Thermal Degradation Kinetics and Lifetime Prediction of Cellulose Biomass Cryogels Reinforced by its Pyrolysis Waste

被引:0
|
作者
Lazzari, Lidia K. [1 ]
Neves, Roberta M. [1 ]
Vanzetto, Andrielen B. [2 ]
Zattera, Ademir J. [3 ]
Santana, Ruth M. C. [1 ]
机构
[1] Univ Fed Rio Grande do Sul, Programa Posgrad Engn Minas Met & Mat, Av Bento Goncalves, BR-91501970 Porto Alegre, RS, Brazil
[2] Pontificia Univ Catolica Rio Grande do Sul, Programa Posgrad Engn & Tecnol Mat, Av Ipiranga, BR-90619900 Porto Alegre, RS, Brazil
[3] Univ Caxias do Sul, Posgradu Engn Proc & Tecnol, BR-95070490 Caxias Do Sul, RS, Brazil
关键词
Cryogels; biochar; graphene nanoplatelets; cellulose; degradation kinetics; INSULATION; AEROGELS; DECOMPOSITION; PERFORMANCE; PARAMETERS; COMPOSITE; MECHANISM; ENERGY; CARBON; MODEL;
D O I
10.1590/1980-5373-MR-2021-0455
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Degradation kinetics is an important tool in order to understand and improve energy conversion and the final application of a material. Cellulose cryogels (CC) are a new class of materials that can be reinforced by several types of particle, including biochar. Apart from it, degradation kinetics and lifetime prediction of biomass cellulose cryogels reinforced by cellulose pyrolysis waste (BC) has been investigated using TG techniques and iso-conversional model free methods. Additionally, the same study was applied to cellulose cryogels reinforced by graphene nanoplatelets (NPG) to compare the behavior of a filler from waste (BC) and a noble filler (NPG). Furthermore, the influence of the addition of the fillers into the cellulose biomass were evaluated in terms of thermal stability and crystallinity. BC and GNP led to higher values of activation energies (E-a) calculated from model-free isoconversional methods and all samples degraded in two-steps. Finally, lifetime prediction was successfully applied and the CC cryogel became more stable over time, maintaining almost 80% of the mass for 1 year exposed at 180 degrees C. The results of this study shown that only cellulose biomass cryogels are more suitable to produce thermal insulators due to it higher thermal stability.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Thermocatalytic pyrolysis of low-value waste biomass: Thermal decomposition, kinetics behaviour, and biochar characterization
    Mishra, Ranjeet Kumar
    Chinnam, Sampath
    Sharma, Abhishek
    RESULTS IN ENGINEERING, 2025, 25
  • [32] Thermal decomposition kinetics and aging lifetime prediction of waste rubbers in porous elastic road surface
    Zhong, Ke
    Lu, Zhu
    Guo, Qing
    Mu, Ruiliang
    Sun, Mingzhi
    Li, Yuchun
    CONSTRUCTION AND BUILDING MATERIALS, 2024, 435
  • [33] Upgrading of Biomass Pyrolysis Oil and Its Oxidation Kinetics
    Mei, Deqing
    Wang, Cheng
    Ren, Wuyue
    Dai, Pengfei
    Guo, Dongmei
    Du, Jiayi
    Shiyou Xuebao, Shiyou Jiagong/Acta Petrolei Sinica (Petroleum Processing Section), 2019, 35 (05): : 973 - 980
  • [34] Study on pyrolysis characteristics and kinetics of biomass and its components
    Xie, Huaqing
    Yu, Qingbo
    Qin, Qin
    Zhang, Haitao
    Li, Peng
    JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2013, 5 (01)
  • [35] Prediction of Biomass Pyrolysis Mechanisms and Kinetics: Application of the Kalman Filter
    Gulec, Fatih
    Simsek, Emir Huseyin
    Taniker Sari, Hilal
    CHEMICAL ENGINEERING & TECHNOLOGY, 2022, 45 (01) : 167 - 177
  • [36] Pyrolysis of waste activated sludge from food manufacturing industry: Thermal degradation, kinetics and thermodynamics analysis
    Mong, Guo Ren
    Chong, William Woei Fong
    Nor, Siti Aminah Mohd
    Ng, Jo-Han
    Chong, Cheng Tung
    Idris, Rubia
    Too, Jingwei
    Chiong, Meng Choung
    Abas, Mohd Azman
    ENERGY, 2021, 235
  • [37] Kinetics study on thermal dissociation of levoglucosan during cellulose pyrolysis
    Zhang, Xiaolei
    Yang, Weihong
    Blasiak, Wlodzimierz
    FUEL, 2013, 109 : 476 - 483
  • [38] Pyrolysis characteristics and non-isothermal kinetics of waste wood biomass
    Li, Jingjing
    Dou, Binlin
    Zhang, Hua
    Zhang, Hao
    Chen, Haisheng
    Xu, Yujie
    Wu, Chunfei
    ENERGY, 2021, 226
  • [39] Prediction of pyrolysis kinetics for torrefied biomass based on raw biomass properties and torrefaction severity
    Kim, Heeyoon
    Yu, Seunghan
    Ra, Howon
    Yoon, Sungmin
    Ryu, Changkook
    ENERGY, 2023, 278
  • [40] Physicochemical synergistic effect of microwave-assisted Co-pyrolysis of biomass and waste plastics by thermal degradation, thermodynamics, numerical simulation, kinetics, and products analysis
    Ma, Yujun
    Wang, Wenliang
    Miao, Hui
    Han, Sizhe
    Fu, Yishuai
    Chen, Yutong
    Hao, Jiaqi
    RENEWABLE ENERGY, 2024, 223