• Title/Summary/Keyword: cell balancing

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A SOC Coefficient Factor Calibration Method to improve accuracy Of The Lithium Battery Equivalence Model (리튬 배터리 등가모델의 정확도 개선을 위한 SOC 계수 보정법)

  • Lee, Dae-Gun;Jung, Won-Jae;Jang, Jong-Eun;Park, Jun-Seok
    • Journal of the Institute of Electronics and Information Engineers
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    • v.54 no.4
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    • pp.99-107
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    • 2017
  • This paper proposes a battery model coefficient correction method for improving the accuracy of existing lithium battery equivalent models. BMS(battery management system) has been researched and developed to minimize shortening of battery life by keeping SOC(state of charge) and state of charge of lithium battery used in various industrial fields such as EV. However, the cell balancing operation based on the battery cell voltage can not follow the SOC change due to the internal resistance and the capacitor. Various battery equivalent models have been studied for estimation of battery SOC according to the internal resistance of the battery and capacitors. However, it is difficult to apply the same to all the batteries, and it tis difficult to estimate the battery state in the transient state. The existing battery electrical equivalent model study simulates charging and discharging dynamic characteristics of one kind of battery with error rate of 5~10% and it is not suitable to apply to actual battery having different electric characteristics. Therefore, this paper proposes a battery model coefficient correction algorithm that is suitable for real battery operating environments with different models and capacities, and can simulate dynamic characteristics with an error rate of less than 5%. To verify proposed battery model coefficient calibration method, a lithium battery of 3.7V rated voltage, 280 mAh, 1600 mAh capacity used, and a two stage RC tank model was used as an electrical equivalent model of a lithium battery. The battery charge/discharge test and model verification were performed using four C-rate of 0.25C, 0.5C, 0.75C, and 1C. The proposed battery model coefficient correction algorithm was applied to two battery models, The error rate of the discharge characteristics and the transient state characteristics is 2.13% at the maximum.

Digital Logic Extraction from Quantum-dot Cellular Automata Designs (Quantum-dot Cellular Automata 회로로부터 디지털 논리 추출)

  • Oh, Youn-Bo;Lee, Eun-Choul;Kim, Kyo-Sun
    • Proceedings of the KIEE Conference
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    • 2006.10c
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    • pp.139-141
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    • 2006
  • Quantum-dot Cellular Automata (QCA) is one of the most promising next generation nano-electronic devices which will inherit the throne of CMOS which is the domineering implementation technology of large scale low power digital systems. In late 1990s, the basic operations of the QCA cell were already demonstrated on a hardware implementation. Also, design tools and simulators were developed. Nevertheless, its design technology is not quite ready for ultra large scale designs. This paper proposes a new approach which enables the QCA designs to inherit the verification methodologies and tools of CMOS designs, as well. First, a set of disciplinary rules strictly restrict the cell arrangement not to deviate from the predefined structures but to guarantee the deterministic digital behaviors. After the gate and interconnect structures of the QCA design are identified, the signal integrity requirements including the input path balancing of majority gates, and the prevention of the noise amplification are checked. And then the digital logic is extracted and stored in the OpenAccess common engineering database which provides a connection to a large pool of CMOS design verification tools. Towards validating the proposed approach, we designed a 2-bit QCA adder. The digital logic is extracted, translated into the Verilog net list, and then simulated using a commercial software.

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Detection Algorithm and Extract of Deviation Parameters for Battery Pack Based on Internal Resistance Aging (저항 열화 기반의 배터리 팩 편차 파라미터 추출 방안 및 검출 알고리즘)

  • Song, Jung-Yong;Huh, Chang-Su
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.31 no.7
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    • pp.515-520
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    • 2018
  • A large number of lithium-ion batteries are arranged in series and parallel in battery packs, such as those in electric vehicles or energy storage systems. As battery packs age, their output power and energy density drop because of voltage deviation, constant and non-uniform exposure to abnormal environments, and increased contact resistance between batteries; this reduces application system efficiency. Despite the balancing circuit and logic of the battery management system, the output of the battery pack is concentrated in the most severely aged unit cell and the output is frequently limited by power derating. In this study, we implemented a cell imbalance detection algorithm and selected parameters to detect a sudden decrease in battery pack output. In addition, we propose a method to increase efficiency by applying the measured testing values considering the operating conditions and abnormal conditions of the battery pack.

Beamforming Optimization for Multiuser Two-Tier Networks

  • Jeong, Young-Min;Quek, Tony Q.S.;Shin, Hyun-Dong
    • Journal of Communications and Networks
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    • v.13 no.4
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    • pp.327-338
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    • 2011
  • With the incitation to reduce power consumption and the aggressive reuse of spectral resources, there is an inevitable trend towards the deployment of small-cell networks by decomposing a traditional single-tier network into a multi-tier network with very high throughput per network area. However, this cell size reduction increases the complexity of network operation and the severity of cross-tier interference. In this paper, we consider a downlink two-tier network comprising of a multiple-antenna macrocell base station and a single femtocell access point, each serving multiples users with a single antenna. In this scenario, we treat the following beamforming optimization problems: i) Total transmit power minimization problem; ii) mean-square error balancing problem; and iii) interference power minimization problem. In the presence of perfect channel state information (CSI), we formulate the optimization algorithms in a centralized manner and determine the optimal beamformers using standard convex optimization techniques. In addition, we propose semi-decentralized algorithms to overcome the drawback of centralized design by introducing the signal-to-leakage plus noise ratio criteria. Taking into account imperfect CSI for both centralized and semi-decentralized approaches, we also propose robust algorithms tailored by the worst-case design to mitigate the effect of channel uncertainty. Finally, numerical results are presented to validate our proposed algorithms.

Analysis, Design and Implementation of Flexible Interlaced Converter for Lithium Battery Active Balancing in Electric Vehicles

  • Dai, Shuailong;Wang, Jiayu;Li, Teng;Shan, Zhifei;Wei, Yewen
    • Journal of Power Electronics
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    • v.19 no.4
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    • pp.858-868
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    • 2019
  • With the widespread use of modern clean energy, lithium-ion batteries have become essential as a more reliable energy storage component in the energy Internet. However, due to the difference in monomers, some of the battery over-charge or over-discharge in battery packs restrict their use. Therefore, a novel multiphase interleaved converter for reducing the inconsistencies of the individual cells in a battery pack is proposed in this paper. Based on the multiphase converter branches connected to each lithium battery, this circuit realizes energy transferred from any cell(s) to any other cell(s) complementarily. This flexible interlaced converter is composed of an improved bi-directional Buck-Boost circuit that is presented with its own available control method. A simulation model based on the PNGV model of fundamental equalization is built with four cells in PSIM. Simulation and experimental results demonstrate that converter and its control achieve simple and fast equalization. Furthermore, a comparison of traditional methods and the HNFABC equalization is provided to show the performance of the converter and the control of lithium-based battery stacks.

2-Stage Optimal Design and Analysis for Disassembly System with Environmental and Economic Parts Selection Using the Recyclability Evaluation Method

  • Igarashi, Kento;Yamada, Tetsuo;Inoue, Masato
    • Industrial Engineering and Management Systems
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    • v.13 no.1
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    • pp.52-66
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    • 2014
  • Promotion of a closed-loop supply chain requires disassembly systems that recycle end-of-life (EOL) assembled products. To operate the recycling disassembly system, parts selection is environmentally and economically carried out with non-destructive or destructive disassembly, and the recycling rate of the whole EOL product is determined. As the number of disassembled parts increases, the recycling rate basically increases. However, the labor cost also increases and brings lower profit, which is the difference between the recovered material prices and the disassembly costs. On the other hand, since the precedence relationships among disassembly tasks of the product also change with the parts selections, it is also required to optimize allocation of the tasks in designing a disassembly line. In addition, because information is required for such a design, the recycling rate, profit of each part and disassembly task times take precedence among the disassembly tasks. However, it is difficult to obtain that information in advance before collecting the actual EOL product. This study proposes and analyzes an optimal disassembly system design using integer programming with the environmental and economic parts selection (Igarashi et al., 2013), which harmonizes the recycling rate and profit using recyclability evaluation method (REM) developed by Hitachi, Ltd. The first stage involves optimization of environmental and economic parts selection with integer programming with ${\varepsilon}$ constraint, and the second stage involves optimization of the line balancing with integer programming in terms of minimizing the number of stations. The first and second stages are generally and mathematically formulized, and the relationships between them are analyzed in the cases of cell phones, computers and cleaners.

Mathematical Analysis and Experiment Validation of Modular Multilevel Converters

  • Zhang, Yushu;Adam, Grain Philip;Lim, Tee-Chong;Finney, Stephen J.;Williams, Barry W.
    • Journal of Power Electronics
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    • v.12 no.1
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    • pp.33-39
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    • 2012
  • This paper describes operating and capacitor voltage balancing of the modular multilevel converter. The paper focuses on sizing of the cell capacitor and establishes approximate expressions for the capacitor voltage. Simulations and experiments results obtained from three-level modular converter are used to demonstrate its viability in medium voltage applications. It is shown that the modular converter can operate over the full modulation index linear range independent of load power factor.

Five-Level PWM Inverter Using Series and Parallel Alternative Connection of Batteries

  • Park, Jin-Soo;Kang, Feel-soon
    • Journal of Electrical Engineering and Technology
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    • v.12 no.2
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    • pp.701-710
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    • 2017
  • This paper presents a five-level PWM inverter using series and parallel connection of voltage sources. The alternative connection is done by an auxiliary circuit consisted of a switch, three diodes, and two batteries. The auxiliary circuit is located between input dc voltage source and H-bridge cell. Thanks to the auxiliary circuit, the proposed inverter synthesizes five-level output voltage in an effective way. Topologically both batteries are charged and discharged in the same rate, so it does not need to apply battery voltage balancing control method. Theoretical analysis of the proposed inverter is verified by computer-aided simulation and experiment based on a prototype of 1kW.

A Novel Active Cell Balancing Circuit using Selective Boost Technique for Series-Connected Lithium-Ion Battery (직렬형 리튬이온 배터리의 선택적 전압 균일화 기법을 이용한 새로운 능동형 셀 밸런싱 회로)

  • Park, Young-Hwa;Choi, See-Young;Choi, Yeong-Jun;Kim, Rae-Young
    • Proceedings of the KIPE Conference
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    • 2016.07a
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    • pp.305-306
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    • 2016
  • 본 논문은 선택적 전압 균일화 기법을 이용하여 직렬 연결된 리튬 이온 배터리의 빠른 전압 균일화를 위한 새로운 능동형 셀 밸런싱 회로를 제안하였다. 제안한 회로는 다권선 변압기를 사용한 전하 균일화 회로에 인덕터 1개, MOSFET 스위치 1개를 추가한 회로 구성을 가지며, 기존의 빠른 밸런싱을 위한 회로 대비 수 배 적은 소자로 구성이 가능하다. 추가된 인덕터는 직렬 연결된 배터리 전압을 통해 빠르게 저장된 에너지를, 낮은 전압의 배터리로 높은 밸런싱 전류를 전달함으로써 배터리 셀 간의 빠른 전압 밸런싱을 구현하였다. 제안한 회로의 밸런싱 속도에 대한 검증을 위해서, PSIM Simulation을 통해 기존 회로와 비교 검증 하였다.

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The Study on active cell balancing of lithium ion batteries (리튬이온배터리의 셀 균등 제어방법 연구)

  • Bae, Jun-Woo;Shin, Hyun-Joo;Jeon, Hyung-jun
    • Proceedings of the KIPE Conference
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    • 2013.11a
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    • pp.60-62
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    • 2013
  • 기본적으로 많은 인자들에 의해 영향을 받는 배터리 시스템은 일반적으로 사용 용도에 따라 단위 배터리 셀을 직렬 또는 병렬로 연결하여 하나의 배터리 모듈을 형성하고 있다. 다수개의 단위 배터리 셀을 연결하여 하나의 배터리 모듈로 사용하는 경우, 개별 셀의 활물질 및 전해액의 미소 변동, 충방전 사이클 차이, 온도의 영향에 따라 배터리 특성이 다르게 나타난다. 이러한 특성으로 인해 충전 및 방전이 진행됨에 따라 셀간의 전압 불균형 현상이 발생하고 이로 인해 배터리 수명은 급격하게 감소하여 배터리 교체와 같은 경제적 손실을 초래한다. 본 논문에서는 배터리의 성능과 안전성을 확보하기 위해 배터리 밸런싱에 관한 연구를 수행하였다. 기존의 수동적 밸런싱의 단점을 보완한 능동적 밸런싱을 사용하였고 제안한 회로의 기능 및 성능의 검증을 위해 배터리 관리 장치 보드를 설계 및 제작하여 시험한 결과 개선된 기능이 원활히 수행됨을 확인하였다.

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