Quantitative multiphase model for hydrothermal liquefaction of algal biomass

被引:92
|
作者
Li, Yalin [1 ]
Leow, Shijie [1 ,2 ]
Fedders, Anna C. [2 ]
Sharma, Brajendra K. [3 ]
Guest, Jeremy S. [2 ]
Strathmann, Timothy J. [1 ,4 ]
机构
[1] Colorado Sch Mines, Dept Civil & Environm Engn, Golden, CO 80401 USA
[2] Univ Illinois, Dept Civil & Environm Engn, Urbana, IL 61801 USA
[3] Univ Illinois, Illinois Sustainable Technol Ctr, Champaign, IL 61820 USA
[4] Natl Renewable Energy Lab, Golden, CO 80401 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; BIOFUEL PRODUCTION; BIOCRUDE OIL; MAILLARD REACTION; TREATMENT SYSTEM; KINETIC-MODEL; SWINE MANURE; BIO-OIL; MICROALGAE; CONVERSION;
D O I
10.1039/c6gc03294j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Optimized incorporation of hydrothermal liquefaction (HTL, reaction in water at elevated temperature and pressure) within an integrated biorefinery requires accurate models to predict the quantity and quality of all HTL products. Existing models primarily focus on biocrude product yields with limited consideration for biocrude quality and aqueous, gas, and biochar co-products, and have not been validated with an extensive collection of feedstocks. In this study, HTL experiments (300 degrees C, 30 min) were conducted using 24 different batches of microalgae feedstocks with distinctive feedstock properties, which resulted in a wide range of biocrude (21.3-54.3 dry weight basis, dw%), aqueous (4.6-31.2 dw%), gas (7.1-35.6 dw%), and biochar (1.3-35.0 dw%) yields. Based on these results, a multiphase component additivity (MCA) model was introduced to predict yields and characteristics of the HTL biocrude product and aqueous, gas, and biochar co-products, with only feedstock biochemical (lipid, protein, carbohydrate, and ash) and elemental (C/H/N) composition as model inputs. Biochemical components were determined to distribute across biocrude product/HTL co-products as follows: lipids to biocrude; proteins to biocrude > aqueous > gas; carbohydrates to gas approximate to biochar > biocrude; and ash to aqueous > biochar. Modeled quality indicators included biocrude C/H/N contents, higher heating value (HHV), and energy recovery (ER); aqueous total organic carbon (TOC) and total nitrogen (TN) contents; and biochar carbon content. The model was validated with HTL data from the literature, the potential to expand the application of this modeling framework to include waste biosolids (e. g., wastewater sludge, manure) was explored, and future research needs for industrial application were identified. Ultimately, the MCA model represents a critical step towards the integration of cultivation models with downstream HTL and biorefinery operations to enable system-level optimization, valorization of co-product streams (e. g., through catalytic hydrothermal gasification and nutrient recovery), and the navigation of tradeoffs across the value chain.
引用
收藏
页码:1163 / 1174
页数:12
相关论文
共 50 条
  • [1] A review on hydrothermal liquefaction of algal biomass on process parameters, purification and applications
    Ravichandran, Sathish Raam
    Venkatachalam, Chitra Devi
    Sengottian, Mothil
    Sekar, Sarath
    Kandasamy, Sabariswaran
    Subramanian, Kesav Prasath Ramasamy
    Purushothaman, Kirubakaran
    Chandrasekaran, Aravindan Lavanya
    Narayanan, Mathiyazhagan
    FUEL, 2022, 313
  • [2] Hydrothermal liquefaction of algal feedstocks: The effect of biomass characteristics and extraction solvents
    Ratha, Sachitra Kumar
    Renuka, Nirmal
    Abunama, Taher
    Rawat, Ismail
    Bux, Faizal
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2022, 156
  • [3] Co-Hydrothermal Liquefaction of algal and lignocellulosic biomass: Status and perspectives
    Sahoo, Abhisek
    Saini, Komal
    Jindal, Meenu
    Bhaskar, Thallada
    Pant, Kamal K.
    BIORESOURCE TECHNOLOGY, 2021, 342
  • [4] Biorefinery products from algal biomass by advanced biotechnological and hydrothermal liquefaction approaches
    Mathiyazhagan Narayanan
    Discover Applied Sciences, 6
  • [5] Effect of ash on hydrothermal liquefaction of high-ash content algal biomass
    Chen, Wan-Ting
    Qian, Wanyi
    Zhang, Yuanhui
    Mazur, Zachary
    Kuo, Chih-Ting
    Scheppe, Karalyn
    Schideman, Lance Charles
    Sharma, Brajendra Kumar
    ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2017, 25 : 297 - 306
  • [6] Investigation of catalytic hydrothermal co-liquefaction of oil shale and algal biomass
    Li, Jingjing
    Li, Chuandong
    Ma, Xinjun
    Tang, Xiaodong
    Meng, Xianglong
    Wang, Xiaoli
    JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2025, 186
  • [7] Biorefinery products from algal biomass by advanced biotechnological and hydrothermal liquefaction approaches
    Narayanan, Mathiyazhagan
    DISCOVER APPLIED SCIENCES, 2024, 6 (04)
  • [8] Co-Solvent Assisted Hydrothermal Liquefaction of Algal Biomass and Biocrude Upgrading
    Jena, Umakanta
    Eboibi, Blessing E.
    Das, K. C.
    FUELS, 2022, 3 (02): : 326 - 341
  • [9] Impact of heavy metal laden algal biomass on hydrothermal liquefaction and biorefinery approach
    Naaz, Farah
    Bhattacharya, Arghya
    Pant, Kamal Kishore
    Malik, Anushree
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2021, 145 (145) : 141 - 149
  • [10] A molecular, elemental, and multiphase kinetic model for the hydrothermal liquefaction of microalgae
    Hietala, David C.
    Savage, Phillip E.
    CHEMICAL ENGINEERING JOURNAL, 2021, 407