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February 19, 2026Scientific Reports2 citationsOpen Access

Optimizing the trench area proportion in rice crayfish co-culture systems balances greenhouse gas mitigation and productivity

ZXZheng XuGXGao-Qi XiaPZPeng-Yu Zhao

Key Points

  • The study aims to optimize the trench area proportion in rice-crayfish systems for greenhouse gas mitigation and productivity enhancement.
  • Integrated multi-source field data from rice monoculture and co-culture systems
  • Calibrated the Denitrification-Decomposition (DNDC) model for GHG emissions simulation
  • Developed multi-objective optimization framework for trench area proportions
  • Analyzed cumulative CH4 and N2O emissions alongside rice yield
  • CH4 emissions from RCS-Trench were over threefold higher than RCS-Field
  • RCS-Field emissions were significantly lower than those from rice monoculture
  • N2O emissions were lowest in RCS-Trench, below RM and RCS-Field
  • Optimal crayfish-trench proportion identified as 7.5%-9.0% for balancing yield and emissions
  • Findings support sustainable rice-aquatic co-culture development and contribute to carbon neutrality efforts in China

Abstract

The rice-crayfish co-culture system (RCS) has emerged as a cornerstone of China's aquaculture sector, yet its greenhouse gas (GHG) emission profile remains contested. While the co-cropping field zone (RCS-Field) demonstrates considerable mitigation potential, the continuously flooded crayfish-trench zone (RCS-Trench) releases substantial methane that can offset the benefits from the field. To address this challenge, we integrated multi-source field data from rice monoculture (RM) and RCS systems across the Middle-Lower Yangtze Plain and calibrated the Denitrification-Decomposition (DNDC) model to simulate system-level GHG emissions. Using recalculated cumulative CH4 and N2O emissions as well as the rice yield, we developed a multi-objective optimization framework for determining the trench area proportions. Results showed that CH4 emissions from RCS-Trench were more than threefold higher than those from RCS-Field, whereas RCS-Field emissions were significantly lower than RM. By contrast, N2O emissions were lowest in RCS-Trench, falling below both RM and RCS-Field. The global warming potential (GWP) was highest in RCS, followed by RCS-Trench and RM, and lowest in RCS-Field. When integrating rice yield, crayfish production, and GWP, the optimal crayfish-trench proportion was identified as 7.5%-9.0%. These findings provide the first quantitative evidence that regulating trench area can simultaneously mitigate methane emissions, safeguard grain security, and enhance economic returns, thereby offering scientific support for sustainable rice-aquatic co-culture development and contributing to China's "Dual Carbon" strategy.

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Cite This Study

Xu et al. (2026) studied this question.

synapsesocial.com/papers/6996a7ffecb39a600b3ee36dhttps://doi.org/10.1038/s41598-026-40595-3
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