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    Compensator design for a peak current mode controlled buck converter
    (2019-07-01)
    Trakuldit, Siripan
    ;
    Bunlaksananusorn, Chanin
    This paper presents compensator design for a peak current mode controlled buck converter. Given the closed-loop converter model, the open loop and output impedance transfer functions are derived. Based on the open loop transfer function, the compensator design is carried out to yield the open loop frequency response with a desired gain, crossover frequency, and phase margin. The well designed compensator also results in small output impedance, which is an indicator for good output voltage regulation. Both simulated and experimental results are presented to validate the compensator design.
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    Analysis design and experimental verification of a quadratic boost converter
    (2015-01-26)
    Tattiwong, K.
    ;
    Bunlaksananusorn, C.
    This paper presents analysis, design and experimentation of a Quadratic Boost Converter (QBC). Operation of the QBC is analyzed, leading to mathematical expressions that can be used to design the converter. Based on the derived analytical expressions, a 100W, 12V-to-48V, QBC converter is designed and built. Experiment shows that the prototyped converter operates satisfactorily throughout its operating range and achieves the highest efficiency of 83%.
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    Design and implementation of an integrated boost-flyback converter
    (2015-01-01)
    Tattiwong, K.
    ;
    Bunlaksananusorn, C.
    This paper presents design and implementation of a Integrated boost-flyback converter (IBFC). Operation of the IBFC is described and its key voltage and current equations are given. The practical design of a 96W, 12V-to-48V, IBFC is demonstrated. Experiment on the prototype IBFC shows that it operates with good output voltage regulation and achieves the highest efficiency of 87%.
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    A distributed structure of step-up/step-down DC-DC converters using power saving techniques
    (2014-01-01)
    Eguchi, Kei
    ;
    Komatsu, Daisuke
    ;
    Pongswatd, Sawai
    ;
    Sasaki, Hirofumi
    Improving power efficiency is one of the most important issues in DC-DC converters, because cooling of inefficient power converters is difficult and expensive. To reduce parasitic power losses caused by stray parasitic capacitances, a distributed structure of switched-capacitor (SC) step-up/step-down DC-DC converters using power saving techniques has been proposed in this paper. Unlike conventional converters, the proposed converter consisting of two converter blocks has two conversion processes: 1) charging and transferring process; and 2) charge reusing process. In each converter block, the charging and transferring process and the charge reusing process are repeated alternately, where the energy stored in parasitic capacitances is reused in the charge reusing process. Therefore, by alleviating parasitic losses, higher power efficiency can be achieved by the proposed converter. The results of the simulation program with integrated circuit emphasis(SPICE) simulation showed that more than 5% of the power efficiency was improved by the proposed converter when the output load is 10kΩ. © 2014 ISSN 1881-803X.
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    A switched-capacitor-based serial DC-DC converter using clean energy power supplies
    (2011-06-01)
    Eguchi, Kei
    ;
    Pongswatd, Sawai
    ;
    Tirasesth, Kitti
    ;
    Sasaki, Hirofumi
    ;
    Oota, Ichirou
    Aimed at mobile back-lighting applications, a switched-capacitor-based serial DC-DC converter is proposed in this paper. By using battery energy and solar energy, the proposed converter generates the stepped-up voltage to drive white LEDs. Unlike conventional multiple-input parallel converters, the output voltage of the proposed converter is generated by adding the output voltage of the SC-based circuit to the voltage of solar-cells. For this reason, the proposed converter can realize not only small hardware-cost but also wide input-range. Concretely, in comparison with the conventional parallel converter using 1.5 × step-up SC converters, the proposed converter can achieve 20% reduction of hardware cost and 16% extension of input range. The characteristics of the proposed converter are clarified by theoretical analyses. Furthermore, SPICE simulations and experiments show the validity of circuit design, where theoretical results correspond well with simulation results. For this reason, derived theoretical formulas can provide basic information to design serial SC DC-DC converters. The proposed converter will be useful as a LED driver circuit for display back-lighting. © 2011 ICIC International.
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    Design of a dual-input SC DC-DC converter realizing negative outputs
    (2011-01-01)
    Eguchi, Kei
    ;
    Pongswatd, Sawai
    ;
    Tirasesth, Kitti
    ;
    Sasaki, Hirofumi
    ;
    Zhu, Hongbing
    Aimed at a back-lighting application, a dual-input switched-capacitor (SC) DC-DC converter with battery charge process is proposed in this paper. The proposed converter can realize -1/N× (N = 2,3,.) step-down conversion as well as (N + 1)/N× step-up conversion. By converting clean energy such as solar energy, the proposed dual-input converter not only drives light-emitting diodes (LEDs) but also recharges the battery, although conventional single-input converter only consumes battery energy. In the proposed converter, the -1/N× stepped-down voltage is generated to drive the LED's cathode when the input voltage is insufficient to drive a 1× transfer mode. Furthermore, unlike conventional converters, the battery is charged by the (N + 1)/N× stepped-up voltage when the LED back light is in standby mode. Hence, the proposed converter can realize long battery run time. The validity of circuit design is confirmed by theoretical analyses, simulations, and experiments. The derived theoretical formulas will be helpful to estimate circuit characteristics, because the theoretical results correspond well with the simulation program with integrated circuit emphasis (SPICE) simulation results. © 2011 Institute of Electrical Engineers of Japan.
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    Simplified conducted electromagnetic interference prediction for DC-DC converters
    (2010-12-01)
    Tarateeraseth, Vuttipon
    The aim of this paper is to provide a simplified methodology for conducted electromagnetic interference (EMI) predictions of DC-DC converters using two classical simulation approaches: time domain and frequency domain simulations. The boost converter is investigated and modeled using information provided by manufacturers without any measurements beforehand. By proposed simulation techniques, it is possible to fast approximate conducted EMI with reasonable accuracy at design stage. Finally, the validity of proposed models is proved by comparing the simulated results with measured results in terms of common mode, differential mode and total noises at frequency range from 150 kHz to 30 MHz.
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    Improvement of output dynamic performance of an average current mode controlled buck converter with a parallel controller
    (2010-09-17)
    Chrin, P.
    ;
    Trakuldit, S.
    ;
    Polmai, S.
    ;
    Bunlaksananusorn, C.
    This paper presents a parallel voltage controller to improve the output dynamic performance of a buck converter with Average Current Mode Control (ACMC). The parallel controller is a high-order controller synthesized from parallel connection of the two basic controllers. It is proposed to compensate the control-to-output transfer function of the converter, which has multiple poles and zeros. Up until now, the task is commonly performed by the two-pole one-zero controller, which is clearly not adequate and has somewhat limited the dynamic performance of the converter. In the paper, the design of parallel controller is illustrated with a 5V/2V ACMC buck converter. Experimental and simulated results that show the improvement of output voltage response to a step load change are presented. © 2010 IEEE.
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    Design of a multiple-input SC DC-DC converter realizing long battery runtime
    (2010-01-01)
    Eguchi, Kei
    ;
    Pongswatd, Sawai
    ;
    Julsereewong, Amphawan
    ;
    Tirasesth, Kitti
    ;
    Sasaki, Hirofumi
    A multiple-input switched-capacitor DC-DC converter which can realize long battery runtime is proposed in this letter. Unlike conventional converters for a back-lighting application, the proposed converter drives some LEDs by converting energy from solar cells. Furthermore, the proposed converter can charge a lithium battery when an output load is light. The validity of circuit design is confirmed by theoretical analyses, simulations, and experiments. Copyright © 2010 The Institute of Electronics, Information and Communication Engineers.
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    Optimal design of a single-input parallel DC-DC Converter designed by switched capacitor techniques
    (2010-01-01)
    Eguchi, Kei
    ;
    Pongswatd, Sawai
    ;
    Tirasesth, Kitti
    ;
    Sasaki, Hirofumi
    ;
    Inoue, Takahiro
    In the design of parallel-connected power converters, theoretical analysis to clarify the influence of process fluctuation is important, because the characteristic of a converter which consists of many circuit components is strongly influenced by the fluctua-tion of those components. Concerning parallel-connected switched-capacitor (SC) DC-DC converters, 1. the optimal setting of a duty factor to achieve best efficiency and 2. the change in characteristics caused by fluctuation of circuit components are analyzed in this paper. The validity of the theoretical analyses is confirmed by SPICE simulations and experiments. The results of this study are as follows: 1. The optimal setting of duty fac-tor D can be derived by the proposed theoretical formulas, because the theoretical results correspond well with the simulated results. 2. The fluctuation of on-resistances affects power efficiency in proportion to the decrease of output load RL. The value of the total SC resistance is important in power efficiency η, for example, an increase of 20 % in the total SC resistance causes a decrease of 2.2 % in efficiency when R<inf>L</inf> = 5ω. 3. When fluctuation of input voltages is caused, the influence on power efficiency η increases ac-cording to output load R <inf>L</inf>. 4. In the case of the fluctuation of capacitance, the influence of ripple factor R depends on fluctuating directions of capacitances. © 2010 ISSN.