ELECTRIC-VEHICLE BATTERIES

被引:0
|
作者
OMAN, H
GROSS, S
机构
[1] Seattle, WA 98166
[2] Seattle, WA 98115, 7201 26th Avenue, NE
关键词
D O I
10.1109/62.350734
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
Electric vehicles that can't reach trolley wires need batteries. In the early 1900's electric cars disappeared when owners found that replacing the car's worn-out lead-acid battery costs more than a new gasoline-powered car. Most of today's electric cars are still propelled by lead-acid batteries. General Motors' in their prototype Impact, for example, used starting-lighting-ignition batteries, which deliver lots of power for demonstrations, but have a life of less than 100 deep discharges. Now promising alternative technology has challenged the world-wide lead miners, refiners, and battery makers into forming a consortium that sponsors research into making better lead-acid batteries. Horizon's new bipolar battery delivered 50 watt-hours per kg (Wh/kg), compared with 20 for ordinary transport-vehicle batteries. The alternatives are delivering from 80 Wh/kg (nickel-metal hydride) up to 200 Wh/kg (zinc-bromine). A Fiat Panda traveled 260 km on a single charge of its zinc-bromine battery. A German 3.5-ton postal truck traveled 300 km with a single charge in its 650-kg (146 Wh/kg) zinc-air battery. Its top speed was 110 km per hour.
引用
收藏
页码:29 / 35
页数:7
相关论文
共 50 条
  • [41] Barriers and Enablers of Circular Economy Implementation for Electric-Vehicle Batteries: From Systematic Literature Review to Conceptual Framework
    Sopha, Bertha Maya
    Purnamasari, Dwi Megah
    Ma'mun, Sholeh
    [J]. SUSTAINABILITY, 2022, 14 (10)
  • [42] EFFECT OF ELEVATED AND VARIABLE TEMPERATURE ON THE PERFORMANCE OF LEAD ACID BATTERIES OPERATED UNDER SIMULATED ELECTRIC-VEHICLE SERVICE
    CONSTABLE, DC
    GARDNER, JR
    HARRIS, K
    HILL, RJ
    RAND, DAJ
    ZALCMAN, LB
    [J]. JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 1984, 168 (1-2): : 395 - 414
  • [43] Performance comparison of electric-vehicle drivetrain architectures from a vehicle dynamics perspective
    Bayar, Kerem
    [J]. PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2020, 234 (04) : 915 - 935
  • [44] HIGH-TECH CONSORTIUM TACKLES ELECTRIC-VEHICLE DEVELOPMENT
    LEONARD, M
    [J]. ELECTRONIC DESIGN, 1992, 40 (23) : 29 - 29
  • [45] Electric vehicle batteries
    Altshuler, M
    [J]. CHEMICAL ENGINEERING PROGRESS, 1998, 94 (08) : 8 - 8
  • [46] EVDG CONFERENCE STRESSES NEED FOR INVESTMENT IN ELECTRIC-VEHICLE RESOURCES
    GARRETT, K
    [J]. ELECTRONICS AND POWER, 1980, 26 (01): : 103 - 106
  • [47] Distributed energy storage systems on the basis of electric-vehicle fleets
    Zhuk A.Z.
    Buzoverov E.A.
    Sheindlin A.E.
    [J]. Thermal Engineering, 2015, 62 (01) : 1 - 6
  • [48] Organization of Electric-Vehicle Production by Means of an Automated Control System
    Razzhivina M.A.
    Dresvyannikov D.G.
    Korshunov A.I.
    Bocek P.
    [J]. Russian Engineering Research, 2018, 38 (3) : 208 - 211
  • [49] Reconfigurable LLC Resonant Converter for Bidirectional Electric-Vehicle Chargers
    Jo, Cheol-Hee
    Kim, Dong-Hee
    [J]. IEEE TRANSACTIONS ON POWER ELECTRONICS, 2023, 38 (12) : 15168 - 15172
  • [50] Optimal Planning of Electric-Vehicle Charging Stations in Distribution Systems
    Liu, Zhipeng
    Wen, Fushuan
    Ledwich, Gerard
    [J]. IEEE TRANSACTIONS ON POWER DELIVERY, 2013, 28 (01) : 102 - 110