1. Distinguishing Gasoline and Dry-Cleaning Releases in Groundwater VOC Profiles
Gasoline releases typically contain compounds like 1,3-butadiene and MTBE
These compounds often result from fuel leaks and spills, and they may appear in water sources near contamination sites.
Dry-cleaning solvent releases often involve chlorinated solvents such as 1,1-dichloroethane
Such compounds stem from industrial solvent use and disposal, differing chemically from petroleum-based VOCs.
2. Understanding Laboratory Reporting Levels When VOCs Are Not Detected
Non-detection means no sample concentration exceeded the lab’s method detection limit (MDL)
For example, the Water & Power Authority in St. Thomas showed zero detections above reporting levels such as 0.03 micrograms per liter (µg/L) for 1,1-dichloroethane and 5.0 µg/L for MTBE.
Reporting limits define the smallest concentration the test can reliably measure, not the presence or absence of a compound below that level
Therefore, low-level VOCs below these thresholds might still be present but undetectable by the test methods used in the public water system record.
3. Changes at the Tap When Using the Pentair VOCs & Industrial Chemicals Filter
Treated water has reduced volatile organic compounds, improving taste and odor characteristics associated with solvent compounds
This filtration technology uses a granular activated carbon bed designed for effective contact time to adsorb VOC molecules.
The Pentair system ships ready to configure, compatible with household water setups targeting VOC reduction
It helps remove a broad range of volatile organics, including those commonly monitored such as chloromethane and bromomethane.
4. Long-Term Impacts If VOCs Are Not Addressed in Household Water
Volatile organic compounds can accumulate or cause taste and odor issues over time
Ignoring these compounds in water may lead to persistent aesthetic concerns, although no health-based violations are recorded for the system serving this area.
Extended exposure to certain VOCs may warrant consideration even without local exceedances in public system monitoring
Individual household water testing is advised to determine specific household presence and concentrations.
5. Steps to Identify and Address VOC Concerns Efficiently
Begin with a visual and sensory assessment of water for unusual taste or odor
This inexpensive initial check can help prioritize further testing.
Next, order laboratory testing for volatile organic compounds including those noted by EPA such as HCFC-22 and Halon 1011
Accurate laboratory results will reveal presence and concentration relative to local reporting levels and assist in treatment selection.
Finally, consider the Pentair VOCs & Industrial Chemicals Filter for proven removal of a wide range of volatile organics
This equipment can be purchased and configured directly to meet residential water treatment needs.
In summary, this checklist helps distinguish VOC sources, interpret detection limits, and anticipate water quality changes with treatment. The path guides households in the Virgin Islands through cost-effective observation, testing, and application of a Pentair system for VOC mitigation.
Where this information comes from
Source: EPA SDWIS public water system record. Sampled 2014-11-05. These figures describe the public water system's record, not the plumbing inside any individual building.
On record: EPA UCMR3 monitoring (2013-2015) for Water & Power Auth. (St. Thomas) (VI0000443), VI: 26 results across 7 listed contaminants, 0 detections above the reporting level; nothing detected above the method reporting level

