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Abstrakty
In recent years, smart home automation has become increasingly accessible, largely due to the availability of affordable and easy-to-implement electronic systems for control and measurement. While ready-made systems are widely available, self-designed solutions offer significant advantages, including tailored adaptation to user needs, low cost, ease of modification and expansion, and the ability for self-maintenance. This article presents a custom system designed for microclimate control in living spaces. The hardware components and control algorithms are thoroughly described, providing a foundation and inspiration for similar installations. Additionally, the article includes sample results demonstrating the system’s effectiveness in adapting the microclimate to the user’s comfort and preferences.
Słowa kluczowe
Rocznik
Tom
Strony
5--18
Opis fizyczny
Bibliogr. 24 poz., rys., wykr.
Twórcy
autor
- Faculty of Technical Sciences, University of Warmia and Mazury in Olsztyn
autor
- Katedra Elektrotechniki, Energetyki, Elektroniki i Automatyki, Wydział Nauk Technicznych, Uniwersytet Warmińsko-Mazurski, ul. 11 Oczapowskiego, 10-719 Olsztyn
autor
- Faculty of Technical Sciences, University of Warmia and Mazury in Olsztyn
Bibliografia
- Air quality guidelines for Europe. 2000. (2nd ed.) WHO Regional Publications, European Series, 91. World Health Organization, Geneva.
- Air Quality Guidelines. Particulate matter, ozone, nitrogen dioxide and sulfur dioxide. 2005. World Health Organization, Geneva.
- ALLEN J.G., MACNAUGHTON P., SATISH U., SANTANAM S., VALLARINO J., SPENGLER J.D. 2016. Associations of cognitive function scores with carbon dioxide, ventilation, and volatile organic compound exposures in office workers: a controlled exposure study of green and conventional office environments. Environmental Health Perspectives, 124(6): 805-812.
- AZUMA K., KAGI N., YANAGI U., OSAWA H. 2018. Effects of low-level inhalation exposure to carbon dioxide in indoor environments: A short review on human health and psychomotor performance. Environment International, 121: 51-56.
- BLUYSSEN P.M. 2009. The indoor environment handbook: how to make buildings healthy and comfortable. Earthscan, London/New York.
- CUI W., CAO G., PARK J.H., OUYANG Q., ZHU Y. 2013. Influence of indoor air temperature on human thermal comfort, motivation and performance. Building and Environment, 68: 114-122.
- DAFTARY A.S., DETERDING R.R. 2011. Inhalational lung injury associated with humidifier “white dust”. Pediatrics, 127(2): e509-e512.
- DERBY M.M., HAMEHKASI M., ECKELS S., HWANG G.M., JONES B., MAGHIRANG R., SHULAN D. 2017. Update of the scientific evidence for specifying lower limit relative humidity levels for comfort, health, and indoor environmental quality in occupied spaces (RP-1630). Science and Technology for the Built Environment, 23(1): 30-45.
- HURRASS J., HEINZOW B., AURBACH U., BERGMANN K.C., BUFE A., BUZINA W., CORNELY O.A., ENGELHART S., FISCHER G., GABRIO T., HEINZ W., HERR C.E.W., KLEINE-TEBBE J., KLIMEK L., KÖBERLE M., LICHTNECKER H., LOB-CORZILIUS T., MERGET R., MÜLLENEISEN N., NOWAK D., RABE U., RAULF M., SEIDL H.P., STEIß J.-O., SZEWSZYK R., THOMAS P., VALTANEN K., WIESMUELLER G.A. 2017. Medical diagnostics for indoor mold exposure. International Journal of Hygiene and Environmental Health, 220(2): 305-328.
- KWAŚNIEWSKI J. 2011. Smart home and other control systems in 100 examples. BTC, Legionowo.
- LI S., WU W., WANG G., ZHANG X., GUO Q., WANG B., CAO S., YAN M., PAN X., XUE T., GONG J., DUAN X. 2022. Association between exposure to air pollution and risk of allergic rhinitis: a systematic review and meta-analysis. Environmental Research, 205: 112472.
- LIPIŃSKI S., OLKOWSKI T., PYCH P. 2018. Didactic development of a control system and control of steam boiler operating parameters using a programmable controller. Education-Technology-Computer Science, 9(2): 304-310.
- MUJAN I., ANĐELKOVIĆ A.S., MUNĆAN V., KLJAJIĆ M., RUŽIĆ D. 2019. Influence of indoor environmental quality on human health and productivity – A review. Journal of Cleaner Production, 217: 646-657.
- PANTELIC J., LIU S., PISTORE L., LICINA D., VANNUCCI M., SADRIZADEH S., GHAHRAMANI A., GILLIGAN B., STERNBERG E., KAMPSCHROER K., SCHIAVON, S. 2020. Personal CO2 cloud: laboratory measurements of metabolic CO2 inhalation zone concentration and dispersion in a typical office desk setting. Journal of Exposure Science & Environmental Epidemiology, 30(2): 328-337.
- PÉREZ-PADILLA R., SCHILMANN A., RIOJAS-RODRIGUEZ H. 2010. Respiratory health effects of indoor air pollution. The International Journal of Tuberculosis and Lung Disease, 14(9): 1079-1086.
- PISELLO A.L., CASTALDO V.L., TAYLOR J.E., COTANA F. 2016. The impact of natural ventilation on building energy requirement at inter-building scale. Energy and Buildings, 127: 870-883.
- SALVADE C., TASSO V., CARLONI F., SANTAMBROGIO M.D. 2023. Improving sleep quality through an arduino-based environment sleep monitoring system. IEEE EUROCON 2023 – 20th International Conference on Smart Technologies, p. 6-11.
- SATISH U., MENDELL M.J., SHEKHAR K., HOTCHI T., SULLIVAN D., STREUFERT S., FISK W.J. 2012. Is CO2 an indoor pollutant? Direct effects of low-to-moderate CO2 concentrations on human decision-making performance. Environmental Health Perspectives, 120(12): 1671-1677.
- SHAHIDI R., GOLMOHAMMADI R., BABAMIRI M., FARADMAL J., ALIABADI M. 2021. Effect of warm/cool white lights on visual perception and mood in warm/cool color environments. EXCLI Journal, 20: 1379.
- TOFTUM J., FANGER P. O. 1999. Air humidity requirements for human comfort. ASHRAE Transactions, 40(8): 35-41.
- VEHVILÄINEN T., LINDHOLM H., RINTAMÄKI H., PÄÄKKÖNEN R., HIRVONEN A., NIEMI O., VINHA J. 2016. High indoor CO2 concentrations in an office environment increases the transcutaneous CO2 level and sleepiness during cognitive work. Journal of Occupational and Environmental Hygiene, 13(1): 19-29.
- WHO global air quality guidelines: particulate matter (PM2.5 and PM10), ozone, nitrogen dioxide, sulfur dioxide and carbon monoxide. 2021. World Health Organization, Geneva.
- WOLAŃSKI P. 2016. The influence of internal air pollution on the indoor microclimate and human health. Archives of Waste Management and Environmental Protection, 18(3).
- WOLKOFF P., AZUMA K., CARRER P. 2021. Health, work performance, and risk of infection in office-like environments: The role of indoor temperature, air humidity, and ventilation. International Journal of Hygiene and Environmental Health, 233: 113709.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-233ad731-c19b-4e48-8100-50b6b9361f3a
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