Journal of Transportation Systems Engineering and Information Technology ›› 2022, Vol. 22 ›› Issue (4): 43-52.DOI: 10.16097/j.cnki.1009-6744.2022.04.005
Previous Articles Next Articles
DONG Gang* , GUAN Min
Received:2022-01-23
Revised:2022-03-11
Accepted:2022-03-17
Online:2022-08-25
Published:2022-08-22
Supported by:董岗*,管敏
作者简介:董岗(1979- ),男,安徽太和人,教授,博士。
基金资助:CLC Number:
DONG Gang , GUAN Min. Knowledge Mapping Analysis on China's Ship Emission Reduction Technology Innovation Under "Double Carbon" Goal[J]. Journal of Transportation Systems Engineering and Information Technology, 2022, 22(4): 43-52.
董岗, 管敏. “双碳”目标下我国船舶减排技术创新知识图谱分析[J]. 交通运输系统工程与信息, 2022, 22(4): 43-52.
Add to citation manager EndNote|Ris|BibTeX
URL: http://www.tseit.org.cn/EN/10.16097/j.cnki.1009-6744.2022.04.005
| [1] LINDSTAD H, ASBJ RNSLETT B E, STR MMAN A H. The importance of economies of scale for reductions in greenhouse gas emissions from shipping[J]. Energy Policy, 2012, 46: 386-398. [2] BOUMAN E A, ELIZABETH L, RIALLAND A I. State-ofthe-art technologies, measure, and potential for reducing GHG emissions from shipping: A review[J]. Transportation Research Part D, 2017, 52(5): 408-421. [3] 徐炼. 船舶动力装置节能减排措施研究 [J]. 船舶物资与市场, 2020(11): 59-60. [XU L. Study on energy saving and emission reduction measures of marine power plant[J]. Marine Equipment/ Materials & Marketing, 2020 (11): 59-60.] [4] 刘西全, 颜士芹, 许文媛. 节能减排环保背景下的船用双燃料柴油机发展研究 [J]. 船舶工程, 2014, 36(5): 10-13. [LIU X Q, YAN S Q, XU W Y. Development of ship dual-fuel diesel engine in the context of energy conservation and environmental protection[J]. Ship Engineering, 2014, 36(5): 10-13.] [5] 黄晶晶, 张小玉, 王鹏鹏. 船舶二氧化碳减排技术研究 [J]. 交通节能与环保, 2021, 17(4): 73-76. [HUANG J J, ZHANG X Y, WANG P P. Research on ship carbon dioxide emission reduction technology[J]. Transport Energy Conservation & Environmental Protection, 2021, 17(4): 73-76.] [6] 吴旺山, 韩美茹, 张晨东, 等. 电磁感应加热技术在船舶 CO2减排中的应用[J]. 中国新技术新产品, 2021 (19): 128-130. [WU W S, HAN M R, ZHANG C D, et al. Application of electromagnetic induction heating technology in ship CO2 emission reduction[J]. New Technology & New Products of China, 2021(19): 128- 130.] [7] 王强. 船舶柴油机尾气 SCR 减排技术分析[J]. 科技资讯, 2021, 19(21): 78- 81. [WANG Q. Analysis on SCRemission reduction technology of marine diesel engine exhaust[J]. Science & Technology Information, 2021, 19 (21): 78-81.] [8] 徐培, 王科俊, 金鸿章, 等. 模糊控制在船舶减摇技术上的应用[J]. 自动化技术与应用, 2001(1): 20-22. [XU P, WANG K J, JIN H Z, et al. Application of fuzzy control in ship anti rolling technology[J]. Techniques of Automation and Applications, 2001(1): 20-22.] [9] 吴明华. 海空减排: 全球航运站到了重要节点上[J]. 中国远洋航务, 2007(8): 26-27. [WU M H. Sea and air emission reduction: the global shipping station has reached an important node[J]. Maritime China, 2007(8): 26-27.] [10] 张丽瑛. 船舶能效设计指数及其未来对船舶业的影响 [J]. 中国水运(下半月刊), 2011, 11(1): 1-3, 5. [ZHANG L Y. Ship energy efficiency design index and its future impact on ship industry[J]. China Water Transport, 2011, 11(1): 1-3, 5.] [11] 刘洪波, 董志强, 林结庆. 码头船用岸电供电系统技术 [J]. 水运工程, 2011(9): 181-184, 229. [LIU H B, DONG Z Q, LIN J Q. Technology of shore power supply system for wharf ship[J]. Port & Waterway Engineering, 2011(9): 181-184, 229.] [12] 张运秋, 丁立勋, 李博洋. 船舶柴油机尾气后处理SCR 技术分析和应用[J]. 船舶与海洋工程, 2015, 31(1): 36- 40. [ZHANG Y Q, DING L X, LI B Y. Analysis and application of SCR technology for post-treatment of marine diesel engine exhaust[J]. Naval Architecture and Ocean Engineering, 2015, 31(1): 36-40.] [13] 杨少龙, 韩志涛, 潘新祥, 等. 基于灰色层次分析法的船舶废气SOx减排技术评价[J].环境工程学报, 2015, 9 (10): 4928-4934. [YANG S L, HAN Z T, PAN X X, et al. Evaluation of SOx emission reduction technology of ship exhaust gas based on grey analytic hierarchy process[J]. Chinese Journal of Environmental Engineering, 2015, 9 (10): 4928-4934.] [14] 秦琦, 王宥臻. 全球新能源(清洁)船舶及相关智能技术发展[J]. 船舶, 2018, 29(S1): 29-41. [QIN Q, WANG Y Z. Development of global new energy (clean) ships and related intelligent technologies[J]. Ship & Boat, 2018, 29 (S1): 29-41.] [15] 郑洁, 柳存根, 林忠钦. 绿色船舶低碳发展趋势与应对策略[J]. 中国工程科学, 2020, 22(6): 94-102. [ZHENG J, LIU C G, LIN Z Q. Low-carbon development of green ships and related strategies[J]. Strategic Study of CAE, 2020, 22(6): 94-102.] [16] 朱元清. 绿色船舶及其能源动力技术发展[J]. 船舶工程, 2021, 43(3): 13-19. [ZHU Y Q. Development of green ship and its energy power technology[J]. Ship Engineering, 2021, 43(3): 13-19.] [17] 王鹏. 国际航运业碳减排和船舶燃料转型趋势[J]. 国际石油经济, 2021, 29(7): 52- 62. [WANG P. Carbon emission reduction of international shipping industry and transformation trend of ship fuel[J]. International Petroleum Economics, 2021, 29(7): 52-62.] [18] 彭传圣. 靠港船舶使用岸电技术的推广应用[J]. 港口装卸, 2012(6): 1- 5. [PENG C S. Application and promotion of on-shore power technology served for berthing vessels [J]. Port Operation, 2012(6): 1-5.] [19] 张爽, 张硕慧, 李义良. 船舶温室气体减排措施及对我国的影响分析[J]. 中国航海, 2010, 33(3): 69-72. [ZHANG S, ZHANG S H, LI Y L. Marine GHG emission reduction measures and their effects on China[J]. Navigation of China, 2010, 33(3): 69-72.] [20] 严新平. 新能源在船舶上的应用进展及展望[J]. 船海工程, 2010, 39(6): 111-115, 120. [YAN X P. Progress review of new energy application in ship[J]. Ship & Ocean Engineering, 2010, 39(6): 111-115, 120.] [21] 董美华, 马汝建, 赵东. 船舶减摇技术研究进展[J]. 济南大学学报(自然科学版), 2008(2): 183-188. [DONG M H, MA R J, ZHAO D. Research progress of ship roll reduction technology[J]. Journal of Jinan University, 2008 (2): 183-188.] [22] 洪超, 陈莹霞. 船舶减摇技术现状及发展趋势[J]. 船舶工程, 2012, 34(S2): 236-244, 298. [HONG C, CHEN Y X. Present situation and development trend of ship anti rolling technology[J]. Ship Engineering, 2012, 34(S2): 236-244, 298.] [23] 彭雪竹. 国内外双燃料发动机发展状况分析[J]. 船舶物资与市场, 2012(3): 16-21. [PENG X Z. Analysis on the development of dual fuel engine at home and abroad [J]. Marine Equipment/ Materials & Marketing, 2012(3): 16-21.] [24] 卢明超, 刘汝梅, 石强, 等. 国、内外港口船舶岸电技术的发展和应用现状[J]. 港工技术, 2012, 49(3): 41-44. [LU M C, LIU R M, SHI Q, et al. Development and application status of ship shore power technology in ports at home and abroad[J]. Port Engineering Technology, 2012, 49(3): 41-44.] [25] 王世荣. 我国内河柴油-LNG双燃料动力船舶的现状分析与建议[J]. 中国水运(下半月), 2011, 11(7): 4-5, 7. [WANG S R. Current situation analysis and suggestions of inland diesel LNG dual fuel power ships in China[J]. China Water Transport, 2011, 11(7): 4-5, 7.] [26] 许欢, 刘伟, 张爽. 低碳经济下船舶航行速度选择[J]. 中国航海, 2012, 35(2): 98- 101, 109. [XU H, LIU W, ZHANG S. Choice of ship speeds under low-carbon economy [J]. Navigation of China, 2012, 35(2): 98-101, 109.] [27] GOLDSWORTHY L, GOLDSWORTHY B. Modelling of ship engine exhaust emissions in ports and extensive coastal waters based on terrestrial AIS data: An Australian case study[J]. Environmental Modelling and Software, 2015, 63: 45-60. [28] 谭亲明, 胡以怀, 张旭升. 现代船舶柴油机节能减排技术研究[J]. 环境工程, 2015, 33(7): 76-80. [TAN Q M, HU Y H, ZHANG X S. Research on energy saving and emission reduction technology of modern marine diesel engine[J]. Environmental Engineering, 2015, 33(7): 76- 80.] [29] 朱墨, 真虹, 甘爱平. 碳排放权交易下的班轮船队配置优化研究[J]. 交通运输系统工程与信息, 2016, 16(1): 202- 208, 236. [ZHU M, ZHEN H, GAN A P. Optimization of liner ship fleet mix strategy under emission trading system[J]. Journal of Transportation Systems Engineering and Information Technology, 2016, 16(1): 202-208, 236.] [30] 彭陈, 赵春生. 船舶柴油主机NOx减排废气再循环系统应用分析[J]. 船舶工程, 2016, 38(7): 45-48. [PENG C, ZHAO C S. Analysis on application of NOx emission reduction exhaust gas recirculation system for marine diesel engine[J]. Ship Engineering, 2016, 38(7): 45-48.] [31] 张信学, 赵峰, 王传荣, 等. 绿色船舶技术发展战略研究[J]. 中国工程科学, 2016, 18(2): 66-71. [ZHANG X X, ZHAO F, WANG C R, et al. Research on the development strategy of green ship technology[J]. Strategic Study of CAE, 2016, 18(2): 66-71.] [32] 李军. 基于EEDI计算与优化的大型船舶结构设计[J]. 舰船科学技术, 2017, 39(16): 1- 3. [LI J. Structural design of large ships based on EEDI calculation and optimization[J]. Ship Science and Technology, 2017, 39 (16): 1-3.] [33] 张卓, 徐国平, 李兴华, 等. 航运碳减排措施及我国航运碳减排情景分析[J]. 工业安全与环保, 2021, 47(S1): 63-69. [ZHANG Z, XU G P, LI X H, et al. Analysis of shipping carbon reduction measures and the scenarios of shipping carbon reduction in China[J]. Industrial Safety and Environmental Protection, 2021, 47(S1): 63-69.] [34] 孙化栋, 仝永臣, 李岩. CCUS 技术在船舶上的应用进展研究[J]. 青岛远洋船员职业学院学报, 2021, 42(4): 21-26. [SUN H D, TONG Y C, LI Y. Research on application progress of CCUs technology on ship[J]. Journal of Qingdao Ocean Shipping Mariners College, 2021, 42(4): 21-26.] [35] 葛颖恩, 温馨. 环境可持续集装箱班轮运输管理研究综述[J]. 交通运输系统工程与信息, 2021, 21(4): 6-22. [GE Y E, WEN X. A review of environmentally sustainable container liner shipping management[J]. Journal of Transportation Systems Engineering and Information Technology, 2021, 21(4): 6-22.] |
| [1] | LI Junjun, MIAO Quanli, XU Bowei, CUI Qinke, LIU Congyue, ZHU Jiangwen. On Invulnerability of Container Transport Network Considering Zero-carbon Route [J]. Journal of Transportation Systems Engineering and Information Technology, 2024, 24(5): 217-225. |
| [2] | HU Liwei, CHEN Chen, ZHAO Xueting, LIU Bing, HOU Zhi, ZHANG Ruijie, HE Yu. Identification of Vehicle Interaction Risk in Short Weaving Areas of Expressways Based on Driving Risk Field [J]. Journal of Transportation Systems Engineering and Information Technology, 2024, 24(3): 221-231. |
| [3] | JI Ming-jun, HU Han-lin, GAO Zhen-di, FANG Wan-wei. Energy-efficient Ship Route Optimization Considering Wind and Wave Impacts [J]. Journal of Transportation Systems Engineering and Information Technology, 2023, 23(6): 274-283. |
| [4] | YANG Hua-long , WU Yan-hua, SUN Yi-lun. Robust Optimization Model and Algorithm for Maritime Inventory Routing Problem of Multi Fuel Products [J]. Journal of Transportation Systems Engineering and Information Technology, 2022, 22(3): 238-246. |
| [5] | YANG Hua-long , ZHAO Shuai-qi, FANG Xu, DUAN Jing-ru. Robust Optimization of Vessel Scheduling for Liner Shipping Considering Sea Contingency Time and Collaborative Agreement [J]. Journal of Transportation Systems Engineering and Information Technology, 2021, 21(6): 210-216. |
| [6] | LIAO Shi-guan,YANG Dong, BAI Xi-wen,WENG Jin-xian. Estimation Method of Port Handling Efficiency Value Based on Ship Big Data [J]. Journal of Transportation Systems Engineering and Information Technology, 2021, 21(2): 217-223. |
| [7] | XU Yao-fang, GONG Hua-feng. Method for Determining Road Boundaries Based on Pollutant Diffusion [J]. Journal of Transportation Systems Engineering and Information Technology, 2019, 19(4): 218-226. |
| [8] | CHEN Jun, ZHUANG Yi-fei, CUI Mei-li, WANG Yin-hai, MA Dong-fang. Public Transportation Travel Multi-dimensional Analysis Method Based on APTS Big Data [J]. Journal of Transportation Systems Engineering and Information Technology, 2019, 19(1): 76-82. |
| [9] | WANG Li, LI Min, YAN Jia-qing, ZHANG Ling-yu, PAN Ke, LI Zheng-xi. Urban Traffic Flow Data Recovery Method Based on Generative Adversarial Network [J]. Journal of Transportation Systems Engineering and Information Technology, 2018, 18(6): 63-71. |
| [10] | WANG Jun, GUO Li-ming, DU Jian, WANG Mei-rong. Berth Scheduling Scheme Optimization Based on Dynamic Learning [J]. Journal of Transportation Systems Engineering and Information Technology, 2018, 18(5): 197-203. |
| [11] | XING Yu-wei,HUANG Tao,YANG Hua-long. Optimization of Liner Refueling Strategy Based on Ship Speed Adjustment [J]. Journal of Transportation Systems Engineering and Information Technology, 2017, 17(1): 199-204. |
| [12] | LEI Jin-yu,CHU Xiu-min,XUWu-xiong. 3D Visualization Model of Vessel Trajectory in Bridge Area Based on AIS [J]. Journal of Transportation Systems Engineering and Information Technology, 2016, 16(3): 88-94. |
| [13] | CHEN Jing, JIN Yong-xing, CHEN Jin-biao, WU Hua-feng, SHI Chao-jian. Association Rule of Ship Detention Mining and Expressing Algorithm Based on Identification Index [J]. Journal of Transportation Systems Engineering and Information Technology, 2014, 14(1): 102-108. |
| [14] | JIANG Yan-ning, XU Qi, JIN Yan-yan, JIN Zhi-hong. Optimization of Ro-Ro Ship Loading for Multiple Ports Based on Realistic Constraints [J]. Journal of Transportation Systems Engineering and Information Technology, 2014, 14(1): 117-123. |
| [15] | JI Ming-jun, HE Mao-ying . Optimization of Two-Stage Port Logistics Network of Dynamic Hinterland Based on Bi-level Programming Model [J]. Journal of Transportation Systems Engineering and Information Technology, 2010, 10(6): 89-94 . |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||