Measuring Air Quality for Advocacy in Africa (MA3): Feasibility and Practicality of Longitudinal Ambient PM2.5 Measurement Using Low-Cost Sensors
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Design and Study Sites
- Cotonou, Benin Republic
- Ouagadougou, Burkina Faso
- Douala, Cameroon
- Fajara, The Gambia
- Nairobi, Kenya
- Bariga, Lagos, South-Western Nigeria
- New Haven, Enugu, Eastern Nigeria
- Goshen, Enugu, Eastern Nigeria
- Abakaliki Road, Enugu, Nigeria
- Trans-Ekulu, Enugu, Eastern Nigeria
- Awka, Anambra, Nigeria
- Nnewi, Anambra, Nigeria and
- Kampala, Uganda [3]
2.2. Recruitment of Participants
2.3. Data Collection
2.3.1. Device Setup
2.3.2. Measurement of PM2.5
2.3.3. Data Sampling
2.4. Data Analysis
2.5. Ethical Permission
3. Results
3.1. Baseline Characteristics of Study Sites
3.2. Data Recovery and PM2.5 Concentration Measurements per Site
3.3. Comparison of Daily Average PM2.5 Concentrations against WHO PM2.5 Recommended Threshold (25 μg/m3)
3.4. Challenges Identified While Using the Purple Air-II-SD AQM Sensors
3.4.1. Real-Time Clock Stability
3.4.2. Practical Challenges Encountered by Exposure Scientists at all Measurement Sites
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
- World Health Organization. How Air Pollution is Destroying Our Health. 2018. Available online: https://www.who.int/air-pollution/news-and-events/how-air-pollution-is-destroying-our-health (accessed on 22 September 2020).
- Landrigan, P.J.; Fuller, R.; Acosta, N.J.R.; Adeyi, O.; Arnold, R.; Basu, N.; Baldé, A.B.; Bertollini, R.; Bose-O’Reilly, S.; Boufford, J.I.; et al. The Lancet Commission on pollution and health. Lancet 2017, 391, 463–512. [Google Scholar] [CrossRef] [Green Version]
- Awokola, B.I. Measuring Air Quality for Advocacy in Africa (MA3): Feasibility and Practicality of Longitudinal Ambient PM2.5 Measurement Using Low-Cost Sensors; MRes Global health Project rotation 3 (CHIC 599); Centre for Health Informatics, Computing & Statistics (CHICAS), Lancaster Medical School, Lancaster University: Lancaster, UK, 2020. [Google Scholar] [CrossRef]
- The United States Environmental Protection Agency. Particulate Matter (PM) Pollution. Available online: https://www.epa.gov/pm-pollution (accessed on 25 September 2020).
- Health and environmental effects of Particulate Matter. 2018. Available online: https://epa.gov/pm-pollution/health-and-environmental-effects-particulate-matter-pm (accessed on 22 September 2020).
- Chen, H.; Goldberg, M.S.; Villeneuve, P.J. A systematic review of the relation between long-term exposure to ambient air pollution and chronic diseases. Rev Environ Health. 2008, 23, 243–297. [Google Scholar] [CrossRef] [PubMed]
- Gordon, S.B.; Bruce, N.G.; Grigg, J.; Hibberd, P.L.; Kurmi, O.P.; Lam, K.B.; Mortimer, K.; Asanta, K.P.; Balakrishnan, K.; Balmes, J.; et al. Respiratory risks from household air pollution in low- and middle-income countries. Lancet Respir. Med. 2014, 2, 823–860. [Google Scholar] [CrossRef] [Green Version]
- Cromar, K.R.; Gladson, L.A.; Ewart, G. Trends in Excess Morbidity and Mortality Associated with Air Pollution above American Thoracic Society-Recommended Standards, 2008–2017. Ann Am Thorac. Soc. 2019, 16, 836–845. [Google Scholar] [CrossRef] [PubMed]
- Dockery, D.W.; Rich, D.Q.; Goodman, P.G.; Clancy, L.; Ohman-Strickland, P.; George, P.; Kotlov, T. HEI Health Review Committee. Effect of air pollution control on mortality and hospital admissions in Ireland. Res. Rep. Health Eff. Inst. 2013, 176, 3–109. [Google Scholar]
- U.S. Environment Protection Agency. The Benefits and Costs of the Clean Air Act from 1990 to 2020: Summary Report; U.S. Environment Protection Agency: Research Triangle Park, NC, USA, 2011. Available online: https://www.epa.gov/clean-air-act-overview/benefits-and-costs-clean-air-act-1990-2020-report-documents-and-graphics (accessed on 20 September 2020).
- Garcia, E.; Berhane, K.T.; Islam, T.; McConnell, R.; Urman, R.; Chen, Z.; Gilliland, F.D. Association of changes in air quality with incident asthma in children in California 1993–2014. JAMA 2019, 321, 1906–1915. [Google Scholar] [CrossRef] [Green Version]
- Schindler, C.; Keidel, D.; Gerbase, M.W.; Zemp, E.; Bettschart, R.; Brandli, O.; Brutsche, M.H.; Burdet, L.; Karrer, W.; Knöpfli, B.; et al. Improvements in PM10 exposure and reduced rates of respiratory symptoms in a cohort of Swiss adults (SAPALDIA). Am. J. Respir. Crit. Care Med. 2009, 179, 579–587. [Google Scholar] [CrossRef] [Green Version]
- European Union; European Environmental Agency. Directive 2008/50EC, Air Quality. Available online: https://www.eea.europa.eu/policy-documents/directive-2008-50-ec-of (accessed on 22 September 2020).
- Air Apparent Bristol, UK. 2020. Available online: https://airapparentuk.wordpress.com (accessed on 21 September 2020).
- Love Lambeth Air. London, UK. 2020. Available online: https://mappingforchange.org.uk/projects/love-lambeth-air/ (accessed on 20 September 2020).
- Luftdaten. Germany and Europe. 2020. Available online: https://maps.sensor.community/#2/0.0/0.0 (accessed on 21 September 2020).
- Kelly, K.E.; Whitaker, J.; Petty, A.; Widmer, C.; Dybwad, A.; Sleth, D.; Martin, R.; Butterfield, A. Ambient & laboratory evaluation of low cost particulate matter sensor. Environ. Pol. 2017, 221, 491–500. [Google Scholar] [CrossRef]
- Carvlin, G.N.; Lugo, H.; Olmedo, L.; Bejarano, E.; Wilkie, A.; Meltzer, D.; Wong, M.; King, G.; Northcross, A.; Jerrett, M.; et al. Development and field validation of a community-engaged particulate matter air quality monitoring network in Imperial, California, USA. J. Air Waste Manag. 2017, 67, 1342–1352. [Google Scholar] [CrossRef]
- Semple, S.; Apsley, A.; MacCalman, L. An inexpensive particle monitor for smoker behavior modification in homes. Tob. Control 2012, 22, 295–298. [Google Scholar] [CrossRef] [Green Version]
- Friends of the Earth, UK. Clean Air Campaign. 2019. Available online: https://friendsoftheearth.uk/clean-air/results (accessed on 23 September 2020).
- iSPEX. Netherlands and Europe. 2020. Available online: http://ispex.nl/en/ (accessed on 22 September 2020).
- IQ Air. Air Visual 2020. Available online: https://www.iqair.com/world-air-quality-ranking (accessed on 21 September 2020).
- AIRTEXT Alert System. 2020. Available online: https://www.airtext.info/alerts (accessed on 20 September 2020).
- AirLief App. Your Personal Air Pollution Adviser. 2020. Available online: https://www.airlief.com/home-app (accessed on 21 September 2020).
- United Nations Environment. Air Pollution: Africa’s Invisible, Silent Killer. 2019. Available online: https://www.unenvironment.org/news-and-stories/story/air-pollution-africas-invisible-silent-killer (accessed on 18 September 2020).
- Purple Air Online Data. 2019. Available online: https://www.purpleair.com/sensorlist (accessed on 21 September 2020).
- Mukherjee, A.; Stanton, L.G.; Graham, A.R.; Roberts, P.T. Assessing the Utility of Low-Cost Particulate Matter Sensors over a 12-Week Period in the Cuyama Valley of California. Sensors 2017, 17, 1805. [Google Scholar] [CrossRef] [Green Version]
- Patel, S.; Lia, J.; Pandey, S.; Chakrabarty, R.K.; Biswas, P. Spatio-temporal measurement of indoor particulate matter concentrations using a wireless network of low-cost sensors in households using solid fuels. Environ. Res. 2017, 59–65. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Gao, M.; Cao, J.; Seto, E.A. Distributed network of low-cost continuous reading sensors to measure spatiotemporal variations of PM2.5 in Xi’an, China. Environ. Pollut. 2015, 199, 55–56. [Google Scholar] [CrossRef] [PubMed] [Green Version]
- Semple, S. Using Purple Air for the Monitoring Air Pollution in Africa for Advocacy Project. Air Quality Measurement Workshop Presentation at the IMPALA Scientific Meeting, Dar Es Salaam, Tanzania. June 2019. Available online: http://africancentreforcleanair.org/aqm-at-the-pan-african-thoracic-society-methods-in-epidemiologic-clinical-and-operations-research-pats-mecor (accessed on 28 September 2020).
- AQSPEC. Air Quality Sensor Performance Evaluation Centre. Field Evaluations Report 2019. Available online: http://www.aqmd.gov/aq-spec/evaluations/field (accessed on 22 September 2020).
- International Multidisciplinary Programme to Address Lung Health & TB in Africa (IMPALA). NIHR Global Health Research Unit on Lung Health and Tuberculosis in Africa at Liverpool School of Tropical Medicine. Available online: www.lstmed.ac.uk/impala (accessed on 21 September 2020).
- Purple Air: Our Technology. Available online: https://www2.purpleair.com/pages/technology (accessed on 21 September 2020).
- Feenstra, B.; Papapostolou, V.; Hasheminassab, S.; Zhang, H.; Boghossian, B.D.; Cocker, D.; Polidori, A. Performance evaluation of twelve low-cost PM2.5 sensors at an ambient air monitoring site. Atmos. Environ. 2019, 216, 116946. [Google Scholar] [CrossRef]
- DeSouza, P.; Nthusi, V.; Klopp, J.M.; Shaw, B.E.; Ho, W.O.; Saffell, J.; Jones, R.; Ratti, C. A Nairobi experiment in using low cost air quality monitors. Clean Air J. 2017, 27, 12–42. [Google Scholar] [CrossRef]
- West, S.; Büker, P.; Ashmore, M.; Njoroge, G.; Welden, N.; Muhoza, C.; Osano, P.; Makau, J.; Njoroge, P.; Apondo, W. Particulate matter pollution in an informal settlement in Nairobi: Using citizen science to make the invisible visible. Appl. Geogr. 2019, 114, 102133. [Google Scholar] [CrossRef]
- Okello, G.; Devereux, G.; Semple, S. Women and girls in resource-poor settings experience much greater exposure to household air pollutants than men: Results from Uganda and Ethiopia. Environ. Int. 2018, 119, 429–437. [Google Scholar] [CrossRef]
- Amegah, A.K.; Agyei-Mensah, S. Urban air pollution in sub-Saharan Africa: Time for action. Environ. Pollut. 2017, 220, 738–743. [Google Scholar] [CrossRef]
- Makerere University AirQo. 2020. Available online: https://www.airqo.net (accessed on 19 September 2020).
- Okello, G.; Mortimer, K.; Lawin, H.; Semple, S. Quantifying exposure to respiratory hazards in sub-Saharan Africa: Planning your study. AJRM 2020, 14, 18–27. [Google Scholar]
- Mortimer, K.; Ndamala, C.B.; Naunje, A.W.; Malava, J.; Katundu, C.; Weston, W.; Havens, D.; Pope, D.; Bruce, N.G.; Nyirenda, M.; et al. A cleaner burning biomass-fuelled cookstove intervention to prevent pneumonia in children under 5 years old in rural Malawi (the Cooking and Pneumonia Study): A cluster randomised controlled trial. Lancet 2017, 389, 167–175. [Google Scholar] [CrossRef] [Green Version]
- Cohen, A.J.; Brauer, M.; Burnett, R.; Anderson, H.R.; Frostad, J.; Estep, K.; Balakrishnan, K.; Brunekreef, B.; Dandona, L.; Dandona, R.; et al. Estimates and 25-year trends of the global burden of disease attributable to ambient air pollution: An analysis of data from the Global Burden of Diseases Study 2015. Lancet 2017, 389, 1907–1918. [Google Scholar] [CrossRef] [Green Version]
- Katoto, P.D.M.; Byamungu, L.; Brand, A.; Mokoya, J.; Strijdom, H.; Goswami, N.; de Boever, P.; Nawrot, T.S.; Nemery, B. Ambient air pollution and health in Sub-Saharan Africa: Current evidence, perspectives, and call to action. Environ. Res. 2019, 173, 174–188. [Google Scholar] [CrossRef] [PubMed]
- Awokola, B.I.; Abioye-Kuteyi, E.A.; Otoru, O.O.; Oyegbade, O.O.; Awokola, E.O.; Awokola, J.A.; Ezeoma, I.T. Practical Challenges of Setting Up an Electronic Medical Record System in a Nigerian Tertiary Hospital: The Wesley Guild Hospital Experience. Middle East J. Fam. Med. 2012, 10, 37–41. [Google Scholar]
Country | Town & City | Town Description | Season | Device Mounting Place | Wi-Fi Connection | Data Download Method |
---|---|---|---|---|---|---|
Benin Republic | Akpakpa, Cotonou | Urban | Wet | Hospital premises | No | SD card manually |
Burkina Faso | Balkuy, Ouagadougou | Urban | Wet | Residential premises | No | SD card manually |
Cameroon | Douala, Douala | Urban | Wet | Hospital premises | No | SD card manually |
The Gambia | Fajara, Kombo | Urban | Wet | Residential premises | Yes | PurpleAir Website * |
Kenya | Ngong Road, Nairobi | Urban | Wet | Residential premises | Yes | PurpleAir Website * |
Nigeria | Bariga, Lagos | Urban | Wet | Hospital premises | No | SD card manually |
Nigeria | New Haven, Enugu | Urban | Wet | Residential premises | No | SD card manually |
Nigeria | Abakaliki Rd, Enugu | Semi-Urban | Wet | Residential premises | No | SD card manually |
Nigeria | Trans-Ekulu, Enugu | Urban | Wet | Residential premises | No | SD card manually |
Nigeria | Goshen, Enugu | Urban | Wet | Residential premises | No | SD card manually |
Nigeria | Nnewi, Anambra | Urban | Wet | Residential premises | No | SD card manually |
Nigeria | Awka, Anambra | Urban | Wet | Residential premises | No | SD card manually |
Uganda | Ntinda, Kampala | Urban | Wet | Office premises | No | SD card manually |
Country * | Town & City | Number of Records Logged (n) | PA° Time Periods (N) | Data Recovery Rates (%) | >10 μg/m3 n > 10 (%) | >25 μg/m3 n > 25 (%) | >250 μg/m3 n > 250 (%) |
---|---|---|---|---|---|---|---|
The Gambia | Fajara, Kombo | 20,636 | 22,320 | 94.7% | 11,455 (55.5%) | 1644 (8.0%) | 78 (0.4%) |
Burkina Faso | Balkuy, Ouagadougou | 21,142 | 22,320 | 94.7% | 16,026 (75.8%) | 4647 (21.9%) | <0.1 (0%) |
Benin Republic | Akpakpa, Cotonou | 30,799 | 33,480 | 92.0% | 29,262 (95.0%) | 9178 (29.8%) | 3 (0.01%) |
Nigeria | Abakaliki Rd, Enugu | 32,999 | 33,480 | 98.6% | 30,437 (92.2%) | 15,972 (48.4%) | 13 (0.04%) |
Nigeria | Trans-Ekulu, Enugu | 31,139 | 33,480 | 93.0% | 28,428 (91.3%) | 15,178 (48.7%) | 28 (0.09%) |
Nigeria | Goshen, Enugu | 35,322 | 33,480 | 105.5% | 32,512 (92.0%) | 18,084 (51.2%) | 4 (0.01%) |
Nigeria | New Haven, Enugu | 31,241 | 33,480 | 93.3% | 29,569 (94.6%) | 18,811 (60.2%) | 4 (0.01%) |
Nigeria | Awka, Anambra | 31,500 | 33,480 | 94.1% | 29,343 (93.2%) | 20,003 (63.5%) | 18 (0.06%) |
Kenya | Ngong Rd., Nairobi | 22,320 | 22,320 | 100.0% | 21,322(95.5%) | 16,944 (76.0%) | 11 (0.05%) |
Nigeria | Nnewi, Anambra | 21,078 | 22,320 | 94.4% | 20,500 (92.3%) | 16,944 (80.4%) | 173 (0.82%) |
Uganda | Ntinda, Kampala | 21,312 | 22,320 | 95.5% | 21,293 (99.9%) | 19,605 (92.0%) | 276 (1.3%) |
Nigeria | Bariga, Lagos | 24,148 | 33,480 | 72.1% | 24,062 (99.6%) | 23,113 (95.7%) | 22 (0.09%) |
Issues | Specific Characteristics | Reports n (%) |
---|---|---|
Power Issues | - No power problems reported | 5 (41.7%) |
- Irregular electricity supply | 4 (33.3%) | |
- Additional power bank needed | 1 (8.3%) | |
- Use of electricity generators | 2 (16.7%) | |
Device Setup | - No setup issues reported | 6 (50%) |
- Finding suitable location for device setup | 2 (16.7%) | |
- Incurring extra cost for assisted device setup | 2 (16.7%) | |
- Keeping device safe from theft, children, etc. | 1 (8.3%) | |
- Connecting to Wi-Fi | 1 (8.3%) | |
Memory Card | - No SD memory card problems | 10 (83.3%) |
- Problems with removal and re-insertion of SD card | 2 (16.7%) | |
Data Download | - No data downloaded problems reported | 8 (66.7%) |
- Extracting data from Wi-Fi | 1 (8.3%) | |
- Card reader issues | 3 (25%) |
Country | Site/Town | Area | Period Average PM2.5 (μg/m3) A | Period Average PM2.5 (μg/m3) B |
---|---|---|---|---|
Burkina Faso | Ouagadougou | Balkuy | 19.3 | 20.2 |
Gambia | Fajara | Kombo | 15.6 | 0.5 |
Cameroon | Douala | Douala | - | - |
Nigeria | Enugu | New Haven | 33.0 | 30.4 |
Nigeria | Anambra | Nnewi | 52.3 | 52.7 |
Nigeria | Anambra | Awka | 33.4 | 33.2 |
Kenya | Nairobi | Gong Road | 38.8 | 36.2 |
Uganda | Kampala | Ntinda | 91.1 | 87.8 |
Benin | Cotonou | Akpakpa | 22.1 | 22.9 |
Nigeria | Enugu | Abakaliki Rd. | 28.8 | 29.2 |
Nigeria | Enugu | Trans-Ekulu | 30.3 | 29.0 |
Nigeria | Enugu | Goshen | 30.3 | 29.9 |
Nigeria | Lagos | Bariga | 56.3 | 57.1 |
© 2020 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
Awokola, B.I.; Okello, G.; Mortimer, K.J.; Jewell, C.P.; Erhart, A.; Semple, S. Measuring Air Quality for Advocacy in Africa (MA3): Feasibility and Practicality of Longitudinal Ambient PM2.5 Measurement Using Low-Cost Sensors. Int. J. Environ. Res. Public Health 2020, 17, 7243. https://doi.org/10.3390/ijerph17197243
Awokola BI, Okello G, Mortimer KJ, Jewell CP, Erhart A, Semple S. Measuring Air Quality for Advocacy in Africa (MA3): Feasibility and Practicality of Longitudinal Ambient PM2.5 Measurement Using Low-Cost Sensors. International Journal of Environmental Research and Public Health. 2020; 17(19):7243. https://doi.org/10.3390/ijerph17197243
Chicago/Turabian StyleAwokola, Babatunde I., Gabriel Okello, Kevin J. Mortimer, Christopher P. Jewell, Annette Erhart, and Sean Semple. 2020. "Measuring Air Quality for Advocacy in Africa (MA3): Feasibility and Practicality of Longitudinal Ambient PM2.5 Measurement Using Low-Cost Sensors" International Journal of Environmental Research and Public Health 17, no. 19: 7243. https://doi.org/10.3390/ijerph17197243
APA StyleAwokola, B. I., Okello, G., Mortimer, K. J., Jewell, C. P., Erhart, A., & Semple, S. (2020). Measuring Air Quality for Advocacy in Africa (MA3): Feasibility and Practicality of Longitudinal Ambient PM2.5 Measurement Using Low-Cost Sensors. International Journal of Environmental Research and Public Health, 17(19), 7243. https://doi.org/10.3390/ijerph17197243