Pathway for Integrated Development of Waterway Transportation and Energy in China

Yupeng Yuan, Chengqing Yuan, Honglei Xu, Xinping Yan, Lin He

Strategic Study of CAE ›› 2022, Vol. 24 ›› Issue (3) : 184-194.

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Strategic Study of CAE ›› 2022, Vol. 24 ›› Issue (3) : 184-194. DOI: 10.15302/J-SSCAE-2022.03.019
Research on China's Transportation and Energy Integration Development Strategy
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Pathway for Integrated Development of Waterway Transportation and Energy in China

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Abstract

Energy is vital for the survival and development of human society. Waterway transportation, as a significant component of the transportation industry, is one of major fields of energy consumption and greenhouse gas emissions. Therefore, the integrated development of waterway transportation and energy becomes a powerful measure against severe challenges such as resource shortage, climate change, and environmental pollution. This paper reviews the current energy consumption characteristics of waterway transportation in China in terms of ships and ports, and evaluates the evolution trend of energy demand of relevant main parts from the perspectives of energy supply, quality, and utilization mode. The technical assessment of the integrated development of waterway transportation and energy is conducted, including natural endowment analysis, energy application potential of infrastructure assets, and research and judgment on energy demand. Based on this, the development principles, ideas, and pathways of water way transportation and energy integration in China are proposed. Moreover, this paper proposes suggestions for promoting the integration of waterway transportation and energy in China from the aspects of policy, key technology, and personnel training, so as to provide a basic reference for cross-disciplinary research and high-quality development of the waterway transportation industry.

Keywords

waterway transportation / new energy / low-carbon fuel / zero-carbon fuel / energy utilization mode / transportation infrastructure /

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Yupeng Yuan, Chengqing Yuan, Honglei Xu, Xinping Yan, Lin He. Pathway for Integrated Development of Waterway Transportation and Energy in China. Strategic Study of CAE, 2022, 24(3): 184‒194 https://doi.org/10.15302/J-SSCAE-2022.03.019

References

[1]
李晓易 , 谭晓雨 , 吴睿 , 等 . 交通运输领域碳达峰、碳中和路径研究 [J]. 中国工程科学 , 2021 , 23 6 : 15 ‒ 21 .
[2]
王花云 , 廖凌风 , 马俊 . 基于竞合理论的北部湾港口群吞吐量演化与竞争力提升研究 [J]. 广西财经学院学报 , 2021 , 34 6 : 70 ‒ 81 .
[3]
赵景茜 , 米翰宁 , 程昊文 , 等 . 考虑岸电负荷弹性的港区综合能源系统规划模型与方法 [J]. 上海交通大学学报 , 2021 , 55 12 : 1577 ‒ 1585 .
[4]
Yuan Y P, Wang J X, Yan X P, et al. A design and experimental investigation of a large-scale solar energy/diesel generator powered hybrid ship [J]. Energy, 2018, 165: 965‒978.
[5]
Qiu Y C, Yuan C Q, Tang J R, et al. Techno-economic analysis of PV systems integrated into ship power grid: A case study [J]. Energy Conversion and Management, 2019, 198: 111925.
[6]
Mckinlay C J, Turnock S R, Hudson D A. Route to zero emission shipping: Hydrogen, ammonia or methanol? [J]. International Journal of Hydrogen Energy, 2021, 46(55): 28282‒28297.
[7]
De-Troya J J, Álvarez C, Fernández-Garrido C, et al. Analysing the possibilities of using fuel cells in ships [J]. International Journal of Hydrogen Energy, 2016, 41(4): 2853‒2866.
[8]
Corral-Vega P J, García-Triviño P, Fernández-Ramírez L M. Design, modelling, control and techno-economic evaluation of a fuel cell/supercapacitors powered container crane [J]. Energy, 2019, 186: 115863.
[9]
曾学福 . 综合交通基础设施建设与国家能源运输网融合发展的研究 [J]. 公路 , 2022 , 67 2 : 172 ‒ 180 .
[10]
何正友 , 向悦萍 , 杨健维 , 等 . 电力与交通系统协同运行控制的研究综述及展望 [J]. 全球能源互联网 , 2020 , 3 6 : 569 - 581 .
[11]
方斯顿 , 赵常宏 , 丁肇豪 , 等 . 面向碳中和的港口综合能源系统二: 能源 ‒ 交通融合中的柔性资源与关键技术 [JOL]. 中国电机工程学报 , 2022 , 3 5 : 1 ‒ 20 . 2021-12-20 [ 2022-03-08 ]. https:doi.org10.13334j.0258-8013.pcsee.212121 .
[12]
王扬 . 船舶动力系统现状及发展趋势 [J]. 中国设备工程 , 2017 24 : 180 ‒ 181 .
[13]
浦金云 , 方远 , 伞兵 , 等 . 国外船舶生命力新技术发展与未来趋势 [J]. 海军工程大学学报 , 2020 , 32 6 : 36 ‒ 45 .
[14]
Yuan Y P, Wang J X, Yan X P, et al. A review of multi-energy hybrid power system for ships [J]. Renewable and Sustainable Energy Reviews, 2020, 132: 11‒81.
[15]
Misra A, Panchabikesan K, Ayyasamy E, et al. Sustainability and environmental management: Emissions accounting for ports [J]. Strategic Planning for Energy & the Environment, 2017, 37(1): 8‒26.
[16]
王欣 . 天津港区分布式能源优化规划研究 [D]. 北京 : 华北电力大学硕士学位论文 , 2017 .
[17]
Hua C Y, Chen J H, Wan Z, et al. Evaluation and governance of green development practice of port: A sea port case of China [J]. Journal of Cleaner Production, 2020, 249: 119434.
[18]
国务院 . 国务院关于印发"十四五"节能减排综合工作方案的通知 [EBOL]. 2022-01-24 [ 2022-03-28 ].‍ http:www.‍gov.‍cnzhengcecontent2022-0124content_5670202.htm .
[19]
吕龙德 , 熊莹 . 船舶动力路径 从常规燃料到低碳零碳排放 [J]. 广东造船 , 2021 , 40 6 : 4 ‒ 11 .
[20]
邹乐 , 曹俐 . 中国沿海地区海洋交通运输业能源消耗驱动因素的时空差异特征 [J]. 海洋开发与管理 , 2021 , 38 10 : 3 ‒ 9 .
[21]
邓磊 , 吴钫 , 帅骁睿 . 后备用磷酸铁锂电池组应用特性研究 [J]. 电源技术 , 2021 , 45 11 : 1424 ‒ 1426 .
[22]
国土资源部 . 光伏发电站工程项目用地控制指标 [EBOL]. 2015-12-02 ‍[ 2022-03-28 ]. http:g.mnr.gov.cn201701t20170123_1429897.html .
[23]
建设部 , 国土资源部 . 电力工程项目建设用地指标风电场 [EBOL]. 2012-02-07 [ 2022-03-28 ]. http:www.nea.gov.cn2012-0207c_131395603.htm .
[24]
国家统计局 . 中国统计年鉴—2021 [M]. 北京 : 中国统计出版社 , 2021 .
[25]
交通运输部 . 2019年交通运输行业发展统计公报 [EBOL]. 2020-05-12 ‍[ 2022-03-08 ]. https:xxgk.‍mot.‍gov.‍cn2020jigouzhghs202006t20200630_3321335.html .
[26]
黄波 . 碳达峰、碳中和对港口行业的影响及广州港相关发展建议和措施 [J]. 中国港口 , 2021 12 : 9 ‒ 13 .
Funding
National Key R&D Program of China (2021YFB2601601); Chinese Academy of Engineering project “Strategic Research on the Integrated Development of Transportation and Energy in China” (2021-XZ-22)
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