Global transcontinental power pools for low-carbon electricity

被引:5
|
作者
Yang, Haozhe [1 ]
Deshmukh, Ranjit [1 ,2 ]
Suh, Sangwon [1 ]
机构
[1] Univ Calif Santa Barbara, Bren Sch Environm Sci & Management, Santa Barbara, CA 93106 USA
[2] Univ Calif Santa Barbara, Environm Studies Program, Santa Barbara, CA USA
基金
美国国家科学基金会;
关键词
WIND; SOLAR; GAS; GENERATION;
D O I
10.1038/s41467-023-43723-z
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The transition to low-carbon electricity is crucial for meeting global climate goals. However, given the uneven spatial distribution and temporal variability of renewable resources, balancing the supply and demand of electricity will be challenging when relying on close to 100% shares of renewable energy. Here, we use an electricity planning model with hourly supply-demand projections and high-resolution renewable resource maps, to examine whether transcontinental power pools reliably meet the growing global demand for renewable electricity and reduce the system cost. If all suitable sites for renewable energy are available for development, transcontinental trade in electricity reduces the annual system cost of electricity in 2050 by 5-52% across six transcontinental power pools compared to no electricity trade. Under land constraints, if only the global top 10% of suitable renewable energy sites are available, then without international trade, renewables are unable to meet 12% of global demand in 2050. Introducing transcontinental power pools with the same land constraints, however, enables renewables to meet 100% of future electricity demand, while also reducing costs by up to 23% across power pools. Our results highlight the benefits of expanding regional transmission networks in highly decarbonized but land-constrained future electricity systems. By building transcontinental power pools, Yang and colleagues find global electricity demand can be 100% met by renewables, at an affordable cost.
引用
收藏
页数:12
相关论文
共 50 条
  • [1] Global transcontinental power pools for low-carbon electricity
    Haozhe Yang
    Ranjit Deshmukh
    Sangwon Suh
    Nature Communications, 14
  • [2] Global transition to low-carbon electricity: A bibliometric analysis
    Wan, Lu
    Wei, Yi-Ming
    Brown, Marilyn A.
    APPLIED ENERGY, 2017, 205 : 57 - 68
  • [3] Positioning Nuclear Power in the Low-Carbon Electricity Transition
    Verbruggen, Aviel
    Yurchenko, Yuliya
    SUSTAINABILITY, 2017, 9 (01):
  • [4] Low-carbon electricity for 2030
    Hannah Hoag
    Nature Climate Change, 2011, 1 : 233 - 235
  • [5] Low-carbon electricity for 2030
    Hoag, Hannah
    NATURE CLIMATE CHANGE, 2011, 1 (05) : 233 - 235
  • [6] The Future of Low-Carbon Electricity
    Greenblatt, Jeffery B.
    Brown, Nicholas R.
    Slaybaugh, Rachel
    Wilks, Theresa
    Stewart, Emma
    McCoy, Sean T.
    ANNUAL REVIEW OF ENVIRONMENT AND RESOURCES, VOL 42, 2017, 42 : 289 - 316
  • [7] Enabling storage and utilization of low-carbon electricity: power to formic acid
    Chatterjee, Sudipta
    Dutta, Indranil
    Lum, Yanwei
    Lai, Zhiping
    Huang, Kuo-Wei
    ENERGY & ENVIRONMENTAL SCIENCE, 2021, 14 (03) : 1194 - 1246
  • [8] Promoting low-carbon electricity production
    Apt, Jay
    Keith, David W.
    Morgan, M. Granger
    ISSUES IN SCIENCE AND TECHNOLOGY, 2007, 23 (03) : 37 - 43
  • [9] Delivering a Low-Carbon Electricity System
    Skea, Jim
    ENERGY POLICY, 2009, 37 (06) : 2457 - 2458
  • [10] Fusion power in a future low carbon global electricity system
    Cabal, H.
    Lechon, Y.
    Bustreo, C.
    Gracceva, F.
    Biberacher, M.
    Ward, D.
    Dongiovanni, D.
    Grohnheit, P. E.
    ENERGY STRATEGY REVIEWS, 2017, 15 : 1 - 8