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Simultaneous production of aromatics-rich bio-oil and carbon nanomaterials from catalytic co-pyrolysis of biomass/plastic wastes and in-line catalytic upgrading of pyrolysis gas

机译:同时生产富含生物量/塑料废物的催化共热分解的富含生物油和碳纳米材料,以及热解气体的型号催化升级

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摘要

An integrated process that includes catalytic co-pyrolysis of biomass/plastic wastes and in-line catalytic upgrading of pyrolysis gas were conducted to simultaneously produce aromatics-rich bio-oil and carbon nanotubes (CNTs). The influences of feedstocks blending ratio on the characteristics of bio-oil and CNTs were established. The reaction mechanism of carbon deposition during the system was also probed. The results showed that co-feeding plastic to biomass siginificantly enhanced the selectivity of monoaromat-ics (benzene, toluene, and xylene) from 5.6% for pure biomass to the maximum yield of 44.4% for 75.0% plastic ratio, and decreased naphthalene and its derivates from 85.9 to 41.7% correspondingly. The most synergistic effect on BTX selectivity occurred at 25% of plastic ratio. The multi-walled CNTs were successfully synethsized on Ni catalyst by utilizing prolysis gas as feedstocks. For pure biomass, the least CNTs yield with ultrafine diameters of 3.9-8.5 nm was generated via disproportionation reaction of CO which was derived from decarboxylation and decarbonylation of oxygenates on the ZSM-5 acid sites. With the rise of plastic ratio, sufficient hydrocarbons were produced for CNTs growth, endowing CNTs with long and straight tube walls, along with uniform diameters (~16 nm). The CNTs yield increased as high as 139 mg/g-cata. In addition, the decreased CO_2 inhibited dry reforming with C1-C4 hydrocarbons and deposited carbon, avoiding excessive etching of CNTs. Thereby, high-purity CNTs with less defects were fabricated when plastic ratio was beyond 50% in the feedstock. The strategy is expected to improve the sustainability and economic viability of biomass pyrolysis.
机译:进行了包括催化协同生物质/塑料废物的催化共热和在线催化升级的热解气体的综合方法,同时产生富含富含芳烃的生物油和碳纳米管(CNT)。建立了原料融合比对生物油和CNT特征的影响。还探测了系统中碳沉积的反应机理。结果表明,将塑料与生物量共送到生物量,从5.6%的纯生物质的5.6%的单甘露羚羊(苯,甲苯和二甲苯)的选择性增强至纯生物质的最大收率为44.4%的塑性比率,降低萘及其萘相应地从85.9%到41.7%。对BTX选择性的最简单效应为25%的塑性比率。通过用作原料,通过将中流气体加工,在Ni催化剂上成功地在Ni催化剂中成功地进行了多壁CNT。对于纯生物量,通过衍生自ZSM-5酸位点上的脱羧和碳酸盐的脱羧和脱氧羰基化的CO的含量不均匀反应产生3.9-8.5nm的最少CNTs产量。随着塑料比的升高,生产足够的碳氢化合物用于CNTs生长,具有长和直管壁的CNT,以及均匀的直径(〜16nm)。 CNT产量高达139mg / g-cata。此外,降低的CO_2抑制了C1-C4烃和沉积碳的干燥重整,避免过量蚀刻CNT。由此,当塑料比在原料中超过50%时,制造具有较少缺陷的高纯度CNT。该战略预计将提高生物质热解的可持续性和经济可行性。

著录项

  • 来源
    《Waste Management》 |2021年第2期|95-104|共10页
  • 作者单位

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China;

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China;

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China;

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China;

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China School of Energy and Power Engineering Nanjing University of Science and Technology Nanjing 210094 China;

    Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education School of Energy and Environment Southeast University Nanjing 210096 China;

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

    Catalytic co-pyrolysis; Biomass; Plastic; Aromatics-rich bio-oil; Carbon nanotubes;

    机译:催化共热解;生物质;塑料;富含富含芳烃的生物油;碳纳米管;
  • 入库时间 2022-08-18 22:57:56

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