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Economic aspects of reducing low-stack emission in Poland

Treść / Zawartość
Identyfikatory
Warianty tytułu
Konferencja
7th International Conference System Safety: Human - Technical Facility - Environment, CzOTO 2018 (7 ; 12-14.12.2018 ; Zakopane, Poland)
Języki publikacji
EN
Abstrakty
EN
The objective of the paper is to present the problem of low-stack emission in the economic and financial context. The paper presents the results of preliminary research based on literature review and environmental reports. After completing the selection of publications and data extraction, which could help to describe the issue raised, their analysis, comparison and generalization was conducted. The aspects presented may constitute a starting point in building a model of pricing the economic results of low-stack emission. In the first place the phenomenon of smog was subject to analysis, as one of the most significant consequences of low-stack emission, influencing health of human beings, environment and tangible assets. Then an attempt was made to express the previously identified results of low-stack emission in the economic and financial categories, taking into consideration the costs incurred for the purposes of completing the undertakings aimed at decreasing low-stack emission, costs avoided due to the decrease of the number of illnesses caused by low-stack emission, costs avoided due to the restriction of the negative influence of low-stack emission on the environment and on tangible assets as well as economic benefits achieved thanks to the reduction of low-stack emission.
Wydawca
Rocznik
Strony
343--351
Opis fizyczny
Bibliogr. 20 poz., rys.
Twórcy
autor
  • Silesian University of Technology, Poland
  • Silesian University of Technology, Poland
  • Silesian University of Technology, Poland
Bibliografia
  • [1] Ali, Y., Razi, M., De Felice, F., 2019. A VIKOR based approach for assessing the social, environmental and economic effects of smog on human health. Science of the Total Environment, Vol. 650, 2897-2905.
  • [2] Badyda, A., Gayer, A., Czechowski, P.O., Majewski, G., Dąbrowiecki, P., 2016. Pulmonary Function and Incidence of Selected Respiratory Diseases Depending on the Exposure to Ambient PM10. Iriti M, ed. International Journal of Molecular Sciences 17 (11).
  • [3] Chen, Y.-L., Shih, Y.-H., Tseng, C.-H., Kang, S.-Y., & Wang, H.-C., 2012. Economic and health benefits of the co-reduction of air pollutants and greenhouse gases. Mitigation and Adaptation Strategies for Global Change, 18(8), 1125–1139.
  • [4] Godzik, S., Hławiczka, P., Poborski, P., 1995. Smog – przyczyny – skutki – przeciwdziałania. Państwowa Inspekcja Ochrony Środowiska: Warsaw, Poland, pp.7 [In Polish].
  • [5] Gong, J., Hu, Y., Liu, M., Bu, R., Chang, Y., Li, C., Wu, W., 2017. Characterization of Air Pollution Index and Its Affecting Factors in Industrial Urban Areas in Northeastern China. Polish Journal of Environmental Studies 24 (4), 1579-159.
  • [6] HEAL Polska, 2017. www.waznamisjazdrowaemisja.pl/wywiady/ile-kosztuje-nasniska-emisja/ (accessed on 15th June 2017) [In Polish].
  • [7] Huete-Morales, M., Quesada-Rubio, J., Navarrete-Alvarez, E., Rosales-Moreno, M., Dei-Moral-Avila, M., 2017. Air Quality Analysis in the European Union. Polish Journal of Environmental Studies 26 (3), 1579-159.
  • [8] Jeschke, A., 2018. Public policy against smog in Poland. Alergoprofil, 14(2), 41–44. Google Scholar
  • [9] Kiciński, J., 2018. Smog - Poland’s pressing problem. Anti-smog technologies. E3S Web of Conferences, 46, 00027.
  • [10] Lee, Ch., Wang, K., 2019. Nash marginal abatement cost estimation of air pollutant emissions using the stochastic semi-nonparametric frontier. European Journal of Operational Research, Vol.: 273, Issue 1, 390-400.
  • [11] Leśniok, M., 2011. Changeability of Air Pollution in Katowice Region (Central Europe, Southern Poland). Advanced Air Pollution.
  • [12] Mokhtar, M.M., Hassim, M.H., Taib, R.M., 2014. Health risk assessment of emissions from a coal-fired power plant using AERMOD modelling. Process Safety and Environmental Protection, 92(5), 476–485.
  • [13] Okoro, H., Orimolade, B., Adebayo, G., Akande, B., Ximba, B., Ngila, J., 2017. An Assessment of Heavy Metals Contents in the Soil around a Cement Factory in Ewekoro, Nigeria Using Pollution Indices. Polish Journal of Environmental Studies 26 (1), 221-228.
  • [14] Sadlok, R. (ed.), 2014. Przeciwdziałanie niskiej emisji na terenach zwartej zabudowy mieszkalnej. Stowarzyszenie na rzecz efektywności energetycznej i rozwoju odnawialnych źródeł energii „HELIOS”: Bochnia, Poland [In Polish].
  • [15] Sensuła, BM., 2016. The Impact of Climate, Sulfur Dioxide, and Industrial Dust on δ18O and δ13C in Glucose from Pine Tree Rings Growing in an Industrialized Area in the Southern Part of Poland. Water, Air, and Soil Pollution 227 (4), 227-106.
  • [16] Smurzyńska, A., Czekała, W., Hektus, P., Marks, S., Mazurkiewicz, J., Brzoski, M., Chełkowski, D., Kozłowski, K., 2018. Poznań Air Pollution Analysis for 2015-2017. Journal of Ecological Engineering, Vol. 19, Issue 6, 162-169.
  • [17] Sówka, I., Bezyk, Y., 2018. Greenhouse gas emission accounting at urban level: A case study of the city of Wroclaw (Poland). Atmospheric Pollution Research, 9(2), 289–298.
  • [18] Szewczyńska, M., Dąbrowska, J., Pyrzyńska, K., 2017. Polycyclic Aromatic Hydrocarbons in the Particles Emitted from the Diesel and Gasoline Engines. Polish Journal of Environmental Studies 26 (2), 801-807.
  • [19] World Health Organization, 2015. Economic cost of the health impact of air pollution in Europe. Copenhagen, Denmark.
  • [20] www.teraz-srodowisko.pl/aktualnosci/Ponad-2-mld-zl-na-PGN-dla-Katowic-525.html (accessed on 20th June 2017) [In Polish].
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7efd3ca0-9477-4e8e-8998-c4d575fc34b4
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