Evaluation of Lead Release in a Simulated Lead-Free Premise Plumbing System Using a Sequential Sampling Approach
Abstract
:1. Introduction
2. Materials and Methods
2.1. Simulated Premise Plumbing System
2.2. Analytical Methods
3. Results and Discussion
3.1. Conditioning Phase
3.2. Orthophosphate Addition
3.3. Change in Solution pH
3.4. Scale Analysis
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
Abbreviations
AS/NZS | Australian/New Zealand Standard |
BS EN | British Standards in English language |
CP | Code of Practice |
CSMR | chloride-to-sulfate mass ratio |
ICP-OES | Inductively coupled plasma mass spectrometer optical emission spectrometry |
IRIS | Integrated Risk Information System |
LCR | Lead and Copper Rule |
LSLs | lead service lines |
MCLG | Maximum Contaminant Level Goal |
PUB | Public Utilities Board |
RDT | random daytime |
RfD | reference dose |
USEPA | United States Environmental Protection Agency |
WHO | World Health Organization |
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Water Parameter | Value |
---|---|
pH | 7.7 ± 0.3 |
Total alkalinity | 16 ± 0.9 mg/L as CaCO3 |
Chloride | 35 ± 2.7 mg/L as Cl− |
Sulfate | 18 ± 2.0 mg/L as |
Copper | 17.2 ± 0.4 µg/L |
CSMR (Chloride-to-sulfate mass ratio) | 1.9 |
Lead | 2.0 ± 0.6 µg/L |
Free chlorine residual | <0.01 mg/L as Cl2 |
Monochloramine residual | 0.02 ± 0.01 mg/L as Cl2 |
TOC | 0.1 mg/L |
Sequential Sample | Conditioning | Orthophosphate (1 mg/L as P) | Orthophosphate Addition Ceased | |||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
1 d | 3 d | 7 d | Median Min, Max | 1 d | 3 d | 7 d | Median Min, Max | 1 d | 3 d | 7 d | Median Min, Max | |
Tap 1: 0–50 mL | 0.47 −0.09, 0.97 | 0.89 0.34, 1.60 | 0.73 0.36, 1.46 | 0.64 −0.09, 1.60 | 1.55 1.50, 1.79 | 1.59 1.27, 1.92 | 1.36 1.26, 1.57 | 1.55 1.26, 1.92 | 0.97 0.74, 1.83 | 1.01 0.48, 1.44 | 0.73 0.23, 0.97 | 0.97 0.23, 1.83 |
Tap 1: 50–100 mL | 0.24 −0.21, 0.57 | 0.64 0.32, 0.80 | 1.11 0.83, 1.30 | 0.80 −0.21, 1.30 | ||||||||
Tap 1: 100–150 mL | 0.16 −0.22, 0.57 | 0.65 0.38, 0.86 | 0.78 0.64, 0.87 | 0.68 −0.22, 0.87 | ||||||||
Tap 1: 150–200 mL | 0.53 0, 0.97 | 0.83 0.50, 1.00 | 0.77 0.41, 1.16 | 0.75 0, 1.16 | 1.45 1.34, 1.72 | 1.44 0.89, 1.69 | 1.30 1.23, 1.50 | 1.42 0.89, 1.72 | 0.97 0.85, 1.64 | 0.85 0.41, 1.47 | 0.33 0.17, 0.78 | 0.83 0.17, 1.64 |
Tap 2: 0–50 mL | 0.77 0.56, 0.97 | 0.56 0.36, 0.85 | 1.15 0.52, 1.73 | 0.97 0.36, 1.73 | 1.29 1.13, 1.50 | 1.48 1.29, 1.87 | 1.38 1.25, 1.72 | 1.44 1.13, 1.87 | 0.71 0.51, 1.56 | 0.84 0.46, 1.15 | 0.52 0.40, 0.92 | 0.76 0.40, 1.56 |
Tap 2: 50–100 mL | 0.95 0.59, 1.14 | 0.95 0.59, 1.14 | ||||||||||
Tap 2: 100–150 mL | 0.75 0.65, 1.07 | 0.75 0.65, 1.07 | ||||||||||
Tap 2: 150–200 mL | 0.82 0.66, 0.97 | 0.85 0.70, 1.22 | 0.90 0.52, 1.24 | 0.89 0.52, 1.24 | 1.52 1.37, 1.60 | 1.46 0.87, 1.84 | 1.30 1.22, 1.50 | 1.42 0.87, 1.84 | 1.06 0.85, 1.67 | 0.96 0.56, 1.51 | 0.63 0.41, 0.94 | 0.90 0.41, 1.67 |
Median | 0.75 −0.22, 1.73 | 1.47 0.87, 1.92 | 0.87 0.17, 1.83 |
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Ng, D.-Q.; Lin, Y.-P. Evaluation of Lead Release in a Simulated Lead-Free Premise Plumbing System Using a Sequential Sampling Approach. Int. J. Environ. Res. Public Health 2016, 13, 266. https://doi.org/10.3390/ijerph13030266
Ng D-Q, Lin Y-P. Evaluation of Lead Release in a Simulated Lead-Free Premise Plumbing System Using a Sequential Sampling Approach. International Journal of Environmental Research and Public Health. 2016; 13(3):266. https://doi.org/10.3390/ijerph13030266
Chicago/Turabian StyleNg, Ding-Quan, and Yi-Pin Lin. 2016. "Evaluation of Lead Release in a Simulated Lead-Free Premise Plumbing System Using a Sequential Sampling Approach" International Journal of Environmental Research and Public Health 13, no. 3: 266. https://doi.org/10.3390/ijerph13030266
APA StyleNg, D. -Q., & Lin, Y. -P. (2016). Evaluation of Lead Release in a Simulated Lead-Free Premise Plumbing System Using a Sequential Sampling Approach. International Journal of Environmental Research and Public Health, 13(3), 266. https://doi.org/10.3390/ijerph13030266