4.7 Article

Hydrothermal carbonization of rape straw: Effect of reaction parameters on hydrochar and migration of AAEMs

期刊

CHEMOSPHERE
卷 291, 期 -, 页码 -

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.chemosphere.2021.132785

关键词

Hydrothermal carbonization; Structure; Kinetics; AAEMs; Hydrochar

资金

  1. National Natural Science Foundation of China [21878093]
  2. Project of the Key research plan of Ningxia [2021BEE03011]
  3. Program and International Science and Technology Innovation Project between Governments [2021YFE0108900]
  4. Fundamental Research Funds for the Central Universities [JKB012011013]

向作者/读者索取更多资源

Hydrothermal carbonization improves the biomass quality and energy yield of rape straw. The properties of hydrochars produced at different temperatures and residence times were investigated. The results showed that increasing temperature had a more significant effect on hydrochar properties than residence time. The hydrochar structure was changed and became more stable after the aromatization reaction. The gasification reactivity of hydrochar was also affected, with the peak of pyrolysis and gasification shifting to a higher temperature region. Furthermore, hydrothermal carbonization efficiently reduced the content of alkali and alkaline earth metals, with the best removal condition observed at 200°C.
Hydrothermal carbonization (HTC) can improve biomass quality in both physical and chemical aspects for energy application. This study aims to investigate the characteristics and reactivities of rape straw (RS) hydrochars. Hydrochars were prepared at 160-240 degrees C with residence time of 15-120 min. Mass yield, energy yield, microstructure, functional group and migration of alkali and alkaline earth metals (AAEMs) were studied to evaluate the influence of different conditions on properties of hydrochar. The results showed that O/C and H/C ratio decreased, while the higher heating value (HHV) increased with increasing temperature and residence time. The effect of increasing temperature on hydrochar properties was more significant than residence time. The structure was changed, and hydrochar possessed a more stable form after the aromatization reaction. For the gasification reactivity of hydrochar, decomposition rate curves showed that the peak of pyrolysis and gasification moved to a higher temperature region with the increasing of HTC temperature because of the developed aromatic structures in hydrochar. The pyrolysis activation energy decreased from raw RS 71.68 to 41.03 kJ/mol in 240 degrees C, while gasification activation energy increased from 80.42 to 251.30 kJ/mol. Moreover, it was found that HTC can reduce the content of AAEMs efficiently and the best removal condition is 200 degrees C. Ca content dropped to a minimum value at 200 degrees C and then increased at higher temperature which may be caused by well-developed pore structure in hydrochars. This study provides basic data for comprehensive utilization of rape straw and migration mechanism of AAEMs in HTC process.

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