[1] Pham, K-M., Garcia Hansen, V., & Isoardi, G. (2016). Appraisal of the visual environment in an industrial factory: a case study in subtropical climates.
Journal of Daylighting,
3(2), 12-26.
https://doi.org/10.15627/jd.2016.4
[2] Kralikova, R., Piňosová, M., & Hricová, B. (2016). Lighting quality and its effects on productivity and human healts.
International Journal Of Interdisciplinarity In Theory And Practice,
10, 8-12.
https://www.researchgate.net/publication/308032041_Lighting_Quality_ and_its_Effects_on_Productivity_and_Human_Healts
[3] Shafavi Moqaddam, N., Tahsildoust, M., & Zomorrodiyan, Z. (2022). Evaluating the Effectiveness of Daylight Performance Metrics in Predicting Visual Comfort Case Study: Educational Architecture Design Studios in Tehran.
Journal of Iranian Architecture Studies,
8(16), 205-228.
https://doi.org/10.22052/1.16.205
[4] Shafavi Moghaddam, N., Zomorodian, Z. S., & Tahsildoost, M. (2019). Ability of daylight Indicators in estimating adequate lighting in space based on user assessments Case study: Architecture design studios in Tehran.
Soffeh,
29(3), 37-56.
https://doi.org/10 .29252/soffeh.29.3.37
[5] Juslen, H., & Tenner, A. (2007). The Use of Task Lighting in an Industrial Work Area Provided with Daylight.
Journal of Light & Visual Environment,
31(1), 25-31.
https://doi.org/ 10.2150/jlve.31.25
[6] Katunský, D., Dolníková, E., & Doroudiani, S. (2017). Integrated Lighting Efficiency Analysis in Large Industrial Buildings to Enhance Indoor Environmental Quality.
Buildings,
7(2), 47.
https://doi.org/10.3390/buildings7020047
[7] Katunský, D., Dolníková, E., & Dolník, B. (2018). Daytime Lighting Assessment in Textile Factories Using Connected Windows in Slovakia: A Case Study.
Sustainability,
10(3), 655.
https://doi.org/10.3390/su10030655
[8] Dolnikova, E., Katunsky, D., & Lopusniak, M. (2022, June 6-8).
Evaluation of daylight comfort in industrial building. Materials Science and Engineering 2022, Košice, Slovakia.
h ttps://doi.org/10.1088/1757-899X/1252/1/012031
[9] Mavridou, T., & Doulos, L. T. (2019). Evaluation of Different Roof Types Concerning Daylight in Industrial Buildings during the Initial Design Phase: Methodology and Case Study.
Buildings,
9(7), 170.
https://doi.org/10.3390/buildings9070170
[10] Chen, Y., Liu, J., Pei, J., Cao, X., Chen, Q., & Jiang, Y. (2014). Experimental and simulation study on the performance of daylighting in an industrial building and its energy saving potential.
Energy and Buildings,
73, 184-191.
https://doi.org/10.1016/j.enbuild.201 4.01.030
[11] Acosta, I., Navarro, J., & Sendra, J. J. (2015). Towards an analysis of the performance of monitor skylights under overcast sky conditions.
Energy and Buildings,
88, 248-261.
https://doi.org/10.1016/j.enbuild.2014.12.011
[12] Gürlich, D., Reber, A., Biesinger, A., & Eicker, U. (2018). Daylight Performance of a Translucent Textile Membrane Roof with Thermal Insulation.
Buildings,
8(9), 118.
https://doi.org/10.3390/buildings8090118
[13] Mardaljevic, J., Andersen, M., Roy, N., & Christoffersen, J. (2012).
Daylighting, Artificial Lighting and Non-Visual Effects Study for a Residential Building. Loughborough United kingdom.
https://infoscience.epfl.ch/record/181055?v=pdf
[14] Qiyabaklo, Z. (2013).
Basics of building physics 5: daylight. Academic Jihad of Amir Kabir University of Technology.
https://www.gisoom.com/book/1981205
[15] Mandala, A., Sutanto, E. H., & Santoso, A. R. (2021). The effectiveness of dayligting through the toplighting design in large-volume building models.
Jurnal Teknik Arsitektur,
6(2), 223-234.
https://doi.org/10.30822/arteks.v6i2.698