Journal of Water Resource and Protection

Volume 7, Issue 5 (March 2015)

ISSN Print: 1945-3094   ISSN Online: 1945-3108

Google-based Impact Factor: 1.01  Citations  h5-index & Ranking

Impact of Water Chemistry on Lead Carbonate Dissolution in Drinking Water Distribution Systems

HTML  XML Download Download as PDF (Size: 602KB)  PP. 389-397  
DOI: 10.4236/jwarp.2015.75031    3,819 Downloads   5,254 Views  Citations

ABSTRACT

Elemental lead is a known toxic metal that can pose threats to human health and can be found in a variety of sources including drinking water at very low level concentrations (i.e. μg/L range). Destabilization of the corrosion scale at the inner layer of pipeline is the major source of lead in drinking water. Chemical properties of the water passing through the distribution system such as pH, alkalinity, chlorine content, oxidation reduction potential (ORP) and natural organic matters will affect the formation and/or destabilization of the corrosion scale. This research examines the impact of pH values (7.0 - 9.5), temperatures (5°;C vs 20°;C) and alkalinity levels (moderate vs low), in the presence of chlorine, on dissolution of hydrocerussite and cerussite in drinking water by various sets of batch dissolution experiments. The results showed dissolution of cerussite and hydrocerussite was not impacted significantly by pH ranging 7.0 - 9.5. In addition, and somewhat surprisingly, cold temperature (5°;C) and moderate alkalinity showed a great influence on decreasing the solubility of lead species.

Share and Cite:

Mohammadzadeh, M. , Basu, O. and Herrera, J. (2015) Impact of Water Chemistry on Lead Carbonate Dissolution in Drinking Water Distribution Systems. Journal of Water Resource and Protection, 7, 389-397. doi: 10.4236/jwarp.2015.75031.

Cited by

[1] Children's exposure to environmental lead: A review of potential sources, blood levels, and methods used to reduce exposure
Environmental …, 2022
[2] Optimizing pyrolysis temperature of contaminated rice straw biochar: Heavy metal (loid) deportment, properties evolution, and Pb adsorption/immobilization
Journal of Saudi Chemical …, 2022
[3] Treating MSWI Bottom Ash with Sodium Carbonate
2021
[4] Assessment of risk from lead intake in mining areas: proposal of indicators
2021
[5] Lead release in drinking water resulting from galvanic corrosion in three-metal systems consisting of lead, copper and stainless steel
2020
[6] Removal of lead by rice husk biochars produced at different temperatures and implications for their environmental utilizations
2019
[7] Lead contamination of soils in an abandoned rifle range, Augusta County, Virginia
2019
[8] Supramolecular Assemblies in Pb (II) Complexes with Hydrazido-Based Ligands
2019
[9] Effect of production temperature on lead removal mechanisms by rice straw biochars
2019
[10] Lead as a legendary pollutant with emerging concern: Survey of lead in tap water in an old campus building using four sampling methods
Science of The Total Environment, 2018
[11] A new scenario of lead contamination in potable water distribution systems: Galvanic corrosion between lead and stainless steel
Science of The Total Environment, 2018
[12] DEVELOPMENT AND VALIDATION OF A MODEL TO FORECAST LEAD LEVELS IN MUNICIPAL DRINKING WATER
Canadian Water Network Report, 2016
[13] Estudio de la síntesis de nanoestructuras tipo Core-Shell PbS/SiO2
2015

Copyright © 2024 by authors and Scientific Research Publishing Inc.

Creative Commons License

This work and the related PDF file are licensed under a Creative Commons Attribution 4.0 International License.