Plug-In Hybrid Vehicle and Second-Life Applications of Lithium-Ion Batteries at Elevated Temperature

被引:14
|
作者
Vaidya, Rutvik [1 ]
Selvan, Vishnu [1 ]
Badami, Pavan [1 ]
Knoop, Kathy [3 ]
Kannan, Arunachala M. [2 ]
机构
[1] Arizona State Univ, Sch Engn Matter Transport & Energy, Tempe, AZ 85287 USA
[2] Arizona State Univ, Ira A Fulton Sch Engn, Polytech Sch, Mesa, AZ 85212 USA
[3] Salt River Project, Sustainabil Policy & Programs, Phoenix, AZ 85072 USA
关键词
Capacity degradation; Cycle-life test; Energy storage; Lithium-ion batteries; Plug-in hybrid electric vehicles; AGING MECHANISMS; LIFEPO4; ENERGY; MANAGEMENT; CYCLE;
D O I
10.1002/batt.201700002
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
In improving fuel economy and reducing carbon footprint, hybrid, plug-in hybrid and all-electric vehicles are considered as sustainable modes of transportation in the automotive industry. Here, commercial Li-ion cells (26650 and 18650 with lithium iron phosphate (LFP) and nickel manganese cobalt (NMC) cathodes) were subjected to simulated plug-in hybrid electric vehicle (PHEV) conditions, using the Federal Urban Driving Schedule (FUDS) under charge-depleting mode at elevated temperature (50 degrees C and < 10% RH). The capacity degradation (16% over 800 cycles) under the PHEV test protocol for Li-ion batteries with 26650 NMC cathodes was twice of that using LFP cathodes (8% over 800 cycles) under identical conditions. The Li-ion batteries were also subjected to second-life charge-discharge cycling at C/5 rate after evaluating them under the PHEV protocol (800 cycles for 26650 cells and 1200 cycles for 18650 cells). In addition, the high-frequency resistance measured by electrochemical impedance spectroscopy was found to increase significantly with cycling for both the NMC-as well as LFP-based batteries, leading to power fading. XRD analysis of the 18650 LFP-based battery showed change of phase from LiFePO4 to FePO4, indicating Li+-ion loss. However, the cathode active materials of the Li-ion cells (26650 with LFP and NMC cathodes), examined using XRD, showed no significant phase change in the materials after 800 PHEV cycles and around 200 second-life charge-discharge cycles.
引用
收藏
页码:75 / 82
页数:8
相关论文
共 50 条
  • [41] Active Reconditioning of Retired Lithium-Ion Battery Packs From Electric Vehicles for Second-Life Applications
    Rasheed, Marium
    Hassan, Rohail
    Kamel, Mohamed
    Wang, Hongjie
    Zane, Regan
    Tong, Shijie
    Smith, Kandler
    IEEE JOURNAL OF EMERGING AND SELECTED TOPICS IN POWER ELECTRONICS, 2024, 12 (01) : 388 - 404
  • [42] Environmental performance of second-life lithium-ion batteries repurposed from electric vehicles for household storage systems
    Spindlegger, Anna
    Slotyuk, Lyubov
    Jandric, Aleksander
    De Souza, Ricardo Gabbay
    Prenner, Stefanie
    Part, Florian
    SUSTAINABLE PRODUCTION AND CONSUMPTION, 2025, 54 : 227 - 240
  • [43] Particularised Kalman Filter for the state-of-charge estimation of second-life lithium-ion batteries and experimental validation
    Berrueta, Javier
    Berrueta, Alberto
    Soto, Adrian
    Sanchis, Pablo
    Ursua, Alfredo
    2021 21ST IEEE INTERNATIONAL CONFERENCE ON ENVIRONMENT AND ELECTRICAL ENGINEERING AND 2021 5TH IEEE INDUSTRIAL AND COMMERCIAL POWER SYSTEMS EUROPE (EEEIC/I&CPS EUROPE), 2021,
  • [44] Incremental capacity analysis of lithium-ion second-life batteries from electric vehicles under cycling ageing
    Braco, Elisa
    San Martin, Idoia
    Ursua, Alfredo
    Sanchis, Pablo
    2021 21ST IEEE INTERNATIONAL CONFERENCE ON ENVIRONMENT AND ELECTRICAL ENGINEERING AND 2021 5TH IEEE INDUSTRIAL AND COMMERCIAL POWER SYSTEMS EUROPE (EEEIC/I&CPS EUROPE), 2021,
  • [45] Characteristics and Hazards of Plug-In Hybrid Electric Vehicle Fires Caused by Lithium-Ion Battery Packs With Thermal Runaway
    Cui, Yan
    Cong, Beihua
    Liu, Jianghong
    Qiu, Mingming
    Han, Xin
    FRONTIERS IN ENERGY RESEARCH, 2022, 10
  • [46] Investigation of path dependence in commercial lithium-ion cells chosen for plug-in hybrid vehicle duty cycle protocols
    Gering, Kevin L.
    Sazhin, Sergiy V.
    Jamison, David K.
    Michelbacher, Christopher J.
    Liaw, Bor Yann
    Dubarry, Matthieu
    Cugnet, Mikael
    JOURNAL OF POWER SOURCES, 2011, 196 (07) : 3395 - 3403
  • [47] Health indicator selection for state of health estimation of second-life lithium-ion batteries under extended ageing
    Braco, Elisa
    San Martin, Idoia
    Sanchis, Pablo
    Ursua, Alfredo
    Stroe, Daniel-Ioan
    JOURNAL OF ENERGY STORAGE, 2022, 55
  • [48] The effect of electric vehicle charging demand variability on optimal hybrid power systems with second-life lithium-ion or fresh Na-S batteries considering power quality
    Terkes, Musa
    Arikan, Oktay
    Gokalp, Erdin
    ENERGY, 2024, 288
  • [49] Optimising lithium-ion cell design for plug-in hybrid and battery electric vehicles
    Campbell, Ian D.
    Gopalakrishnan, Krishnakumar
    Marinescu, Monica
    Torchio, Marcello
    Offer, Gregory J.
    Raimondo, Davide
    JOURNAL OF ENERGY STORAGE, 2019, 22 : 228 - 238
  • [50] Novel Field Test Equipment for Lithium-Ion Batteries in Hybrid Electrical Vehicle Applications
    Svens, Pontus
    Lindstrom, Johan
    Gelin, Olle
    Behm, Marten
    Lindbergh, Goran
    ENERGIES, 2011, 4 (05): : 741 - 757