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LEUKOS
The Journal of the Illuminating Engineering Society
Volume 20, 2024 - Issue 2
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Articles

Evaluation of Inrush Current in LED Luminaires Applied to Urban Lighting Based on Multi-Criteria Decision-Making Methods: A Case Study

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Pages 209-222 | Received 18 Jan 2023, Accepted 30 Jun 2023, Published online: 13 Sep 2023

References

  • Adalı EA, Işık AT. 2017. Critic and maut methods for the contract manufacturer selection problem. Europ J Multidiscip Stud. 5:93. doi:10.26417/ejms.v5i1.p93-101.
  • Babatunde OM, Munda JL, Hamam Y. 2019. Selection of a hybrid renewable energy systems for a low-income household. Sustainability (Switzerland). 11:1–24. doi:10.3390/su11164282.
  • Ballo A, Grasso AD, Palumbo G. 2019. A review of charge pump topologies for the power management of IoT nodes. Electronics. 8:480. doi:10.3390/electronics8050480.
  • Bonislawski M, Holub M, Waszczuk P, Lewanski W. 2018. Automated test stand for transformer inrush current measurement. In: 14th Scientific Conference on Selected Issues of Electrical Engineering and Electronics (WZEE).
  • Cho Y, Kim J. 2011. Lifetime decrease of halogen lamps for automotive by duty cycle stress. IEEE Trans Reliab. 60 (3): 550–556. doi:10.1109/TR.2011.2135730.
  • Diakoulaki D, Mavrotas G, Papayannakis L. 1995. Determining objective weights in multiple criteria problems: the critic method. Comput Oper Res. 22:763–770. doi:10.1016/0305-0548(94)00059-H.
  • Drgona P, Durana P, Betko T. 2021. Research of the negative influence of dimmed led luminaires in context of smart installations. Sustainability (Switzerland). 13. doi:10.3390/su13179753.
  • Gil-De-Castro A, Moreno-Munoz A, Larsson A, de la Rosa JJG, Bollen M. 2013. LED street lighting: a power quality comparison among street light technologies. Light Res Technol. 45:710–728. doi:10.1177/1477153512450866.
  • Gil-de-castro A, Rönnberg SK, Bollen MHJ. 2017. Light intensity variation (flicker) and harmonic emission related to LED lamps. Electr Power Syst Res. 146:107–114. doi:10.1016/j.epsr.2017.01.026.
  • Gorgij AD, Kisi O, Moghaddam AA, Taghipour A. 2017. Groundwater quality ranking for drinking purposes, using the entropy method and the spatial autocorrelation index. Environ Earth Sci. 76:1–9. doi:10.1007/s12665-017-6589-6.
  • Gutierrez-Ballesteros E, Gil-de-Castro A, Rönnberg S, Garrido-Zafra J. 2021. Impact factors in LED lamp measurement reproducibility. Light Res Technol. 53:555–568. doi:10.1177/1477153520971250.
  • Hermoso-Orzaez MJ, Rojas-Sola JI, Gago-Calderon A. 2018. Electrical consequences of large-scale replacement of metal halide by LED luminaires. Light Res Technol. 50:282–293. doi:10.1177/1477153516645647.
  • Hussain SAI, Mandal U. 2016. National level conference on engineering problems and application of mathematics. In: Proceedings of the national level conference on engineering problems and application of mathematics, La Rochelle, France, 4–8 July. p. 1–6.
  • Iuga B, Tirnovan R. 2019. Step by step limiting for capacitors inrush current used in voltage power supplies. In: 8th international conference on Modern Power Systems (MPS). Cluj-Napoca, Cluj, Romania. doi:10.1109/MPS.2019.8759664
  • Jahkonen J, Puolakka M, Halonen L. 2013. Thermal management of outdoor LED lighting systems and streetlights-variation of ambient cooling conditions. Leukos. 9:155–176. doi:10.1582/LEUKOS.2013.09.03.001.
  • Jee DH, Kang KJ. 2000. A method for optimal material selection aided with decision making theory. Mater Des. 21:199–206. doi:10.1016/s0261-3069(99)00066-7.
  • Jenner R, Alencar N, Holanda U. 2014. A method to identify inrush currents in power transformers protection based on the differential current gradient. Electr Power Syst Res. 111:78–84. doi:10.1016/j.epsr.2014.02.009.
  • Kalenteridis V, Agorastou Z, Siskos S. 2019. A soft start-up technique for inrush current limitation in DC-DC converters. In: 5th Panhellenic Conference on Electronics and Telecommunications (PACET2019). Volos, Greece. p. 57–60.
  • Koval L, Martinek R, Bilik P, Vanus J. 2017. Measurement of inrush current halogen lamps. In: 9th international scientific symposium on electrical power engineering (ELEKTROENERGETIKA). Stara Lesna, Slovakia. pp. 339–343.
  • Lai CA, Lai Y. 2013. New AC/DC converter considering both inrush current limitation and start-up time. In: IEEE 10th International Conference on Power Electronics and Drive Systems (PEDS). Kitakyushu, Japan, p. 1231–1235. doi:10.1109/PEDS.2013.6527207
  • Lei C, Zhizhong G, Yue C, Guizhong W. 2019. Measurement of inrush current in transformer based on optical current transducer. J Phys Conf Ser. 1187. doi:10.1088/1742-6596/1187/2/022004.
  • Liu W, Wang YX, Yang ZS, Ma H, Wen W. 2014. A novel two stage LED driver compatible with electronic transformers for MR16 lamp. In: 2014 IEEE 23rd International Symposium on Industrial Electronics (ISIE). Istanbul, Turkey. p. 380–385.
  • Madani SM, Rostami M, Gharehpetian GB, Haghmaram R. 2012. Inrush current limiter based on three-phase diode bridge for Y-yg transformers. IET Electr Power Appl. 6:345–352. doi:10.1049/iet-epa.2011.0317.
  • Madic M, Radovanovic M. 2015. Ranking of some most commonly used nontraditional machining processes using rov and critic methods. UPB Sci Bull D: Mech Eng. 77:193–204.
  • Majithia CA, Desai AV, Panchal A. 2011. Harmonic analysis of some light sources used for domestic lighting. Light Res Technol. 43:371–380. doi:10.1177/1477153510394597.
  • Mo C, Ji TY, Zhang LL, Wu QH. 2022. Equivalent statistics based inrush identification method for differential protection of power transformer. Electr Power Syst Res. 203:107664. doi:10.1016/j.epsr.2021.107664.
  • Nan T, He P, Yin L, Zhang J. 2016. An analysis on damage of light-emitting diodes reliability induced by electronic static discharge. In: 2016 17th International Conference On Electronic Packaging Technology (ICEPT). Wuhan, China. p. 1122–1126.
  • Nguyen AV, Nguyen L. 2020. Identifying inrush currents based on Bayesian recursive algorithm for a numerical overcurrent protection relay. In: 4th IEEE International Conference on Green Energy and Applications (ICGEA). Singapore. p. 75–79. doi:10.1109/ICGEA49367.2020.239696
  • Nguyen AV, Su S, Nguyen H. 2011. Development of a bayesian recursive algorithm to find free-spaces for an intelligent wheelchair. In: 33rd Annual International Conference of the IEEE Engineering-in-Medicine-and-Biology-Society (EMBS). Singapore. p. 7250–7253. doi:10.1109/IEMBS.2011.6091832
  • Ramchandra DS, Bhaskar MS, Sanjeevikumar P, Mitolo M. 2020. Study of basic units and simulation of passive Light Emitting Diode (LED) driver configurations. In: 2020 20th IEEE International Conference on Environment and Electrical Engineering and 2020 4th IEEE Industrial and Commercial Power Systems Europe (EEEIC/I&CPS EUROPE). Madrid, Spain.
  • Saathoff EK, Pitcher ZJ, Shaw SR, Leeb S. 2020. Inrush current testing. In: Thirty-Fifth Annual IEEE Applied Power Electronics Conference and Exposition (APEC 2020), New Orleans, LA, USA. p. 2319–2326. doi:10.1109/APEC39645.2020.9124426
  • Sadeghi MH, Damchi Y, Shirani H. 2018. Improvement of operation of power transformer protection system during sympathetic inrush current phenomena using fault current limiter. IET Gener Transm Distrib. 12:5968–5974. doi:10.1049/iet-gtd.2018.5697.
  • Shannon C. 1948. A mathematical theory of communication. Bell Syst tech J. 27:379–423. doi:10.1002/j.1538-7305.1948.tb01338.x.
  • Shyu GS, Cheng BY, Chiang CT, Yao PH, Chang TK. 2011. Applying factor analysis combined with kriging and information entropy theory for mapping and evaluating the stability of groundwater quality variation in Taiwan. Int J Environ Res Public Health. 8:1084–1109. doi:10.3390/ijerph8041084.
  • Tajdinian M, Allahbakhshi M, Bagheri A, Samet H, Dehghanian P, Malik O. 2020. An enhanced sub-cycle statistical algorithm for inrush and fault currents classification in differential protection schemes. Int J Electr Power Energy Syst. 119:105939. doi:10.1016/j.ijepes.2020.105939.
  • Uddin S, Shareef H, Mohamed A. 2013. Power quality performance of energy-efficient low-wattage LED lamps. Meas: J Int Meas Confed. 46:3783–3795. doi:10.1016/j.measurement.2013.07.022.
  • Unión-Sánchez JDD, Hermoso-Orzáez MJ, Hervás-Pulido MJ, Ogáyar-Fernández B. 2022. Impact of Thermal Dissipation on the Lighting Performance and Useful Life of LED Luminaires Applied to Urban Lighting: a Case Study. Int J Environ Res Public Health. 19:752. doi:10.3390/ijerph19020752.
  • Vahidi B, Khorsandi A. 2012. Simulation of effect of voltage sag on inrush current using MATLAB-SIMULINK for educational purpose. Comput Appl Eng Educ. 20:629–633. doi:10.1002/cae.20431.
  • Wu CN, Chen YL, Chen Y. 2015. Primary-Side Peak Current Measurement Strategy for High-Precision Constant Output Current Control. IEEE Trans Power Electron. 30:967–975. doi:10.1109/TPEL.2014.2312955.
  • Xi YH, Tang X, Li ZW, Zeng X. 2018. Application of digital signal processing tools for the detection of voltage sag/swell. Int J Electr Eng Educ. 55:186–209. doi:10.1177/0020720918754830.
  • Yilmaz B, Harmancioglu NB. 2010. Multi-criteria decision making for water resource management: a case study of the Gediz River Basin, Turkey. Water SA. 36:563–576. doi:10.4314/wsa.v36i5.61990.
  • Zhang LL, Wu QH, Ji TY, Zhang AQ. 2017. Identification of inrush currents in power transformers based on higher-order statistics. Electr Power Syst Res. 146:161–169. doi:10.1016/j.epsr.2017.01.029.
  • Zhu Y, Tian D, Yan F. 2020. Effectiveness of Entropy Weight Method in Decision-Making. Math Probl Eng. 2020:1–5. doi:10.1155/2020/3564835.