The Analysis of the Effectiveness of Implementing Emission Reduction Measures in Improving Air Quality and Health of the Residents of a Selected Area of the Lower Silesian Voivodship
Abstract
:1. Introduction
- lignite and solid fuels manufactured with lignite
- coal sludges, coal flotoconcentrates and mixtures manufactured with them
- hard coal in fine form (fine coal) with grain size less than 3 mm
- solid biomass (including wood) with moisture content above 20%.
- measuring (monitoring) concentrations of selected pollutants,
- mathematical modeling of transformation in the atmosphere and transport of pollution,
- objective estimation, based on various methods and information, including the spatial distribution and activity of pollution emission sources.
- air quality plans and programs for corrective measures aimed at achieving and/or maintaining appropriate level of air quality
- analysis of the effects of implementing specific solutions (scenario analysis)
- analysis of the impact of air pollution on specific social groups and other environment elements, such as vegetation or materials (e.g., buildings or technical facilities)
- air quality forecasting, considering emission sources and meteorological conditions
- informing the public and policymakers about historical, current and predicted air quality.
2. Characteristics of the Research and Analysis Area
3. Materials and Methods
3.1. Mathematical Modeling and Available Input Data
3.1.1. Emission Data
3.1.2. Validation of Modeling Results in the Base Year
3.1.3. Emission Change Scenarios
3.2. Health Risk Assessment
4. Results
4.1. Meteorological Conditions in the Base Year
4.2. The Results of Air Quality Modeling
4.2.1. Annual Mean PM10 Concentrations
4.2.2. Annual Mean PM2.5 Concentrations
4.3. Assessment of the Effectiveness of the Implementation of Various Scenarios Based on the Results of Health Risk Analyses
5. Summary and Final Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Purpose of Activities | International Level | National Level | Regional Level | Local Level |
---|---|---|---|---|
Air quality assessment (diagnosis) | Analyses regarding air quality in Europe and its impact on health and the mortality rate of society conducted by the European Environment Agency and the cooperating European Topic Centre on Air Pollution, Transport, Noise and Industrial pollution https://www.eea.europa.eu/themes/air Air quality analyses on a continental and regional scale, developed and published as part of the European CAMS (Copernicus Atmosphere Monitoring Service) project https://atmosphere.copernicus.eu/ Air quality analyses in Europe carried out under the EMEP Programme implemented under the Convention on Long-Range Transboundary Air Pollution (LRTAP) https://emep.int/mscw/mscw_moddata.html | Assessment of air quality carried out as part of the SEM * by CIEP **, including identification and analysis of situations and areas of exceedance in individual zones of the country, e.g., with the use of modeling provided by IEP-NRI *** http://powietrze.gios.gov.pl/pjp/publications/card/19100 Identification of episodes of high concentrations of particulate matter in Poland and neighboring countries, considering the aspect of transboundary pollution transfer http://powietrze.gios.gov.pl/pjp/publications/card/2052 Analyses of air quality in Poland performed by West and East Meteorological Synthesizing Centers operating under the Convention on Long-Range Transboundary Air Pollution (LRTAP) https://www.emep.int/mscw/mscw_publications.html http://en.msceast.org/index.php/publications/reports?id=204 | Additional diagnostic analyses performed for the purposes of developing Air Protection Programmes for voivodships (e.g., identification of the share of emission sources) http://bip.umwd.dolnyslask.pl/dokument,iddok,51944,idmp,293,r,r | Air quality analyses at city level, with impact assessment of specific emission sources. https://journals.pan.pl/dlibra/show-content?id=102486& https://laqm.defra.gov.uk/ Impact analysis for specific groups of emission sources, industrial facilities or installations, with health impact assessment http://life-apis.meteo.uni.wroc.pl/ |
Programming and designing of activities | Sectoral analyses at European Union level, e.g., emissions control strategy analyses using the GAINS **** model http://gains.iiasa.ac.at/gains/emissions.EU/index.menu?page=303 Analyses related to the development and implementation of legislative solutions (e.g., EU directives), e.g., Air Quality–Fitness Check of the AAQ Directives ***** conducted by the European Commission https://ec.europa.eu/environment/air/quality/aqd_fitness_check_en.htm | Sectoral analyses on a national scale https://bip.mos.gov.pl/strategie-plany-programy/krajowy-program-ograniczania-zanieczyszczenia-powietrza/ https://nfosigw.gov.pl/download/gfx/nfosigw/pl/nfoekspertyzy/858/92/1/2011-160.pdf https://www.gov.pl/web/aktywa-panstwowe/zaktualizowany-projekt-polityki-energetycznej-polski-do-2040-r Scenarios and long-term forecasts related to adopting legal and organizational solutions at national level, e.g., implemented at the request of CIEP http://powietrze.gios.gov.pl/pjp/content/air_quality_forecast_long_term | Development of air protection programs, including scenario analysis and assessment of the effectiveness of corrective actions at the voivodship level. https://www.mazovia.pl/ekologia-i-srodowisko/ochrona-powietrza/ Analyses related to the development of regional anti-smog resolutions https://irt.wroc.pl/pliki/ekspertyza_wskazujaca_efekt_ekologiczny_w_dolnoslaskich_uzdrowiskach/index.html | Analyses of local corrective action scenarios https://bip.um.wroc.pl/artykul/643/25539/ograniczenia-niskiej-emisji-z-indywidualnego-ogrzewania-weglowego-na-terenie-wroclawia-w-latach-2016-2020 Estimating the impact of implementing local policies and programs on air quality (e.g., in commune, city or health resort) https://bip.um.wroc.pl/artykul/643/25539/ograniczenia-niskiej-emisji-z-indywidualnego-ogrzewania-weglowego-na-terenie-wroclawia-w-latach-2016-2020 Environmental impact assessment of projects, including the potential impact of planned installations on air quality https://bip.gmstrzelin.finn.pl/res/serwisy/pliki/17237287?version=1.0 Analysis of the effectiveness of designed mechanisms and techniques for reducing air emissions http://raportyspoleczne.pl/wp-content/uploads/raports/efeb6cc9f3e11a50f68503b53485a5c9.pdf Estimating the effects of implementing organizational and technological solutions at the city level (e.g., changing the communication system, introducing Intelligent Transport Systems, etc.) https://its.tychy.pl |
Forecasting and information | Regional air quality forecasts published as part of the CAMS project https://atmosphere.copernicus.eu/ Information on air quality in Europe (European Air Quality Index) based on measurement and modeling results (forecasts) implemented by the European Environment Agency https://airindex.eea.europa.eu/ Current and forecasted air quality information obtained using modeling, made available on an open and commercial basis on the BreezoMeter website https://breezometer.com/ | Short-term air quality forecasts on a national scale performed by the IOŚ-PIB and published by CIEP http://powietrze.gios.gov.pl/pjp/airPollution. | Regional air quality forecasts and information services http://powietrze.podkarpackie.pl/ https://powietrze.malopolska.pl/jakosc-powietrza/ http://powietrze.gios.gov.pl/pjp/airPollution?woj=mazowieckie&rwms=true | Local small-scale air quality forecasts, considering specific conditions of topography, development and arrangement of emission sources https://air.wroclaw.pios.gov.pl/prognozyhttp://life-apis.meteo.uni.wroc.pl/ http://powietrze.pwr.edu.pl/ https://www.londonair.org.uk |
Emission Sources | PM10 (Mg/Year) | PM2.5 (Mg/Year) |
---|---|---|
Point source emitters | 375.6 | 194.7 |
Fugitive emission | 60.3 | 23.8 |
Emission Sources | PM10 (Mg/Year) | PM2.5 (Mg/Year) |
---|---|---|
Mining | 47.7 | 12.4 |
Backfilling | 860.90 | 344.36 |
Coal bin with a coal transfer point | 22.93 | 5.94 |
Coal sorting area | 0.11 | 0.03 |
Retail point of sales area | 0.0007 | 0.0002 |
Wheeled transport | 3.73 | 0.9 |
Total | 935.37 | 363.63 |
Monitoring Station Name | Parameter | Measurement (µg/m3) | Model (µg/m3) | Relative Error (%) |
---|---|---|---|---|
Wyszków (ELT station) | PM10 year | 20.84 | 18.70 | −10 |
PM2.5 year | 15.52 | 14.77 | −5 | |
Jasna Góra, ul. Sportowa (ELT Station) | PM10 24 h | 36.54 | 31.89 | −13 |
PM10 year | 22.58 | 19.83 | −12 | |
Bogatynia, ul. Chopina (ELT station) | PM10 year | 30.20 | 30.15 | 0 |
PM2.5 year | 20.75 | 20.61 | −1 | |
Działoszyn/DSDzialoszyn (SEM station) | PM10 year | 28.93 | 19.81 | −32 |
Zittau (DE) | PM10 year | 21.70 | 22.65 | 4 |
Frýdlant (CZ) | PM10 year | 18.0 | 17.4 | −3 |
Emission Source | PM10 (Mg/Year) | PM2.5 (Mg/Year) | PM10 (Mg/Year) | PM2.5 (Mg/Year) | PM10 (Mg/Year) | PM2.5 (Mg/Year) |
---|---|---|---|---|---|---|
Scenario 1 | Scenario 2 | Scenario 3 | ||||
KWBT | 521.51 | 207.88 | 935.37 | 363.63 | 521.51 | 207.88 |
ELT | 435.3 | 218.49 | 435.3 | 218.49 | 435.3 | 218.49 |
Household heating | 452.8 | 349.3 | 19 | 18.1 | 19 | 18.1 |
Road transport | 104.39 | 34.34 | 104.39 | 34.34 | 104.39 | 34.34 |
Oth. industry | 0.56 | 0.28 | 0.56 | 0.28 | 0.56 | 0.28 |
Czechia and Germany | 226.8 | 213.65 | 226.8 | 213.65 | 226.8 | 213.65 |
Total | 1741.36 | 1023.94 | 1721.42 | 848.49 | 1307.56 | 692.74 |
Action | Location of Action | Effectiveness of Action |
---|---|---|
Spraying of working levels (water cannons) | Open-pit area (backfilling and operation area) | Up to 60% |
Securing the top of the backfill area, which will be backfilled again or redeposited | The open-pit region | Depending on the degree of land cover (reduction of emissions to 100%) |
Organization of work control system depending on weather conditions | Open-pit area and coal bin | 20–100% |
Housing of selected sections of conveyor belts with particular emphasis on ash lines | Open-pit area and coal bin | Up to 70–85% |
Water mist installations in transfer nodes | Open-pit area and coal bin | Up to 90% |
Limiting the height of free falling of dusting material | Open-pit area and coal bin | Depending on the degree of reduction, e.g., reduction of height by 50%; reduction of emissions by around 60% |
Building on selected transfer node | Coal bin | 100% |
Windscreen assembly | Coal bin | 70–80% |
Sprinkling of technical roads | Coal bin/transport | Up to 60% |
Regular road washing | Coal bin/transport | 50% |
Reduction of car traffic on the “coal road” by 50% | Coal bin/transport | 40–50% |
Reducing brown coal sales including liquidation of sales to domestic retail customers | Coal bin/retail sale | Up to 90% |
Scenario | Annual Mean PM2.5 Concentration | Estimated Total Number of Premature Deaths (95% CI) | |
---|---|---|---|
Arithmetic Average (95% CI) | Population Weighted Average | ||
(µg/m3) | (µg/m3) | - | |
Baseline scenario | 17.1 (10.4:23.9) | 19.3 | 122.2 (78.8:163.6) |
Including the mine’s influence | 1.01 (−2.1:4.1) | 1.4 | 9.0 (5.8:12.0) |
Scenario 1 | (16.1 19.8) | 18.3 | 116.2 (75.0:155.6) |
Scenario 2 | 15.9 (9.7:22.0) | 16.5 | 104.6 (67.5:140.1) |
Scenario 3 | 14.9 (12.8: 16.9) | 15.5 | 98.6 (63.6:132.0) |
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Sówka, I.; Paciorek, M.; Skotak, K.; Kobus, D.; Zathey, M.; Klejnowski, K. The Analysis of the Effectiveness of Implementing Emission Reduction Measures in Improving Air Quality and Health of the Residents of a Selected Area of the Lower Silesian Voivodship. Energies 2020, 13, 4001. https://doi.org/10.3390/en13154001
Sówka I, Paciorek M, Skotak K, Kobus D, Zathey M, Klejnowski K. The Analysis of the Effectiveness of Implementing Emission Reduction Measures in Improving Air Quality and Health of the Residents of a Selected Area of the Lower Silesian Voivodship. Energies. 2020; 13(15):4001. https://doi.org/10.3390/en13154001
Chicago/Turabian StyleSówka, Izabela, Małgorzata Paciorek, Krzysztof Skotak, Dominik Kobus, Maciej Zathey, and Krzysztof Klejnowski. 2020. "The Analysis of the Effectiveness of Implementing Emission Reduction Measures in Improving Air Quality and Health of the Residents of a Selected Area of the Lower Silesian Voivodship" Energies 13, no. 15: 4001. https://doi.org/10.3390/en13154001
APA StyleSówka, I., Paciorek, M., Skotak, K., Kobus, D., Zathey, M., & Klejnowski, K. (2020). The Analysis of the Effectiveness of Implementing Emission Reduction Measures in Improving Air Quality and Health of the Residents of a Selected Area of the Lower Silesian Voivodship. Energies, 13(15), 4001. https://doi.org/10.3390/en13154001