Biocrude Production via Non-Catalytic Supercritical Hydrothermal Liquefaction of Fucus vesiculosus Seaweed Processing Residues

被引:4
|
作者
Jasiunas, Lukas [1 ]
Pedersen, Thomas Helmer [2 ]
Rosendahl, Lasse Aistrup [2 ]
机构
[1] Kaunas Univ Technol, Dept Organ Chem, LT-50254 Kaunas, Lithuania
[2] Aalborg Univ, Dept Energy Technol, DK-9220 Aalborg, Denmark
关键词
residue valorization; hydrothermal liquefaction; biorefinery; macroalgae; value-added products; CO-LIQUEFACTION; LAMINARIA-DIGITATA; BROWN-ALGAE; MACROALGAE; BIOMASS; EXTRACTION; BIOFUELS; ACID; CONVERSION; LIQUID;
D O I
10.3390/recycling6030045
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The potential of using cold water brown macroalgae Fucus vesiculosus for biocrude production via non-catalytic supercritical hydrothermal liquefaction (HTL) was studied. Demineralization, residue neutralization, and high value-added product (alginate and fucoidan) extraction processes were carried out before using the biomass for HTL biocrude production. Acid leaching was carried out using three demineralization agents: distilled water, dilute citric acid solution, and the diluted acidic aqueous by-product from a continuous HTL pilot facility. Alginate was extracted via H2SO4 and NaCO3 bathing, and fucoidan was extracted using CaCl2. Experimental data show that none of the leaching agents was greatly efficient in removing inorganics, with citric acid leaching with extensive neutralization reaching the highest ash removal efficiency of 47%. The produced 6 sets of biocrudes were characterized by elemental and thermogravimetric analyses. Short (10-min retention) HTL and the extent of leaching residue neutralization were also investigated. Highest biocrude yields were recorded when liquefying non-neutralized citric acid leaching, alginate, and fucoidan extraction residues. On the other hand, thermochemical conversions of short retention time HTL, full neutralization extent, and baseline (dried raw macroalgae) biomass performed worse. Specifically, the highest biocrude yield of 28.2 +/- 2.5 wt.% on dry ash-free feedstock basis was recorded when liquefying alginate extraction residues. Moreover, the highest energy recovery of 52.8% was recorded when converting fucoidan extraction residues.
引用
收藏
页数:18
相关论文
共 50 条
  • [41] Non-catalytic hydrothermal liquefaction of pine sawdust using experimental design: Material balances and products analysis
    Hardi, Flabianus
    Makela, Mikko
    Yoshikawa, Kunio
    [J]. APPLIED ENERGY, 2017, 204 : 1026 - 1034
  • [42] Progress in production of phenolic compounds via hydrothermal liquefaction of lignin in supercritical and subcritical water
    Institute of Chemical Industry of Forest Products, Chinese Academy of Forestry , National Engineering Laboratory for Biomass Chemical Utilization, Nanjing
    210042, China
    不详
    100091, China
    [J]. Gaofenzi Cailiao Kexue Yu Gongcheng, 11 (185-190):
  • [43] Upgrading of Hydrothermal Liquefaction Biocrude from Forest Residues Using Solvents and Mild Hydrotreating for Use as Co-processing Feed in a Refinery
    Badoga, Sandeep
    Alvarez-Majmutov, Anton
    Rodriguez, Julie Katerine
    Chen, Jinwen
    [J]. ENERGY & FUELS, 2023, 37 (17) : 13104 - 13114
  • [44] Upgrading of Hydrothermal Liquefaction Biocrude from Forest Residues Using Solvents and Mild Hydrotreating for Use as Co-processing Feed in a Refinery
    Badoga, Sandeep
    Alvarez-Majmutov, Anton
    Rodriguez, Julie Katerine
    Chen, Jinwen
    [J]. ENERGY & FUELS, 2023,
  • [45] Utilizing cocoa bean husk residues from supercritical extraction for biofuel production through hydrothermal liquefaction
    Lee, Seung Eun
    Lim, Ji Sun
    Park, Young-Kwon
    Shong, Bonggeun
    Lee, Hong-shik
    [J]. Journal of Supercritical Fluids, 2025, 215
  • [46] Direct primary brown coal liquefaction via non-catalytic and catalytic co-processing with model, waste and petroleum-derived hydrogen donors
    Fratczak, Jakub
    Herrador, Jose M. Hidalgo
    Lederer, Jaromir
    Stevens, Lee
    Uguna, Clement
    Snape, Colin
    Gomez de la Fuente, Jose L.
    Andel, Lukas
    Svoboda, Petr
    Pinto, Filomena
    [J]. FUEL, 2018, 234 : 364 - 370
  • [47] Biodiesel fuel from Jatropha oil via non-catalytic supercritical methanol transesterification
    Hawash, S.
    Kamal, N.
    Zaher, F.
    Kenawi, O.
    El Diwani, G.
    [J]. FUEL, 2009, 88 (03) : 579 - 582
  • [48] Evaluation of the use of degummed soybean oil and supercritical ethanol for non-catalytic biodiesel production
    Rade, Leticia Leandro
    Arvelos, Sarah
    de Souza Barrozo, Marcos Antonio
    Romanielo, Lucienne Lobato
    Watanabe, Erika Ohta
    Hori, Carla Eponina
    [J]. JOURNAL OF SUPERCRITICAL FLUIDS, 2015, 105 : 21 - 28
  • [49] Non-catalytic heterogeneous biodiesel production via a continuous flow system
    Kwon, Eilhann E.
    Yi, Haakrho
    Park, Jongseok
    Seo, Jaegun
    [J]. BIORESOURCE TECHNOLOGY, 2012, 114 : 370 - 374
  • [50] New insight into subcritical and supercritical water reactivity during non-catalytic hydrothermal upgrading of heavy oil
    Chen, Zhong
    [J]. FUEL, 2024, 366