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February 27, 20260 citations

Co-combustion of

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SSSukarni SukarniIFIvan FahrizalAAAhmad Yusril Aminullah

Key Points

  • The central aim is to study the ash characteristics resulting from the co-combustion of Spirulina and synthetic waste.
  • Co-combustion of 30% Spirulina and 70% synthetic waste in a circulating fluidized bed combustor.
  • Ash characterization to evaluate mitigation of ash buildup and valorization potential.
  • Morphology analysis to observe physical changes in ash structure.
  • Fourier transform infrared spectroscopy to assess chemical changes post-combustion.
  • Combustion altered the feedstock's physical structure, producing more porous and coarser ash.
  • The main ash components identified include oxygen, silicon, chlorine, phosphorus, sodium, and iron.
  • FTIR analysis showed the decomposition of proteins and lipids from Spirulina post-combustion.
  • Significant degradation of polymers from synthetic waste was observed.

Abstract

Fossil-based solid fuel dependency is characterized by supply scarcity and environmental hazards, underscoring the need for cleaner, renewable energy sources. Spirulina (Arthrospira) platensis (SP) cyanobacterium is a promising source of energy due to its abundance and high calorific value. However, co-combustion is one of several methods to reduce environmental impact by utilizing unmanaged plastic or synthetic waste (SW) with high volatility and combining it with SP. Circulating fluidized bed combustor (CFBC) technology is one of the effective thermal methods to convert various types of feedstocks into a heat source. There is limited study about the co-combustion of microalgae and plastic waste in CFBC. This study aims to examine the ash characteristics of 30% SP and 70% SW. Ash characterization is important to mitigate ash buildup and evaluate its potential for valorization. Morphology analysis showed that combustion significantly alters the feedstock's physical structure, resulting in more porous, coarser ash. The main compositions of ash are O, Si, Cl, P, Na, and Fe. Fourier transform infrared (FTIR) spectroscopy revealed the loss of specific peaks in the 3700-2000 cm⁻1 region after combustion, indicating the decomposition of proteins and lipids from SP, whereas the SW component showed significant polymer degradation.

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Cite This Study

Sukarni et al. (2026) studied this question.

synapsesocial.com/papers/69a13571ed1d949a99abf402https://doi.org/10.1051/e3sconf/202669501006/pdf
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