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首页> 外文期刊>Biomass & bioenergy >Solar-driven steam-based gasification of sugarcane bagasse in a combined drop-tube and fixed-bed reactor - Thermodynamic, kinetic, and experimental analyses
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Solar-driven steam-based gasification of sugarcane bagasse in a combined drop-tube and fixed-bed reactor - Thermodynamic, kinetic, and experimental analyses

机译:在滴管式和固定床式反应器组合中,以太阳能为动力的基于蒸汽的甘蔗渣气化-热力学,动力学和实验分析

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摘要

Syngas production via steam-based thermochemical gasification of Brazilian sugarcane bagasse, using concentrated solar energy for process heat, was thermodynamically and experimentally investigated. Energy and exergy analyses revealed the potential benefits of solar-driven over conventional autothermal gasification that included superior quality of syngas composition and higher yield per unit of feedstock. Reaction rates for the gasification of fast pyrolyzed bagasse char were measured by thermogravimetric analysis and a rate law based on the oxygen exchange mechanism was formulated. In order to provide residence times long enough for adequate char conversion, a laboratory-scale entrained flow reactor that combines drop-tube and fixed-bed concepts was developed. Testing was performed in an electric furnace with the final aim to supply heat by concentrated solar radiation. Experimental runs at reactor temperatures of 1073-1573 K and a biomass feed rate of 0.48 g/min yielded high-quality syngas of molar ratios H_2/CO = 1.6 and CO_2/CO = 0.31, and with heating values of 15.3-16.9 MJ/kg, resulting in an upgrade factor (ratio of heating value of syngas produced over that of the feedstock) of 112%. Theoretical upgrade factors of up to 126%, along with the treatment of wet feedstock and elimination of the air separation unit, support the potential benefits of solar-driven over autothermal gasification.
机译:对巴西甘蔗渣的蒸汽热化学气化生产合成气,利用集中的太阳能作为过程热进行了热力学和实验研究。能源和火用分析表明,与传统的自热气化相比,太阳能驱动具有潜在的优势,其中包括优质的合成气成分和更高的每单位原料产量。通过热重分析法测定了快速热解甘蔗渣炭的气化反应速率,并基于氧交换机理制定了速率规律。为了提供足够长的停留时间以进行足够的焦炭转化,开发了一种结合了滴管和固定床概念的实验室规模的气流床。测试是在电炉中进行的,最终目的是通过集中的太阳辐射来提供热量。在1073-1573 K反应器温度和0.48 g / min的生物质进料速度下进行的实验运行产生了摩尔比H_2 / CO = 1.6和CO_2 / CO = 0.31且加热值为15.3-16.9 MJ /的高质量合成气。 kg,导致提升因子(产生的合成气的热值与原料的热值之比)为112%。高达126%的理论提升系数,加上湿原料的处理和空气分离装置的取消,支持了太阳能驱动的自热气化技术的潜在优势。

著录项

  • 来源
    《Biomass & bioenergy 》 |2013年第5期| 173-183| 共11页
  • 作者单位

    ETH Zurich, Department of Mechanical and Process Engineering, 8092 Zurich, Switzerland;

    ETH Zurich, Department of Mechanical and Process Engineering, 8092 Zurich, Switzerland;

    ETH Zurich, Department of Mechanical and Process Engineering, 8092 Zurich, Switzerland;

    ETH Zurich, Department of Mechanical and Process Engineering, 8092 Zurich, Switzerland;

    ETH Zurich, Department of Mechanical and Process Engineering, Sonneggstrasse 3, ML-J42.1, 8092 Zurich, Switzerland,Paul Scherrer Institute, Solar Technology Laboratory, 5232 Villigen PSI, Switzerland;

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

    Gasification; Bagasse; Kinetics; Thermodynamics; Solar; Reactor;

    机译:气化;渣;动力学;热力学;太阳能;反应堆;

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