AI Chat Paper
Note: Please note that the following content is generated by AMiner AI. SciOpen does not take any responsibility related to this content.
{{lang === 'zh_CN' ? '文章概述' : 'Summary'}}
{{lang === 'en_US' ? '中' : 'Eng'}}
Chat more with AI
PDF (657 KB)
Collect
Submit Manuscript AI Chat Paper
Show Outline
Outline
Show full outline
Hide outline
Outline
Show full outline
Hide outline

Evolution trend of the water quality in Dongping Lake after South-North Water Transfer Project in China

Zun-fang HU1,2,3Feng-xin KANG4( )An-de ZOU1Lin-song YU1,2Yang LI1,2Tong-liang TIAN1,2Gui-ling KANG1,2
Shandong Institute of Geophysical and Geochemical Exploration, Jinan 250013, China
Shandong Soil Geochemical Engineering Laboratory, Jinan 250013, China
Shandong Geological Exploration Engineering Technology Research Center, Jinan 250013, China
Shandong Provincial Bureau of Geology and Mineral Resources, Jinan 250013, China
Show Author Information

Abstract

To investigate the evolution trend of water quality in Dongping Lake after South-North Water Transfer Project operation as well as to ensure the safe usage of the water receiving areas, water samples were collected and determined before and after water delivery in different hydrological seasons. Then, comprehensive pollution index method, comprehensive nutrition state index method and health risk assessment model were utilized to evaluate the quality, nutrition, and health risk of Dongping Lake water. Results showed that the quality of Dongping Lake water still met level Ⅲ (light pollution) no matter before or after water delivery. The nutrition state was improved from light eutropher before water delivery to mesotropher after water delivery. The health risk level was reduced from high-medium before water delivery to medium level after water delivery. In summary, the operation of the eastern route of South-North Water Transfer Project is beneficial for water environment improvement of Dongping Lake.

References

 

Berkoff J. 2003. China: The South-North Water Transfer Project-Is it justified? Water Policy, 5(1): 1-28.

 

CHEN Ying-ying, CHEN Shi-yue, MA Chun-mei, et al. 2014. Palynological evidence of natural and anthropogenic impacts on aquatic environmental changes over the last 150 years in Dongping Lake, North China. Quaternary International, 349(3): 2-9.

 

Filho O M, Buckup P A. 2005. A poorly known case of watershed transposition between the São Francisco and upper Parana' River basins. Neotropical Ichthyology, 3(3): 449-452.

 

FU Qing-long, LI Lan-hai, Achal Varenyam, et al. 2014. Concentrations of heavy metals and arsenic in market rice grain and their potential health risks to the population of Fuzhou, China. Human and Ecological Risk Assessment: An International Journal, 21(1): 117-128.

 

LIANG Feng, YANG Shao-gui, SUN Cheng. 2011. Primary health risk analysis of metals in surface water of Taihu Lake, China. Bulletin of Environmental Contamination and Toxicology, 87(4): 404-408.

 

LIN Ming-li, Sovan Lek, REN Peng, et al. 2017. Predicting impacts of South-North Water Transfer Project on fish assemblages in Hongze Lake, China. Journal of Applied Ichthyology, 33(3): 395-402.

 

LIU Chang-ming. 1998. Environmental issues and the South-North Water Transfer Scheme. China Quarterly, 156(156): 899-910.

 

LIU Chang-ming, ZHENG Hong-xing. 2002. South-to-North Water Transfer Schemes for China. International Journal of Water Resources Development, 18(3): 453-471.

 

Marbaniang D G, Nongpiur C G L. 2015. Daily intake study of Cd, Cr and Pb from food items by the inhabitants of Shillong City, Meghalaya India. International Journal of Scientific Research, 4(1): 36-41.

 

Muhammad S, Shah M T, Khan S. 2011. Health risk assessment of heavy metals and their source apportionment in drinking water of Kohistan Region, Northern Pakistan. Microchemical Journal, 98(2): 334-343.

 

NI Fu-quan, LIU Guo-dong, Ren H Z, et al. 2009. Health risk assessment on rural drinking water safety-A case study in Rain City District of Ya'an City of Sichuan Province. Journal of Water Resource & Protection, 1(2): 128-135.

 

Otim O, Juma T, Savinelli R. 2018. The effect of a massive wastewater discharge on nearshore ocean chemistry. Environmental Monitoring and Assessment, 190(4): 180.

 

Shumilova O, Tockner K, Thieme M, et al. 2018. Global water transfer megaprojects: A potential solution for the water-food-energy nexus? Frontiers in Environmental Science, 6: 150.

 

Smedley P L, Kinniburgh D G. 2002. A review of the source, behaviour and distribution of arsenic in natural waters. Applied Geochemistry, 17(5): 517-568.

 

SUN Cai-yun, ZHANG Ji-quan, et al. 2015. Human health and ecological risk assessment of 16 polycyclic aromatic hydrocarbons in drinking water source from a large mixed-use reservoir. International Journal of Environmental Research & Public Health, 12(11): 13956-13969.

 

TANG Tao, ZHAI Yu-jia, HUANG Kai. 2011. Water quality analysis and recommendations through comprehensive pollution index method. Management Science & Engineering, 5 (2): 95-100.

 

Vanessa S D, Valter M A, Fernando M P, et al. 2019. Water diversion in Brazil threatens biodiversity. AMBIO A Journal of the Human Environment: 1-8.

 

WANG Yu-qian, YANG Li-yuan, Kong L, et al. 2015. Spatial distribution, ecological risk assessment and source identification for heavy metals in surface sediments from Dongping Lake, Shandong, East China. Catena, 125(2): 200-205.

 

Woodford D J, CAI Hui, Richardson D M, et al. 2013. Propagule pressure drives establishment of introduced freshwater fish: Quantitative evidence from an irrigation network. Ecological Applications, 23: 1926-1937.

 

WU Xiao-wei, LIU Ping. 2014. Safety assessment of drinking water sources and its control countermeasures in Yangzhou City. China Water Resources, 19: 49-51.

 
XIE Yang-yang. 2014. Study on macrobenthic animal and assay of water quality of Dongping Lake. Shandong Normal University.
 

XU Fu-liu, WU Wen-jing, Wang J J, et al. 2011. Residual levels and health risk of polycyclic aromatic hydrocarbons in freshwater fishes from Baiyang Lake, Northern China. Ecological Modelling, 222(2): 275-286.

 

YENG Cun-yu, GUO Hua-fang, XIANG Wen-ru. 2009. Eutrophication, health risk assessment and spatial analysis of water quality in Gucheng Lake, China. Environmental Earth Sciences, 59(8): 1741-1748.

 

YU Feng-cun, FANG Guo-hua, RU Xiang-wen. 2010. Eutrophication, health risk assessment and spatial analysis of water quality in Gucheng Lake, China. Environmental Earth Sciences, 59(8): 1741-1748.

 

ZHAN Ai-bin, ZHANG Lei, Xia Z, et al. 2015. Water diversions facilitate spread of nonnative species. Biological Invasions, 17(11): 3073-3080.

 

ZHANG Liang, LI Si-si, Zhuang Y, et al. 2015. Opportunities and challenges of interbasin water transfers: A literature review with bibliometric analysis. Scientometrics, 105(1): 279-294.

 

ZHANG Quan-fa. 2009. The South-to-North Water Transfer Project of China: environmental implications and monitoring strategy. Jawra Journal of the American Water Resources Association, 45(5): 1238-1247.

Journal of Groundwater Science and Engineering
Pages 333-339
Cite this article:
HU Z-f, KANG F-x, ZOU A-d, et al. Evolution trend of the water quality in Dongping Lake after South-North Water Transfer Project in China. Journal of Groundwater Science and Engineering, 2019, 7(4): 333-339. https://doi.org/10.19637/j.cnki.2305-7068.2019.04.004

597

Views

13

Downloads

0

Crossref

6

Web of Science

5

Scopus

Altmetrics

Received: 25 June 2019
Accepted: 25 September 2019
Published: 28 December 2019
© 2019 Journal of Groundwater Science and Engineering Editorial Office
Return