Pilot-Scale Combustion of Fast-Pyrolysis Bio-Oil: Ash Deposition and Gaseous Emissions

被引:24
|
作者
Khodier, Ala [1 ]
Kilgallon, Paul [1 ]
Legrove, Nigel [1 ]
Simms, Nigel [1 ]
Oakey, John [1 ]
Bridgwater, Tony [2 ]
机构
[1] Cranfield Univ, Sch Appl Sci, Energy Technol Ctr, Cranfield MK43 0AL, Beds, England
[2] Aston Univ, Bioenergy Res Grp, Birmingham B4 7ET, W Midlands, England
基金
英国工程与自然科学研究理事会;
关键词
biomass; bio-oil; combustion; emissions; ash deposition; corrosion; ENERGY-PRODUCTION; BIOMASS; FUELS; COAL;
D O I
10.1002/ep.10379
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Fast pyrolysis is a promising method to transform. solid biomass into a liquid product called "bio-oil" with an energy density of four to five times greater than the feedstock. The process involves rapidly beating biomass to 450-600 degrees C in the absence of air and condensing the vapor produced to give bio-oil. Typically, 50-75% (weight) of the feedstock is converted into bio-oil that has a number of uses, for example energy production or bio-refinery feedstock. This study investigated the gaseous emissions and ash deposition characteristics resulting from bio-oil combustion in a pilot scale combustion test rig at Cranfield University. A feeding system with heated lines and beated/stirred reservoir was used to feed a spray nozzle in the combustion chamber. Ash deposit samples were collected from the resulting flue gas using three air-cooled probes that simulate beat exchanger tubes with surface temperatures of 500, 600, and 700 degrees C The deposits formed were analyzed using SEM/EDX and XRD techniques to assess the corrosion potential of the deposits. The results are compared to measured ash deposit compositions formed from biomass combustion. Thermodynamic modeling software was used to make predictions for the partitioning of a range of elements for bio-oil combustion and the results compared to the measured data. (C) 2009 American Institute of Chemical Engineers Environ Prog, 28: 397-403, 2009
引用
收藏
页码:397 / 403
页数:7
相关论文
共 50 条
  • [41] Analysis of Precursors of Carbon Deposition in Hydrogen Preparation by Fast Pyrolysis of Bio-oil via Catalytic Steam Reforming
    Lan, Ping
    Lan, Lihong
    Xie, Tao
    Liao, Anping
    RENEWABLE AND SUSTAINABLE ENERGY II, PTS 1-4, 2012, 512-515 : 338 - 342
  • [42] Stability, Combustion, and Compatibility of High-Viscosity Heavy Fuel Oil Blends with a Fast Pyrolysis Bio-Oil
    Kass, Michael D.
    Armstrong, Beth L.
    Kaul, Brian C.
    Connatser, Raynella Maggie
    Lewis, Samuel
    Keiser, James R.
    Jun, Jiheon
    Warrington, Gavin
    Sulejmanovic, Dino
    ENERGY & FUELS, 2020, 34 (07) : 8403 - 8413
  • [43] PERFORMANCE OF PILOT-SCALE ATOMIZERS FOR FEEDING OF COAL/BIO-OIL SLURRY TO AN ENTRAINED FLOW GASIFIER
    Feng, Ping
    Lin, Weigang
    Clausen, Sonnik
    Jensen, Peter Arendt
    Huo, Chaofei
    Song, Wenli
    Dam-Johansen, Kim
    PAPERS OF THE 23RD EUROPEAN BIOMASS CONFERENCE: SETTING THE COURSE FOR A BIOBASED ECONOMY, 2015, : 1273 - 1277
  • [45] Study on Pyrolysis Reactor Development and Its Fast Pyrolysis Process in Converting Biomass into Bio-oil
    Chen, Yen-Chang
    Pan, Yung-Ning
    Hsieh, Kuo-Huang
    JOURNAL OF THE CHINESE SOCIETY OF MECHANICAL ENGINEERS, 2011, 32 (03): : 219 - 225
  • [46] Bio-oil production via fast pyrolysis of shrub residues in a fluidized-bed reactor
    Yang Haiqing
    Wang Qirui
    Sang Yuqiang
    Fan Guoqiang
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2016, 38 (08) : 1125 - 1131
  • [47] Production of Bio-oil via Fast Pyrolysis of Cassava Rhizome in a Fluidised-Bed Reactor
    Suttibak, Suntorn
    Sriprateep, Keartisak
    Pattiya, Adisak
    2011 2ND INTERNATIONAL CONFERENCE ON ADVANCES IN ENERGY ENGINEERING (ICAEE), 2012, 14 : 668 - 673
  • [48] Experimental and numerical simulation study of oxycombustion of fast pyrolysis bio-oil from lignocellulosic biomass
    Yang, S. I.
    Wu, M. S.
    Hsu, T. C.
    ENERGY, 2017, 126 : 854 - 867
  • [49] Bio-oil and bio-char production from corn cobs and stover by fast pyrolysis
    Mullen, Charles A.
    Boateng, Akwasi A.
    Goldberg, Neil M.
    Lima, Isabel M.
    Laird, David A.
    Hicks, Kevin B.
    BIOMASS & BIOENERGY, 2010, 34 (01): : 67 - 74
  • [50] CFD analysis of fast pyrolysis process in a pilot-scale auger reactor
    Jalalifar, Salman
    Abbassi, Rouzbeh
    Garaniya, Vikram
    Salehi, Fatemeh
    Papari, Sadegh
    Hawboldt, Kelly
    Strezov, Vladimir
    FUEL, 2020, 273 (273)