• 제목/요약/키워드: Battery Characteristics

검색결과 973건 처리시간 0.027초

리튬이차전지와 슈퍼커패시터로 구성된 하이브리드 셀의 전기화학적 특성 (Electrochemical Characteristics of Hybrid Cell Consisting of Li Secondary Battery and Supercapacitor)

  • 김상길;길보민;황갑진;유철휘
    • 한국수소및신에너지학회논문집
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    • 제30권1호
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    • pp.43-48
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    • 2019
  • This study investigates the electrochemical characteristics of the hybrid cell that combined the advantageous characteristics of Li secondary battery and supercapacitor, high energy density and high power density, respectively. Electrochemical behaviors of the hybrid cell was characterized by charge/discharge, cycle and impedance tests. The hybrid cell using Li secondary battery and supercapacitor had better discharge capacity and cycle performance than that of using Li secondary battery only. Proper design of such a hybrid cell system is expected to result in substantial benefits to the well being of the Li secondary battery. The hybrid cell involving Li secondary battery for high energy density and supercapacitor for high power density may be the possible solution for future energy storage system.

A Study on Optimal Operation Strategy for Mild Hybrid Electric Vehicle Based on Hybrid Energy Storage System

  • Bae, SunHo;Park, Jung-Wook
    • Journal of Electrical Engineering and Technology
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    • 제13권2호
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    • pp.631-636
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    • 2018
  • This paper proposed an optimal operation strategy for a hybrid energy storage system (HESS) with a lithium-ion battery and lead-acid battery for mild hybrid electric vehicles (mild HEVs). The proposed mild HEV system is targeted to mount the electric motor and the battery to a conventional internal combustion engine vehicle. Because the proposed mild HEV includes the motor and energy storage device of small capacity, the system focuses on low system cost and small size. To overcome these limitations, it is necessary to use a lead acid battery which is used for a vehicle. Thus, it is possible to use more energy using HESS with a lithium battery and a lead storage battery. The HESS, which combines the lithium-ion battery and the secondary battery in parallel, can achieve better performance by using the two types of energy storage systems with different characteristics. However, the system requires an operation strategy because accurate and selective control of the batteries for each situation is necessary. In this paper, an optimal operation strategy is proposed considering characteristics of each energy storage system, state-of-charge (SOC), bidirectional converters, the desired output power, and driving conditions in the mild HEV system. The performance of the proposed system is evaluated through several case studies with respect to energy capacity, SOC, battery characteristic, and system efficiency.

반도체 스위칭 소자의 트리거 특성을 이용한 배터리 자동 충전회로에 관한 연구 (A study on the auto-charging circuit of the battery power units using trigger characteristics of semiconductor device)

  • 김영민;황종선;박성진;임종연;송승호
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2001년도 하계학술대회 논문집
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    • pp.519-522
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    • 2001
  • Recently, the battery charging technology and reducing technology of harmonics on AC input line are rising importantly according to increasing electrical facilities that it has been replaced battery with emergency power. In this study, I proposed that an auto-charging circuit of battery has low cost with simple-construction circuit, relative, harmonics reduction with diode tap-change method, high reliability of system for using characteristics of thyristor switching. In case of this circuit, convenience and reliability of maintenance of battery power units were more improved. 1 think that it is resulted in effect of prevention to shortening of battery life from over-charging and over-discharging and decrease of harmonics obstacle on AC input line.

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전기자동차 시스템 모델링 및 주행 환경에 따른 배터리 응답 특성 연구 (Battery Response Characteristics According to System Modeling and Driving Environment of Electric Vehicles)

  • 추용주;박준영;박광민;이승엽
    • 대한임베디드공학회논문지
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    • 제17권2호
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    • pp.85-92
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    • 2022
  • Currently, various researches on electric vehicle battery systems have been conducted from the viewpoint of safety and performance for SoC, SoH, etc. However, it is difficult to build a precise electrical model of a battery system based on the chemical reaction and SoC prediction. Experimental measurements and predictions of the battery SoC were usually performed using dynamometers. In this paper, we construct a simulation model of an electric vehicle system using Matlab Simulink, and confirm the response characteristics based on the vehicle test driving profiles. In addition, we show that it is possible to derive the correlation between the SoC, voltage, and current of the battery according to the driving time of the electric vehicle in conjunction with the BMS model.

${\cdot}$부극 재료의 특성에 따른 리튬이온전지의 용량설계 (Capacity Design of Lithium Ion Battery Based on the Characteristics of Materials)

  • 문성인;도칠훈;윤성규;염덕형
    • 한국전기화학회:학술대회논문집
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    • 한국전기화학회 1998년도 전지기술 심포지움
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    • pp.7-27
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    • 1998
  • In order to design capacity of lithium ion battery, some calculations were carried out based on the characteristics of materials by the given battery shape and dimension. The principle of design was built by the interpretation of the correlation of material, electrochemical and battery factors. Parameters of materials are fundamental physical properties of constituent such as cathode. separator, anode, current collectors and electrolyte. Electrochemical factor includes potential pattern as a function of specific capacity, specific discharge capacity(or initial irreversible specific capacity or Ah efficiency) as a function of specific charge capacity and material balancing. Parameters of battery are dimension, construction hardware and performance. Battery capacity was simulated for a lithium cobalt dioxide as cathode and a hard carbon as anode to achieve 1100 mAh for the charge limit voltage of 4.2V, the weight ratio(+/-) of 2.4 and ICR18650. A fabricated test cell (ICR18650) which have weight ratio(+/-) of 2.4 discharged to 1093 mAh for the charge limit voltage of 4.2V. The sequential discharge capacity show good correspondence with designed capacity.

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

  • 이대건;정원재;장종은;박준석
    • 전자공학회논문지
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    • 제54권4호
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    • pp.99-107
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    • 2017
  • 본 논문은 기존의 리튬 배터리(lithium battery) 등가모델의 정확도 개선을 위한 배터리 모델 계수 보정기법을 제안한다. 전기자동차 등 다양한 산업분야에 사용되는 리튬 배터리의 배터리 셀간 잔존용량(SOC, state of charge) 동일하게 유지하여 배터리 수명의 단축을 최소화하기 위해 BMS(battery management system)가 연구 개발 되었지만, 배터리 셀 전압 기반의 셀 밸런싱(cell balancing) 동작으로 내부저항 및 커패시터에 따른 SOC 변화를 따라가지 못한다. 배터리 내부저항 및 커패시터에 따른 배터리 SOC 추정을 위해 다양한 배터리 등가모델이 연구되었지만, 모든 배터리에 동일하게 적용하는 것은 한계가 있으며 특히 과도상태의 배터리 상태 추정이 어렵다. 기존의 배터리 전기적 등가모델 연구는 1종의 배터리를 대상으로 5~10% 오차율로 충 방전 동적특성을 모사하며 서로 다른 전기적 특성을 갖는 실제 배터리에 적용이 부적합하다. 따라서 본 논문에서는 모델 및 용량이 다른 실제 배터리 운용환경에 적합하며 오차율 5%이하의 동적특성 모사가 가능한 배터리 모델 계수 보정 알고리즘을 제안한다. 제안하는 배터리 모델 계수 보정법 검증을 위해 3.7 V 정격전압, 280 mAh, 1600 mAh 용량의 리튬 배터리를 사용하였으며, 리튬 배터리의 전기적 등가 모델로 2단 RC Tank 모델을 사용하였다. 또한 0.25C, 0.5C, 0.75C, 1C 4가지 C-rate를 사용하여 배터리 충 방전 실험 및 모델검증을 진행하였으며 제안하는 배터리 모델 계수 보정 알고리즘을 통해 구현한 두 종류의 배터리 모델의 배터리 충 방전 특성 및 과도상태 특성의 오차율은 최대 2.13%이다.

Ni-MH 2차 전지의 저온특성에 미치는 전해액의 영향 (Influences of Various Electrolytes on the Low-Temperature Characteristics of Ni-MH Secondary Battery)

  • 박채규;심종수;장민호;박충년;최전
    • 한국수소및신에너지학회논문집
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    • 제18권3호
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    • pp.284-291
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    • 2007
  • The Ni-MH batteries for HEV and industry are normally placed in outdoor, consequently causing an too weak discharge power problem due to a cold weather specially in winter time. In order to improve the low temperature performances of the Ni-MH battery for HEV and industrial uses, it has been investigated the low temperature discharge characteristics of Ni-MH battery with various electrolytes at $-18^{\circ}C$. The summary of experimental results are as follows. The low temperature characteristics depended strongly on the characteristics of electrolytes. When the concentration of the electrolytes were too high or too low the low temperature performance was poor. The best electrolyte was composed of KOH 6.2M+LiOH 1.2M. An addition of RbOH or CsOH to electrolyte improved the low temperature performance. The best total concentration of electrolyte composed of KOH, NaOH and LiOH was about 7M.

특수임무 차량 배터리 팩 진동/충격 저감 설계에 대한 연구 (Study of the Vibration and Shock Isolation for HEV Battery Pack)

  • 김만달;장덕진;이승준;홍성욱
    • 한국정밀공학회지
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    • 제33권10호
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    • pp.813-820
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    • 2016
  • Hybrid Electric Vehicles (HEVs) are developed to be operated with two kinds of power source (Diesel Engine and Electric Motor with Rechargeable High Voltage Battery Pack). HEVs for military vehicle require high reliability to provide stable powers under serious environment such as vibration and shock. To ensure normal operation of battery pack under serious environment such as vibration and shock, the high voltage battery pack needs to have appropriate dynamic characteristics. This paper presents a design procedure for high voltage battery pack with such characteristics. An isolator design is proposed to reduce vibration and shock. Associated random vibration and shock response of the high voltage battery pack are simulated under conditions suggested by MIL specifications. Its dynamic characteristics and vibration and shock responses are validated with experiments.

PAn/Li-Al 2차전지의 초기방전특성 (The First Discharge Characteristics of PAn/Li-Al Secondary Battery)

  • 문성인;윤문수
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1990년도 하계학술대회 논문집
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    • pp.207-210
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    • 1990
  • The purpose of this study is to research and develop polymer secondary battery. This paper describes the first discharge characteristics of PAn/Li-Al secondary battery. PAn was prepared in $HBF_4$ aqueous solution by galvanostatic electropolymerization and then used as cathode active material. PAn/Li-Al secondary battery was prepared in 2025 coin type. Characteristics of this battery are summarized as follows. ${\bullet}$ Open curcuit voltage and discharge end voltage was 3.5V and 2.9V, respectively. ${\bullet}$ The ratio of electricities in discharge to theoretical electricities in all undoping of PAn cathode was 56% at constant current discharge of 1mA. ${\bullet}$ The capacity density, energy density and maximum power density per weight of PAn electroactive material were 56.1Ah/kg, 168.4Wh/kg and 16.9kW/kg, respectively.

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Improvement of Available Battery Capacity in Electric Vehicles

  • Liu, Yow-Chyi
    • Journal of Power Electronics
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    • 제13권3호
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    • pp.497-506
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    • 2013
  • This paper proposes a new method to improve the available battery capacity in electric vehicles by connecting lead-acid batteries with lithium-ion battery in parallel to supply power. In addition, this method combines the discharge characteristics of batteries to improve their efficiency and lower their cost for electric vehicles. A lithium-ion battery set is used to connect with N sets of lead-acid batteries in parallel. The lead-acid battery supplies the initial power. When the lead-acid battery is discharged by the load current until its output voltage drops to the cut-off voltage, the power management unit controls the lead-acid battery and changes it to discharge continuously with a small current. This discharge can be achieved by connecting the lead-acid battery to a lithium-ion battery in parallel to supply the load power or to discharge its current to another lead-acid or lithium-ion battery. Experimental results demonstrates that the available capacity can be improved by up to 30% of the rated capacity of the lead-acid batteries.