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Sustaining yield and mitigating methane emissions from rice production with plastic film mulching technique

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  • Liu, Jianliang
  • Huang, Xinya
  • Jiang, Haibo
  • Chen, Huai

Abstract

Reducing water use and mitigating greenhouse gas (GHG) emissions are two major challenges faced by paddy rice (Oryza sativa L.) cultivation. Water-saving technologies, including controlled irrigation (CI), plastic film mulching (FM), and straw mulching (SM), have been increasingly adopted to improve rice production efficiency. However, few studies have comprehensively evaluated the effects of these practices on grain yield, water consumption, and GHG emissions relative to current farmer’s practice (FP). The objective of this two-year field experiment performed in southwestern China was to quantify the effects of CI, FM, and SM (compared with the FP control) on rice grain yield, irrigation water input, water productivity, methane (CH4) and nitrous oxide (N2O) emissions, global warming potential (GWP), and GHG intensity (GHGI). The FM treatment produced grain yield similar to the FP treatment, but it significantly decreased the irrigation water input by 69.6%, and then markedly increased the water productivity from 5.9 to 7.0 kg ha−1 mm−1 to 12.9–13.1 kg ha−1 mm−1. Furthermore, the FM treatment significantly reduced CH4 emissions (91.0–95.0%), resulting in a great decrease in GWP (36.7–51.4%) and GHGI (36.5–51.9%), although it markedly increased N2O emissions (90.9–206.9%) compared with the FP treatment. The CI and SM treatments also significantly increased water productivity and decreased CH4 emissions by reducing irrigation, but they caused yield reductions (9.5% and 14.5% on average, respectively) and showed no benefit to GHGI mitigation compared with the FP treatment. These results suggest that there is still great potential to further optimize the current FP practice, and FM is a preferable management option to save irrigation water and mitigate GHG emissions while maintaining grain yield in rice production.

Suggested Citation

  • Liu, Jianliang & Huang, Xinya & Jiang, Haibo & Chen, Huai, 2021. "Sustaining yield and mitigating methane emissions from rice production with plastic film mulching technique," Agricultural Water Management, Elsevier, vol. 245(C).
  • Handle: RePEc:eee:agiwat:v:245:y:2021:i:c:s0378377420322113
    DOI: 10.1016/j.agwat.2020.106667
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    1. Dalin, Carole & Qiu, Huanguang & Hanasaki, Naota & Mauzerall, Denise L. & Rodriguez-Iturbe, Ignacio, 2015. "Balancing water resources conservation and food security in China," LSE Research Online Documents on Economics 62725, London School of Economics and Political Science, LSE Library.
    2. Kimberly M. Carlson & James S. Gerber & Nathaniel D. Mueller & Mario Herrero & Graham K. MacDonald & Kate A. Brauman & Petr Havlik & Christine S. O’Connell & Justin A. Johnson & Sassan Saatchi & Paul , 2017. "Greenhouse gas emissions intensity of global croplands," Nature Climate Change, Nature, vol. 7(1), pages 63-68, January.
    3. T. C. Tso, 2004. "Agriculture of the future," Nature, Nature, vol. 428(6979), pages 215-217, March.
    4. Jiao, Jiaguo & Shi, Kun & Li, Peng & Sun, Zhen & Chang, Dali & Shen, Xueshan & Wu, Di & Song, Xiuchao & Liu, Manqiang & Li, Huixin & Hu, Feng & Xu, Li, 2018. "Assessing of an irrigation and fertilization practice for improving rice production in the Taihu Lake region (China)," Agricultural Water Management, Elsevier, vol. 201(C), pages 91-98.
    5. Xinping Chen & Zhenling Cui & Mingsheng Fan & Peter Vitousek & Ming Zhao & Wenqi Ma & Zhenlin Wang & Weijian Zhang & Xiaoyuan Yan & Jianchang Yang & Xiping Deng & Qiang Gao & Qiang Zhang & Shiwei Guo , 2014. "Producing more grain with lower environmental costs," Nature, Nature, vol. 514(7523), pages 486-489, October.
    6. Kees Jan van Groenigen & Chris van Kessel & Bruce A. Hungate, 2013. "Increased greenhouse-gas intensity of rice production under future atmospheric conditions," Nature Climate Change, Nature, vol. 3(3), pages 288-291, March.
    7. Liang, Kaiming & Zhong, Xuhua & Huang, Nongrong & Lampayan, Rubenito M. & Pan, Junfeng & Tian, Ka & Liu, Yanzhuo, 2016. "Grain yield, water productivity and CH4 emission of irrigated rice in response to water management in south China," Agricultural Water Management, Elsevier, vol. 163(C), pages 319-331.
    8. Alexandratos, Nikos & Bruinsma, Jelle, 2012. "World agriculture towards 2030/2050: the 2012 revision," ESA Working Papers 288998, Food and Agriculture Organization of the United Nations, Agricultural Development Economics Division (ESA).
    9. Bouman, B. A. M. & Tuong, T. P., 2001. "Field water management to save water and increase its productivity in irrigated lowland rice," Agricultural Water Management, Elsevier, vol. 49(1), pages 11-30, July.
    10. Zhuang, Yanhua & Zhang, Liang & Li, Sisi & Liu, Hongbin & Zhai, Limei & Zhou, Feng & Ye, Yushi & Ruan, Shuhe & Wen, Weijia, 2019. "Effects and potential of water-saving irrigation for rice production in China," Agricultural Water Management, Elsevier, vol. 217(C), pages 374-382.
    11. Pan, Junfeng & Liu, Yanzhuo & Zhong, Xuhua & Lampayan, Rubenito M. & Singleton, Grant R. & Huang, Nongrong & Liang, Kaiming & Peng, Bilin & Tian, Ka, 2017. "Grain yield, water productivity and nitrogen use efficiency of rice under different water management and fertilizer-N inputs in South China," Agricultural Water Management, Elsevier, vol. 184(C), pages 191-200.
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    Cited by:

    1. Chan Guo & Xufei Liu, 2022. "Effect of soil mulching on agricultural greenhouse gas emissions in China: A meta-analysis," PLOS ONE, Public Library of Science, vol. 17(1), pages 1-14, January.

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