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February 16, 2026Coatings0 citationsOpen Access

The Catalytic Effect of Rice Husk Ash on Pine Pyrolysis Based on a Three-Component System

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XLX. LiuXHXiaoyu HuDWDi Wu

Key Points

  • This research aims to explore the synergistic effects of rice husk ash during the co-pyrolysis of rice husk and pine biomass.
  • Utilized thermogravimetric analysis (TGA) to assess thermal degradation.
  • Employed Py-GC/MS for analyzing the composition of gaseous products.
  • Investigated the impact of blending ratios and heating rates on pyrolysis outcomes.
  • Blend with 30% rice husk showed the greatest synergistic effect on pyrolysis.
  • Char yield and pyrolysis activation energy were lower by 9.7% and 10.5% than theoretical predictions.
  • Alkali metal migration from rice husk ash was linked to enhancing reaction rates and product selectivity.

Abstract

Biomass is characterized by its diversity and wide availability. Co-pyrolysis technology is considered a promising approach for high-quality conversion and high-value utilization of biomass, representing a critical pathway toward environmental sustainability. This study selected rice husk and pine as representative herbaceous and woody biomass materials. Using a thermogravimetric analyzer (TGA) and Py-GC/MS, we systematically investigated the synergistic effects during co-pyrolysis, examined their underlying mechanisms, and analyzed changes in product distribution. The results indicate that the blend containing 30% rice husk exhibited the most pronounced synergistic effect. Specifically, the experimental char yield and pyrolysis activation energy were 9.7% and 10.5% lower than the theoretically calculated values, respectively. Both the blending ratio and heating rate were found to significantly influence these synergistic interactions. The observed synergy is attributed to the migration of alkali metals from rice husk ash, which enhances reaction rates and promotes specific pathways such as cellulose ring-opening cleavage and hemicellulose deacetylation. Consequently, the product distribution shifts toward lighter compounds, including aldehydes, ketones, and alcohols. This study clarifies the central catalytic role of herbaceous biomass ash and highlights the critical function of alkali metal migration in regulating product selectivity, thereby providing theoretical support for efficient pyrolytic conversion.

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Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/6992b3fb9b75e639e9b08d9chttps://doi.org/10.3390/coatings16020244
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