Modeling biomass degradation and biological respiration in biomass storage piles: A lab-scale investigation

被引:2
|
作者
Chen, Xinke [1 ]
Cui, Mingshuo [1 ]
Ma, Lun [2 ]
Fang, Qingyan [1 ]
Zhang, Cheng [1 ]
Chen, Gang [1 ]
Yin, Chungen [3 ]
机构
[1] Huazhong Univ Sci & Technol, Sch Energy & Powering Engn, State Key Lab Coal Combust, Wuhan 430074, Peoples R China
[2] Wuhan Univ Technol, Sch Safety Sci & Emergency Management, Wuhan 430070, Peoples R China
[3] Aalborg Univ, AAU Energy, DK-9220 Aalborg, Denmark
关键词
Biomass storage; Self; -heating; Biomass degradation; Moisture migration; Dynamic modeling; MICROBIAL RESPONSES; DISASTER WASTE; GROWTH; HEAT; TEMPERATURE; FERMENTATION; ISOTHERMS; RESIDUES; DATABASE; COMBASE;
D O I
10.1016/j.fuel.2024.132525
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
In modern bioenergy, the long-term storage of substantial quantities of biomass is necessary. A critical issue arises from the potential self-heating of biomass piles initialized by exothermic microbial activities, which could result in spontaneous ignition. To address this concern, we develop a comprehensive dynamic model to accurately simulate biomass degradation and microbial metabolism. The model encompasses four key processes: the conversion of a slowly-biodegradable fraction into an easily-biodegradable fraction (R1); the breakdown of the easily-biodegradable fraction (R2), consuming O2, boosting microbial populations and releasing metabolites like CO2 and H2O; the decay of microbes into a non-biodegradable fraction (R3); and the biomass moisture migration (R4). In the context of R1, two biomass degradation modes (Tremier and Haug) are considered, while R2 is characterized using four microbial growth kinetics models (square-root-type model, polynomial model, generalized linear model, Cardinal temperature model with inflection). These models can adapt to varying temperature and moisture levels, affecting microbial growth rates. By combining different R1 and R2 pathways, eight modelling pathways are established, and their parameters are derived using genetic algorithm and particle swarm optimization techniques, with the aim of minimizing disparities between experimental outcomes and model predictions. The model's performances are evaluated through several metrics such as CO2 evolution rate, biomass dry matter loss, cumulative respiration, and overall prediction accuracy. The evaluation indicates that the Tremier model more accurately predicts biomass degradation across six types of biomass, and the Cardinal temperature model with inflection and square-root-type model offer superior predictions for microbial growth dynamics, especially for biomass types rich in cellulose and low in lignin content, e.g., wheat straw, corn stalk, rice straw and soybean hull. Our model dynamically refines the kinetic parameters for biomass decomposition and microbial metabolism based on changes in ambient temperature, humidity, and biomass moisture content over time. This feature enables real-time prediction of the decomposition state of biomass throughout extended storage periods. Furthermore, by incorporating an appropriate metabolic heat production model for the biomass, along with heat and mass transfer equations, our model can predict the internal temperature distribution within a biomass pile. This capability serves as a valuable tool for ensuring the safe storage of biomass, providing a robust means of managing the risks associated with biomass self-heating and self-ignition.
引用
收藏
页数:22
相关论文
共 50 条
  • [31] Investigation of Ash-Related Issues During Combustion of Maize Straw and Wood Biomass Blends in Lab-Scale Bubbling Fluidized Bed Reactor
    Glod, Krzysztof
    Lasek, Janusz
    Slowik, Krzysztof
    Zuwala, Jaroslaw
    Nabaglo, Daniel
    Jura, Konrad
    Zyrkowski, Maciej
    JOURNAL OF ENERGY RESOURCES TECHNOLOGY-TRANSACTIONS OF THE ASME, 2020, 142 (02):
  • [32] Comprehensive investigation of the CO2 gasification process of biomass wastes using TG-MS and lab-scale experimental research br
    Sieradzka, Malgorzata
    Mlonka-Medrala, Agata
    Magdziarz, Aneta
    FUEL, 2022, 330
  • [33] Gasification studies of low-grade Indian coal and biomass in a lab-scale pressurized circulating fluidized bed
    Mahapatro, Abinash
    Mahanta, Pinakeswar
    RENEWABLE ENERGY, 2020, 150 : 1151 - 1159
  • [34] CFD modeling and simulation of a lab-scale fluidised bed
    Halvorsen, B
    Mathiesen, V
    MODELING IDENTIFICATION AND CONTROL, 2002, 23 (02) : 117 - 133
  • [35] Degradation of Amine Solvents in a CO2 Capture Plant at Lab-Scale: Experiments and Modeling
    Delgado, Serena
    Valentin, Benoit
    Bontemps, Domitille
    Authier, Olivier
    INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2018, 57 (18) : 6057 - 6067
  • [36] Lab-scale Methane Fermentation Using Shrimp Pond Sludge and Some Available Biomass on Ben Tre in Vietnam
    Yamakawa, Takeo
    Matsubara, Hajime
    Sgimizu, Hiroyuki
    Sakamoto, Mio
    Giang, Tran Trung
    Shiratori, Yusuke
    JOURNAL OF THE FACULTY OF AGRICULTURE KYUSHU UNIVERSITY, 2020, 65 (02): : 249 - 255
  • [37] Combination of surfactants and enzyme cocktails for enhancing woody biomass saccharification and bioethanol production from lab-scale to pilot-scale
    Qi, Wei
    Feng, Qifa
    Wang, Wen
    Zhang, Yu
    Hu, Yunzi
    Shakeel, Usama
    Xiao, Lin
    Wang, Lan
    Chen, Hongzhang
    Liang, Cuiyi
    BIORESOURCE TECHNOLOGY, 2023, 384
  • [38] Lab-scale continuous flow studies for comparative biosorption of cadmium (II) on untreated and xanthated Ficus religiosa biomass
    Tariq, Madiha
    Farooq, Umar
    Athar, Makshoof
    Salman, Muhammad
    Tariq, Muqaddas
    Shahida, Shabnam
    Farooqi, Zahoor H.
    WATER ENVIRONMENT RESEARCH, 2021, 93 (11) : 2681 - 2695
  • [39] Biological pretreatments of biomass for improving biogas production: an overview from lab scale to full-scale
    Bremond, Ulysse
    de Buyer, Raphaelle
    Steyer, Jean-Philippe
    Bernet, Nicolas
    Carrere, Helene
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2018, 90 : 583 - 604
  • [40] Lab-Scale Investigation of the Integrated Backup/Storage System for Wind Turbines Using Alkaline Electrolyzer
    Pourrahmani, Hossein
    Zahedi, Rahim
    Daneshgar, Sareh
    Van Herle, Jan
    ENERGIES, 2023, 16 (09)