Publikowanie artykułów jest możliwe po podpisaniu zgody na przeniesienie licencji na czasopismo.
The rising demand for building cooling underscores the need to evaluate passive thermal strategies that limit solar heat gain while maintaining acceptable indoor conditions for occupants. This study assesses residential shading systems in a dual-chamber experiment in Poznań, Poland (August 2024), comparing fully and partially deployed external roller blinds, internal roller blinds, and fixed eaves. Fully lowered external blinds stabilised indoor temperatures around 26.5–27.0°C with about ±1.0°C spatial variation and produced the largest reductions, including notable attenuation of near-window temperature peaks. Half-lowered external blinds retained most of the thermal benefit relative to full closure while still admitting daylight, suggesting a practical compromise between cooling performance and perceived space quality. Internal “day/night” blinds provided moderate reductions compared to unshaded conditions but typically maintained indoor air about 1°C warmer than with external blinds, reflecting lower heat-gain mitigation. Fixed eaves sized to half the window height had minimal impact on average indoor temperature and were strongly constrained by solar geometry and orientation. Overall, the results establish comparative performance baselines for indoor air temperature and support layered, context-specific shading strategies deploying external blinds where peak mitigation is critical, partial deployment when some daylight admission is desired, and internal blinds for cost-effective flexibility in controlling solar gains.
[1] Gomes M., Santos A., Calhau M., Experimental study on the impact of double tilted Venetian blinds on indoor daylight conditions. Building and Environment 225 (2022) 109675. https://doi.org/10.1016/j.buildenv.2022.109675
[2] Fedorczak-Cisak M., Nowak K., Furtak M., Analysis of the effect of using external Venetian blinds on the thermal comfort of users of highly glazed office rooms in a transition season of temperate climate – Case study. Energies 13 (2019) 81. https://doi.org/10.3390/en13010081
[3] Djokovic J., Nikolić R., Bokuvka O., Pastorková J., Influence of window roller blinds on energy consumption in residential buildings in Serbia. System Safety: Human - Technical Facility - Environment 5 (2023) 75–82. https://doi.org/10.2478/czoto-2023-0009
[4] Gomes M.G., Santos A.J., Rodrigues A.M., Solar and visible optical properties of glazing systems with venetian blinds: numerical, experimental and blind control study. Building and Environment 71 (2014) 47–59. https://doi.org/10.1016/j.buildenv.2013.09.003
[5] Kim M., Leigh S.B., Kim T., Cho S., A study on external shading devices for reducing cooling loads and improving daylighting in office buildings. Journal of Asian Architecture and Building Engineering 14 (2015) 687–694. https://doi.org/10.3130/jaabe.14.687
[6] European Commission, Directive 2018/844, 2018.
[7] Lu S., Li Z., Zhao Q., Thermal process of windows in hot summer and cold winter climate. Building and Environment/Procedia Engineering 121 (2015) 1788–1794. https://doi.org/10.1016/j.proeng.2015.09.158
[8] Guan L., The influence of glass types on the performance of air-conditioned office buildings in Australia, Advanced Materials Research 346 (2011) 34–39. https://doi.org/10.4028/www.scientific.net/AMR.346.34
[9] Stegou-Sagia A., Antonopoulos K., Angelopoulou C., Kotsiovelos G., The impact of glazing on energy consumption and comfort. Energy Conversion and Management 48 (2007) 2844–2852. https://doi.org/10.1016/j.enconman.2007.07.005
[10] Palmero-Marrero A.I., Oliveira A.C., Effect of louver shading devices on building energy requirements. Applied Energy 87 (2010) 2040–2049. https://doi.org/10.1016/j.apenergy.2009.11.020
[11] Tzempelikos A., The impact of venetian blind geometry and tilt angle on view, direct light transmission and interior illuminance. Solar Energy 82 (2008) 1172–1191. https://doi.org/10.1016/j.solener.2008.05.014
[12] Tzempelikos A., Athienitis A.K., The impact of shading design and control on building cooling and lighting demand. Solar Energy 81 (2007) 369–382. https://doi.org/10.1016/J.SOLENER.2006.06.015
[13] Manz H., Menti U.P., Energy performance of glazings in European climates. Renewable Energy 37 (2012) 226–232. https://doi.org/10.1016/j.renene.2011.06.016
[14] Raji B., Tenpierik M. J., van den Dobbelsteen A., The impact of greening systems on building energy performance: a literature review. Renewable and Sustainable Energy Reviews 45 (2015) 610–623. https://doi.org/10.1016/j.rser.2015.02.011
[15] Perini K., Ottelé M., Fraaij A. L. A., Haas E. M., Raiteri R., Vertical greening systems and the effect on air flow and temperature on the building envelope. Building and Environment 46 (2011) 2287–2294. https://doi.org/10.1016/j.buildenv.2011.05.009
[16] Goussous J., Siam H., Alzoubi H., Prospects of green roof technology for energy and thermal benefits in buildings: case of Jordan. Sustainable Cities and Society 14 (2015) 425–440. https://doi.org/10.1016/J.SCS.2014.05.012
[17] Qadourah J. A., Energy efficiency evaluation of green roofs as a passive strategy in the Mediterranean climate. Results in Engineering 23 (2024) 102519. https://doi.org/10.1016/j.rineng.2024.102519
[18] Al-Tamimi N.A., Fadzil S.F., The potential of shading devices for temperature reduction in high-rise residential buildings in the tropics. Procedia Engineering 21 (2011) 273–282. https://doi.org/10.1016/j.proeng.2011.11.2015
[19] Hu J., Olbina S., Illuminance-based slat angle selection model for automated control of split blinds. Building and Environment 46 (2011) 786–796. https://doi.org/10.1016/j.buildenv.2010.10.013
[20] Kim J., Park Y.J., Yeo M.S., Kim K.W., An experimental study on the environmental performance of the automated blind in summer. Building and Environment 44 (2009) 1517–1527. https://doi.org/10.1016/j.buildenv.2008.08.006
[21] Vine E., Lee E., Clear R., DiBartolomeo D., Selkowitz S., Office worker response to an automated Venetian blind and electric lighting system: a pilot study. Energy and Buildings 28 (1998) 205–218. https://doi.org/10.1016/S0378-7788(98)00023-1
[22] Alkhatib H., Lemarchand P., Norton B., O’Sullivan D.T.J., Comparison of control parameters for roller blinds. Solar Energy 256 (2023) 110–126. https://doi.org/10.1016/j.solener.2023.03.042
[23] Kim S.H., Shin K.J., Choi B.E., Jo J.H., Cho S., Cho Y., A study on the variation of heating and cooling load according to the use of horizontal shading and Venetian blinds in office buildings in Korea. Energies 8 (2015) 1487–1504. https://doi.org/10.3390/en8021487
[24] O’Brian W., Kapsis K., Athienitis A., Manually-operated window shade patterns in office buildings: a critical review. Building and Environment 60 (2013) 319–338. https://doi.org/10.1016/j.buildenv.2012.10.003
[25] Feng G., Sha S., Xu X., Analysis of the building envelope influence to building energy consumption in the cold regions. Procedia Engineering 146 (2016) 244-250. https://doi.org/10.1016/j.proeng.2016.06.382
[26] Starczyk A., Analiza parametrów mających wpływ na zapotrzebowanie na chłód w wybranym budynku zamieszkania zbiorowego. Instal 1 (2015) 37–41. https://doi.org/10.37105/iboa.17
[27] Faggal A., Moustafa A., Arafat M., Effect of different windows’ glazing types on energy consumption of a residential building in a hot-arid climate: case study – Residential building in New Cairo City. JES Journal of Engineering Sciences 47 (2019) 706–719.
[28] Ferdyn-Grygierek, J., Sarna, I., Grygierek, K., Effects of climate change on thermal comfort and energy demand in a single-family house in Poland. Buildings 11(7) (2021) 595. https://doi.org/10.3390/buildings11120595
[29] Chwieduk D., Solar energy use for thermal application in Poland. Polish Journal of Environmental Studies 19(3) (2010) 473-477.
Abstract views: 479
Downloads: 694

Utwór dostępny jest na licencji Creative Commons Uznanie autorstwa 4.0 Międzynarodowe.
Publikowanie artykułów jest możliwe po podpisaniu zgody na przeniesienie licencji na czasopismo.
