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The use of TiO2 technologies in architecture for air purification in the city

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Warianty tytułu
PL
Technologie TiO2 w architekturze na rzecz czystego powietrza w mieście
Języki publikacji
EN PL
Abstrakty
EN
This paper explores the possibilities of the use of architectural design in benefiting the human condition in polluted cities and shows the role of art in shifting people's ideas about its influence on an urban wellbeing. The authors depict the possible usage of titanium dioxide (TiO2) technology as a component of building materials and its impact on clearing the atmosphere from nitrogen oxides. This research is focused on shaping the architectural form to promote light-active building materials for ecological thinking. The results of the academic research programme undertaken at WPUT (West Pomeranian University of Technology) in Szczecin, in cooperation with the Necmettin Erbakan University in Konya, are presented here.
PL
Artykuł bada możliwości wykorzystania form architektonicznych w celu poprawy kondycji ludzkiej w zanieczyszczonych miastach i pokazuje rolę sztuki w zmianie wyobrażeń ludzi o jej wpływie na wellbeing w mieście. Autorki przedstawiają możliwości wykorzystania technologii dwutlenku tytanu (TiO2) jako składnika materiałów budowlanych i jej wpływu na oczyszczanie atmosfery z tlenków azotu. Badania te koncentrują się na kształtowaniu formy architektonicznej w celu promowania światło aktywnych materiałów budowlanych na rzecz ekologicznego myślenia. Przedstawiono tu wyniki akademickiego programu badawczego podjętego w WPUT (Zachodniopomorski Uniwersytet Technologiczny) w Szczecinie, we współpracy z Necmettin Erbakan University w Konya, Turcja.
Czasopismo
Rocznik
Tom
Strony
61--76
Opis fizyczny
Bibliogr. 22 poz., rys., zdj.
Twórcy
  • Necmettin Erbakan University in Konya, Turkey Faculty of Arts and Architecture
  • West Pomeranian University of Technology in Szczecin, Poland. Faculty of Architecture, Department of History and Theory of Architecture
Bibliografia
  • [1] Air quality in Mexico, https://www.iqair.com/us/mexico/mexico-city Accessed 14.11.2022.
  • [2] Alfieri I., Lorenzi A.,Ranzenigo L., Lazzarini L., Predieri G., Lottici P.P.(2017). Synthesis and characterization of photocatalytic hydrophobic hybrid TiO2-SiO2 coatings for building applications, Building and Environment, Volume 111,Pages 72-79, ISSN 0360-1323.
  • [3] B. Borgogello, Palazzo Italia to get air purifying for EXPO 2015, New Atlas, Architetcure.com. Accessed:12.11.2022.
  • [4] Cardellicchio, L. (2020). Self-cleaning and colour-preserving efficiency of photocatalytic concrete: Case study of the Jubilee Church in Rome. Building Research & Information, 48(2), 160-179.
  • [5] Cavkaytar, Ö.; Soyer, Ö.U.; Şekerel, B.E. Türkiye’de Hava Kirliliğinden Kaynaklanan Sağlık Sorunları. Hava Kirliliği Araştırmaları Dergisi 2 (2013), pp. 105–111.
  • [6] Delibas, T., Marasli M. (2015). Self-cleaning and air purifying cement based GRC panels used in Tüpraş Rub project.
  • [7] EEA Report No 09/2020. Air quality in Europe — 2020 report. Publications Office of the European Union, Luxembourg 2020. doi:10.2800/786656.
  • [8] Graziani L., Quagliarini E., Osimani A., Aquilanti L., Clementi F., Yéprémian C., Lariccia V., Amoroso S., D'Orazio M., Evaluation of inhibitory effect of TiO2 nanocoatings against microalgal growth on clay brick façades under weak UV exposure conditions, Building and Environment, Volume 64,2013,Pages 38-45,ISSN 0360-1323.
  • [9] Guan, K. Relationship between photocatalytic activity, hydrophilicity and self-cleaning effect of TiO2/SiO2 films. Surface and Coating Technology 2005, vol.191, 2-3, pp. 155–160.
  • [10] Hashimoto, K., Irie, H., & Fujishima, A. (2005). TiO2 photocatalysis: a historical overview and future prospects.Japanese journal of applied physics, 44(12R), 8269.
  • [11] Januszkiewicz, K., Kowalski, K. G. (2019, September). Air Purification in Highly-Urbanized Areas with Use TiO2: New Approach to Design the Urban Public Space to Benefit Human Condition. In IOP Conference Series: Materials Science and Engineering (Vol. 603, No. 5, p. 052071). IOP Publishing.
  • [12] Jin, Q., Saad, E. M., Zhang, W., Tang, Y., & Kurtis, K. E. (2019). Quantification of NOx uptake in plain and TiO2-doped cementitious materials. Cement and Concrete Research, 122, 251-256.
  • [13] Lee, S., Kyung, D., Kim, J., & Kim, Y. (2019). Characteristics and Reducing Methods of Urban Particulate Matter, 19(5), 11-16.
  • [14] Masson-Delmotte V.; Zhai P.; Pörtner H.O.; Roberts D.; Skea J.; Shukla P.R.; Pirani A.; Moufouma-Okia W.; Péan C.; Pidcock R.; Connors S.; Matthews J.B.R.; Chen Y.; Zhou X.; Gomis M.I.; Lonnoy E.; Maycock T.; Tignor M., and Waterfield T. (eds.), IPCC, 2018: Summary for Policymakers. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty, 2018. In Press.
  • [15] Munafò, P., Goffredo, G. B., Quagliarini, E. (2015). TiO2-based nanocoatings for preserving architectural stone surfaces: An overview. Construction and Building Materials, 84, 201-218.
  • [16] Nikolov, N., Fox, J. T. (2014). Clean by Concrete: Use of Photocatalytic Concrete enables Buildings to be Passive Environmental Remediators. Research Journal of Engineering Sciences ISSN, 2278, 9472.
  • [17] Orhon, A. V. (2014). Sürdürülebilir çatı ve cephe sistemleri, 7. Ulusal Çatı & Cephe Sempozyumu, 3– 4 Nisan,Yıldız Teknik Üniversitesi, İstanbul.
  • [18] Ruggiero, L., Fidanza, M. R., Iorio, M., Tortora, L., Caneva, G., Ricci, M. A., & Sodo, A. (2020). Synthesis and characterization of TEOS coating added with innovative antifouling silica nanocontainers and TiO2 nanoparticles. Frontiers in Materials, 7, 185.
  • [19] Stanaway, J.; Murray, Ch.J.L.; Afshin A. Global, regional, and national comparative risk assessment of 84 behavioral, environmental and occupational, and metabolic risks or clusters of risks for 195 countries and territories, 1990-2017: a systematic analysis for the GBD Study 2017. The Lancet; 2018, 8, vol. 392, pp. 1923–1994.
  • [20] Towards Purer Air: A review of the latest evidence of the effectiveness of photocatalytic materials and treatments in tackling local air pollution. EIC – Environment Innovation Business. https://eic-uk.co.uk/media/baecbnd4/towards-purer-air.pdf Accessed 10.11.2022.
  • [21] Yatkin, S.; Bayram, A. Elemental composition and sources of particulate matter in the ambient air of a Metropolitan City. Atmospheric Research, 2007, Vol. 85, issue 1, pp. 126-139.
  • [22] Zaleska, A. (2008). Doped-TiO2: a review. Recent patents on engineering, 2(3), 157-164.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-f145a771-9a88-4854-bd59-199c73d5d7c1
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