Providing all global energy with wind, water, and solar power, Part I: Technologies, energy resources, quantities and areas of infrastructure, and materials

被引:1009
作者
Jacobson, Mark Z. [1 ]
Delucchi, Mark A. [2 ]
机构
[1] Stanford Univ, Dept Civil & Environm Engn, Stanford, CA 94305 USA
[2] Univ Calif Davis, Inst Transportat Studies, Davis, CA 95616 USA
关键词
Wind power; Solar power; Water power; GREENHOUSE-GAS EMISSIONS; NUCLEAR-ENERGY; CLIMATE-CHANGE; ETHANOL E85; FUEL-CYCLE; FUTURE; HYDROGEN; PLATINUM; BIOFUELS; SYSTEMS;
D O I
10.1016/j.enpol.2010.11.040
中图分类号
F [经济];
学科分类号
02 ;
摘要
Climate change, pollution, and energy insecurity are among the greatest problems of our time. Addressing them requires major changes in our energy infrastructure. Here, we analyze the feasibility of providing worldwide energy for all purposes (electric power, transportation, heating/cooling, etc.) from wind, water, and sunlight (WWS). In Part I, we discuss WWS energy system characteristics, current and future energy demand, availability of WWS resources, numbers of WWS devices, and area and material requirements. In Part II, we address variability, economics, and policy of WWS energy. We estimate that similar to 3,800,000 5 MW wind turbines, similar to 49,000 300 MW concentrated solar plants, similar to 40,000 300 MW solar PV power plants, similar to 1.7 billion 3 kW rooftop PV systems, similar to 5350 100 MW geothermal power plants, similar to 270 new 1300 MW hydroelectric power plants, similar to 720,000 0.75 MW wave devices, and similar to 490,000 1 MW tidal turbines can power a 2030 WWS world that uses electricity and electrolytic hydrogen for all purposes. Such a WWS infrastructure reduces world power demand by 30% and requires only similar to 0.41% and similar to 0.59% more of the world's land for footprint and spacing, respectively. We suggest producing all new energy with WWS by 2030 and replacing the pre-existing energy by 2050. Barriers to the plan are primarily social and political, not technological or economic. The energy cost in a WWS world should be similar to that today. (C) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1154 / 1169
页数:16
相关论文
共 130 条
[91]  
*OICA INT ORG MOT, 2009 PROD STAT
[92]   Energy for future centuries - Prospects for fusion power as a future energy source [J].
Ongena, J ;
Van Oost, G .
FUSION SCIENCE AND TECHNOLOGY, 2006, 49 (2T) :3-15
[93]  
OROURKE F, 2010, APPL ENERG, V87, P398, DOI DOI 10.1016/J.APENERGY.2009.08.014
[94]   Stabilization wedges: Solving the climate problem for the next 50 years with current technologies [J].
Pacala, S ;
Socolow, R .
SCIENCE, 2004, 305 (5686) :968-972
[95]  
*PARS BRINCK, 2009, POW FUT MAPP OUR LOW
[96]   Steps toward passively safe, proliferation-resistant nuclear power [J].
Penner, S. S. ;
Seiser, R. ;
Schultz, K. R. .
PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2008, 34 (03) :275-287
[97]  
PICKENS TB, 2009, PICKENS PLAN
[98]   Sustainability issues in the development of Nuclear Fission energy [J].
Piera, Mireia .
ENERGY CONVERSION AND MANAGEMENT, 2010, 51 (05) :938-946
[99]  
*PRIC WAT COOP, 2010, 100 REN EL ROADM 205
[100]   Nuclear fuel cycle: Recent developments and future directions [J].
Purushotham, DSC ;
Venugopal, V ;
Ramanujam, A .
JOURNAL OF RADIOANALYTICAL AND NUCLEAR CHEMISTRY, 2000, 243 (01) :199-203