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Experimental investigation of the synergy effect of partial oxidation and bio-char on biomass tar reduction

机译:部分氧化与生物炭协同作用减少生物质焦油的实验研究

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摘要

In order to reveal the synergy effect of partial oxidation and bio-char on tar reduction and develop more efficient tar removal method, the tar and bio-char evolution properties were investigated on a bench-scaled fixed-bed reactor. The tar components, tar conversion rates, physical and chemical structure of bio-char after reaction at the second stage were sampled and analyzed. Results showed that at 700 ℃, the coupling of char and oxygen could result in the significant improvement of tar conversion rate (89.32%) than both two separated method (85.1% and 86.14%). At 900 ℃, the synergy effect could reach the highest conversion rate of 95.84%. High oxygen concentration coupling with char may lead to carbon deposition and bring down tar conversion rate at 800 ℃ But a light amount of oxygen greatly promoted the formation of porosity. The reaction between tar and bio-char at high temperature (800 ℃ above) was in favor of toluene conversion. The coupling of char and partial oxidation benefited the elimination of larger PAHs tar compounds as well as toluene. BET analysis results showed that oxygen promoted the development of bio-char porosity at 700 ℃ and 900 ℃ under all oxygen concentrations. Slight amount of oxygen would benefit the char pore development, but high oxygen concentration (5%) would lead to the carbon deposition on char pore surface at 800 ℃. FTIR results indicated that temperature and oxygen promoted the aromatic or graphitization of bio-char. The 1R band peak of 1060 cm~(-1) showed the similar tendency with aromatic ring band peak, which meant more carbon deposition on the surface of char pore but not graphitization. The coupling of partial oxidation and char catalysis is a feasible method for tar reduction of biomass tar.
机译:为了揭示部分氧化和生物炭对焦油还原的协同作用并开发更有效的焦油去除方法,在台式规模的固定床反应器上研究了焦油和生物炭的演变特性。对第二阶段反应后的焦油成分,焦油转化率,生物炭的理化结构进行了采样分析。结果表明,在700℃下,炭和氧的偶合比两种分离方法(分别为85.1%和86.14%)可显着提高焦油转化率(89.32%)。在900℃时,协同效应最高可达95.84%。较高的氧气浓度与木炭结合可能会导致碳沉积,并降低800℃下的焦油转化率,但少量氧气会大大促进孔隙的形成。焦油与生物炭在高温(800℃以上)下的反应有利于甲苯的转化。炭和部分氧化的偶联有利于消除较大的PAHs焦油化合物以及甲苯。 BET分析结果表明,在所有氧气浓度下,氧气在700℃和900℃下都促进了生物炭孔隙的发展。少量的氧气将有利于炭孔的发展,但高浓度的氧气(5%)将导致炭在800℃下沉积在炭孔表面。 FTIR结果表明,温度和氧气促进了生物炭的芳构化或石墨化。 1060 cm〜(-1)的1R谱带峰与芳环谱带峰具有相似的趋势,这意味着炭在炭孔表面的沉积更多,而没有石墨化。部分氧化和炭催化的耦合是减少生物质焦油焦油的一种可行方法。

著录项

  • 来源
    《Journal of Analytical & Applied Pyrolysis》 |2015年第3期|262-269|共8页
  • 作者单位

    Institute of Thermal Engineering, Biomass Energy Research Center, Shanghai Jiao Tong University, Shanghai 200240, PR China;

    Institute of Thermal Engineering, Biomass Energy Research Center, Shanghai Jiao Tong University, Shanghai 200240, PR China,Institute of Thermal Engineering, Biomass Energy Research Center, Shanghai Jiao Tong University, No. 800 Dongchuan Road, Shanghai, PR China;

    Institute of Thermal Engineering, Biomass Energy Research Center, Shanghai Jiao Tong University, Shanghai 200240, PR China;

    Institute of Thermal Engineering, Biomass Energy Research Center, Shanghai Jiao Tong University, Shanghai 200240, PR China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Partial oxidation; Bio-char; Tar reduction; Synergy effect; Carbon deposition;

    机译:部分氧化;生物炭减少焦油;协同效应;积碳;

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