An Assessment of the Conversion of Biomass and Industrial Waste Products to Activated Carbon

被引:15
作者
Coker, Eric N. [1 ]
Lujan-Flores, Xavier [1 ]
Donaldson, Burl [1 ]
Yilmaz, Nadir [2 ]
Atmanli, Alpaslan [3 ]
机构
[1] Sandia Natl Labs, Albuquerque, NM 87123 USA
[2] Howard Univ, Dept Mech Engn, Washington, DC 20059 USA
[3] Natl Def Univ, Dept Mech Engn, TR-06654 Ankara, Turkiye
关键词
biomass; industrial waste; conversion; pyrolysis; activated carbon; BIOCHAR PROPERTIES; CATALYSTS; CHARCOAL; WOOD;
D O I
10.3390/en16041606
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
The production of biochar from biomass and industrial wastes provides both environmental and economic sustainability. An effective way to ensure the sustainability of biochar is to produce high value-added activated carbon. The desirable characteristic of activated carbon is its high surface area for efficient adsorption of contaminants. Feedstocks can include a number of locally available materials with little or negative value, such as orchard slash and crop residue. In this context, it is necessary to determine and know the conversion effects of the feedstocks to be used in the production of activated carbon. In the study conducted for this purpose; several samples (pinon wood, pecan wood, hardwood, dried grass, Wyoming coal dust, Illinois coal dust, Missouri coal dust, and tire residue) of biomass and industrial waste products were investigated for their conversion into activated carbon. Small samples (approximately 0.02 g) of the feedstocks were pyrolyzed under inert or mildly oxidizing conditions in a thermal analyzer to determine their mass loss as a function of temperature and atmosphere. Once suitable conditions were established, larger quantities (up to 0.6 g) were pyrolyzed in a tube furnace and harvested for characterization of their surface area and porosity via gas sorption analysis. Among the samples used, pinon wood gave the best results, and pyrolysis temperatures between 600 and 650 degrees C gave the highest yield. Slow pyrolysis or hydrothermal carbonization have come to the fore as recommended production methods for the conversion of biochar, which can be produced from biomass and industrial wastes, into activated carbon.
引用
收藏
页数:14
相关论文
共 50 条
  • [21] Conversion of waste biomass to designed and tailored activated chars with valuable properties for adsorption and electrochemical applications
    Januszewicz, Katarzyna
    Kazimierski, Pawel
    Cymann-Sachajdak, Anita
    Hercel, Paulina
    Barczak, Beata
    Wilamowska-Zawlocka, Monika
    Kardas, Dariusz
    Luczak, Justyna
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2023, 30 (43) : 96977 - 96992
  • [22] Optimization of microwave assisted synthesis of activated carbon from biomass waste for sustainable industrial crude wet-phosphoric acid purification
    Abderrahim, Nesrine
    Mergbi, Meriem
    Ben Amor, Hedi
    Djellabi, Ridha
    JOURNAL OF CLEANER PRODUCTION, 2023, 394
  • [23] Pre-formed activated carbon matting derived from the pyrolysis of biomass natural fibre textile waste
    Williams, PT
    Reed, AR
    JOURNAL OF ANALYTICAL AND APPLIED PYROLYSIS, 2003, 70 (02) : 563 - 577
  • [24] Waste apple biomass conversion to 5-HMF over tin doped sulfonated activated carbon as a catalyst
    Tempelman, Christiaan
    Jacobs, Urjan
    Herselman, Jan
    van Driel, Ruben
    Schraa, Feiko
    Versijde, Joshua
    van Waversveld, Tristan
    Yagci, Yasin
    Barg, Micky
    Smits, Frank
    Kuijpers, Femke
    Lamers, Kim
    Remijn, Timo
    Degirmenci, Volkan
    BIOMASS & BIOENERGY, 2023, 168
  • [25] Non-woven fabric activated carbon produced from fibrous waste biomass for sulphur dioxide control
    Illingworth, James M.
    Rand, Brian
    Williams, Paul T.
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2019, 122 : 209 - 220
  • [26] Activated carbon from biomass
    Manocha, S.
    Manocha, L. M.
    Joshi, Parth
    Patel, Bhavesh
    Dangi, Gaurav
    Verma, Narendra
    CARBON MATERIALS 2012 (CCM12): CARBON MATERIALS FOR ENERGY HARVESTING, ENVIRONMENT, NANOSCIENCE AND TECHNOLOGY, 2013, 1538 : 120 - 123
  • [27] Waste conversion into activated carbon for heavy metal removal from waste water
    Lyubchik, S.
    Khodorkovskij, M.
    Makarova, T.
    Tikhonova, Liliya
    Mota, Jose P. B.
    Fonseca, Isabel
    RECENT ADVANCES IN ADSORPTION PROCESSES FOR ENVIRONMENTAL PROTECTION AND SECURITY, 2008, : 133 - +
  • [28] Preparation, structural evaluation and adsorptive properties of activated carbon from agricultural waste biomass
    Koseoglu, Eda
    Akmil-Basar, Canan
    ADVANCED POWDER TECHNOLOGY, 2015, 26 (03) : 811 - 818
  • [29] Comparison of steam reforming and partial oxidation of biomass pyrolysis tars over activated carbon derived from waste tire
    Striugas, Nerijus
    Zakarauskas, Kestutis
    Stravinskas, Giedrius
    Grigaitiene, Viktorija
    CATALYSIS TODAY, 2012, 196 (01) : 67 - 74
  • [30] Sustainable conversion of waste tea biomass into versatile activated carbon: application in quick, continuous, and pressure filtration of miscellaneous pollutants
    Chandrashekhar S. Patil
    Datta B. Gunjal
    Vaibhav M. Naik
    Ravindra D. Waghmare
    Tukaram D. Dongale
    Mahaveer D. Kurkuri
    Govind B. Kolekar
    Anil H. Gore
    Biomass Conversion and Biorefinery, 2023, 13 : 12975 - 12988