Air Purification in Sustainable Buildings
Article Sidebar
Open full text
Issue Vol. 15 No. 2 (2020)
-
Covid-19, Environmental Engineering and the End of the World as We Know it
Artur Pawłowski7-14
-
Between Economy and Security. Dilemmas of Sustainable Development in the Covid-19 Era – an Example of Great Britain
Paweł Rydzewski15-21
-
The Impact of Air Quality on Population Migration
Ke Wang, Yiwei Wang, Chun-Ping Chang23-31
-
Clean and Green – The Volkswagen Emissions Scandal: Failure of Corporate Governance?
Stefan Poier33-39
-
How Does Indonesian Scientific Production on Renewable Energy Successfully Support the Policy Design? A Journey Towards Sustainable Energy Transition
Iqbal Akbar, Dhandy Arisaktiwardhana, Prima Naomi41-52
-
Agrobiodiversity in the Logic of Environmental Sustainability and Protection of Human Rights in the Context of International and European Union law
Piotr Krajewski53-60
-
Integrating Behavior Into Regional Resilience Concept for Sustainable Growth: An Example of Agricultural Sector
Agnė Žičkienė, Artiom Volkov, Tomas Baležentis, Dalia Štreimikienė61-73
-
On Religious and Cultural Principles of Environmental Protection
Ryszard F. Sadowski75-81
-
Who Will Speak for the Water and the Wildlife Conservation? Solving the Problems of Sustainable Development through Cause-related Marketing
Akansha Singh, Govind Swaroop Pathak83-91
-
The Idea of Sustainable Development in Reflection on the Meaning of Knowledge and Cognition
Agnieszka Klimska93-98
-
The Relationship Between Health Outcomes and Health Expenditure in Europe by Using Compositional Data Analysis
Magdaléna Drastichová, Peter Filzmoser99-110
-
The Principles of Sustainable Development and the Possibilities of Limiting the Global Effects of Smog by Medium-sized Cities Located in the European Union on the Example of Mikołów (Poland) and Żylina (Slovakia)
Michał Czuba111-119
-
Indicators of Sustainable Use of Wildlife: Problems of Formation and Implementation in the Russian Federation
Svetlana Ivanova121-130
-
Environmental Management Systems in the Context of Sustainable Development – the Identification of Open Problems
Marek Bugdol, Daniel Puciato, Tadeusz Borys131-142
-
The Analysis of Government Expenditures in the European Union
Florica Mioara Serban, Carmen- Elena Stoenoiu, Ciprian Cristea153-162
-
Transformation of the Socio-economic System and the Implementation of Automation Processes in Terms of Shaping Order and Sustainability Processes
Barbara Piontek163-173
-
Impact of Entrepreneurship Activity Sustainable Development
Ivona Huđek, Barbara Bradač Hojnik175-183
-
Evaluating the Social Sustainability Criteria of Supply Chain Management in Manufacturing Industries: A Role of BWM in MCDM
Maryam Khokhar, Yumei Hou, Muhammad Asim Rafique, Wasim Iqbal185-194
-
Carbon Sequestration in Soil as a Sustainable Way of Greenhouse Effect Mitigation
Grażyna Żukowska, Magdalena Myszura, Magdalena Zdeb, Małgorzata Pawłowska195-205
-
The Path of a Saint: Buddhaghosa’s Argument for Sustainable Development
Gyan Prakash205-209
-
The Philosophy of Perceiving the Human Environment from the Perspective of Environmental Social Psychology and Environmental Sociology (Implications for Sustainable Environmental and Health Security)
Mariusz Ciszek211-222
-
Town-planning Organization of the Baku Industrial Region: 19th – 20th Centuries
Nargiz Abdullayeva, Tarana Bakirova, Aytan Rahmanova223-234
-
World Experience in Public Administration of the Transformation of Energy-dependent Regions in the Context of Their Sustainable Development
Inna Zablodska, Yevhen Akhromkin, Andriy Akhromkin, Liubov Bielousova, Iryna Litvinova235-244
-
Air Purification in Sustainable Buildings
Amelia Staszowska245-252
Archives
-
Vol. 17 No. 2
2022-07-04 26
-
Vol. 17 No. 1
2022-01-03 28
-
Vol. 16 No. 2
2021-07-01 26
-
Vol. 16 No. 1
2021-01-04 24
-
Vol. 15 No. 2
2020-07-01 24
-
Vol. 15 No. 1
2020-01-02 24
-
Vol. 14 No. 2
2019-07-01 20
-
Vol. 14 No. 1
2019-01-02 20
-
Vol. 13 No. 2
2023-10-15 22
-
Vol. 13 No. 1
2018-01-02 23
Main Article Content
DOI
Authors
Abstract
This paper concerns the issue of indoor air purification techniques in sustainable public buildings and the residential sector. One of the requirements of sustainable construction is to reduce the energy costs, minimize waste, improve the well-being of users and create green space. The most important certification systems for green (ecological) buildings such as LEED or BREEAM also include the assessment of the indoor environment in terms of the air quality, noise level, building acoustics and energy consumption. Traditional air treatment and purification systems require the use of numerous devices, air transport systems, which are energy-consuming. It is necessary to clean or replace the working elements periodically. The alternative is biophilic installations (green walls) based on the natural properties of plants for removing gaseous pollutants, particulate matter and even bioaerosols from the air. Plants improve humidity, regulate the carbon dioxide concentration, ionize the air and suppress noise. However, the processes of photocatalytic degradation of gaseous compounds are a very promising method of removing impurities, due to low costs, mild process conditions (temperature and pressure) and the possibility of complete mineralization of impurities.
Keywords:
References
ABBASS O.A., SAILOR D.J., GALL E.T., 2017, Effectiveness of indoor plants for passive removal of indoor ozone, in Building and Environment, 119, p. 62-70. DOI: https://doi.org/10.1016/j.buildenv.2017.04.007
BAUER M., MŐSLE P., SWARZ M., 2010, Green Building. Guidebook for sustainable architecture, Springer. DOI: https://doi.org/10.1007/978-3-642-00635-7
BINAS V., VENIERI D., KOTZIAS D., KIRIAKIDIS G., 2017, Modified TiO2 based photocatalysts for improved air and health, in: Journal of Materiomics, 3, p. 3-16. DOI: https://doi.org/10.1016/j.jmat.2016.11.002
BIELNIAK S., GŁUSZAK M., ZIĘBA M., 2013, Budownictwo ekologiczne. Aspekty ekonomiczne, PWN, Warsaw.
DARLINGTON A., CHAN M., MALLOCH D., PILGER C., DIXON M.A., 2010, The biofiltration of indoor air: implications for air quality, 2010, in: Indoor Air, 10, p. 39-46. DOI: https://doi.org/10.1034/j.1600-0668.2000.010001039.x
DELA CRUZ M., CHRISTENSEN J.H., THOMSEN J.D, MULLER R., 2014, Can ornament potted plants remove volatile organic compounds from indoor air? in: Environmental Science and Pollution Research, 21, p. 13909-13928. DOI: https://doi.org/10.1007/s11356-014-3240-x
DUDZIŃSKA M., STASZOWSKA A., POŁEDNIK B., , Preliminary study of effect of furniture and finishing materials on formaldehyde concentration in office rooms, in: Environmental Protection Engineering, 35, p. 225-233.
FIRLĄG S., 2018, Zrównoważone budynki biurowe, PWN, Warsaw.
FENG H., HEWAGE K., 2014, Lifecycle assessment of living walls: air purification and energy performance, in: Journal of Cleaner Production, 69, p. 91-99. DOI: https://doi.org/10.1016/j.jclepro.2014.01.041
GALENDA A., VISENTIN F., GERBASI R., FANERO M., BERNARDI A., EL HEBRA N., 2018, Evaluation of self-cleaning photocatalytic paints: are they effective under actual indoor lighting systems? in: Applied Catalysis B: Environmental, 232, p. 194-204. DOI: https://doi.org/10.1016/j.apcatb.2018.03.052
GAWROŃSKA H., BAKERA B., 2015, Phytoremediation of particulate matter from indoor air by Chlorophytum comosum L. plants, in: Air Quality, Atmosphere & Health, 8, p.265-272. DOI: https://doi.org/10.1007/s11869-014-0285-4
GUBB C., BLANUSA T., GRIFFITHS A., PFRANG C., 2018, Can houseplants improve indoor air quality by removing CO2 and increasing relative humidity? in: Air Quality, Atmosphere & Health, 11, p. 1191-1201. DOI: https://doi.org/10.1007/s11869-018-0618-9
GUNAWARDENA K., STEEMERS K., 2019, Living walls in indoor environments, in: Building and Environment, 148, p. 478-487. DOI: https://doi.org/10.1016/j.buildenv.2018.11.014
HAN K., ZHANG J.S., GUO B., 2014, A novel approach of integrating ventilation and air cleaning for sustainable and healthy office environments, in: Energy and Buildings, 76, p. 32-42. DOI: https://doi.org/10.1016/j.enbuild.2014.02.055
HORR Y., ARIF M., KAUSHIK A., MAZROESI A., KATAFYGIOTOU M., ELSARRAG E., 2016, Occupant productivity and office indoor environment quality: a review of the literature, in: Building and Environment, 105, p. 369-389. DOI: https://doi.org/10.1016/j.buildenv.2016.06.001
HUSEIEN G.F., SHAH K.W., SAM A.R.M., 2019, Sustainability of nanomaterials based self-healing concrete: an all-inclusive insight, in: Journal of Building Engineering, 23, p. 155-171. DOI: https://doi.org/10.1016/j.jobe.2019.01.032
IRGA P.J., PETTIT T.J., TORPY F.R., 2018, The phytoremediation in indoor air pollution: a review on the technology development from the potted plant through to functional green wall biofilters, in: Reviews of Environmental Science Biotechnology, 17, p. 395-415. DOI: https://doi.org/10.1007/s11157-018-9465-2
KELLY F.J., FUSSEL J., 2019, Improving indoor air quality, health and performance within environments where people live, travel, learn and work, in: Atmospheric Environment, 200, p. 90-109. DOI: https://doi.org/10.1016/j.atmosenv.2018.11.058
KIM K.J., KHALEKUZZAMAN M., SUH J.N., KIM H.J., SHAGOL S., KIM H.H., 2018, Phytoremediation of volatile organic compounds by indoor plants, in: Horticulture, Environment, and Biotechnology, 59, p. 143-157. DOI: https://doi.org/10.1007/s13580-018-0032-0
KOTZIAS D., PILIDIS G., 2017, Building design and indoor air quality – experience and prospects, in: Fresenius Environmental Bulletin, 26(1), p. 323- 326.
LIU G., XIAO M., ZHANG X., et al., 2017, A review of air filtration technologies for sustainable and healthy building ventilation, in: Sustainable Cities and Society, 32, p. 375-396. DOI: https://doi.org/10.1016/j.scs.2017.04.011
LORENCIK S., YU Q.L., BROUWERS H.J.H, 2016, Photocatalytic coating for indoor air purification: synergetic effect of photocatalyst dosage and silica modification, in: Chemical Engineering Journal, 306, p. 942-952. DOI: https://doi.org/10.1016/j.cej.2016.07.093
LÓPEZ C.D., CARPIO M., MARTÍN-MORALES M., ZAMORANO M., 2019, A comparative analysis of sustainable building assessment methods, in: Sustainable Cities and Society, 49, p.101611. DOI: https://doi.org/10.1016/j.scs.2019.101611
LUENGAS A., BARONA A., HORT C., 2015, A review of indoor air treatment technologies, in: Reviews in Environmental Science and Biotechnology, 14, p. 499-522. DOI: https://doi.org/10.1007/s11157-015-9363-9
MASSEY D.D., HABIL M., TANEJA A., 2016, Particles in different indoor microenvironments - its implications on occupants, in: Building and Environment, 106, p. 237-244. DOI: https://doi.org/10.1016/j.buildenv.2016.06.036
MARCHWIŃSKI J., ZIELONKA-JUNG K., 2014, Współczesna architektura proekologiczna, PWN, Warsaw.
MIDOUHAS E., KOKOSI T., FLOURI E., 2018, Outdoor and indoor air quality and cognitive ablility in young children, in: Environmental Research, 161, p. 321-328. DOI: https://doi.org/10.1016/j.envres.2017.11.026
MORAWSKA L., AYOKO G.A., BAE G.N. et al., 2017, Airborne particles in indoor environment of homes, schools, offices and aged care facilities: the main routes of exposure, in: Environmental International, 108, p. 75-83. DOI: https://doi.org/10.1016/j.envint.2017.07.025
MOYA T.A., VAN DEN DOBBELSTEEN A., OTTELÉ M., BLUYSSEN P.M., 2019, A review of green systems within the indoor environment, in: Indoor and Built Environment, 28(3), p. 298-309. DOI: https://doi.org/10.1177/1420326X18783042
NATH R.K., ZAIN M.F., JAMIL M., 2016, An environment-friendly solution for indoor air purification by using renewable photocatalysts in concrete: a review, in: Renewable and Sustainable Energy Reviews, 62, p. 1184-1194. DOI: https://doi.org/10.1016/j.rser.2016.05.018
PAWŁOWSKI A., 2011, Sustainable Development as a Civilizational Revolution, A Multidisciplinary Approach to the Challenges of the 21st Century, Taylor & Francis Group, CRC Press, Balkema, Boca Raton, London, New York, Leiden.
PETTIT T., IRGA P.J., ABDO P., TORPY F.R., 2015, Do the plants in functional green walls contribute to their ability to filter particulate matter? in: Building and Environment, 125, p. 299-307. DOI: https://doi.org/10.1016/j.buildenv.2017.09.004
PETTIT T., IRGA P.J., TORPY F.R., Towards practical indoor air phytoremediation: a review, Chemosphere, 2018, 208, 960-974. DOI: https://doi.org/10.1016/j.chemosphere.2018.06.048
RAJI B., TENPIERIK M.J., VAN DEN DOBBELSTEEN A., 2015, The impact of greening systems on building energy performance: A literature review, in: Renewable and Sustainable Energy Reviews, 45, p. 610-623. DOI: https://doi.org/10.1016/j.rser.2015.02.011
REN H., KOSHY P., CHEN W.F., SORRELL C.C., 2017, Photocatalytic materials and technologies for air purification, in: Journal of Hazardous Materials, 325, p. 340-366. DOI: https://doi.org/10.1016/j.jhazmat.2016.08.072
SOREANU G., DIXON M., DARLINGTON A., 2013, Botanical biofiltration of indoor gaseous pollutants – a mini review, in: Chemical Engineering Journal, 229, p. 585-594. DOI: https://doi.org/10.1016/j.cej.2013.06.074
STEINEMANN A., WARGOCKI P., RISMANCHI B., 112, Ten questions concerning green buildings and indoor air quality, in: Building and Environment, 112, p. 351-358. DOI: https://doi.org/10.1016/j.buildenv.2016.11.010
THAM K.W., 2016, Indoor air quality and its effects on humans – a review of challenges and developments in the last 30 years, in: Energy and Buildings, 130, p. 637-650. DOI: https://doi.org/10.1016/j.enbuild.2016.08.071
TUDIWER D., KORJENIC A., 2017, The effect of an indoor living wall system on humidity, mould spores and CO2 concentration, in: Energy and Buildings, p. 146, 73-86. DOI: https://doi.org/10.1016/j.enbuild.2017.04.048
UN, 2015, Sustainable Development Goals, https://www.un.org/sustainabledevelopment (1.06. 2017).
WHO Regional Office for Europe, 2009, Guidelines for indoor air quality, Dampness and moulds, Druckpartner Moser.
WHO Regional Office for Europe, 2010, Guidelines for indoor air quality, Selected pollutants, in puncto druck+medien.
ZHONG L., HAGHIGHAT F., 2015., Photocatalytic air cleaners and materials technologies – abilities and limitations, in: Building and Environment, 91, p. 191-203. DOI: https://doi.org/10.1016/j.buildenv.2015.01.033
Article Details
Abstract views: 179
License

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.
