Prediction of microalgae hydrothermal liquefaction products from feedstock biochemical composition

被引:0
|
作者
Leow, Shijie [1 ]
Witter, John R. [1 ]
Vardon, Derek R. [1 ,2 ]
Sharma, Brajendra K. [3 ]
Guest, Jeremy S. [1 ]
Strathmann, Timothy J. [1 ]
机构
[1] Univ Illinois, Dept Civil & Environm Engn, Urbana, IL 61801 USA
[2] Natl Renewable Energy Lab, Natl Bioenergy Ctr, Golden, CO 80401 USA
[3] Univ Illinois, Illinois Sustainable Technol Ctr, Champaign, IL 61801 USA
基金
美国国家科学基金会; 新加坡国家研究基金会;
关键词
WASTE-WATER TREATMENT; FREE FATTY-ACIDS; SUBCRITICAL WATER; ALGAL BIOMASS; NANNOCHLOROPSIS SP; THERMOCHEMICAL LIQUEFACTION; RAPID SEPARATION; VEGETABLE-OILS; BATCH CULTURE; FLOW REACTOR;
D O I
10.1039/c5gc00574d
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Hydrothermal liquefaction (HTL) uses water under elevated temperatures and pressures (200-350 degrees C, 5-20 MPa) to convert biomass into liquid "biocrude" oil. Despite extensive reports on factors influencing microalgae cell composition during cultivation and separate reports on HTL products linked to cell composition, the field still lacks a quantitative model to predict HTL conversion product yield and qualities from feedstock biochemical composition; the tailoring of microalgae feedstock for downstream conversion is a unique and critical aspect of microalgae biofuels that must be leveraged upon for optimization of the whole process. This study developed predictive relationships for HTL biocrude yield and other conversion product characteristics based on HTL of Nannochloropsis oculata batches harvested with a wide range of compositions (23-59% dw lipids, 58-17% dw proteins, 12-22% dw carbohydrates) and a defatted batch (0% dw lipids, 75% dw proteins, 19% dw carbohydrates). HTL biocrude yield (33-68% dw) and carbon distribution (49-83%) increased in proportion to the fatty acid (FA) content. A component additivity model (predicting biocrude yield from lipid, protein, and carbohydrates) was more accurate predicting literature yields for diverse microalgae species than previous additivity models derived from model compounds. FA profiling of the biocrude product showed strong links to the initial feedstock FA profile of the lipid component, demonstrating that HTL acts as a water-based extraction process for FAs; the remainder non-FA structural components could be represented using the defatted batch. These findings were used to introduce a new FA-based model that predicts biocrude oil yields along with other critical parameters, and is capable of adjusting for the wide variations in HTL methodology and microalgae species through the defatted batch. The FA model was linked to an upstream cultivation model (Phototrophic Process Model), providing for the first time an integrated modeling framework to overcome a critical barrier to microalgae-derived HTL biofuels and enable predictive analysis of the overall microalgal-to-biofuel process.
引用
收藏
页码:3584 / 3599
页数:16
相关论文
共 50 条
  • [1] Composition and Properties of microalgae Biomass Hydrothermal Liquefaction Products
    Vlaskin, M. S.
    Grigorenko, A., V
    Kotelev, M. S.
    Kopitsyn, D. S.
    Mazurova, K. M.
    Ivanov, E., V
    [J]. CHEMISTRY AND TECHNOLOGY OF FUELS AND OILS, 2019, 55 (04) : 373 - 377
  • [2] Composition and Properties of microalgae Biomass Hydrothermal Liquefaction Products
    M. S. Vlaskin
    A. V. Grigorenko
    M. S. Kotelev
    D. S. Kopitsyn
    K. M. Mazurova
    E. V. Ivanov
    [J]. Chemistry and Technology of Fuels and Oils, 2019, 55 : 373 - 377
  • [3] Predicting microalgae hydrothermal liquefaction biocrude oil yield and properties from microalgae biochemical composition
    Leow, Shijie
    Witter, John
    Vardon, Derek
    Sharma, Brajendra
    Guest, Jeremy
    Strathmann, Timothy
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 249
  • [4] Catalyst Effect on Grout Composition of Microalgae Biomass Hydrothermal Liquefaction Products
    Kotelev, M. S.
    Kopitsyn, D. S.
    Vlaskin, M. S.
    Mel'nikov, V. B.
    Grigorenko, A. V.
    Ivanov, E. V.
    [J]. CHEMISTRY AND TECHNOLOGY OF FUELS AND OILS, 2019, 55 (05) : 511 - 514
  • [5] Catalyst Effect on Grout Composition of Microalgae Biomass Hydrothermal Liquefaction Products
    M. S. Kotelev
    D. S. Kopitsyn
    M. S. Vlaskin
    V. B. Mel’nikov
    A. V. Grigorenko
    E. V. Ivanov
    [J]. Chemistry and Technology of Fuels and Oils, 2019, 55 : 511 - 514
  • [6] Quantitative prediction of microalgae hydrothermal liquefaction
    Li, Yalin
    Leow, Shijie
    Fedders, Anna
    Sharma, Brajendra
    Guest, Jeremy
    Dong, Tao
    Nagle, Nick
    Pienkos, Philip
    Strathmann, Timothy
    [J]. ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2016, 252
  • [7] Distributions of organic compounds to the products from hydrothermal liquefaction of microalgae
    Chen, Yu
    Zhao, Nannan
    Wu, Yulong
    Wu, Kejing
    Wu, Xiuyun
    Liu, Ji
    Yang, Mingde
    [J]. ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY, 2017, 36 (01) : 259 - 268
  • [8] Characterization of products from fast and isothermal hydrothermal liquefaction of microalgae
    Faeth, Julia L.
    Savage, Phillip E.
    Jarvis, Jacqueline M.
    McKenna, Amy M.
    Savage, Phillip E.
    [J]. AICHE JOURNAL, 2016, 62 (03) : 815 - 828
  • [9] Hydrothermal liquefaction of macro algae: Effect of feedstock composition
    Singh, Rawel
    Balagurumurthy, Bhavya
    Bhaskar, Thallada
    [J]. FUEL, 2015, 146 : 69 - 74
  • [10] Hydrothermal liquefaction of crop straws: Effect of feedstock composition
    Tian, Ye
    Wang, Feng
    Djandja, Jesuis Oraleou
    Zhang, Sheng-Li
    Xu, Yu-Ping
    Duan, Pei-Gao
    [J]. FUEL, 2020, 265