Environmental Impact Assessment of Volatile Organic Compound Emissions during Trenchless Cured-in-Place Pipe Installation
Abstract
:1. Introduction and Background
2. Review of Past Studies
2.1. Chemical Air Emissions and Worker Exposure Monitoring
2.2. Research Needs
2.2.1. Objectives
2.2.2. Novelty of This Research
3. Case Study
3.1. Scope and Methodology
3.2. Chemical-Specific Compliance Levels
3.3. Equipment and Data Collection
4. Results and Discussions
4.1. PID Results
4.2. Summa Canister Results
4.3. Anemometer Results
4.4. Passive Worker and Method 13 Sorbent Tube Sampling Results
5. Conclusions
6. Recommendations for Future Research
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Acronyms
AEGL | Acute Exposure Guidance Level |
ANOVA | Analysis of Variance |
AQMP | Air Quality Site Monitoring and Emission Testing Plan |
CIPP | Cured-In-Place Pipe |
CUIRE | Center for Underground Infrastructure Research and Education |
DO | Dissolved Oxygen |
GC-MS | Gas Chromatography-Mass Spectrometry |
HAP | Hazardous Air Pollutant |
MPH | Miles per hour |
NASSCO | National Association of Sewer Service Companies |
NIOSH | National Institute for Occupational Safety and Health |
OSHA | Occupational Safety and Health Administration |
PID | Photoionization Detector |
QA/QC | Quality Assurance/Quality Control |
RCP | Reinforced Concrete Pipe |
SDS | Safety Data Sheets |
TCLP | Toxicity Characterization Leaching Procedure |
TVOC | Total Volatile Organic Compounds |
USEPA | United States Environmental Protection Agency |
UTA | The University of Texas at Arlington |
VOC | Volatile Organic Compound |
WRF | Water Research Foundation |
References
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Research Study/Authors | Compounds Detected in Vapor Phase | Compounds Detected in Condensed Phase |
---|---|---|
[10] | Three compounds (not specified) | Seventeen compounds (not specified) |
[28] | Two compounds (not specified) | Not specified |
[10] | Styrene (>86.5 ppmv), Methylene chloride (1.56 ppmv) | Not specified |
[5] | Styrene (250 to 1070 ppmv during steam curing, 3.6 to 76.7 ppmv during cool down) | Not specified |
[24] | Styrene, Divinylbenzene | Not specified |
- | Styrene (<0.3 to 45 ppmv) | Not specified |
[29] | Styrene (<0.011 to 6.32 ppmv) | Not specified |
Chemical of Interest | Chemical-Specific Compliance Level | Basis for Compliance Level |
---|---|---|
Cumene (8–12-h concentration) | 50 ppm (250 µg/m3) | AEGL-1 |
Acetophenone (8–12-h concentration) | 10 ppm (49,100 µg/m3) | ACGIH TLV, CAL/OSHA PEL |
Styrene (8–12-h concentration) | 20 ppm (85,194.27 µg/m3) | AEGL-1 |
Equipment | Objectives | Measured VOCs | Picture |
---|---|---|---|
GC-MS | To rapid screening of chemicals, including environmental (VOCs/SVOCs). | Total VOC such as, Benzene, Toluene, Acetone Ethylbenzene, Xylene, Methylene chloride, Styrene | |
Summa Canister | To collect EPA Method TO-15 compounds. | Acetone*, Benzene*, Ethanol Butadiene*, Naphthalene Chloroform, Styrene* | |
PID | To real-time quantification of total VOCs in the air from 0 to 5000 ppm. | Isobutylene | |
Worker Samples And Method 18 Sorbent Tubes | To sample any hazardous chemical to the worker from the beginning of lining until the end of curing processes. | Acetophenone, Hexane Heptane, Toluene, o-Xylene Ethyl Benzene, Styrene | |
Anemometer | To measure of wind speed (m/s) and flow rate. | No direct measurement of VOCs. |
Parameter | TVOC (ppm) | Cumene (ppm) | Acetophenone (ppm) | Odor Intensity |
---|---|---|---|---|
Observation | 4.5 | 0 | 0 | 3 |
Comments | TVOC concentration fluctuated periodically with the startup and run of the boiler truck. | 2.43 | 2.65 | Light and Occasional |
Action Levels | 10 ppm or greater | 50 ppm or greater | 10 ppm or greater | 3 or greater off-site odor complaints verified by the Air Monitoring Contractor |
Shot | Location | Average Flow (m/s) | Cumene (kg/s) | Acetophenone (kg/s) | Styrene (kg/s) |
---|---|---|---|---|---|
#1 | Terminal discharge maintenance hole | 0.33 | 3.2 × 10−6 | 3.2 × 10−6 | 4.95 × 10−6 |
Shot #1 | Compounds | Rpt. Limit (ug) | Rpt. Limit (ug/m3) | Amount (ug) | Amount (ppm) |
---|---|---|---|---|---|
Worker 1 | Hexane | 0.10 | 8.4 | 0.19 | 0.004 |
Toluene | 0.10 | 7.5 | 0.20 | 0.004 | |
Styrene | 0.10 | 9.1 | 0.50 | 0.01 | |
Worker 2 | Toluene | 0.10 | 7.5 | 0.12 | 0.002 |
Styrene | 0.10 | 9.1 | 0.31 | 0.006 |
Shot #1 | Compounds | Result (ug/Sample) | Limits (EPA) |
---|---|---|---|
Insertion MH | Acetophenone | ND | - |
Termination MH | Acetophenone | ND | - |
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Bavilinezhad, S.; Najafi, M.; Kaushal, V.; Elledge, W.; Kaynak, B. Environmental Impact Assessment of Volatile Organic Compound Emissions during Trenchless Cured-in-Place Pipe Installation. Environments 2024, 11, 169. https://doi.org/10.3390/environments11080169
Bavilinezhad S, Najafi M, Kaushal V, Elledge W, Kaynak B. Environmental Impact Assessment of Volatile Organic Compound Emissions during Trenchless Cured-in-Place Pipe Installation. Environments. 2024; 11(8):169. https://doi.org/10.3390/environments11080169
Chicago/Turabian StyleBavilinezhad, Salar, Mohammad Najafi, Vinayak Kaushal, William Elledge, and Burak Kaynak. 2024. "Environmental Impact Assessment of Volatile Organic Compound Emissions during Trenchless Cured-in-Place Pipe Installation" Environments 11, no. 8: 169. https://doi.org/10.3390/environments11080169
APA StyleBavilinezhad, S., Najafi, M., Kaushal, V., Elledge, W., & Kaynak, B. (2024). Environmental Impact Assessment of Volatile Organic Compound Emissions during Trenchless Cured-in-Place Pipe Installation. Environments, 11(8), 169. https://doi.org/10.3390/environments11080169