An experimental and numerical investigation of secondary char formation in hydrothermal carbonization: revealing morphological changes via hydrodynamics†

IF 3.9 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
RSC Advances Pub Date : 2025-04-23 DOI:10.1039/D4RA08995B
Omar M. Abdeldayem, Capucine Dupont, David Ferras and Maria Kennedy
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Abstract

Hydrothermal carbonization (HTC) research has mainly focused on primary char production, with limited attention to secondary char, which is formed through polymerization and condensation of dissolved organic compounds in the liquid phase. This research aims to address this gap via an experimental investigation of the impact of stirring on the mass and carbon balance of HTC reaction products, surface functional groups, and surface morphology of secondary char, using fructose as a model compound. A 3D hydrodynamic simulation model was developed for a two-liter HTC stirred reactor. The experimental results indicated that stirring did not significantly influence the pH, mass, carbon balance, and surface functional groups of secondary char produced under the range of experimental conditions (180 °C, 10% biomass to water (B/W) ratio, and a residence time of 0–120 min) studied. Nonetheless, it was observed that a stirring rate of 200 rpm influenced the morphology and shape of the secondary char microspheres, leading to a significant increase in their size i.e., from 1–2 μm in unstirred conditions compared with 70 μm at a stirring rate of 200 rpm. This increase in size was attributed to the aggregation of microspheres into irregular aggregates at stirring rates > 65 rpm and residence times > 1 h. The hydrodynamic model revealed that high turbulence of Re > 104 and velocities > 0.17 m s−1 correlated with regions of secondary char formation, emphasizing their role in particle aggregation. Particle aggregation is significant above a stirring rate of 65 rpm, which corresponds to the onset of turbulent flow in the reactor. Finally, a mechanism is proposed, based on reactor hydrodynamics under stirred conditions, that explains secondary char deposition on the reactor walls and stirrer.

热液碳化过程中二次炭形成的实验和数值研究:通过流体力学揭示形态变化†。
水热炭化(HTC)的研究主要集中在一次炭的生成,而对二次炭的研究较少,二次炭是由溶解的有机化合物在液相中聚合缩聚形成的。本研究旨在通过实验研究搅拌对HTC反应产物的质量和碳平衡、表面官能团和仲焦表面形貌的影响,以果糖为模型化合物,解决这一空白。建立了2升HTC搅拌反应器的三维流体动力学仿真模型。实验结果表明,在180℃、10%生物质/水(B/W)比、0 ~ 120 min的实验条件下,搅拌对二次炭的pH、质量、碳平衡和表面官能团没有显著影响。然而,我们观察到,200 rpm的搅拌速度影响了二次焦微球的形态和形状,导致其尺寸显著增加,即在未搅拌条件下,与200 rpm的搅拌速度下的70 μm相比,未搅拌条件下的尺寸增加了1-2 μm。这种尺寸的增加是由于微球在搅拌速率下聚集成不规则的聚集体;65转/分及停留时间>;1 h.水动力模型显示Re >;104和速度>;0.17 m s−1与二次炭形成区域相关,强调了它们在颗粒聚集中的作用。在搅拌速率为65rpm以上,颗粒聚集是显著的,这对应于反应器中湍流的开始。最后,基于搅拌条件下的反应器流体力学,提出了一种解释反应器壁上和搅拌器上二次炭沉积的机理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
RSC Advances
RSC Advances chemical sciences-
CiteScore
7.50
自引率
2.60%
发文量
3116
审稿时长
1.6 months
期刊介绍: An international, peer-reviewed journal covering all of the chemical sciences, including multidisciplinary and emerging areas. RSC Advances is a gold open access journal allowing researchers free access to research articles, and offering an affordable open access publishing option for authors around the world.
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