Future costs of key emerging offshore renewable energy technologies

被引:0
|
作者
Santhakumar, Srinivasan [1 ]
Meerman, Hans [1 ]
Faaij, Andre [1 ,2 ]
机构
[1] Univ Groningen, Energy & Sustainabil Res Inst Groningen, Nijenborgh 6, NL-9747 AG Groningen, Netherlands
[2] Netherlands Org Appl Sci Res TNO Energy Transit, Princetonlaan 6, NL-3584 CB Utrecht, Netherlands
关键词
Technological learning; Offshore energy; Cost reduction; Energy policy; LCOE; Decarbonization; TIDAL-STREAM ENERGY; WAVE ENERGY; LEVELISED COST; BROWN SEAWEED; VARIABILITY; MACROALGAE; INNOVATION; DYNAMICS; RESOURCE; BIOFUELS;
D O I
10.1016/j.renene.2023.119875
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A detailed understanding of the technological development pathways of energy technologies will reduce the risks of public energy policy and private investment actions. However, such assessments for emerging technologies, critical for achieving global decarbonization targets, face numerous shortcomings. These shortcomings include limited information at an early development stage, uncertainty in design convergence and performance improvements, and the application of aggregated methodologies in projecting their cost developments fails to explain underlying cost drivers and foresee potential radical changes. This study applies an improved methodology leveraging the merits of quantitative and qualitative methods and shows the technological progress expected for the tidal stream, wave technology, and biofuel production from seaweed in a detailed manner. Tidal stream LCOE declines from 264 euro/MWh at 0.1 GW to 61 euro/MWh at 50 GW cumulative capacity, with CAPEX, capacity factor, and OPEX contributing to 38 %, 33 %, and 16 % of LCOE reductions. Wave technology LCOE declines from 365 euro/MWh at 0.1 GW to 54 euro/MWh at 50 GW, with CAPEX, capacity factor, and OPEX contributing 28 %, 59 %, and 7 % of LCOE reductions. For grid connection costs, we assessed several integration choices for both technologies and concluded that sharing grid connection capacity among several installations would lower the transmission costs and serve as a policy incentive for the uptake of such emerging technologies. Further, the bioethanol production cost from seaweed declines from 17.1 euro/l at 0.1-million l cumulative output to 4.5 euro/l at 50 million l, a 73 % cost reduction in 9 doublings of cumulative output. Identifying fermenting organisms capable of converting the heterogenous monomeric sugars in seaweed is a major limiting factor, resulting in a wide variation in bioethanol yields. Lastly, we also summarized the uncertainties involved in the assessment, their causes, and their impacts on results to improve the understanding of potential development pathways of these technologies.
引用
收藏
页数:18
相关论文
共 50 条
  • [41] Does Renewable Energy Technologies and Poverty Affect the Sustainable Growth in Emerging Countries?
    Kamoun, Manel
    Abdelkafi, Ines
    Ghorbel, Abdelfetah
    [J]. JOURNAL OF THE KNOWLEDGE ECONOMY, 2020, 11 (03) : 865 - 887
  • [42] Assessing the Future of Renewable and Smart Grid Technologies in Regional Energy Systems
    F. Babonneau
    A. Haurie
    G. J. Tarel
    J. Thénié
    [J]. Swiss Journal of Economics and Statistics, 2012, 148 (2) : 229 - 273
  • [43] Research on the social acceptance of renewable energy technologies: Past, present and future
    Batel, Susana
    [J]. ENERGY RESEARCH & SOCIAL SCIENCE, 2020, 68
  • [44] Letter to the Editor: Stability Concerns in Smart Grid with Emerging Renewable Energy Technologies
    Gopakumar, Pathirikkat
    Reddy, M. Jaya Bharata
    Mohanta, Dusmanta Kumar
    [J]. ELECTRIC POWER COMPONENTS AND SYSTEMS, 2014, 42 (3-4) : 418 - 425
  • [45] Energy Revolution for Our Common Future: An Evaluation of the Emerging International Renewable Energy Law
    Karim, Md Ershadul
    Munir, Abu Bakar
    Karim, Mohammad Ataul
    Muhammad-Sukki, Firdaus
    Abu-Bakar, Siti Hawa
    Sellami, Nazmi
    Bani, Nurul Aini
    Hassan, Mohamad Zaki
    [J]. ENERGIES, 2018, 11 (07)
  • [46] Key Technologies and Developing Challenges of Power System with High Proportion of Renewable Energy
    高比例可再生能源电力系统关键技术及发展挑战
    [J]. Kang, Chongqing (cqkang@tsinghua.edu.cn), 1600, Automation of Electric Power Systems Press (45): : 171 - 191
  • [47] An Approach to Analyse Key Renewable Energy Technologies: A Case from Sri Lanka
    Withanaarachchi, A. S.
    Nanayakkara, L. D. J. F.
    Pushpakumara, C.
    [J]. 2014 IEEE INTERNATIONAL CONFERENCE ON INDUSTRIAL ENGINEERING AND ENGINEERING MANAGEMENT (IEEM), 2014, : 570 - 574
  • [48] Key technologies and applications of AC/DC hybrid distributed renewable energy system
    Xiang, Xiao
    Wei, Zhao
    Jie, Zeng
    Ning, Xie
    Qi, Xu
    [J]. 2018 INTERNATIONAL CONFERENCE ON POWER SYSTEM TECHNOLOGY (POWERCON), 2018, : 4625 - 4630
  • [49] Key Technologies for Renewable Energy Integration - A Full Scale Demonstration at Hainan Island
    Chen, Haoyong
    [J]. 2013 IEEE PES ASIA-PACIFIC POWER AND ENERGY ENGINEERING CONFERENCE (APPEEC), 2013,
  • [50] Power Electronics - Key Technology for Renewable Energy Systems - Status and Future
    Blaabjerg, Frede
    Yang, Yongheng
    Ma, Ke
    [J]. 2013 3RD INTERNATIONAL CONFERENCE ON ELECTRIC POWER AND ENERGY CONVERSION SYSTEMS (EPECS), 2013,