Minimizing the Health Risks from Hydrocarbon Contaminated Soils by Using Electric Field-Based Treatment for Soil Remediation
Abstract
:1. Introduction
2. Working Methodology
2.1. Site Description, Sampling and Analysis
2.2. Human Health Risk Assessment Methodology
2.3. Electrochemical Treatment
3. Results and Discussion
3.1. Electrochemical Removal of Hydrocarbons from the Contaminated Soil
3.2. Risk Assessment of PAH-Contaminated Soil
3.3. Influence of Electrochemical Treatment of Soil on Hydrocarbon Degradation Efficiency and Risk to Humans
4. Conclusions
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Analyzed Parameter | Industrial Areas | Determined Values | |
---|---|---|---|
Alert Threshold | Intervention Threshold | ||
Total Petroleum Hydrocarbons (TPHs) | 1000 | 2000 | 14,725 |
Polycyclic Aromatic Hydrocarbons (ƩPAHs) | 25 | 150 | 103.16 |
Parameter Category | Units | Industrial Workers |
---|---|---|
Common parameters | ||
Body weight (BW) | kg | 80 |
Average time (AT) | days | 9125 |
Lifetime (LT) | years | 70 |
Exposure frequency (EF) | days/year | 250 |
Exposure through accidental soil ingestion—specific parameters | ||
Soil ingestion rate (IR) | mg/day | 50 |
Fraction ingested from contaminated source (adults) | unitless | 0.3 |
Exposure through dermal contact—specific parameters | ||
Skin surface area available to contact (SA) | cm2/d | 3527 |
Soil-to-skin adherence factor (AF) | mg/cm2 | 0.2 |
Absorption factor (ABS) | unitless | 0.13 |
Experimental Conditions | Contaminated Soil without Remediation | Electrochemical Treatment (10 Days) | Electrochemical Treatment (20 Days) |
---|---|---|---|
Scenarios | Scenario 1 | Scenario 2 | Scenario 3 |
Incremental Lifetime Cancer Risk | 1.13 × 10−3 | 9.54 × 10−4 | 6.08 × 10−4 |
Test | Concentration in Soil [mg/kgd.w.] | Risk Level |
---|---|---|
Without remediation | 103.16 | 1.13 × 10−3 |
EC10 | 87.06 | 9.54 × 10−4 |
EC20 | 55.49 | 6.08 × 10−4 |
Experimental Conditions | Electrochemical Treatment (10 Days) | Contaminated Soil without Remediation after Electrochemical Treatment (20 Days) |
---|---|---|
Efficiency on Hydrocarbon Degradation in Soil | ||
ƩPAHs | 15.61 [%] | 46.21 [%] |
TPHs | 16.87 [%] | 50.26 [%] |
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Istrate, I.A.; Cocârță, D.M.; Wu, Z.; Stoian, M.A. Minimizing the Health Risks from Hydrocarbon Contaminated Soils by Using Electric Field-Based Treatment for Soil Remediation. Sustainability 2018, 10, 253. https://doi.org/10.3390/su10010253
Istrate IA, Cocârță DM, Wu Z, Stoian MA. Minimizing the Health Risks from Hydrocarbon Contaminated Soils by Using Electric Field-Based Treatment for Soil Remediation. Sustainability. 2018; 10(1):253. https://doi.org/10.3390/su10010253
Chicago/Turabian StyleIstrate, Irina Aura, Diana Mariana Cocârță, Zucheng Wu, and Mihaela Alexandra Stoian. 2018. "Minimizing the Health Risks from Hydrocarbon Contaminated Soils by Using Electric Field-Based Treatment for Soil Remediation" Sustainability 10, no. 1: 253. https://doi.org/10.3390/su10010253
APA StyleIstrate, I. A., Cocârță, D. M., Wu, Z., & Stoian, M. A. (2018). Minimizing the Health Risks from Hydrocarbon Contaminated Soils by Using Electric Field-Based Treatment for Soil Remediation. Sustainability, 10(1), 253. https://doi.org/10.3390/su10010253