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Physicochemical and Fuel Characteristics of Torrefied Agricultural Residues for Sustainable Fuel Production

机译:可持续燃料生产中烘焙农业残留物的物理化学和燃料特征

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摘要

Torrefaction as a thermal pretreatment was conducted on oat hull, canola hull, and barley straw in a fixed-bed reactor at temperatures in the range of 220–300 °C and residence times of 30-60 min to study impacts of these two parameters on physicochemical and fuel properties of biomass. The chemical nature of torrefied biomass was analyzed by Fourier transform infrared spectroscopy (FTIR), X-ray diffraction, solid-state ~(13)C nuclear magnetic resonance spectrometry (~(13)C NMR), and X-ray photoelectron spectroscopy, while the morphology of the sample was analyzed by scanning electron microscopy (SEM) and Brunauer–Emmett–Teller (BET) analyses. The results indicated that torrefaction pretreatment significantly elevated the fuel ratio in all biomasses and reduced cellulose crystallinity. Thermogravimetric analysis (TGA) showed that significant decomposition of biomass occurred under the most severe conditions in the following order: canola hull, barley straw, and oat hull. A remarkable decrease in volatile matter and increase in fixed carbon content are also observed from the TGA curve for torrefied biomasses. ~(13)C NMR and FTIR analysis of torrefied biomass samples demonstrated that the cross-linking, devolatilization, and carbonizing of biomass during the torrefaction process might be accountable for low mass yield. According to SEM results, a more fragmented and tubular structure was obtained at higher temperature because of thermal cracking and degradation of lignin, respectively, which made the biomass easy to grind. Inductively coupled plasma–mass spectrometry analysis showed that barley straw contains the highest amount of minerals (44.5 mg/g) followed by oat hull (15.5 mg/g) and canola hull (8.3 mg/g), when torrefied at 260 °C for 60 min. In addition, torrefaction significantly increases the alkaline and other essential element concentrations in torrefied samples. The BET surface area of torrefied biomass was found to be two to three times higher than that of raw biomass. Torrefied canola hull possesses the highest heating value (25.26 MJ/kg) followed by oat hull (23.31 MJ/kg) and barley straw (22.89 MJ/kg) torrefied at 300 °C. Torrefaction severely reduced the atomic ratio of C/H and O/H. Consequently, the equilibrium moisture content and moisture uptake rate of torrefied biomass decreased significantly and thus increased hydrophobicity. Thus, it is evident that torrefaction is an efficient pretreatment method for enhancing the quality of solid biomass as fuel.
机译:作为热预处理的烘焙反应在燕麦船体,釜壳壳和大麦秸秆中进行,在固定床反应器中,在220-300°C和30-60分钟的停留时间,以研究这两个参数的影响生物质的物理化学和燃料特性。通过傅里叶变换红外光谱(FTIR),X射线衍射,固态〜(13)C核磁共振光谱法(〜(13)C NMR)和X射线光电子谱,分析了泪珠的生物质的化学性质。虽然通过扫描电子显微镜(SEM)和Brunauer-Emmett-Teller(Bet)分析来分析样品的形态。结果表明,烘焙预处理显着升高了所有生物质中的燃料比,并降低了纤维素结晶度。热重分析(TGA)表明,在以下顺序中最严重的条件下,生物量的显着分解:Canola Hull,Barley Strain和Oat Hull。从TGA曲线对于烘焙生物量的TGA曲线也观察到挥发性物质的显着降低和固定碳含量的增加。 〜(13)C NMR和FTIR的泪珠样品的分析表明,在烘焙过程中的交联,脱挥发和碳化和碳化可能是低质量产量的。根据SEM结果,由于木质素的热裂化和降解,在较高温度下获得更碎片和管状结构,这使得生物质易于研磨。电感耦合等离子体质谱分析表明,大麦秸秆含有最高量的矿物质(44.5mg / g),然后是燕麦壳(15.5mg / g)和油菜壳(8.3 mg / g),当时260℃ 60分钟。此外,Torrefaction显着增加了酸杂种样品中的碱性和其他基本元素浓度。发现雾化生物质的BET表面积比原料生物量高2至三倍。 Torrefied Canola Hull拥有最高的加热值(25.26 mJ / kg),然后是燕麦船体(23.31 mj / kg)和大麦秸秆(22.89 mj / kg)在300°C下烘焙。 Torrefaction严重降低了C / H和O / H的原子比。因此,滴落的生物质的平衡水分含量和水分吸收率显着下降,因此增加了疏水性。因此,显而易见的是,烘焙是一种有效的预处理方法,用于提高固体生物质作为燃料的质量。

著录项

  • 来源
    《Energy & fuels》 |2020年第11期|14169-14181|共13页
  • 作者单位

    Department of Chemical & Biological Engineering University of Saskatchewan;

    Department of Process Engineering Memorial University of Newfoundland;

    Department of Chemical & Biological Engineering University of Saskatchewan;

    Department of Chemical & Biological Engineering University of Saskatchewan;

  • 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
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