Carbon dioxide mitigation from public procurement with environmental conditions: The case of short-sea shipping in Norway

被引:4
作者
Torvanger, Asbjorn [1 ]
Tvedt, Jostein [2 ]
Hovi, Inger Beate [2 ]
机构
[1] CICERO Ctr Int Climate Res, Gaustadalleen 21, N-0349 Oslo, Norway
[2] Inst Transport Econ, Gaustadalleen 21, N-0349 Oslo, Norway
来源
MARITIME TRANSPORT RESEARCH | 2023年 / 4卷
关键词
Short -sea shipping; Greenhouse gas emissions; Public procurement; Norway; TECHNOLOGIES; EMISSIONS;
D O I
10.1016/j.martra.2023.100085
中图分类号
U [交通运输];
学科分类号
08 ; 0823 ;
摘要
We investigate the potential for greenhouse gas (GHG) emission cuts for the Norwegian short-sea (domestic) maritime segments of express boats, offshore support vessels, and aquaculture support vessels in comparison to ferries in Norway. Public procurement conditional on climate-friendly operation is catalyzing a transition to battery-electric operation, where most ferries will be battery-electric or fueled by hydrogen by 2030. The comparison to ferries is performed with the help of a methodology inspired by the multi-attribute utility method, which contains 11 features related to technology, operation, and acceptance. This score is used to adjust the 70% CO2 emission reduction achieved by ferries. Based on this methodology, the CO2 emission reduction potential for express boats, offshore support vessels, and aquaculture support vessels is estimated to be 46%. Consequently, these short-sea shipping segments could reduce CO2 emissions by 0.8 million tonnes from 2017 to 2030, which is equivalent to 1.5% of Norwegian emissions in 2017. Norway's experience indicates that there is a sizable potential for reducing CO2 emissions for public procurement conditional on climate-friendly solutions for short-sea shipping in other shipping nations.
引用
收藏
页数:11
相关论文
共 40 条
  • [1] Blending new and old in sustainability transitions: Technological alignment between fossil fuels and biofuels in Norwegian coastal shipping
    Bach, Hanna
    Makitie, Tuukka
    Hansen, Teis
    Steen, Markus
    [J]. ENERGY RESEARCH & SOCIAL SCIENCE, 2021, 74
  • [2] Implementing maritime battery-electric and hydrogen solutions: A technological innovation systems analysis
    Bach, Hanna
    Bergek, Anna
    Bjorgum, Oyvind
    Hansen, Teis
    Kenzhegaliyeva, Assiya
    Steen, Markus
    [J]. TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2020, 87 (87)
  • [3] How to decarbonise international shipping: Options for fuels, technologies and policies
    Balcombe, Paul
    Brierley, James
    Lewis, Chester
    Skatvedt, Line
    Speirs, Jamie
    Hawkes, Adam
    Staffell, Iain
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2019, 182 : 72 - 88
  • [4] Bergek A., 2021, TRANSPORTAT RES INTE, V12
  • [5] Bjerkan K.Y., 2019, WORLD ELECT VEH J, V10, P74
  • [6] State-of-the-art technologies, measures, and potential for reducing GHG emissions from shipping - A review
    Bouman, Evert A.
    Lindstad, Elizabeth
    Rialland, Agathe I.
    Stromman, Anders H.
    [J]. TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2017, 52 : 408 - 421
  • [7] Potential for, and drivers of, private voluntary initiatives for the decarbonisation of short sea shipping: evidence from a Swedish ferry line
    Christodoulou, Anastasia
    Cullinane, Kevin
    [J]. MARITIME ECONOMICS & LOGISTICS, 2021, 23 (04) : 632 - 654
  • [8] DNV GL, 2019, 0939 DNV GL
  • [9] Equinor, 2020, WORLDS 1 CARB FREE A
  • [10] Equinor, 2020, EQ AW CONTR SUPPL VE