Research article Special Issues

Analysis, design and performance evaluation of an LED driver with unity power factor and constant-current primary sensing regulation

  • Received: 07 June 2019 Accepted: 28 August 2019 Published: 24 September 2019
  • This work focuses on an isolated offline driver to power LED lamps, realized with a high-power-factor quasi-resonant (Hi-PF QR) flyback converter with peak current mode control and employing constant-current primary-sensing regulation (CC-PSR). The converter is controlled with a recently introduced control technique that enables this kind of converter to ideally draw a sinusoidal current from the input source and, at the same time, to accurately regulate the dc output current using only quantities available on the primary side. The resulting absence of an optocoupler or other means crossing the isolation barrier to close a feedback loop not only reduces size and cost of the driver but also brings greater safety and reliability. The analysis addresses those factors inherent in the control method that affect the shape of the input current that have not been covered in the existing literature. The aim is to set up some design guidelines to minimize the Total Harmonic Distortion (THD) of the input current. The experimental work shows that using this technique enables the design of an LED driver for wide range mains (90 to 264 Vac) that achieves output current regulation better than ±2%, power factor close to unity and THD of the input current <10% over the input voltage range and over a 2:1 range of the output voltage.

    Citation: Giovanni Gritti, Claudio Adragna. Analysis, design and performance evaluation of an LED driver with unity power factor and constant-current primary sensing regulation[J]. AIMS Energy, 2019, 7(5): 579-599. doi: 10.3934/energy.2019.5.579

    Related Papers:

  • This work focuses on an isolated offline driver to power LED lamps, realized with a high-power-factor quasi-resonant (Hi-PF QR) flyback converter with peak current mode control and employing constant-current primary-sensing regulation (CC-PSR). The converter is controlled with a recently introduced control technique that enables this kind of converter to ideally draw a sinusoidal current from the input source and, at the same time, to accurately regulate the dc output current using only quantities available on the primary side. The resulting absence of an optocoupler or other means crossing the isolation barrier to close a feedback loop not only reduces size and cost of the driver but also brings greater safety and reliability. The analysis addresses those factors inherent in the control method that affect the shape of the input current that have not been covered in the existing literature. The aim is to set up some design guidelines to minimize the Total Harmonic Distortion (THD) of the input current. The experimental work shows that using this technique enables the design of an LED driver for wide range mains (90 to 264 Vac) that achieves output current regulation better than ±2%, power factor close to unity and THD of the input current <10% over the input voltage range and over a 2:1 range of the output voltage.


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    [1] Lasance CJM, Poppe A (2014) Thermal Management for LED Applications. New York: Springer.
    [2] Uddin S, Shareef H, Mohamed A, et al. (2012) Harmonics and thermal characteristics of low wattage LED lamps. Przegl Elektrotech 88: 266-271.
    [3] Ptak P, Górecki K (2018) Modelling power supplies of LED lamps. Int J Circuit Theory Appl 46: 629-636. doi: 10.1002/cta.2382
    [4] Raciti A, Rizzo SA, Susinni G (2019) Parametric PSpice circuit of energy saving lamp emulating current waveform. Appl Sci 9: 2076-3417.
    [5] Driver LCA 17W 250-700mA one4all C PRE, Tridonic datasheet, 2018. Available from: https://www.tridonic.it/it/download/data_sheets/TALEXXdriver_LCA_17W_250-700mA_one4all_C_PRE_en.pdf.
    [6] Xitanium FULL Prog LED Xtreme drivers Xi FP 40W 0.3-1.0A SNLDAE 230V C123 sXt, Philips datasheet, 2019. Available from: http://www.docs.lighting.philips.com/en_gb/oem/download/xitanium/Xi_FP_40W_0.3-1.0A_SNLDAE_230V_C123_sXt_929001518706.pdf.
    [7] DEXAL, AstroDIM, StepDIM-constant current LED drivers. Available from: https://www.osram.com/appsj/pdc/pdf.do?cid=GPS01_3146302&vid=PP_EUROPE_Europe_eCat&lid=EN&mpid=.
    [8] Lightech™ LED Driver. Available from: https://products.currentbyge.com/sites/products.currentbyge.com/files/documents/document_file/Lightech-LED-Driver-GELD50MV700PVNA-GELD50MV700PDGL.pdf.
    [9] 60 W Single Output LED Power Supply, CLG-60 series, Mean Well datasheet, 2018. Available from: https://www.meanwell.com/productPdf.aspx?i=261.
    [10] Nazarudin MS, Rahim MAA, Aspar Z, et al. (2015) A flyback SMPS LED driver for lighting application. 2015 10th Asian Control Conference (ASCC), 1-5.
    [11] Xu ZB, Shen Y, Su LG, et al. (2013) A design method of flyback LED driver power supply transformer. 2013 10th China International Forum on Solid State Lighting (ChinaSSL), 267-269
    [12] Jia L, Liu YF, Fang D (2015) High power factor single stage flyback converter for dimmable LED driver. 2015 IEEE Energy Conversion Congress and Exposition (ECCE), 3231-3238.
    [13] Shagerdmootaab A, Moallem M (2015) Filter capacitor minimization in a flyback LED driver considering input current harmonics and light flicker characteristics. IEEE Trans Power Electron 30: 4467-4476. doi: 10.1109/TPEL.2014.2357333
    [14] Chern TL, Liu LH, Pan PL, et al. (2009) Single-stage flyback converter for constant current output LED driver with power factor correction. 2009 4th IEEE Conference on Industrial Electronics and Applications, 2891-2896.
    [15] Leng YH, Wang YL, Jiang JM, et al. (2013) A primary side controlled single-stage flyback LED driver with high power factor and high accuracy. 2013 1st International Future Energy Electronics Conference (IFEEC), 293-298.
    [16] Chen C, Gao H, Leng H, et al. (2015) A constant current LED driver based on flyback structure with novel primary side control. 2015 International SoC Design Conference (ISOCC), 119-120.
    [17] Li ZL, Leng YH, Wu XF, et al. (2014) A primary side feedback control for flyback LED driver with no output voltage feedback resistors. 2014 International Symposium on Integrated Circuits (ISIC), 236-239.
    [18] Chou HH, Hwang YS, Chen JJ (2013) An adaptive output current estimation circuit for a primary-side controlled LED driver. IEEE Trans Power Electron 28: 4811-4819. doi: 10.1109/TPEL.2012.2236581
    [19] Shen JJ, Wu YQ, Liu TH, et al. (2011) Constant current LED driver based on flyback structure with primary side control. 2011 IEEE Power Engineering and Automation Conference, 260-263.
    [20] Nie WD, Zhu WM, Ma XH, et al. (2014) A simple method to reduce line current zero-crossing distortion (LCZCD) for single-stage flyback LED driver. 2014 12th IEEE International Conference on Solid-state and Integrated Circuit Technology (ICSICT), 1-3.
    [21] Mi NL, Chung R, Jing XK, et al. (2015) Design high power factor high efficiency primary-side regulated flyback LED driver. PCIM Asia, 218-225.
    [22] Li JS, Liang TJ, Chen KH, et al. (2015) Primary-Side controller IC design for quasi-resonant flyback LED driver. 2015 IEEE Energy Conversion Congress and Exposition (ECCE), 5308-5315.
    [23] Imam A, Antony B (2013) Digitally controlled improved THD and power factor single-stage flyback LED driver with active input-current wave-shaping. 2013 Twenty-Eighth Annual IEEE Applied Power Electronics Conference and Exposition (APEC), 3338-3344.
    [24] Dong HJ, Xie XG, Peng KS, et al. (2014) A variable-frequency one-cycle control for BCM flyback converter to achieve unit power factor. IECON 2014-40th Annual Conference of the IEEE Industrial Electronics Society, 1161-1166.
    [25] Jin LP, Zhang YC, Jin YQ, et al. (2013) One stage flyback-type power factor correction converter for LED driver. 2013 International Conference on Electrical Machines and Systems, 2173-2176.
    [26] Erickson R, Madigan M, Singer S (1990) Design of a simple high-power-factor rectifier based on the flyback converter. Applied Power Electronics Conference and Exposition, 792-801.
    [27] Gritti G, Adragna C (2015) Primary-controlled constant current LED driver with extremely low THD and optimized phase-cut dimming compatibility. 17th European Conference on Power Electronics and Applications (EPE'15 ECCE Europe).
    [28] Adragna C, Gritti G (2015) High-power-factor quasi-resonant flyback converters draw sinusoidal input current. IEEE Applied Power Electronics Conference and Exposition (APEC), 498-505.
    [29] Adragna C (2011) Primary-controlled high-PF flyback converters deliver constant dc output current. Proceedings of the 2011 14th European Conference on Power Electronics and Applications (EPE'11 ECCE Europe).
    [30] Adragna C (2002) THD Optimizer Circuits for PFC Pre-regulators. STMicroelectronics Application Note, AN1616.
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  • © 2019 the Author(s), licensee AIMS Press. This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0)
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