Integration of algae-based biofuel production with an oil refinery: Energy and carbon footprint assessment

被引:12
作者
Andersson, Viktor [1 ]
Heyne, Stefan [2 ]
Harvey, Simon [1 ]
Berntsson, Thore [1 ]
机构
[1] Chalmers Univ Technol, Dept Space Earth & Environm, Energy Technol, Gothenburg, Sweden
[2] CIT Ind Energi AB, Sven Hultins Plats 1, SE-41258 Gothenburg, Sweden
关键词
algae-based fuels; biorefinery; hydrothermal; lipid extraction; liquefaction; process integration; LIFE-CYCLE ASSESSMENT; HYDROTHERMAL LIQUEFACTION; BIODIESEL PRODUCTION; MACROALGAE; MICROALGAE; HYDROGEN; GASIFICATION; TECHNOLOGIES; CULTIVATION; PART;
D O I
10.1002/er.5760
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Biofuel production from algae feedstock has become a topic of interest in the recent decades since algae biomass cultivation is feasible in aquaculture and does therefore not compete with use of arable land. In the present work, hydrothermal liquefaction of both microalgae and macroalgae is evaluated for biofuel production and compared with transesterifying lipids extracted from microalgae as a benchmark process. The focus of the evaluation is on both the energy and carbon footprint performance of the processes. In addition, integration of the processes with an oil refinery has been assessed with regard to heat and material integration. It is shown that there are several potential benefits of co-locating an algae-based biorefinery at an oil refinery site and that the use of macroalgae as feedstock is more beneficial than the use of microalgae from a system energy performance perspective. Macroalgae-based hydrothermal liquefaction achieves the highest system energy efficiency of 38.6%, but has the lowest yield of liquid fuel (22.5 MJ per 100 MJ(algae)) with a substantial amount of solid biochar produced (28.0 MJ per 100 MJ(algae)). Microalgae-based hydrothermal liquefaction achieves the highest liquid biofuel yield (54.1 MJ per 100 MJ(algae)), achieving a system efficiency of 30.6%. Macro-algae-based hydrothermal liquefaction achieves the highest CO(2)reduction potential, leading to savings of 24.5 resp 92 kt CO2eq/year for the two future energy market scenarios considered, assuming a constant feedstock supply rate of 100 MW algae, generating 184.5, 177.1 and 229.6 GWh(biochar)/year, respectively. Heat integration with the oil refinery is only possible to a limited extent for the hydrothermal liquefaction process routes, whereas the lipid extraction process can benefit to a larger extent from heat integration due to the lower temperature level of the process heat demand.
引用
收藏
页码:10860 / 10877
页数:18
相关论文
共 60 条
  • [1] Seasonal variation in Laminaria digitata and its impact on biochemical conversion routes to biofuels
    Adams, J. M. M.
    Toop, T. A.
    Donnison, I. S.
    Gallagher, J. A.
    [J]. BIORESOURCE TECHNOLOGY, 2011, 102 (21) : 9976 - 9984
  • [2] Seasonal variation in the chemical composition of the bioenergy feedstock Laminaria digitata for thermochemical conversion
    Adams, J. M. M.
    Ross, A. B.
    Anastasakis, K.
    Hodgson, E. M.
    Gallagher, J. A.
    Jones, J. M.
    Donnison, I. S.
    [J]. BIORESOURCE TECHNOLOGY, 2011, 102 (01) : 226 - 234
  • [3] Life cycle assessment of macroalgae cultivation and processing for biofuel production
    Aitken, Douglas
    Bulboa, Cristian
    Godoy-Faundez, Alex
    Turrion-Gomez, Juan L.
    Antizar-Ladislao, Blanca
    [J]. JOURNAL OF CLEANER PRODUCTION, 2014, 75 : 45 - 56
  • [4] Life cycle assessment of biofuel production from brown seaweed in Nordic conditions
    Alvarado-Morales, Merlin
    Boldrin, Alessio
    Karakashev, Dimitar B.
    Holdt, Susan L.
    Angelidaki, Irini
    Astrup, Thomas
    [J]. BIORESOURCE TECHNOLOGY, 2013, 129 : 92 - 99
  • [5] Hydrothermal liquefaction of four brown macro-algae commonly found on the UK coasts: An energetic analysis of the process and comparison with bio-chemical conversion methods
    Anastasakis, K.
    Ross, A. B.
    [J]. FUEL, 2015, 139 : 546 - 553
  • [6] Hydrothermal liquefaction of the brown macro-alga Laminaria Saccharina: Effect of reaction conditions on product distribution and composition
    Anastasakis, K.
    Ross, A. B.
    [J]. BIORESOURCE TECHNOLOGY, 2011, 102 (07) : 4876 - 4883
  • [7] Andersson V, 2010, HYDROGEN PINCH ANAL
  • [8] Algae-based biofuel production as part of an industrial cluster
    Andersson, Viktor
    Viklund, Sarah Broberg
    Hackl, Roman
    Karlsson, Magnus
    Berntsson, Thore
    [J]. BIOMASS & BIOENERGY, 2014, 71 : 113 - 124
  • [9] Industrial excess heat driven post-combustion CCS: The effect of stripper temperature level
    Andersson, Viktor
    Franck, Per-Ake
    Berntsson, Thore
    [J]. INTERNATIONAL JOURNAL OF GREENHOUSE GAS CONTROL, 2014, 21 : 1 - 10
  • [10] [Anonymous], 2013, World Energy Outlook 2013