) Levels and health risk assessments of heavy metals in urban soils in Dongguan, China. J Geochem Explor 148(148):71–78

    Article  Google Scholar 

  • Xie Z, Sun Z, Zhang H, Zhai J (2014) Contamination assessment of arsenic and heavy metals in a typical abandoned estuary wetland—a case study of the Yellow River Delta natural reserve. Environ Monit Assess 186(11):7211–7232

    Article  Google Scholar 

  • Yanmao Zhao JL, Kebin M (1994) The report of vegetation investigation in the nature Reserve of Yellow River Delta. For Sci Technol Shandong Provice (5):10–13

  • Yao X, Xiao R, Ma Z, Xie Y, Zhang M, Yu F (2016) Distribution and contamination assessment of heavy metals in soils from tidal flat, oil exploitation zone and restored wetland in the Yellow River estuary. Wetlands 36(1):153–165

    Article  Google Scholar 

  • Yongquan W (2007) Great change of lower Yellow River channel in 1855 and the disaster chain for 100 years more in the world. Earth Sci Front 14(6):6–10

    Google Scholar 

  • Yu J-B, Dong H-F, Wang H-B, Chen X-B, Xie W-J, Mao P-L, Gao Y-J, Shan K, Chen J-C, Ma X-M (2011) Spatial distribution characteristics of metals in new-born coastal wetlands in the Yellow River Delta. Wetl Sci 9(9):297–304

    Google Scholar 

  • Yuan H, Wang YC, Gu SY, Lu J, Zhou HD, Wang XH (2008) Chemical forms and pollution characteristics of heavy metals in Yellow River sediments. Chin J Ecol 27(11):1966–1971

    Google Scholar 

  • Yuan Q, Yang L, Dong C, Yan C, Meng C, Sui X, Wang W (2014) Temporal variations, acidity, and transport patterns of PM 2.5 ionic components at a background site in the Yellow River Delta, China. Air Qual Atmos Health 7(2):143–153

    Article  Google Scholar 

  • Yuswir NS, Praveena SM, Aris AZ, Hashim Z (2013) Bioavailability of heavy metals using in vitro digestion model: a state of present knowledge. Rev Environ Health 28(4):181–187

    Article  Google Scholar 

  • Zaccone C, Caterina RD, Rotunno T, Quinto M (2010) Soil – farming system – food – health: effect of conventional and organic fertilizers on heavy metal (Cd, Cr, Cu, Ni, Pb, Zn) content in semolina samples. Soil Tillage Res 107(2):97–105

  • Zhang C, Zhang J, Xin Z. (2008) Characteristic analysis and countermeasures of dust weather and major pollutant PM10 in Dongying City. China Meteorological Society, Beijing (in Chinese)

  • Zhao X, Xu Y, Liu Y, Jiang H, Ji Y, Bai Z (2010) Pollution characteristics of OC and EC in PM in Dongying in summer. Acta Sci Nat Univ Nankaiensis 43(5):83–88

Download references

Acknowledgements

The present study was supported by National key research and development project of China(2017YFC0406104), Guangxi Natural Science Foundation(2018GXNSFBA138051), China Geological Survey Project(DD20190825 and DD20190343), Key Research and Development Program of Guangxi, China (2018AB37008) and China Academy of Geological Sciences Basic Research project JYYWF201833. The comments given by Dr. Lianwen Liu from Nanjing University is of great helpful to improve this manuscript. Special thanks go to my beloved parents Guoping Liu and Yingzhong Miao.

Author information

Authors and Affiliations

Authors

Corresponding authors

Correspondence to Xiongyi Miao or Yupei Hao.

Additional information

Publisher’s note

Springer Nature remains neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Rights and permissions

Reprints and permissions

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Miao, X., Miao, D., Hao, Y. et al. Potential health risks associated to heavy metal contamination of soils in the Yellow River Delta, China. J Coast Conserv 23, 643–655 (2019). https://doi.org/10.1007/s11852-019-00695-x

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s11852-019-00695-x

Keywords

Navigation