Decadal variability of wind-energy input to the world ocean

被引:73
|
作者
Huang, RX [1 ]
Wang, W
Liu, LL
机构
[1] Woods Hole Oceanog Inst, Dept Phys Oceanog, Woods Hole, MA 02543 USA
[2] Ocean Univ, Phys Oceanog Lab, Shandong 2666003, Peoples R China
关键词
wind energy; decadal variability; geostrophic current;
D O I
10.1016/j.dsr2.2005.11.001
中图分类号
P7 [海洋学];
学科分类号
0707 ;
摘要
Wind-stress energy input to the oceans is the most important source of mechanical energy in maintaining the oceanic general circulation. Previous studies indicate that wind-energy input to the Ekman layer and surface waves has varied greatly over the past 50 years. In this study, wind-energy input to surface current and surface geostrophic current was calculated as the scalar product of wind stress and surface Current and surface geostrophic current. The surface geostrophic current was calculated in two ways: the surface geostrophic velocity was diagnosed from the TOPEX/POSEIDON altimeter data between 1993 and 2003, and calculated from the sea-surface height of the numerical model. The surface velocity was obtained from a numerical model. Estimate of wind-energy input based on altimetric data averaged over 1993-2003 is 0.84TW (1TW = 10(12) W), excluding the equatorial band (within 3* of the equator). Estimate of the wind-energy input to the surface geostrophic current based on the numerical model is 0.87 TW averaged from 1993 to 2003, and wind-energy input to the surface current for the same period is 1.16 TW. This input is primarily concentrated over the Southern Ocean and the equatorial region (20 degrees S - 20 degrees N). This energy varied greatly on interannual and decadal time scales, and it increased 12% over the past 25 years, and the interannual variability mainly occurs in the latitude band of 40 degrees S - 60 degrees S and the equatorial region. (c) 2006 Elsevier Ltd. All rights reserved.
引用
收藏
页码:31 / 41
页数:11
相关论文
共 50 条
  • [21] CONTROL POLICIES FOR WIND-ENERGY CONVERSION SYSTEMS
    BUEHRING, IK
    FRERIS, LL
    IEE PROCEEDINGS-C GENERATION TRANSMISSION AND DISTRIBUTION, 1981, 128 (05) : 253 - 261
  • [22] Development of wind-energy modeling technology and standards
    Wang, Cong
    Li, Yan
    Fan, Yiwen
    Chi, Yongning
    Qi, Hongchang
    Liu, Hongzhi
    GLOBAL ENERGY INTERCONNECTION-CHINA, 2022, 5 (02): : 206 - 216
  • [23] Optimal Distribution for Hydropower Load with Wind-energy
    Ge, Yeshuai
    Mo, Li
    Wang, Yongqiang
    INNOVATIVE SOLUTIONS FOR ENERGY TRANSITIONS, 2019, 158 : 6296 - 6301
  • [24] Introduction: Wind-Energy Development and Wildlife Conservation
    Smallwood, K. Shawn
    WILDLIFE SOCIETY BULLETIN, 2013, 37 (01): : 3 - 4
  • [25] Wind-energy generation by active flow control
    Greenblatt, David
    Doron, Gilad
    Treizer, Alexander
    International Journal of Flow Control, 2014, 6 (02) : 105 - 124
  • [26] HISTORY OF, AND RECENT PROGRESS IN, WIND-ENERGY UTILIZATION
    SORENSEN, B
    ANNUAL REVIEW OF ENERGY AND THE ENVIRONMENT, 1995, 20 : 387 - 424
  • [27] Feasibility analysis of wind-energy utilization in Croatia
    Feretic, D
    Tomsic, Z
    Cavlina, N
    ENERGY, 1999, 24 (03) : 239 - 246
  • [28] An update on the wind power input to the surface geostrophic flow of the World Ocean
    Scott, Robert B.
    Xu, Yongsheng
    DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2009, 56 (03) : 295 - 304
  • [29] The response of the North Pacific Ocean to decadal variability in atmospheric forcing: Wind versus buoyancy forcing
    Thompson, L
    Ladd, CA
    JOURNAL OF PHYSICAL OCEANOGRAPHY, 2004, 34 (06) : 1373 - 1386
  • [30] Decadal variability of the Arctic Ocean thermal structure
    Madhusoodanan M.S.
    Bijoy Thompson
    Ocean Dynamics, 2011, 61 : 873 - 880