Submitted:
28 August 2025
Posted:
29 August 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
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- Number of chemicals involved (i.e., a single chemical or a mixture of chemicals)
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- Size of landfill and magnitude of emissions
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- Proximity to and susceptibilities of nearby populations
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- Levels of contaminants of concern (i.e., concentration at or above effect level), and
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- Environmental conditions (e.g., prevailing wind patterns).
Background on ATSDR Site-Specific Evaluations
2. Materials and Methods
Document Identification
Characterization of the Selected MSWLFs and Open Dumps
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- the year of construction,
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- the landfill’s size in acres,
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- whether the site was active or closed at the time of ATSDR’s publication,
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- whether the site had a landfill gas collection system, and if so, whether it was a passive or active system,
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- whether or not the site had been an open dump,
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- whether the site had ever had a landfill fire, and
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- whether redevelopment activities occurred resulting in public uses atop previous disposal sites.
Public Health Conclusion Categorization
Data Analysis
3. Results
Public Health Hazards Associated with Methane Gas Reaching Flammable Levels
4. Discussion
Review of Key Findings
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- using engineered sanitary landfills,
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- using the revised criteria in Title 40 of Code of Federal Regulations (CFR) part 258, integrations of the final rule technical revisions and clarifications of the national emission standards for hazardous air pollutants (NESHAP) for MSWLFs, and
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- implementing the landfill gas energy project/landfill methane outreach program2,10.
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5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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| Data Element | Count | Percentage (%) |
|---|---|---|
| Decade PHAⱡ or HCⱡ was issued. | ||
| 1980s | 2 | 2 |
| 1990s | 62 | 50 |
| 2000s | 40 | 32 |
| 2010s | 21 | 17 |
| Landfill or open dump status at time of evaluation. | ||
| Active | 25 | 22 |
| Closed | 100 | 78 |
| Public use/access of landfill or open dump surface?§ | ||
| Yes | 30 | 20 |
| No | 95 | 80 |
| According to the PHA/HC, did the site have a subsurface fire? | ||
| Yes | 14 | 11 |
| No or not specified | 111 | 89 |
| _________________ *MSWLFs – Municipal solid waste landfills ϯ ATSDR– Agency for Toxic Substances and Disease Registry ⱡPHA or HC – Public Health Assessment or Health Consultation §Public access to the landfill or open dump surface applies to closed sites that have undergone redevelopment activities. They may include sites with residential developments, parks, walking paths, or other usage. | ||
| Data Element | Count | Percentage (%) |
|---|---|---|
| PHAs and HCs for MSWLFs* and open dumps that reached a conclusion for the air exposure pathway | 125 | 100 |
| Subset of PHAs Ϯ and HCs Ϯ that evaluated the air exposure pathway and found either no or no apparent public health hazard. | 107 | 86 |
| Subset of PHAs Ϯ and HCs Ϯ for which ATSDR‡ or its public health partner concluded a public health hazard for the air exposure pathway. Further breakdown: Public health hazard due to exposure to toxic substances Public health hazard due to unsafe methane accumulations Public health hazard due to exposure to both toxic substances and unsafe methane accumulations |
18 5 12 1 |
14 |
| _____________________ * MSWLFs – Municipal solid waste landfills !ϮPHA and HC – Public Health Assessment and Health Consultation ‡ATSDR - Agency for Toxic Substances and Disease Registry | ||
| Site | Year Disposal Began | Operational Status | Acres | Substances with Public Health Hazard |
Description | References and additional notes |
|---|---|---|---|---|---|---|
| 1 | 1950s | Closed | 52 | RSCs and SO2 | The closed landfill is a former limestone quarry, with mostly municipal solid waste disposed of at the site. It is part of an NPL site. Community concerns about emissions increased after a “subsurface smoldering event” (i.e., underground landfill fire) was detected. This event led to considerable remediation efforts at the landfill. Ambient air monitoring for RSCs and SO2 found levels that might be harmful to health. Exposures to the highest concentrations might have aggravated chronic respiratory disease (e.g., asthma), aggravated chronic cardiopulmonary disease, and caused other respiratory effects (e.g., difficulty breathing, tightness in the chest). These concerns were greatest during the remediation efforts following the landfill fire, and the remedial efforts effectively reduced the landfill’s air quality impacts. |
Semkiw et al. 2018, 2022 [12,16] |
| 2 | 1974 | Closed | 113 | H2S and VOCs | The closed landfill is an NPL* site. The location was originally used to mine sand and gravel, before it was used as a construction and demolition debris landfill, and eventually as a MSWLF. In the early 1990s, the landfill’s leachate collection system did not function properly, and several million gallons of leachate accumulated in a landfill section. This caused increased H2S emissions, with fenceline ambient air concentrations greater than 1 ppm—levels that ATSDR concluded were a public health hazard. Installation of an active landfill gas venting system and upgrades to the leachate collection system reduced H2S concentrations to safe levels. VOCs in indoor air (particularly benzene and vinyl chloride) were a public health hazard, due to vapor intrusion of landfill gases that migrated in the subsurface and into homes, some of which were located 100 feet from the landfill boundary. This hazard was addressed through installation and operation of an active gas venting system. |
NYSDOH (New York State Department of Health). 1995 [17] |
| 3 | 1970 | Closed | 200 | Radon and VOCs (Benzene, 1,2,4-Trimethylbenzene, 1,2-Dichloroethane, and 1,2-Trans Dichloroethene) | The closed, unlined landfill accepted municipal solid waste for nearly 40 years. Two residential developments were constructed while the landfill was active, with some homes being located less than 500 feet from the landfill cells. Due to concerns regarding vapor intrusion, indoor air sampling occurred at nearby houses. The public health hazard finding was based on estimated lifetime cancer risks greater than 1-in-10,000 from multiple VOCs (including benzene, chloroform, and 1,2-dichloroethane). The document also noted that exposures to naturally occurring radon contributed to considerably higher cancer risks, though the radon issues were not attributed to landfill releases. Affected homes were equipped with sub-slab depressurization units, which has reduced cancer risks below levels of health concern. |
Elgethun K. 2015 [19] |
| 4 | 1973 | Closed | Not specified | Odors, H2S and SO2 | Multiple landfills operated on adjacent properties, including two MSWLF cells and a construction and demolition (C&D) debris landfill. Residences were located less than 100 feet from the C&D landfill cell. Ambient air monitoring revealed H2S levels “high enough to cause temporary respiratory discomfort to those with asthma, and perhaps even in some without asthma who suffered from other preexisting respiratory conditions.” One peak SO2 concentration reached levels that could have caused clinically significant symptoms among residents with asthma. In response to the air quality impacts, landfill operators installed a gas collection system that helped prevent landfill gases from reaching nearby residents. The HC focuses on the C&D landfill at the site but acknowledged that all three adjacent landfills have sulfur compound emissions. |
Sutton et al. 2010 [20] |
| 5 | 1970s | Active | ~1,000 | H2S, NH3, VOCs (Benzene and formaldehyde, and particulate matter; | Approximately three-fourths of the 7,000 tons of wastes disposed of daily at the landfill was municipal solid waste, with the remainder were C&D debris, non-hazardous industrial waste, and other non-hazardous waste. Ambient air monitoring conducted in the area found several toxic substances that occasionally reached concentrations that could have caused transitory health effects among sensitive populations, such as irritation to the eyes, nose, throat, and respiratory tract. Substances of concern were NH3, H2S, methylamine, and acetaldehyde; and only the highest sampling results reached levels of potential concern. Some data quality concerns were noted for the sampling data. PM2.5 concentrations also reached levels of potential health concern on a few sampling dates and when winds blew from the direction of the landfill, but other emission sources also contributed to the airborne levels. |
Arunachalam et al. 2019 [21] |
| 6 | 1979 | Active | 34 | Phosgene, mercury, and combustion byproducts, VOCs including benzene, 1,2,4-Trichloropropane; Chlorobenzene; Acetaldehyde and metals (e.g., Ni, Hg, As) | The landfill primarily accepts municipal solid waste, but also accepted C&D debris and industrial waste. ATSDR became involved with the site after residents voiced concern about air emissions from an underground landfill fire, which had been burning for at least several months, by multiple accounts. The landfill also experienced an aboveground fire in a pile of tires, and the landfill previously had a “burn pit” and “smolder pit” on its property. The nearest residents were approximately 500 feet from the landfill’s active section. Air samples collected on the landfill found concentrations of phosgene and mercury at levels of potential health concern. Elevated levels of several aldehydes were also noted. The public health hazard reported in the PHA was attributed to the combined effect of such respiratory irritants as smoke, various aldehydes, phosgene, and mercury vapor. The principal recommendation made in the PHA was to extinguish the underground landfill fire that was believed to contribute to the public health hazard. | Langmann et al. 1998 [22] |
| ____________________ *NPL – National Priority List † MSWLF – Municipal solid waste landfills ‡ATSDR - Agency for Toxic Substances and Disease Registry § C&D – Construction and demolition §§ Chemical substances (RSC – reduced sulfur compound; SO2 – sulfur dioxide; VOC – volatile organic compound; H2S = hydrogen sulfide; NH3 – ammonia; Metals – e.g, Ni – nickel; Hg – mercury; As – arsenic. | ||||||
| Site | Year Disposal Began |
Operational Status | Acres | Description | Reference |
|---|---|---|---|---|---|
| 1 | 1974 | Closed | 10 | This unlined landfill, an NPL* site, primarily accepted municipal solid waste, but also received non-hazardous industrial waste (e.g., oily sludge, metal grindings). Soil gas sampling occurred at various onsite locations, with methane concentrations in one portion of the landfill near the main office ranging from 10 to 90 percent. The HC† refers to an “elevated gas measurement near the landfill office” but does not document the observed methane level. The HC concluded that the potential migration of methane to the landfill office may present a public health hazard. The landfill evidently did not have a landfill gas collection system at the time ATSDR‡ evaluated the site. |
Morse et al. 2008 [23] |
| 2 | 1920 | Closed | 13 | This unlined landfill accepted municipal, commercial, and industrial waste for nearly 50 years. The landfill area was then covered with clean fill and developed for commercial, residential, and industrial uses, with no landfill gas collection system in place. At three commercial properties built atop the former landfill, indoor air concentrations of methane exceeded the lower explosive limit (LEL); and occupants raised concerns that landfill gas was entering through foundation cracks and that could be ignited. Multiple actions were taken to address this physical hazard: buildings were equipped with continuous methane monitors to detect atmospheres of concern; cracks in building foundations were identified and sealed; and passive vents were installed at multiple landfill locations to release landfill gas into the ambient air. |
Pestana et al. 1995; McRae 2005; Rusnak et al. 2006 [24-26] |
| 3 | 1963 | Closed | 49 | This unlined landfill, an NPL site, previously accepted municipal solid waste, C&D debris, and sludge. Multiple residential and commercial properties are located immediately north of the landfill boundary. Even though steps had been taken to reduce migration of landfill gases, methane concentrations in a floor drain in one of the affected buildings exceeded the LEL on 9 out of 12 sampling days in the late 1990s. Elevated methane levels were also observed in the building floor cracks and sumps. ATSDR concluded that the observed methane levels in the affected buildings was an urgent public health hazard and recommended that actions be implemented to monitor indoor methane levels, to reduce the methane levels to below 10 percent of the LEL, and to ready occupants for evacuation if methane levels continue to exceed 10 percent of the LEL. |
Baughman et al. 1997; Baughman et al. 1998; Baughman et al. 2004 [27-29] |
| 4 | 1975 | Closed | 62 | Although originally approved as a “private sanitary landfill,” this unlined landfill accepted a wide range of wastes (including hazardous wastes) for nearly 25 years, until the landfill ceased operating. Passive vents were installed with the intent of collecting landfill gas for reuse, but the project was not completed, and the gas is vented to ambient air, without flaring. The methane concentrations at the landfill, an NPL site, were high enough to trigger alarms on explosimeters used by state agency staff who visited the site. The PHA did not document the methane concentration that triggered the alarms, though many of these meters are typically set to alarm when flammable gas levels exceed 10 percent of the LEL. The methane releases from the onsite vents were deemed a public health hazard, due to the possibility of trespassers or site visitors encountering flammable atmospheres and the lack of warning signs. |
Jackson et al. 2012 [30] |
| 5 | 1968 | Closed | 145 | The unlined landfill, an NPL site, received municipal solid waste from multiple municipalities for at least 7 years. The landfill was not equipped with a landfill gas collection system. Methane was detected in soil gas samples at the landfill and its perimeter, but the measured concentrations were not reported in the PHA. The document concluded that the methane gas detections at the site presented a potential explosive hazard. |
Smith et al. 1995 [31] |
| 6 | 1963 | Closed | 108 | This landfill, an NPL site, received municipal and commercial solid waste for 27 years. The landfill included two disposal cells: one lined and the other unlined. While the landfill was still operating, elevated methane concentrations were measured in the basements of two homes, both located less than 100 feet from the site boundary. The local city eventually purchased the homes because indoor methane concentrations had reached “explosive levels.” Following these events, a landfill gas collection system was installed and continuously operated to prevent further migration of methane gases. Routine soil gas monitoring has demonstrated the system’s effectiveness. ATSDR concluded that the site presented a past public health hazard due to the migration of methane gas to nearby households and recommended that the performance of the landfill gas collection system be continuously monitored to ensure methane gas does not migrate offsite at unsafe levels in the future. |
Crua et al. 1996 [32] |
| 7 | 1947 | Closed | 34 | This unlined landfill, an NPL site, received municipal, commercial, and industrial waste for more than 40 years, before closure. Two studies (a soil gas survey and a methane migration study) examined the potential for methane gas to migrate offsite at explosive levels. The soil gas survey identified four methane “hot spots” at the landfill, and the migration study reported elevated methane concentrations at a neighboring property. Another study detected methane concentrations above the LEL on three different occasions at a location outside of the landfill property. These observations contributed to the finding of a potential explosion hazard. Proposed remediation measures for the landfill were to include monitoring and controlling methane migration, but further details on the specific remediation measures were not specified. |
Raffert et al. 1995 [33] |
| 8 | 1974 | Closed | 113 | This unlined landfill, an NPL site, primarily received municipal solid waste for 23 years. Migration of landfill gas to offsite locations was extensively documented. Methane concentrations greater than the LEL were measured in several homes within 100 to 500 feet of the landfill; and methane concentrations greater than 50 percent of the LEL were measured in buildings in a nearby industrial park. The elevated methane concentrations caused “furnace puff-backs” at several homes, indicating explosive levels of methane. Concern about methane migration heightened in winter months when surface soils were often frozen. The landfill operators eventually installed a series of active and passive gas vents, some of which became part of the “landfill perimeter gas collection system.” ATSDR recommended development of an operations and maintenance plan for the collection system, given its critical role in ensuring landfill gas does not cause unsafe methane accumulations in offsite structures. |
Schuck et al. 1995 [34] |
| 9 | 1966 | Closed | 100 | This NPL site is comprised of multiple former quarries that were used for disposal of municipal, commercial, and industrial solid waste, over a 23-year period starting in 1966. Soil gas samples were collected around the perimeter of the landfill, and methane concentrations exceeded the LEL at multiple locations, including within 200 feet of high-density residential areas. Methane soil gas concentrations above the LEL at the landfill perimeter were confirmed in multiple rounds of additional sampling. These observations led to a conclusion of a public health hazard, which was to be addressed through several actions. These include installation of a network of passive vents around the landfill perimeter and operation of combustible gas monitors inside the homes nearest to the landfill. | ODH and ATSDR 1998 [35] |
| 10 | 1972 | Closed | 4 | This unfenced and unlined open dump accepted municipal and industrial wastes for 6 months. The waste was eventually covered with soil, but no access restrictions were in place and a home was being built atop a former disposal area at the time the site was assessed. Gas monitoring probes placed around the perimeter of the landfill found methane concentrations above the LEL at two locations. Subsequently monthly monitoring of landfill gas had multiple measurements of methane gas above the LEL, and additional measurements marginally below the LEL. Methane concentrations also exceeded the LEL at a crack in the dump surface. The HC conclusion was that the site presented a future public health hazard due to the risk of explosion, should methane gases accumulate in the crawl space of the home that was under construction. |
Shelley et al. 2004 [36] |
| 11 | 1970 | Closed | 80 | This unlined landfill, an NPL site, received municipal and industrial wastes for 5 years, before being closed. Following detection of methane gas in a groundwater monitoring well, a soil gas monitoring network was deployed to determine the nature and extent of methane migration away from landfill property. At four soil gas monitoring sites along the site perimeter, methane concentrations exceeded the LEL on multiple occasions. Methane gas monitoring in nearby homes (all within 500 feet of the site) had not found elevated concentrations, but the site was considered a physical hazard due to the potential for further gas migration to occur. |
Nehls-Lowe et al. 1994 [37] |
| 12 | 1952 | Closed | 27 | For 30 years, this unlined dump, an NPL site, received municipal, industrial, and C&D waste. During site investigations, elevated methane concentrations were detected at a monitoring well. A comprehensive methane survey followed, in which soil gas methane concentrations above the LEL were identified in multiple onsite areas, including under an onsite building. The nearest homes (approximately 1,000 feet from the dump) were also monitored for methane gas, but the measured concentrations were not elevated. The document concluded that potential buildup of methane gas beneath structures at the dump was an explosion hazard. | Goldrina et al. 1994 [38] |
| ______________________ *NPL – National Priority List †HC – Health consultation ‡ATSDR - Agency for Toxic Substances and Disease Registry §LEL – Lower explosive limit | |||||
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