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Effect of Hydrothermal Carbonization Reaction Parameters on the Properties of Hydrochar and Pellets

机译:水热碳化反应参数对烃和颗粒性质的影响

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Hydrothermal carbonization (HTC) is a promising upgrading process to convert various low energy-density lignocellulo-sic biomass materials to homogeneous, energy-dense HTC biochar, known as hydrochar. A novel two-chamber reactor was designed and built to investigate the effects of HTC reaction parameters on the resulting hydrochar produced from woody biomass. Reaction parameters investigated included temperature (200-230℃), feedstock particle size (0.60-2.38 mm), and reaction time (1-5 min). Mass yield and higher heating value (HHV) of the hydrochar products were determined as two important measures. Reaction temperature was found to have a much stronger influence on mass yield and HHV than particle size or reaction time. Hydrochar can be formed readily into robust, dense pellets, without requiring any additional binding agent. Pellet density ranged from 1260 to 1320 kg m~(-3), while volumetric energy density ranged from 27.3 to 29.5 GJ m~(-3). Several analyses were performed on hydrochar pellets, including ultimate analysis, proximate analysis, and water immersion tests. Results are presented and discussed to illustrate the chemical composition, energy density, and water resistance of hydrochar pellets. This study confirmed that the HTC process can transform lignocellulosic biomass into a solid fuel with favorable properties, and provides insightful guidance regarding optimum reaction parameters for producing hydrochar and pellets in a continuous, industrial process.
机译:水热碳化(HTC)是一种很有前途的升级过程,可以将各种低能量密度的木质纤维素生物质材料转化为均质的,能量密集的HTC生物炭,即水炭。设计并建造了一种新型的两室反应器,以研究HTC反应参数对木质生物质产生的烃的影响。研究的反应参数包括温度(200-230℃),原料粒度(0.60-2.38 mm)和反应时间(1-5分钟)。确定了水煤产品的批量生产和较高的热值(HHV)是两项重要措施。发现反应温度对质量产率和HHV的影响远大于粒度或反应时间。 Hydrochar可以轻松形成坚固,致密的颗粒,而无需任何其他的粘合剂。颗粒密度范围为1260至1320 kg m〜(-3),体积能量密度范围为27.3至29.5 GJ m〜(-3)。对水焦炭颗粒进行了几种分析,包括最终分析,近似分析和水浸测试。提出并讨论了结果,以说明水焦颗粒的化学成分,能量密度和耐水性。这项研究证实了HTC工艺可以将木质纤维素生物质转化为具有良好性能的固体燃料,并为在连续的工业工艺中生产烃和颗粒的最佳反应参数提供了有见地的指导。

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