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Molten chloride salt pyrolysis of biomass: Effects of temperature and mass ratio of molten salt to biomass

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  • Ali, Mujahid
  • Mahmood, Faisal
  • Magoua Mbeugang, Christian Fabrice
  • Tang, Jiazhen
  • Xie, Xing
  • Li, Bin

Abstract

Molten salt pyrolysis of biomass can effectively solve the heat supply/transfer bottleneck issue during biomass pyrolysis and simultaneously produce value-added products. This study aims to explore the influences of temperature (500–800 °C) and mass ratio of molten salt to biomass (MS:B, i.e., 0:1, 10:1, and 15:1) on the molten chloride salts (ZnCl2-NaCl-KCl) pyrolysis of pine sawdust. It was found that ZnCl2-NaCl-KCl significantly enhanced dehydrogenation and decarboxylation reactions, yielding high contents of H2 (41.52–54.58 vol%) and CO2 in non-condensable gas. The biochar yield from molten chloride salts pyrolysis was nearly doubled possibly due to enhanced dehydration and dehydrogenation/condensation by ZnCl2 in the salts at all testing temperatures. A highly porous biochar with a BET surface area of 738.38 m2/g could be directly obtained from molten chloride salts pyrolysis at lower temperature of 500 °C with a MS:B of 10:1. The molten chloride salts altered the reaction pathway of pine sawdust pyrolysis, leading to a significantly different bio-oil composition. A high content of linear carbonyls of 93.95 % was detected in bio-oil with MS:B of 10:1 at 500 °C due to the high alkali metal ions facilitating the ring opening/scission of sugar units. While temperature increasing promoted linear carbonyls/acids undergo decarbonylation, decarboxylation and further dehydrogenation/aromatization, a high content of phenols and aromatics of 83.21 % was obtained with MS:B of 15:1 at 800 °C. This study shows a prospect to directly produce a H2-rich gas, a porous biochar, and a high selectivity bio-oil through a one-step method of molten chloride salts pyrolysis of biomass.

Suggested Citation

  • Ali, Mujahid & Mahmood, Faisal & Magoua Mbeugang, Christian Fabrice & Tang, Jiazhen & Xie, Xing & Li, Bin, 2025. "Molten chloride salt pyrolysis of biomass: Effects of temperature and mass ratio of molten salt to biomass," Energy, Elsevier, vol. 316(C).
  • Handle: RePEc:eee:energy:v:316:y:2025:i:c:s0360544225002762
    DOI: 10.1016/j.energy.2025.134634
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    References listed on IDEAS

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    1. Zeng, Kuo & Li, Jun & Xie, Yingpu & Yang, Haiping & Yang, Xinyi & Zhong, Dian & Zhen, Wanxin & Flamant, Gilles & Chen, Hanping, 2020. "Molten salt pyrolysis of biomass: The mechanism of volatile reforming and pyrolysis," Energy, Elsevier, vol. 213(C).
    2. Chen, Dengyu & Cen, Kehui & Cao, Xiaobing & Chen, Fan & Zhang, Jie & Zhou, Jianbin, 2021. "Insight into a new phenolic-leaching pretreatment on bamboo pyrolysis: Release characteristics of pyrolytic volatiles, upgradation of three phase products, migration of elements, and energy yield," Renewable and Sustainable Energy Reviews, Elsevier, vol. 136(C).
    3. Li, Bin & Song, Mengge & Xie, Xing & Wei, Juntao & Xu, Deliang & Ding, Kuan & Huang, Yong & Zhang, Shu & Hu, Xun & Zhang, Shihong & Liu, Dongjing, 2023. "Oxidative fast pyrolysis of biomass in a quartz tube fluidized bed reactor: Effect of oxygen equivalence ratio," Energy, Elsevier, vol. 270(C).
    4. Li, Jun & Zhong, Dian & Zeng, Kuo & Chen, Xin & Wu, Boyang & Liu, Tianji & Yang, Haiping & Chen, Hanping, 2024. "Co-pyrolysis of algae and lignocellulosic biomass in molten salts to produce N-doped carbon for supercapacitor application," Energy, Elsevier, vol. 305(C).
    5. Zhao, Na & Li, Bao-Xia, 2016. "The effect of sodium chloride on the pyrolysis of rice husk," Applied Energy, Elsevier, vol. 178(C), pages 346-352.
    6. Gao, Yali & Xu, Chao & Cui, Dongxu & Rout, Lipeeka & Ding, Kuan & Shi, Lei & Zhang, Shu & Lv, Peng & Li, Bin & Yu, Guangsuo & Xu, Guangyu & Wei, Juntao, 2024. "Decoupling study on the influence of the interaction between biomass hydrochar and coal during co-pyrolysis on the char structure evolution," Renewable Energy, Elsevier, vol. 231(C).
    7. He, Xiao & Zeng, Kuo & Xie, Yingpu & Flamant, Gilles & Yang, Haiping & Yang, Xinyi & Nzihou, Ange & Zheng, Anqing & Ding, Zhi & Chen, Hanping, 2019. "The effects of temperature and molten salt on solar pyrolysis of lignite," Energy, Elsevier, vol. 181(C), pages 407-416.
    8. Xie, Yingpu & Zeng, Kuo & Flamant, Gilles & Yang, Haiping & Liu, Nian & He, Xiao & Yang, Xinyi & Nzihou, Ange & Chen, Hanping, 2019. "Solar pyrolysis of cotton stalk in molten salt for bio-fuel production," Energy, Elsevier, vol. 179(C), pages 1124-1132.
    9. Li, Bin & Huang, Huimin & Xie, Xing & Wei, Juntao & Zhang, Shu & Hu, Xun & Zhang, Shihong & Liu, Dongjing, 2023. "Volatile-char interactions during biomass pyrolysis: Effects of AAEMs removal and KOH addition in char," Renewable Energy, Elsevier, vol. 219(P1).
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