• Title/Summary/Keyword: BMS(Battery Management System)

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Analysis of Operating Time of Li-polymer Secondary Cell with or Without Flyback Converter Active Balancing BMS (Flyback Converter Active Balancing BMS 적용 유·무에 따른 리튬폴리머 이차전지 가용시간 분석)

  • Kim, Young-Pil;Choi, Chul-Hyung;Ko, Seok-Cheol;Kim, Si-Kyung
    • The Transactions of The Korean Institute of Electrical Engineers
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    • v.66 no.5
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    • pp.786-791
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    • 2017
  • In this paper, the run time of Li-polymer secondary cell with and without Active Balancing BMS is analyzed. The Active Balancing System using Flyback Converter with two-way power control facility, his designed for optimal characteristics of balancing. The run time of Li-polymer secondary cell is drastically increased employing the Flyback Convert Active Balancing BMS. The run time performance of Li-polymer secondary cell with or without Flyback Converter Active Balancing BMS is analyzed with the discharging and charging experiment of Li-polymer secondary cell.

Optimal Operation of EV Electrical Power System with Ni-MH's BMS(Battery Management System) (Ni-MH용 전지관리장치를 이용한 EV 전력시스템 최적운전)

  • 이종찬
    • Proceedings of the KIPE Conference
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    • 2000.07a
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    • pp.66-69
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    • 2000
  • 전기자동차에서 주 에너지원은 축전지이다. 현재전기자동차용 축전지는 에너지 밀도 및 파워 밀도가 커지고 있지만 기존의 자동차에 비해서 주행거리가 짧다. 그래서 전지관리장치(Battery management System : BMS) 개발목적은 효율적으로 배터리를 관리하여 전기자동차의 전력시스템을 최적으로 운전하는 데 있다. 주행 중 즉 모터링시 축전시의 상태에 따라 인버터의 운전을 최적으로 하기 위한 제어방식을 도입하고 충전시에도 축전시의 충전상태에 따른 충전모드를 선택하여 제어하는 방식을 도입하고자 한다. 전기자동차 전력시스템의 최적운전을 실현할 수 있고 이를 통해 주행거리를 증대시킬수 있는 전기자동차 용 Ni-MH 전지 제어 알고리즘을 이용하여 개발한 BMS에 대해 소개한다.

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The development of controller for lithium-ion battery of electric vehicle (전기자동차용 리튬이온 배터리 제어를 위한 제어기 개발)

  • Cho, Sebong;Hong, Hyunju;Jeon, Ywunseok
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.11a
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    • pp.96.2-96.2
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    • 2010
  • EV(Electric Vehicle) 차량에서 BMS(Battery Management System) 은 모터에 공급되는 고전압 배터리의 충전상태를 감지하여 VCU(Vehicle Control Unit)에 전송하게 된다. VCU에서는 배터리의 충전상태를 확인하여 모터 구동 전략을 수립하여 각 제어기에 전송하게 된다. 위와 같이 EV에서 배터리 충전상태를 정확하게 감지하지 못한다면, 모터 구동을 위한 전략 수립에 많은 제약이 따르게 된다. 정확한 배터리 충전 상태를 감지하기 위해서는 배터리 각 셀의 전압/전류/온도 등을 측정하여 연산에 의해 결정된다. 그 중 셀 전압 측정 방식은 Photomos relay를 이용한 방식으로 하드웨어적인 오차에 ${\pm}$수십mV보다 더둑 더 정밀하게 측정할 수 있는 방법이 없었다. 하지만, 셀 전압 측정 정밀도를 향상시키기 위해 신규로 개발된 battery monitoring IC를 이용한 BMS의 H/W 개발에 대해 설명할 것이다. 또한, Monitoring IC를 이용한 BMS의 셀 전압 측정 정밀도를 얼마나 개선시킬 수 있는지에 대해 연구하였다.

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Development of Battery Management System using Multiple Microcontroller (다중 마이크로콘트롤러를 사용한 배터리 관리 시스템의 개발)

  • Choi, Jeong-Won;Jang, WoonGeun
    • Journal of the Korean Society of Industry Convergence
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    • v.21 no.6
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    • pp.329-335
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    • 2018
  • In an electric vehicle and Energy Storage System(ESS), a large number of batteries are connected in series or parallel to obtain high voltage and current. The battery management system(BMS) is needed because battery has a characteristic that explode in overcharging and overcurrent situations due to the nature of the battery material and the battery life is dramatically reduced when the battery is overdischarged below the specified voltage. In this paper, we proposed a system that can manage a large amount of batteries through the communication of master-slave type with multiple microcontroller. We confirmed the stable operation of the proposed system through the balancing-charging and storage mode experiments.

Development of hybrid system with fuel cell and lithium secondary battery (연료전지와 리튬 이차전지의 하이브리드 시스템 개발)

  • Hwang, Sangmoon;Jung, Eunmi;Son, Dongun;Shim, Taehee;Song, Hayoung
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.06a
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    • pp.143.2-143.2
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    • 2010
  • Therefore, with this development assignment we'd like to develop the hybrid system combining 800W DMFC (Direct Methanol Fuel Cell) and 1.6kW of Lithium secondary battery pack which can be applied to the most common small cart. a scooter, to secure the development capability of hundreds of Watts DMFC, the high-capacity Lithium secondary battery pack, the technology of BMS (Battery Management System) and the development technology of hybrid system. DMFC, in fact, has lower energy efficiency than PEMFC (Polymer Electrolyte Membrane Fuel Cell); however, it has several advantages in terms of fuel storage and use. It is pretty easy to be stored and used without any additional colling and heating devices because of its insensitive liquid methanol to temperature. In conclusion, DMFC system is the most suitable device for small mobile vehicles.

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The Core Technical Trends of TESLA EV(Electric Vehicle) Motors (테슬라(TESLA) 전기자동차 핵심 기술동향)

  • Bae, Jin-Yong;Kim, Yong
    • The Transactions of the Korean Institute of Power Electronics
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    • v.22 no.5
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    • pp.414-422
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    • 2017
  • This paper reviews the core technical trends of TESLA EV Motors. The TESLA EV Motors is explosively popular with a considerable recharging infrastructure, a wide 17-[inch] touch display, 417 [HP], and 378 [km] going distance. The object of this study analyzes the body appearance, motor and, battery cooling system, battery arrangement, battery management system, super charging station, power electronics, and induction motor.

전력선통신을 이용한 납축전지용 Battery Management System의 설계 및 구현

  • Jang, Tae-Uk;Lee, Hyeon-U
    • Information and Communications Magazine
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    • v.33 no.7
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    • pp.53-58
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    • 2016
  • 본 논문에서는 전력선(Power Line Communication, 이하 PLC)통신을 이용하여, 납축배터리의 효율적인 충방전 관리 및 배터리 수명의 지표로 쓰일 수 있는 내부저항 측정 방법에 대하여 알아본다. 또한 이러한 시스템에 대한 임베디드 플랫폼을 설계하고, 실제 UPS환경과 연동시 고려해야 할 사항에 대하여 알아본 후, 이를 해결 할 수 있는 방안을 제시한다.

Development of UPSs Using DSP (DSP를 이용한 무정전전원장치 개발)

  • Kim D.U.;Shin H.J.;Ryu S.P.;Min B.G.
    • Proceedings of the KIPE Conference
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    • 2001.07a
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    • pp.292-295
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    • 2001
  • This paper describes the implementation of UPS system controlled by the DSP. The digital techniques have been used tn overcome the problems of UPS system controlled by analog control circuits. By developing these systems using the digital technique we could increase the reliability and improve the electrical characteristics. And we designed and developed the system which is able to control UPSs and to monitor errors, statuses and actual values transmitted from UPS through internet. The UPSs also impose high demands on battery life time, reliability and energy-efficiency. These requirements can only be met by employing sophisticated battery management system(BMS). Therefore, a highly accurate, universal and inexpensive measuring system for BMS was developed.

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A Study on the Battery Management System for the optimum conditions of the battery in UPS (UPS용 배터리 최적화를 위한 배터리관리시스템에 관한 연구)

  • Moon, Jong-Hyun;Seo, Cheol-Sik;Park, Jae-Wook;Kim, Geum-Soo;Kim, Dong-Hee
    • Proceedings of the Korean Institute of IIIuminating and Electrical Installation Engineers Conference
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    • 2008.05a
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    • pp.321-324
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    • 2008
  • This paper presents the battery management system(BMS) for the optimum conditions of the lead-Acid battery in UPS. The proposed system controls the over and under currents of battery for protecting and it was applied algorithm for optimum conditions to estimate the State Of Charge(SOC) in charge or discharge mode. It approved the performance and the algorithm for the estimation of SOC, through the experiments which using the charge and discharge tester and the field tests.

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Implementation of Battery Management System for Li-ion Battery Considering Self-energy Balancing (셀프에너지 밸런싱을 고려한 리튬이온전지의 Battery Management System 구현)

  • Kim, Ji-Myung;Lee, Hu-Dong;Tae, Dong-Hyun;Ferreira, Marito;Park, Ji-Hyun;Rho, Dae-Seok
    • Journal of the Korea Academia-Industrial cooperation Society
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    • v.21 no.3
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    • pp.585-593
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    • 2020
  • Until now, 29 fire accidents have occurred; 22 of them were caused by the interconnection of renewable energy sources that occurred during the rest period after the lithium-ion battery had been fully charged regardless of the seasons. The fire accidents of ESS were attributed to thermal runaway due to the overcharging of a few cells with the phenomenon of self-energy balancing, which is unintentional current flow from cells with a high SOC to the low cells if the SOC condition of each cell connected in parallel is different. Therefore, this paper proposes a novel configuration and operation algorithm of the BMS to prevent the self-energy balancing of ESS and presents a hybrid SOC estimation algorithm. From the test results of the self-energy balancing phenomenon between aging and normal cells based on the proposed algorithm and BMS, it was confirmed the possibility of self-energy balancing, which is unintentional current flow from cells with a high SOC to cells with a low SOC. In addition, the proposed configuration of the BMS is useful and practical to improve the safety of lithium-ion batteries because the BMS can reliably disconnect a parallel connection of the cells if the self-energy balancing current becomes excessively high.