The thermodynamic stability, potential toxicity, and speciation of metals and metalloids in Tehran runoff, Iran

被引:8
作者
Ebraheim, Ghazal [1 ]
Karbassi, Abdolreza [1 ]
Mehrdadi, Naser [1 ]
机构
[1] Univ Tehran, Coll Engn, Sch Environm, Dept Environm Engn, POB 14155-6135, Tehran, Iran
关键词
HSC Chemistry; Stable; Eh; pH; Runoff; Metal and metalloid Species; HEAVY-METALS; SURFACE WATERS; SEDIMENTS; RAINWATER; PRECIPITATION; CONTAMINATION; ELEMENTS; RIVER; PH;
D O I
10.1007/s10653-021-00966-3
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Surface runoff is the most significant source of water in dry cities like Tehran. The surface runoff is polluted by heavy metals, which their risk level is a function of their speciation. Herein, Tehran runoff quality and the speciation of metals and metalloids were investigated. The results of quality showed that oxidation-reduction potential (Eh) and pH ranged from + 186 to + 230 mV and from 7.31 to 10.29, respectively. Cluster analysis indicated that Cr, Si, Mn, Fe, Pb, Se, Th, Ba, Ni, Li, and Sr had similar behaviors and origins, and salinity played an active role in restricting their concentrations. Eh and dissolved oxygen (DO) negatively affected the concentrations of all the studied elements. The speciation model (according to HSC Chemistry program) exhibited that all the studied elements are stable; however, in two cases, they would become unstable (pH < 7, Eh < - 480 mV or Eh > 1100 mV) and (pH > 10, Eh < - 570 mV or Eh > 970 mV). Also, Ba, Cd, Li, Mn, Al, As, Sr, Cr, Si, and Se are present in bioavailable species and As and Cd in the runoff exist in high toxic oxidation states of + 3 and + 2, respectively. The linear regression of Cu, Co, Cd, Zn, and As with Eh provided a good fit, and all of these metals were significant at levels 1 and 5%. Finally, it is recommended to continuously monitor the Eh-pH changes for investigating the potential toxicity of metals and predicting the metal pollution by regression equations in any other stations.
引用
收藏
页码:4719 / 4740
页数:22
相关论文
共 71 条
[1]  
Agarwal S.K., 2009, Heavy Metal Pollution
[2]  
Al Dahaan S., 2016, Engineering, V8, P823, DOI DOI 10.4236/ENG.2016.811074
[3]  
Al-Qutab M. A., 2016, J MAT ENV SCI, V7, P3477
[4]   Trace metal speciation in a wastewater wetland and its bioaccumulation in tilapia Oreochromis niloticus [J].
Aldana, G. ;
Hernandez, M. ;
Cram, S. ;
Arellano, O. ;
Morton, O. ;
Ponce de Leon, C. .
CHEMICAL SPECIATION AND BIOAVAILABILITY, 2018, 30 (01) :23-32
[5]  
[Anonymous], 2012, Stand. Methods, V741, DOI [10.2105/AJPH.51.6.940-a, DOI 10.2105/AJPH.51.6.940-A]
[6]  
[Anonymous], 2012, J ENV PROT, DOI DOI 10.4236/JEP.2012.312180
[7]   Speciation of heavy metals in the surface waters of a former tin mining catchment [J].
Ashraf, Muhammad Aqeel ;
Maah, Mohd. Jamil ;
Yusoff, Ismail ;
Ghararibreza, Mohamadreza .
CHEMICAL SPECIATION AND BIOAVAILABILITY, 2012, 24 (01) :1-12
[8]   Assessment of Levels, Speciation, and Toxicity of Trace Metal Contaminants in Selected Shallow Groundwater Sources, Surface Runoff, Wastewater, and Surface Water from Designated Streams in Lake Victoria Basin, Uganda [J].
Bakyayita, G. K. ;
Norrstroem, A. C. ;
Kulabako, R. N. .
JOURNAL OF ENVIRONMENTAL AND PUBLIC HEALTH, 2019, 2019
[9]   Colloidal speciation of heavy metals in runoff and interstitial waters of a retention/infiltration pond [J].
Bechet, B. ;
Durin, B. ;
Legret, M. ;
Le Cloirec, P. .
WATER SCIENCE AND TECHNOLOGY, 2006, 54 (6-7) :307-314
[10]  
Biati, 2012, GUIDELINES SAMPLING