Thermovalorization of acerola industrial waste by pyrolysis in a continuous rotary kiln reactor

被引:11
|
作者
Oliveira da Silva, Jefferson David [1 ]
Wisniewski, Alberto [2 ]
Carvalho Carregosa, Ingred Suellen [2 ]
da Silva, Wenes Ramos [2 ]
de Souza Abud, Ana Karla [3 ]
de Oliveira Junior, Antonio Martins [1 ,3 ]
机构
[1] Fed Univ Sergipe UFS, Grad Program Chem Engn, BR-49100000 Sao Cristovao, SE, Brazil
[2] Fed Univ Sergipe UFS, Petr & Energy Biomass Res Grp PEB, Dept Chem, BR-49100000 Sao Cristovao, SE, Brazil
[3] Fed Univ Sergipe UFS, Dept Food Technol, BR-49100000 Sao Cristovao, SE, Brazil
关键词
Biomass; Value-added product; Pyrolysis; Biochar; Bio-oil; BIO-OIL; PROCESS PARAMETERS; HEAVY-METALS; SEED; BIOCHAR; BIOMASS; TEMPERATURE; PRODUCTS; LIQUID; WATER;
D O I
10.1016/j.jaap.2021.105373
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
Industrial processes of acerola juice generate a great amount of lignocellulosic waste biomass. This work studies the thermal conversion of this biomass into value-added products by the pyrolysis. The process was carried out in a continuous rotary kiln reactor, investigating the influence of temperature on the yields and in the chemical characteristic of the products, that were characterized through elemental analysis, TG/DTG, FTIR, EDX, BET and chromatography. The biochar yield decreased from 86.2% at 300 degrees C to 28.6% at 600 degrees C, while the maximum yield of bio-oil (7.6%) occurred at 500 degrees C. The results indicate an increase in carbonization and in the degree of aromaticity with a decrease in the polarity of the biochar produced at higher temperatures, leading to potential applicability of the material for agronomic purposes and carbon sequestration. The surface characteristics presented by biochars also give these materials the possibility of being used in adsorption processes, aiming the removal of organic and inorganic contaminants present in water and wastewater. The bio-oils obtained have similar compositions, but pyrolysis temperature influenced the intensity of the chromatographic peaks. The major compounds identified in the bio-oils were phenols and acids, demonstrating their use in the synthesis of important chemical compounds.
引用
收藏
页数:10
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