Assessing Agreement in Exposure Classification between Proximity-Based Metrics and Air Monitoring Data in Epidemiology Studies of Unconventional Resource Development
Abstract
:1. Introduction
2. Materials and Methods
2.1. Air Quality Data
2.2. Well Data
2.3. Well Activity Metric Calculations
2.4. Analysis
3. Results
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
- Energy Information Administration (U.S. EIA). Today in Energy: Hydraulically Fractured Horizontal Wells Account for Most New Oil and Natural Gas Wells. Available online: https://www.eia.gov/todayinenergy/detail.php?id=34732 (accessed on 30 July 2019).
- Energy Information Administration (U.S. EIA). Today in Energy: United States Remains the World’s Top Producer of Petroleum and Natural Gas Hydrocarbons. Available online: https://www.eia.gov/todayinenergy/detail.php?id=36292 (accessed on 30 July 2019).
- Pennsylvania Department of Environmental Protection (PA DEP). 2018 Oil and Gas Annual Report. Available online: https://www.depgis.state.pa.us/2018OilGasAnnualReport/index.html (accessed on 30 July 2019).
- RESOLVE. Community Health and Shale Development Guidebook. Washington, DC, USA, 2015. Available online: http://www.oilandgasbmps.org/docs/GEN430_CommunityHealthAndShaleDevelopmentGuidebook.pdf (accessed on 10 July 2019).
- Pennsylvania Department of Environmental Protection (PA DEP). 2015 Air Emissions Inventory for Unconventional Natural Gas Operations Released. Available online: http://www.ahs.dep.pa.gov/NewsRoomPublic/SearchResults.aspx?id=21283&typeid=1 (accessed on 4 August 2019).
- Pennsylvania Department of Environmental Protection (PA DEP). Overview of the Stationary Source Emission Inventory from 2012–2015. Available online: http://files.dep.state.pa.us/PublicParticipation/Citizens%20Advisory%20Council/CACPortalFiles/Meetings/2018_01/Stationary%20Emission%20Inventory%20for%20CAC%20___%20COMMS_Policy.pdf (accessed on 4 August 2019).
- Maskrey, J.R.; Insley, A.L.; Hynds, E.S.; Panko, J.M. Air monitoring of volatile organic compounds at relevant receptors during hydraulic fracturing operations in Washington County, Pennsylvania. Environ. Monit. Assess. 2016, 188, 410. [Google Scholar] [CrossRef] [PubMed]
- Goetz, J.D.; Avery, A.; Werden, B.; Floerchinger, C.; Fortner, E.C.; Wormhoudt, J.; Massoli, P.; Herndon, S.C.; Kolb, C.E.; Knighton, W.B.; et al. Analysis of local-scale background concentrations of methane and other gas-phase species in the Marcellus Shale. Elem. Sci. Anth. 2017, 5, 1–20. [Google Scholar] [CrossRef]
- Pennsylvania Department of Environmental Protection (PA DEP). Long-Term Ambient Air Monitoring Project: Marcellus Shale Gas Facilities. Available online: http://www.marcellus.psu.edu/resources/docs-pdfs/final-long-term-marcellus-project-report-2018-07-10.pdf (accessed on 30 July 2019).
- Pennsylvania Department of Environmental Protection (PA DEP). Northcentral Pennsylvania Marcellus Shale Short Term Ambient Air Sampling Report. Available online: http://files.dep.state.pa.us/OilGas/BOGM/BOGMPortalFiles/Air/Marcellus_NC_05-06-11.pdf (accessed on 30 July 2019).
- Bamber, A.M.; Hasanali, S.H.; Nair, A.S.; Watkins, S.M.; Vigil, D.I.; Van Dyke, M.; McMullin, T.S.; Richardson, K. A systematic review of the epidemiologic literature assessing health outcomes in populations living near oil and natural gas operations: Study quality and future recommendations. Int. J. Environ. Res. Pub. Health 2019, 16, 2123. [Google Scholar] [CrossRef] [PubMed]
- Rasmussen, S.G.; Ogburn, E.L.; McCormack, M.; Casey, J.A.; Bandeen-Roche, K.; Mercer, D.G.; Schwartz, B.S. Association between unconventional natural gas development in the Marcellus Shale and Asthma Exacerbations. JAMA Intern. Med. 2016, 176, 1334–1343. [Google Scholar] [CrossRef] [PubMed]
- Casey, J.A.; Savitz, D.A.; Rasmussen, S.G.; Ogburn, E.L.; Pollak, J.; Mercer, D.G.; Schwartz, B.S. Unconventional natural gas development and birth outcomes in Pennsylvania, USA. Epidemiology 2016, 27, 163–172. [Google Scholar] [CrossRef] [PubMed]
- Tustin, A.W.; Hirsch, A.G.; Rasmussen, S.G.; Casey, J.A.; Bandeen-Roche, K.; Schwartz, B.S. Associations between unconventional natural gas development and nasal and sinus, migraine headache, and fatigue symptoms in Pennsylvania. Environ. Health Perspect. 2017, 125, 189–197. [Google Scholar] [CrossRef] [PubMed]
- Jerrett, M.; Arain, A.; Kanaroglou, P. A review and evaluation of intraurban air pollution exposure models. J. Expo. Anal. Environ. Epidemiol. 2005, 15, 185–204. [Google Scholar] [CrossRef] [PubMed]
- Zou, B.; Wilson, J.G.; Zhan, F.B.; Zeng, Y. Air pollution exposure assessment methods utilized in epidemiologic studies. J. Environ. Monit. 2009, 11, 475–490. [Google Scholar] [CrossRef]
- Chesapeake Physicians for Social Responsibility (US). The Health Effects of Fracking: Fracking Harms Human Health. Available online: https://static1.squarespace.com/static/54949381e4b05fcc6a96c5c6/t/57f698edc534a51b9098b9f9/1475778798615/HealthEffectsofFrackingBriefChesapeakePSROctober2016DontFrackMD.pdf (accessed on 10 July 2019).
- Bennett, C. Ireland is the Latest European Country to Ban Fracking—The Tories Need to Follow Suit. The Independent Online: London, UK, 9 February 2017. Available online: http://www.independent.co.uk/voices/fracking-environment-ireland-theresa-may-a7771956.html (accessed on 10 July 2019).
- US Environmental Protection Agency (US EPA). Air Data: Pre-Generated Data Files. 2017. Available online: https://aqs.epa.gov/aqsweb/airdata/download_files.html (accessed on 26 March 2018).
- Pennsylvania Department of Environmental Protection (PA DEP). Monitoring Toxic Pollutants. Available online: http://www.dep.pa.gov/Business/Air/BAQ/MonitoringTopics/ToxicPollutants/Pages/default.aspx (accessed on 26 March 2018).
- Adgate, J.L.; Goldstein, B.D.; McKenzie, L.M. Potential public health hazards, exposures and health effects from unconventional natural gas development. Environ. Sci. Technol. 2014, 48, 8307–8320. [Google Scholar] [CrossRef]
- McKenzie, L.M.; Allshouse, W.B.; Byers, T.E.; Bedrick, E.J.; Serdar, B.; Adgate, J.L. Childhood hematologic cancer and residential proximity to oil and gas development. PLoS ONE 2017, 12, e0170423. [Google Scholar] [CrossRef]
- McKenzie, L.M.; Guo, R.; Witter, R.Z.; Savitz, D.A.; Newman, L.S.; Adgate, J.L. Birth outcomes and maternal residential proximity to natural gas development in rural Colorado. Environ. Health Perspect. 2014, 122, 412–417. [Google Scholar] [CrossRef] [PubMed]
- Pennsylvania Geospatial Data Clearinghouse. Data Summary: Oil Gas Locations—Conventional Unconventional. 2017. Available online: http://www.pasda.psu.edu/uci/DataSummary.aspx?dataset=1088 (accessed on 1 April 2018).
- Pennsylvania Department of Environmental Protection (PA DEP). Oil & Gas Reporting Website—Production/Waste Reports. Available online: https://www.paoilandgasreporting.state.pa.us/publicreports/Modules/Welcome/ProdWasteReports.aspx (accessed on 1 April 2018).
- Drilling Info, Inc. Better, Faster Decisions. 2017. Available online: http://info.drillinginfo.com (accessed on 26 March 2018).
- SAS. SAS® 9.3 Functions and CALL Routines: Reference—GEODIST Function. Available online: http://support.sas.com/documentation/cdl/en/lefunctionsref/63354/HTML/default/viewer.htm#n1korpfg2e18lon1nwpow9qijdxe.htm (accessed on 1 March 2018).
- McHugh, M.L. Interrater reliability: The kappa statistic. Biochem. Med. 2012, 22, 276–282. [Google Scholar] [CrossRef]
- Dosemeci, M.; Wacholder, S.; Lubin, J.H. Does nondifferential misclassification of exposure always bias a true effect toward the null value? Am. J. Epidemiol. 1990, 123, 746–748. [Google Scholar] [CrossRef] [PubMed]
- Wacholder, S. When measurement errors correlate with truth: Surprising effects of nondifferential misclassification. Epidemiology 1995, 6, 157–161. [Google Scholar] [CrossRef] [PubMed]
- Greenland, S.; Gustafson, P. Accounting for independent nondifferential misclassification does not increase certainty that an observed association is in the correct direction. Am. J. Epidemiol. 2006, 164, 63–68. [Google Scholar] [CrossRef] [PubMed]
- Stacy, S.L.; Brink, L.L.; Larkin, J.C.; Sadovsky, Y.; Goldstein, B.D.; Pitt, B.R.; Talbott, E.O. Perinatal outcomes and unconventional natural gas operations in southwest Pennsylvania. PLoS ONE 2015, 10, e0126425. [Google Scholar] [CrossRef]
- Whitworth, K.W.; Marshall, A.K.; Symanski, E. Maternal residential proximity to unconventional gas development and perinatal outcomes among a diverse urban population in Texas. PLoS ONE 2017, 12, e0180966. [Google Scholar] [CrossRef]
- Currie, J.; Greenstone, M.; Meckel, K. Hydraulic fracturing and infant health: New evidence from Pennsylvania. Sci. Adv. 2017, 3, e1603021. [Google Scholar] [CrossRef]
- Allshouse, W.B.; Adgate, J.L.; Blair, B.D.; McKenzie, L.M. A spatiotemporal industrial activity model for estimating the intensity of oil and gas operations in Colorado. Environ. Sci. Technol. 2017, 51, 10243–10250. [Google Scholar] [CrossRef]
- Koehler, D.; Ellis, J.H.; Casey, J.; Manthos, D.; Bandeen-Roche, K.; Platt, R.; Schwartz, B.S. Exposure assessment using secondary data sources in unconventional natural gas development and health studies. Environ. Sci. Technol. 2018, 52, 6061–6069. [Google Scholar] [CrossRef]
- Colorado Department of Public Health & Environment (CDPHE). Assessment of Potential Public Health Effects from Oil and Gas Operations in Colorado. Available online: https://drive.google.com/file/d/0B0tmPQ67k3NVVFc1TFg1eDhMMjQ/view (accessed on 10 July 2018).
- Long, C.M.; Briggs, N.L.; Bamgbose, I.A. Synthesis and health-based evaluation of ambient air monitoring data for the Marcellus Shale region. J. Air Waste Manag. 2019, 69, 527–547. [Google Scholar] [CrossRef] [PubMed]
- McKenzie, L.M.; Blair, B.D.; Hughes, J.; Allshouse, W.B.; Blake, N.; Helmig, D.; Milmoe, P.; Halliday, H.; Blake, D.R.; Adgate, J.L. Ambient non-methane hydrocarbon levels along Colorado’s northern front range: Acute and chronic health risks. Environ. Sci. Technol. 2018, 52, 4514–4525. [Google Scholar] [CrossRef] [PubMed]
- McMullin, T.S.; Bamber, A.M.; Bon, D.; Vigil, D.I.; Van Dyke, M. Exposures and health risks from volatile organic compounds in communities located near oil and gas exploration and production activities in Colorado (U.S.A.). Int. J. Environ. Res. Pub. Health 2018, 15, 1500. [Google Scholar] [CrossRef] [PubMed]
- Pennsylvania Department of Environmental Protection (PA DEP). Commonwealth of Pennsylvania Department of Environmental Protection 2014 Annual Ambient Air Monitoring Network Plan. July 2014. Available online: https://www3.epa.gov/ttnamti1/files/networkplans/PAPlan2014.pdf (accessed on 20 June 2018).
- Rabinowitz, P.M.; Slizovskiy, I.B.; Lamers, V.; Trufan, S.J.; Holford, T.R.; Dziura, J.D.; Peduzzi, P.N.; Kane, J.J.; Reif, J.S.; Weiss, T.R.; et al. Proximity to natural gas wells and reported health status: Results of a household survey in Washington County, Pennsylvania. Environ. Health Perspect. 2015, 123, 21–26. [Google Scholar] [CrossRef] [PubMed]
Daily Mean * | Daily Maximum | |||||||
---|---|---|---|---|---|---|---|---|
Pollutant | Number of Monitors | Number of Observations ** | 25th Percentile | 50th Percentile | 75th Percentile | 25th Percentile | 50th Percentile | 75th Percentile |
Benzene (ppbv) | 15 | 3410 | 0.11 | 0.16 | 0.23 | -- | -- | -- |
CO (ppm) | 16 | 21,616 | 0.03 | 0.18 | 0.31 | 0.1 | 0.3 | 0.6 |
NO2 (ppb) | 21 | 28,777 | 3.5 | 6.5 | 10.6 | 8.0 | 15.0 | 24.0 |
O3 (ppb) | 53 | 80,620 | 20.7 | 27.8 | 34.8 | 30.0 | 38.0 | 47.0 |
PM2.5 (µg/m3) | 24 | 37,378 | 6.5 | 9.8 | 14.0 | 13.1 | 18.8 | 25.5 |
SO2 (ppb) | 25 | 38,449 | 0.3 | 1.3 | 2.9 | 1.5 | 4.0 | 8.0 |
Pollutant | Pad Preparation Metric | Drilling Metric | ||||||
Very Low | Low | Medium | High | Very Low | Low | Medium | High | |
Benzene | 264 km (34; 448) | 230 km (21; 450) | 184 km (11; 449) | 168 km (1; 439) | 257 km (39; 450) | 217 km (29; 450) | 196 km (12; 445) | 188 km (1; 439) |
CO | 245 km (37; 447) | 191 km (18; 450) | 215 km (9; 454) | 129 km (7; 454) | 244 km (36; 450) | 195 km (17; 454) | 240 km (10; 454) | 127 km (4; 449) |
NO2 | 253 km (22; 448) | 205 km (134; 352) | 184 km (11; 454) | 131 km (1; 454) | 249 km (36; 450) | 195 km (18; 450) | 194 km (11; 454) | 133 km (1; 449) |
O3 | 258 km (22; 460) | 197 km (16; 464) | 178 km (9; 464) | 136 km (0.6; 460) | 248 km (31; 464) | 189 km (18; 464) | 183 km (11; 459) | 136 km (0.6; 460) |
PM2.5 | 259 km (32; 460) | 213 km (19; 461) | 175 km (14; 464) | 147 km (1; 454) | 253 km (36; 460) | 201 km (26; 464) | 174 km (12; 464) | 142 km (1; 449) |
SO2 | 235 km (33; 460) | 181 km (18; 460) | 178 km (9; 459) | 126 km (2; 460) | 232 km (31; 460) | 186 km (17; 459) | 192 km (9; 459) | 119 km (2; 460) |
Fracturing Metric | Production Metric | |||||||
Very Low | Low | Medium | High | Very Low | Low | Medium | High | |
Benzene | 251 km (56; 448) | 220 km (27; 450) | 222 km (15; 445) | 146 km (1; 444) | 219 km (2; 441) | 212 km (3; 450) | 213 km (5; 450) | 221 km (0.3; 444) |
CO | 242 km (12; 450) | 212 km (25; 454) | 246 km (13; 454) | 144 km (2; 454) | 219 km (11; 441) | 205 km (11; 450) | 232 km (5; 450) | 247 km (0.8; 454) |
NO2 | 246 km (27; 450) | 203 km (25; 454) | 197 km (14; 454) | 129 km (0.3;454) | 212 km (11; 441) | 204 km (6; 450) | 201 km (5; 450) | 218 km (0.3; 454) |
O3 | 247 km (12; 464) | 195 km (13; 464) | 184 km (6; 464) | 140 km (0.3; 460) | 211 km (5; 458) | 196 km (0.9; 461) | 192 km (0.9; 464) | 218 km (0.3; 460) |
PM2.5 | 250 km (27; 464) | 205 km (25; 464) | 180 km (7; 464) | 165 km (1; 454) | 211 km (7; 455) | 194 km (0.9; 460) | 183 km (0.9; 464) | 221 km (0.6; 464) |
SO2 | 231 km (25; 460) | 191 km (7; 460) | 212 km (7; 459) | 132 km (2; 460) | 200 km (6; 458) | 199 km (5; 460) | 237 km (2; 460) | 256 km (2; 460) |
Pollutant | <10 km | <30 km | All | ||||||
---|---|---|---|---|---|---|---|---|---|
Kappa | Lower 95% CI | Upper 95% CI | Kappa | Lower 95% CI | Upper 95% CI | Kappa | Lower 95% CI | Upper 95% CI | |
Pad Preparation | |||||||||
Benzene | 0.1420 | 0.0326 | 0.2515 | −0.0631 | −0.1063 | −0.0200 | 0.0729 | 0.0484 | 0.0975 |
CO | 0.2495 | 0.1727 | 0.3263 | 0.0002 | −0.0184 | 0.0180 | 0.1816 | 0.1721 | 0.1911 |
NO2 | 0.0230 | −0.0233 | 0.0692 | −0.1448 | −0.1589 | −0.1306 | 0.0268 | 0.0185 | 0.0352 |
O3 | 0.0122 | −0.0090 | 0.0333 | 0.0258 | 0.0168 | 0.0349 | 0.0019 | −0.0031 | 0.0069 |
PM2.5 | 0.0460 | 0.0149 | 0.0771 | 0.0338 | 0.0195 | 0.0480 | −0.0272 | −0.0345 | −0.0199 |
SO2 | −0.0355 | −0.0750 | −0.0041 | −0.0417 | −0.0539 | −0.0295 | 0.0708 | 0.0637 | 0.0780 |
Drilling | |||||||||
Benzene | −0.0532 | −0.1433 | 0.0369 | −0.0746 | −0.1187 | −0.0305 | 0.0700 | 0.0456 | 0.0943 |
CO | −0.0187 | −0.0919 | 0.0544 | −0.0769 | −0.0940 | −0.0598 | 0.1697 | 0.1603 | 0.1792 |
NO2 | −0.1015 | −0.1405 | −0.0625 | −0.1541 | −0.1681 | −0.1401 | 0.0020 | −0.0062 | 0.0102 |
O3 | 0.0257 | 0.0032 | 0.0482 | 0.0270 | 0.0178 | 0.0362 | −0.0183 | −0.0233 | −0.0134 |
PM2.5 | −0.0232 | −0.0572 | 0.0108 | 0.0245 | 0.0100 | 0.0391 | −0.0331 | −0.0404 | −0.0259 |
SO2 | −0.0702 | −0.1038 | −0.0365 | −0.0506 | −0.0630 | −0.0383 | 0.0419 | 0.0348 | 0.0491 |
Fracturing | |||||||||
Benzene | -0.0175 | −0.1375 | 0.1025 | −0.1022 | −0.1488 | −0.0555 | 0.0535 | 0.0290 | 0.0779 |
CO | 0.0762 | -0.0124 | 0.1648 | −0.1074 | −0.1277 | −0.0872 | 0.1610 | 0.1515 | 0.1705 |
NO2 | −0.0449 | −0.1014 | 0.0116 | −0.1657 | −0.1814 | −0.1501 | −0.0166 | −0.0249 | −0.0084 |
O3 | 0.0187 | −0.0112 | 0.0485 | 0.0359 | 0.0253 | 0.0465 | 0.0017 | −0.0032 | 0.0067 |
PM2.5 | −0.0546 | −0.0958 | −0.0134 | 0.0087 | −0.0077 | 0.0251 | −0.0296 | −0.0369 | −0.0224 |
SO2 | −0.0843 | −0.1336 | −0.0349 | −0.0670 | −0.0817 | −0.0523 | 0.0112 | 0.0041 | 0.0183 |
Production | |||||||||
Benzene | −0.0554 | −0.1005 | −0.0104 | −0.1102 | −0.1446 | −0.0759 | -0.0141 | −0.0374 | 0.0091 |
CO | −0.1281 | −0.1511 | −0.1050 | 0.0595 | 0.0469 | 0.0720 | 0.1172 | 0.1077 | 0.1267 |
NO2 | −0.3324 | −0.3446 | −0.3203 | −0.1656 | −0.1760 | −0.1553 | −0.0509 | −0.0590 | −0.0428 |
O3 | 0.0187 | −0.0112 | 0.0485 | 0.0123 | 0.0057 | 0.0188 | −0.029 | −0.0344 | −0.0245 |
PM2.5 | 0.0454 | 0.0318 | 0.0590 | −0.0124 | −0.0228 | −0.0021 | −0.0488 | −0.0561 | −0.0416 |
SO2 | −0.1842 | −0.1969 | −0.1715 | −0.0927 | −0.1011 | −0.0842 | −0.0525 | −0.0596 | −0.0455 |
© 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
Share and Cite
Wendt Hess, J.; Bachler, G.; Momin, F.; Sexton, K. Assessing Agreement in Exposure Classification between Proximity-Based Metrics and Air Monitoring Data in Epidemiology Studies of Unconventional Resource Development. Int. J. Environ. Res. Public Health 2019, 16, 3055. https://doi.org/10.3390/ijerph16173055
Wendt Hess J, Bachler G, Momin F, Sexton K. Assessing Agreement in Exposure Classification between Proximity-Based Metrics and Air Monitoring Data in Epidemiology Studies of Unconventional Resource Development. International Journal of Environmental Research and Public Health. 2019; 16(17):3055. https://doi.org/10.3390/ijerph16173055
Chicago/Turabian StyleWendt Hess, Judy, Gerald Bachler, Fayaz Momin, and Krystal Sexton. 2019. "Assessing Agreement in Exposure Classification between Proximity-Based Metrics and Air Monitoring Data in Epidemiology Studies of Unconventional Resource Development" International Journal of Environmental Research and Public Health 16, no. 17: 3055. https://doi.org/10.3390/ijerph16173055
APA StyleWendt Hess, J., Bachler, G., Momin, F., & Sexton, K. (2019). Assessing Agreement in Exposure Classification between Proximity-Based Metrics and Air Monitoring Data in Epidemiology Studies of Unconventional Resource Development. International Journal of Environmental Research and Public Health, 16(17), 3055. https://doi.org/10.3390/ijerph16173055