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Enhancing hydrogen-rich syngas production and energy recovery efficiency by integrating hydrothermal carbonization pretreatment with steam gasification

机译:通过将水热碳化预处理与蒸汽气化相结合,提高富含氢的合成气生产和能量回收效率

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摘要

Steam gasification behavior and kinetics of hydrothermally treated low-lipid microalgae Nannochloropsis sp. were probed in this work. The roles of hydrothermal carbonization (HTC) parameters (HTC temperature, HTC reaction time) as well as gasification conditions (gasification temperature, S/B mass ratio) in modulating the properties of hydrothermal carbons (HCs) as well as gasification performance were elucidated. Experimental results indicated that the aromaticity of the HCs derived from Nannochloropsis sp. was promoted, whereas the polarity was lowered by the increased HTC temperature and reaction time. At optimum HTC conditions (HTC temperature of 180 °C, residence time of 12 h) and gasification conditions (gasification temperature of 900 °C, S/B mass ratio of 2), the total maximum energy recovery efficiency was as high as 1.59. Kinetic parameters for the major gaseous products during the steam gasification of raw microalgae and the two typical HCs (HC-180C-12 h and HC-220C-12 h) were further determined. Kinetic results verified that the gasification reactivity of HC-180C-12 h was greatly higher than other two feedstock, and H_2 formation was greatly promoted compared to the other two gaseous products. Overall, combining hydrothermal pretreatment and steam gasification in one step is a promising technology that could greatly promote hydrogen-rich syngas production and energy recovery efficiency from low-lipid microalgae.
机译:水热处理低脂微藻Nannochloropsis sp的蒸汽气化行为和动力学。在这项工作中探讨了。阐明了水热碳化(HTC)参数(HTC)参数(HTC)参数(HTC)参数(HTC温度,HTC反应时间)以及气化条件(气化温度,S / B质量比率)的调节性能和气化性能。实验结果表明,源自Nannchloropsis sp的HCs的芳香性。促进了,而HTC温度和反应时间增加,极性降低。在最佳HTC条件下(HTC温度为180°C,停留时间为12小时)和气化条件(气化温度为900°C,S / B质量比为2),总最大能量回收效率高达1.59。进一步确定了在原料微藻蒸汽气化期间主要气态产品的动力学参数(HC-180C-12 H和HC-220C-12H)。动力学结果证实,HC-180C-12H的气化反应性大于其他两种原料,与其他两个气态产物相比,大大促进了H_2的形成。总体而言,在一步中结合水热预处理和蒸汽气化是一种有前途的技术,可以大大促进来自低脂微藻的富含氢的合成气产量和能量回收效率。

著录项

  • 来源
    《Energy》 |2020年第1期|118655.1-118655.9|共9页
  • 作者

    Nana Peng; Chao Gai; Chao Peng;

  • 作者单位

    College of Environmental Science and Engineering Beijing Forestry University Beijing 100083 China;

    Research Center for Eco-Environmental Sciences Chinese Academy of Sciences 18 Shuangqing Road Beijing 100085 China University of Chinese Academy of Sciences Beijing 100049 China;

    College of Information and Control China University of Mining and Technology Xuzhou 221008 China;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Biomass; Gasification; Hydrothermal carbonization; Kinetic analysis;

    机译:生物质;气化;水热碳化;动力学分析;

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