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October 11, 2025Processes3 citationsOpen Access

Effects of Biochar Addition on Gaseous Emissions During the Thermophilic Composting Phase and Subsequent Changes in Compost Characteristics

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IAIbrahim A. AbdelfadeelKAKhaled D. AlotaibiFAFahad N. Alkoiak

Key Points

  • Biochar at 10% application significantly reduced NH3, N2O, CH4, and CO2 emissions by up to 88%.
  • Treatment with high-temperature biochar improved dry matter and total nitrogen levels in compost.
  • The C:N ratio decreased from 27:1 to 21:1, indicating a more accelerated composting process.
  • Future research should investigate the long-term effects and microbial mechanisms of biochar in composting.

Abstract

The composting of organic waste is a sustainable strategy for waste management and soil fertility improvement. However, the composting process is often associated with greenhouse gas (GHG) emissions, having a negative impact on the environment. This study investigated the effects of BC pyrolysis temperature (300 °C, 600 °C) and application rate (5% and 10%) on GHG emissions during the thermophilic phase and compost quality. The experimental treatments were a control and four BC treatments varying in pyrolysis temperature (300 °C, 600 °C) and application rate (5%, 10%). As a result, BC pyrolyzed at 600 °C and added at 10% (T2R2) resulted in the highest thermophilic temperature (63.5 ± 0.5 °C). This treatment significantly achieved substantial reductions in NH3, N2O, CH4, and CO2 emissions by 55 ± 2.7%, 50 ± 2.7%, 88 ± 4.2%, and 23 ± 2.3%, respectively, relative to the control. Compost quality was enhanced notably, with dry matter increasing to 46.4 ± 0.11% (T2R1), organic matter reaching 30.9 ± 0.05% in T2R1, and total nitrogen peaking at 0.8 ± 0.001% (T1R2). The C:N ratio decreased from 27:1 in the control to 21:1 in the treatment of T1R2, indicating an accelerated composting process. The NH4-N levels were the highest in T1R2 and T2R2 (659 ± 0.1 and 416 ± 0.2 mg kg−1), while EC increased to 9.5 ± 0.006 ms/cm (T2R1), and bulk density decreased to 410 ± 0.08 kg/m3 (T1R1). These results demonstrate that high-temperature biochar, especially at a rate of 10%, is effective in reducing emissions and improving compost quality. Future research should explore long-term effects and microbial mechanisms to optimize biochar use in composting systems.

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Cite This Study

Abdelfadeel et al. (2025) studied this question.

synapsesocial.com/papers/68e9b1d0ba7d64b6fc132c8ehttps://doi.org/10.3390/pr13103210
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