ANALYSIS AND ASSESSMENT OF TIDAL CURRENT ENERGY RESOURCES IN SEA AROUND PINGTAN ISLAND

Wu He, Yang Jianyu, Zhu Lining

Acta Energiae Solaris Sinica ›› 2024, Vol. 45 ›› Issue (12) : 494-502.

PDF(6323 KB)
Welcome to visit Acta Energiae Solaris Sinica, Today is
PDF(6323 KB)
Acta Energiae Solaris Sinica ›› 2024, Vol. 45 ›› Issue (12) : 494-502. DOI: 10.19912/j.0254-0096.tynxb.2023-0644

ANALYSIS AND ASSESSMENT OF TIDAL CURRENT ENERGY RESOURCES IN SEA AROUND PINGTAN ISLAND

  • Wu He1, Yang Jianyu, Zhu Lining
Author information +
History +

Abstract

Based on the TELEMAC-2D hydrodynamic model, a tidal current field model around Pingtan Island in Fujian province was established. The accuracy of the model was verified by using measured tidal level and tidal current data. As the results, the model can accurately depict the tidal and current characteristics of the study area. On this basis, the spatial-temporal distribution characteristics of tidal current energy resources and the asymmetry of tidal rise and fall in the region were analyzed. The Flux method was combined with Garrett method to assess and compare the exploitable amount of tidal current energy resources in specific regions. Results show that the tidal current energy resources in the waters around Pingtan Island are mainly distributed in three channels: Pingtan Island-Dalian Island, Dalian Island-Xiaolian Island, and Xiaolian Island-Changyu Island, with a peak power density of about 10 kW/m2. The effective flow time is more than 6000 h. The total area of Class I tidal energy resource zone in three channels is 1.05 km2, while Class Ⅱ is 5.11 km2. The exploitable tidal current energy resources calculated by the Flux and Garrett methods are 7.44 MW and 11.74 MW, respectively.

Key words

tidal current energy / resource assessment / TELEMAC-2D / Pingtan Island

Cite this article

Download Citations
Wu He, Yang Jianyu, Zhu Lining. ANALYSIS AND ASSESSMENT OF TIDAL CURRENT ENERGY RESOURCES IN SEA AROUND PINGTAN ISLAND[J]. Acta Energiae Solaris Sinica. 2024, 45(12): 494-502 https://doi.org/10.19912/j.0254-0096.tynxb.2023-0644

References

[1] 张继生, 汪国辉, 林祥峰. 潮流能开发利用现状与关键科技问题研究综述[J]. 河海大学学报(自然科学版), 2021, 49(3): 220-232.
ZHANG J S, WANG G H, LIN X F.A review of recent development and key technology problems in utilization of tidal stream energy[J]. Journal of Hohai University (natural sciences), 2021, 49(3): 220-232.
[2] 白杨, 杜敏, 周庆伟, 等. 潮流能发电装置现状分析[J]. 海洋开发与管理, 2016, 33(3): 57-63.
BAI Y, DU M, ZHOU Q W, et al.Proceeding of tidal current energy conversion system[J]. Ocean development and management, 2016, 33(3): 57-63.
[3] THIÉBOT J, COLES D S, BENNIS A C, et al. Numerical modelling of hydrodynamics and tidal energy extraction in the Alderney Race: a review[J]. Philosophical transactions Series A. Mathematical, physical, and engineering sciences, 2020, 378(2178): 20190498.
[4] MALDAR N R, NG C Y, PATEL M S, et al.Potential and prospects of hydrokinetic energy in Malaysia: a review[J]. Sustainable energy technologies and assessments, 2022, 52: 102265.
[5] MILLER F P, VANDOME A F, MCBREWSTER J.European marine energy centre[M]. UK: Alphascript Publishing, 2010.
[6] LIU X D, CHEN Z, SI Y L, et al.A review of tidal current energy resource assessment in China[J]. Renewable and sustainable energy reviews, 2021, 145: 111012.
[7] 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.
[8] 郑志南. 海洋潮流能的估算[J]. 海洋通报, 1987, 6(4): 70-75.
ZHENG Z N.The estimation of ocean tidal current energy[J]. Marine science bulletin, 1987, 6(4): 70-75.
[9] 吕新刚, 乔方利. 海洋潮流能资源估算方法研究进展[J]. 海洋科学进展, 2008, 26(1): 98-108.
LYU X G, QIAO F L.Advances in study on tidal current energy resource assessment methods[J]. Advances in marine science, 2008, 26(1): 98-108.
[10] BLACK & VEATCH CONSULTING LTD, UK, EUROPE, et al. Marine Energy Challenge Report[R] London: Carbon Trust, 2004. No. 107799/D/2100/05/1.
[11] BLACK & VEATCH CONSULTING LTD, Phase II UK tidal stream energy resource assessment[R]. London: Carbon Trust, 2005. No. 107799/D/2200/03.
[12] GARRETT C, CUMMINS P.Generating power from tidal currents[J]. Journal of waterway, port, coastal, and ocean engineering, 2004, 130(3): 114-118.
[13] GARRETT C, CUMMINS P.The power potential of tidal currents in channels[J]. Proceedings of the Royal Society A: mathematical, physical and engineering sciences, 2005, 461(2060): 2563-2572.
[14] VENNELL R.Estimating the power potential of tidal currents and the impact of power extraction on flow speeds[J]. Renewable energy, 2011, 36(12): 3558-3565.
[15] VENNELL R, MAJOR R, ZYNGFOGEL R, et al.Rapid initial assessment of the number of turbines required for large-scale power generation by tidal currents[J]. Renewable energy, 2020, 162: 1890-1905.
[16] 赵建春, 陆延, 陈国海, 等. 灌门水道潮流能资源评估及开发条件初步分析[J]. 海洋技术学报, 2017, 36(4): 64-69.
ZHAO J C, LU Y, CHEN G H, et al.Preliminary analysis on the tidal current energy resources in the Guanmen Channel off the coast of Zhejiang Province, China[J]. Journal of ocean technology, 2017, 36(4): 64-69.
[17] 吴亚楠, 武贺, 封哲. 普陀山-葫芦岛水道潮流能资源评估[J]. 可再生能源, 2017, 35(10): 1566-1573.
WU Y N, WU H, FENG Z.Assessment of tidal current energy resource at Putuo Mountain-Hulu Island waterway[J]. Renewable energy resources, 2017, 35(10): 1566-1573.
[18] 张洁, 纪棋严, 左军成, 等. 舟山西堠门水道潮流能资源评估及发电站选址[J]. 海洋科学进展, 2022, 40(2): 327-341.
ZHANG J, JI Q Y, ZUO J C, et al.Tidal current energy resources evaluation and site choosing of power plant in the Xihoumen Channel of Zhoushan[J]. Advances in marine science, 2022, 40(2): 327-341.
[19] 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.
[20] 李程, 高佳, 李文善, 等. 山东省周边海域潮流能资源评估[J]. 海洋开发与管理, 2017, 34(1): 75-80.
LI C, GAO J, LI W S, et al.Tidal current energy resource assessment in offshore of Shandong Province[J]. Ocean development and management, 2017, 34(1): 75-80.
[21] 金永德, 赵新. 福建莆田南日岛附近海域潮流能估算[J]. 海洋湖沼通报, 2019, 41(1): 7-12.
JIN Y D, ZHAO X.Tidal stream energy assessment near Nanri Island in Putian, Fujian[J]. Transactions of oceanology and limnology, 2019, 41(1): 7-12.
[22] 顾振华, 顾晨, 姚鹏程. 东中国海潮汐能分布数值模拟研究[J]. 中国农村水利水电, 2022(11): 165-171.
GU Z H, GU C, YAO P C.Numerical simulation of tidal energy distribution in the East China Sea[J]. China rural water and hydropower, 2022(11): 165-171.
[23] WU H, WANG X, WANG B Z, et al.Evaluation of tidal stream energy and its impacts on surrounding dynamics in the Eastern Region of Pingtan Island, China[J]. Chinese journal of oceanology and limnology, 2017, 35(6): 1319-1328.
[24] 王兆礼, 陈昱宏, 赖成光. 基于TELEMAC-2D和SWMM模型的城市内涝数值模拟[J]. 水资源保护, 2022, 38(1): 117-124.
WANG Z L, CHEN Y H, LAI C G.Numerical simulation of urban waterlogging based on TELEMAC-2D and SWMM model[J]. Water resources protection, 2022, 38(1): 117-124.
[25] FORSTER A, COSTI J, MARQUES W C, et al.Application of the TELEMAC-2D model in the fluvial hydrodinamics simulation and reproduction of flood patterns[J]. Defect and diffusion forum, 2019, 396: 187-196.
[26] LAVINE W, JAMAL M H, ABD WAHAB A K, et al. Effect of sea level rise on oil spill model drift using TELEMAC-2D[J]. Journal of water and climate change, 2020, 11(4): 1021-1031.
[27] NIDZIEKO N J.Tidal asymmetry in estuaries with mixed semidiurnal/diurnal tides[J]. Journal of geophysical research, oceans, 2010, 115(C8): C08006.
[28] NIDZIEKO N J, RALSTON D K.Tidal asymmetry and velocity skew over tidal flats and shallow channels within a macrotidal river delta[J]. Journal of geophysical research, C. Oceans: JGR, 2012, 117(C3): C03001.
[29] 杨忠良, 许雪峰, 施伟勇. 海峡内最大可开发潮流能计算[J]. 太阳能学报, 2017, 38(6): 1706-1710.
YANG Z L, XU X F, SHI W Y.Calculation of maximum exploitable tidal current energy in strait[J]. Acta energiae solaris sinica, 2017, 38(6): 1706-1710.
[30] 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.
[31] 张瑞, 吕忻, 郭佩芳. 我国潮流能资源调查与评估标准问题的研究[J]. 太阳能学报, 2012, 33(增刊1): 145-151.
ZHANG R, LYU X, GUO P F.Research on tidal energy investigation and assessment standards for China[J]. Acta energiae solaris sinica, 2012, 33(Sup1): 145-151.
[32] 冯曦, 周雨晨, 孙凤明, 等. 温州湾海域潮形偏态时空分布特征研究[J]. 海洋学报, 2022, 44(7): 25-36.
FENG X, ZHOU Y C, SUN F M, et al.Study on spatial-temporal distribution characteristics of tidal skewness in the Wenzhou Bay[J]. Haiyang Xuebao, 2022, 44(7): 25-36.
[33] 张雨豪, 吴心彤, 童朝锋, 等. 舟山群岛海域潮波传播变形和不对称性探讨[J]. 水道港口, 2020, 41(1): 9-15.
ZHANG Y H, WU X T, TONG C F, et al.Discussion on deformation and asymmetry of tide wave propagation in Zhoushan archipelago[J]. Journal of waterway and harbor, 2020, 41(1): 9-15.
[34] 韩家新. 中国近海海洋: 海洋可再生能源[M]. 北京: 海洋出版社, 2015.
HAN J X.China offshore ocean: marine renewable energy[M]. Beijing: Ocean Press, 2015.
PDF(6323 KB)

Accesses

Citation

Detail

Sections
Recommended

/