潮流能发电装置发展前沿及选型建议

陈宏举, 于邦廷, 吴勇虎, 张一平, 朱丽宁, 汪小勇

太阳能学报 ›› 2025, Vol. 46 ›› Issue (5) : 690-695.

PDF(2019 KB)
欢迎访问《太阳能学报》官方网站,今天是
PDF(2019 KB)
太阳能学报 ›› 2025, Vol. 46 ›› Issue (5) : 690-695. DOI: 10.19912/j.0254-0096.tynxb.2024-0120

潮流能发电装置发展前沿及选型建议

  • 陈宏举1, 于邦廷1, 吴勇虎1, 张一平1, 朱丽宁2, 汪小勇2
作者信息 +

DEVELOPMENT FRONTIERS OF TIDAL ENERGY GENERATORS AND SELECTION RECOMMENDATIONS

  • Chen Hongju1, Yu Bangting1, Wu Yonghu1, Zhang Yiping1, Zhu Lining2, Wang Xiaoyong2
Author information +
文章历史 +

摘要

对目前国内外正在测试或运行的潮流能主流装置进行概述,提出机组选型基本原则及方法,针对不同机型尺寸及安装条件,将装置适用水深以15、30、和50 m为界划分为4个等级,对适用于不同水深范围的机型给出合理建议。选取摘箬山附近海域为场址进行实例分析。

Abstract

This paper gives an overview of the mainstream tidal current energy devices currently being tested or operated wordwide, puts forward the principles and methods of device selection, and for different device sizes and installation conditions, classifies the applicable water depth of the device into four levels with bounaries at 15 m, 30 m, and 50 m, and gives reasonable suggestions for the device type applicable to different water depth ranges. The sea area near Zhairuoshan is selected as the site for a case analysis.

关键词

可再生能源 / 潮流能 / 发电装置 / 机组选型 / 发电量

Key words

renewable energy / tidal current energy / power generation units / unit selection / generation capacity

引用本文

导出引用
陈宏举, 于邦廷, 吴勇虎, 张一平, 朱丽宁, 汪小勇. 潮流能发电装置发展前沿及选型建议[J]. 太阳能学报. 2025, 46(5): 690-695 https://doi.org/10.19912/j.0254-0096.tynxb.2024-0120
Chen Hongju, Yu Bangting, Wu Yonghu, Zhang Yiping, Zhu Lining, Wang Xiaoyong. DEVELOPMENT FRONTIERS OF TIDAL ENERGY GENERATORS AND SELECTION RECOMMENDATIONS[J]. Acta Energiae Solaris Sinica. 2025, 46(5): 690-695 https://doi.org/10.19912/j.0254-0096.tynxb.2024-0120
中图分类号: P743.1   

参考文献

[1] BYUN D S, HART D E.On robust multi-year tidal prediction using T_TIDE[J]. Ocean science journal, 2019, 54(4): 657-671.
[2] 薛碧颖, 陈斌, 邹亮. 我国海洋无碳能源调查与开发利用主要进展[J]. 中国地质调查, 2021, 8(4): 53-65.
XUE B Y, CHEN B, ZOU L.Main progress in investigation, development and utilization of marine carbon-free energy in China[J]. Geological survey of China, 2021, 8(4): 53-65.
[3] 施伟勇, 王传崑, 沈家法. 中国的海洋能资源及其开发前景展望[J]. 太阳能学报, 2011, 32(6): 913-923.
SHI W Y, WANG C K, SHEN J F.Utilization and prospect of ocean energy resource in China[J]. Acta energiae solaris sinica, 2011, 32(6): 913-923.
[4] 武贺, 韩林生, 方舣洲, 等. 潮流能开发利用指数方法研究与应用[J]. 太阳能学报, 2021, 42(6): 33-38.
WU H, HAN L S, FANG Y Z, et al.A new comprehensive index for evaluating tidal stream energy and its application[J]. Acta energiae solaris sinica, 2021, 42(6): 33-38.
[5] 刘伟民, 刘蕾, 陈凤云, 等. 中国海洋可再生能源技术进展[J]. 科技导报, 2020, 38(14): 27-39.
LIU W M, LIU L, CHEN F Y, et al.Technical progress of marine renewable energy in China[J]. Science & technology review, 2020, 38(14): 27-39.
[6] JIANG Y D, FAGAN E, FINNEGAN W, et al.Design and structural testing of blades for a 2 MW floating tidal energy conversion device[C]// Floating Offshore Energy Devices GREENER Conference, Dublin, 2019.
[7] ABD RAHIM M W, RAHMAN A A, IZHAM M, et al. Tidal Energy in Malaysia: an overview of potentials, device suitability, issues and outlook[J]. Regional studies in marine science, 2023, 61: 102853.
[8] 王世明, 李淼淼, 李泽宇, 等. 国际潮流能利用技术发展综述[J]. 船舶工程, 2020, 42(S1): 23-28.
WANG S M, LI M M, LI Z Y, et al.Development overview of international tidal energy utilization technology[J]. Ship engineering, 2020, 42(S1): 23-28.
[9] SHETTY C, PRIYAM A.A review on tidal energy technologies[J]. Materials today: proceedings, 2022, 56: 2774-2779.
[10] WALKER S, THIES P R.A review of component and system reliability in tidal turbine deployments[J]. Renewable and sustainable energy reviews, 2021, 151: 111495.
[11] 刘葳兴, 刘磊, 崔琳, 等. 潮流能水平轴水轮机流场分析[J]. 太阳能学报, 2023, 44(9): 468-475.
LIU W X, LIU L, CUI L, et al.Flow field analysis of tidal energy horizontal axis turbines[J]. Acta energiae solaris sinica, 2023, 44(9): 468-475.
[12] ANDRITZ. MeyGen-Scotland[EB/OL].https://www.andritz.com/hydro-en/hydronews/hy-hydro-news-30/hy-news-30-14-meygen-scotland-hydro.
[13] ATLANTIS RESOURCES. AR1500 tidal turbine[EB/OL]. https://simecatlantis.com/wp-content/uploads/2016/08/AR1500-Brochure-Final-1.pdf.
[14] OCEAN ENERGY EUROPE.Sustainable marine’s tidal turbine drivetrain completes rigorous tests at world-renowned RWTH Aachen University[EB/OL]. https://www.oceanenergy-europe.eu/industry-news/sustainable-marines-tidal-turbine-drivetrain-completes-rigorous-tests-at-world-renowned-rwth-aachen-university/.
[15] OFFSHORE ENERGY.Sustainable marine launches ‘nest-gen’ floating tidal platform[EB/OL]. https://www.offshore-energy.biz/sustainable-marine-launches-next-gen-floating-tidal-platform/.
[16] VERDANT POWER.Our technology[EB/OL]. https://www.verdantpower.com/technology/.
[17] TOCARDO. Tocardo T-1 tidal turbine[EB/OL].https://www.tocardo.com/tocardo-t1/.
[18] TOCARDO. Tocardo T-2 tidal turbines[EB/OL].https://www.tocardo.com/tocardo-t2/
[19] MINESTO. Deep green holyhead deep project: Phase Ⅰ(0.5MW), environmental statement[EB/OL]. https://tethys.pnnl.gov/sites/default/files/publications/Minesto2016.pdf.
[20] EEL ENERGY.The EEL Energy tidal turbine, an innovativeand sustainable solution[EB/OL]. https://www.eel-energy.fr/en/presentation/.
[21] 郑琳, 汤志成, 张帆. “奋进号”潮流能发电机组成功下海,海上“交响乐团”如何发电?[EB/OL]. https://new.qq.com/rain/a/20220305A02WHS00.
ZHENG L, TANG Z C, ZHANG F.How does the “Symphong Orchestra”on the sea generate electricity after the successful launch of the“Endearour” tidal power generator set?[EB/OL]. https://new.qq.com/rain/a/20220305A02WHS00.
[22] GB/T 34910.4—2017, 海洋可再生能源资源调查与评估指南第4部分: 海流能[S].
GB/T 34910.4—2017, Guidelines for marine renewable energy resources survey and assessment: Part 4: Marine current energy[S].
[23] 方舣洲, 武贺. 舟山群岛海域主要水道潮流能资源评估方法与分析[J]. 地理信息世界, 2022, 29(5): 118-124.
FANG Y Z, WU H.Assessment of tidal stream energy potential of major channels in Zhoushan archipelago[J]. Geomatics world, 2022, 29(5): 118-124.

基金

中海石油(中国)有限公司北京研究中心科技课题“海洋能开发利用关键技术”(KJZX-2022-12-XNY-0900)

PDF(2019 KB)

Accesses

Citation

Detail

段落导航
相关文章

/