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Influence of Eco-Design Policy and Energy Labeling on the Level of Energy Efficiency and Functionality of Led Lamps Cover

Influence of Eco-Design Policy and Energy Labeling on the Level of Energy Efficiency and Functionality of Led Lamps

Open Access
|Mar 2025

References

  1. UNEP. (2017). Accelerating the Global Adoption of Energy-Efficient Lighting. Available at: https://united4efficiency.org/resources/acceleratingglobal-adoption-energy-efficient-lighting/
  2. European Commission. (2020). 2030 Climate and Energy Framework Climate Action. Available at: https://ec.europa.eu/clima/policies/strategies/2030_en
  3. Regulation 2019/2020. Commission Regulation (EU) 2019/2020 of 1 October 2019 laying down ecodesign requirements for light sources and separate control gears pursuant to Directive 2009/125/EC of the European Parliament and of the Council and repealing Commission Regulations (EC) No 244/2009, (EC) No 245/2009 and (EU), No. 1194/2012, 32. Available at: https://eur-lex.europa.eu/eli/reg/2019/2020/oj/eng
  4. Regulation 2019/2015. Commission Delegated Regulation EU 2019/2015 of 11 March 2019 supplementing Regulation EU 2017/1369 of the European Parliament and of the Council with regard to energy labelling of light sources and repealing Commission Delegated Regulation EU No 874/2012.(2019).34. Available at: https://eur-lex.europa.eu/eli/reg_del/2019/2015/oj
  5. Regulation 874/2012. Commission Delegated Regulation (EU) No 874/2012 of 12 July 2012 supplementing Directive 2010/30/EU of the European Parliament and of the Council with regard to energy labelling of electrical lamps and luminaires. (2012). Official Journal of the European Union, 20.https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=celex%3A32012R0874
  6. European Standard 13032-4. (2019). EN 13032-4:2015+A1:2019 Light and lighting. Measurement and Presentation of Photometric Data of Lamps and Luminaires – Part 4: LED Lamps, Modules and Luminaires. Available at: https://standards.iteh.ai/catalog/standards/cen/6344ba8a-85f9-42d3-b0a1-6f10e39beaa3/en-13032-4-2015a1-2019
  7. International Commision on Illumination. (2014). СІЕ TN 001-2014 Chromaticity Difference Specification for Light Sources. Available at: https://files.cie.co.at/738_CIE_TN_001-2014.pdf
  8. International Electrotechnical Commission. (2020). IEC TR 61547-1:2020 Equipment for General Lighting Purposes – EMC Immunity Requirements – Part 1: Objective Light Flickermeter and Voltage Fluctuation Immunity Test Method. Available at: https://webstore.iec.ch/publication/64795
  9. ASSIST. (2015). Recommended Metric for Assessing the Direct Perception of Light Source Flicker. Available at: https://www.lrc.rpi.edu/programs/solidstate/assist/pdf/AR-FlickerMetric.pdf
  10. International Electrotechnical Commission. (2018). IEC TR 63158:2018 Equipment for General Lighting Purposes – Objective Test Method for Stroboscopic Effects of Lighting Equipment. Available at: https://webstore.iec.ch/en/publication/61455
  11. US Department of Energy. (n.d.). CALiPER. Available at: https://www.energy.gov/eere/ssl/caliper
  12. Energy Star. (n.d.) Learn about LED Lighting. Available at: https://www.energystar.gov/products/light_bulbs/learn-about-led-lighting
  13. Luis, A., Fernando, H., Omar, P., & Francisco, A. (2022). Application of the MEPS policy and European Union labeling on interior lighting products in the Colombian market. In Book of Minutes of XVI Ibero-American Illumination Congress (Luxamerica), (pp. 155–161). Chile.
  14. Neyezhmakov, P., Pitiakov, O., Shpak, S., Kyslytsia, S., & Kozhushko, G. (2022). The Current State of Energy Efficiency and Light Quality of LED Products. Ukrainian Metrological Journal, 1, 12–19. Available at: https://doi.org/10.24027/2306-7039.1.2022.258690
  15. Junior, B., Melero, E., Santos, J., & Roberto, E. (2023). Performance from SSL lamps used in the Brazilian residential sector. In Proceedings of International Conference on Energy Efficiency in Domestic Appliances and Lighting, (pp. 547–563). 1–3 June 2022, Toulouse, France.
  16. Gil-de-Castroa, A., Rönnberg, S., & Bollen, M., (2017). Light Intensity Variation (Flicker) and Harmonic Emission Related to LED Lamps. Electric Power Systems Research, 146, 107–114.
  17. Baghirov, S., Pitiakov, O., Shpak, S., Kyslytsia, S., Sakhno, T., & Kozhushko, H. (2023). Research of Problems Flicker Level of LED Lamps and Luminaires for General Lighting Przeglad Elektrotechniczny, 119–123. DOI:10.15199/48.2023.12.22
  18. Shpak, S., Kozhushko, G., Kyslytsia S., Sakhno, T., & Pitiakov, O. (2020). Research of the Photobiological Safety of LED Lamps and Luminaires for General Lighting. Ukrainian Metrological Journal, 4, 29–35. Available at: https://doi.org/10.24027/2306-7039.4.2020.224278
  19. Baghirov, S., Basova, Y., Guba, L., & Kozhushko, H. (2024). Prediction of the Service Life of LED Lamps Based on the Extrapolation of the Luminous Flux Conservation Factor. Przeglad Elektrotechniczny, 119–123. DOI:10.15199/48.2024.02.38
  20. International Commision on Illumination. (1995). СІЕ 013.3–1995: Method of Measuring and Specifying Colour Rendering Properties of Light Sources. Vienna, Austria.
  21. UPRtek. (n.d.). MK350S Premium Spectrometer. Available at: https://www.uprtek.com/en/product/spectrometers/mk350s-premium
DOI: https://doi.org/10.2478/lpts-2025-0012 | Journal eISSN: 2255-8896 | Journal ISSN: 0868-8257
Language: English
Page range: 42 - 59
Published on: Mar 26, 2025
Published by: Institute of Physical Energetics
In partnership with: Paradigm Publishing Services
Publication frequency: 6 issues per year

© 2025 S. Baghirov, V. Kharchenko, S. Shpak, O. Pitiakov, S. Kyslytsia, Т. Sakhno, H. Kozhushko, published by Institute of Physical Energetics
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.