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Changes in paddy soils under transition to water-saving and diversified cropping systems

机译:水稻土壤过渡到节水和多样化种植系统的变化

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Most rice (Oryza sativa L.) is produced on soils with a prolonged period of submergence. Soil submergence has helped sustain the productivity of continuous rice production systems. It helps maintain soil organic matter (SOM), favors input of N throughbiological nitrogen fixation, and enhances availability of soil P to rice. Rice will increasingly be produced within political and economic environments of less supply of irrigation water and more income opportunities from alternative crops. This will lead to changes in water management, rice cultivation practices, and cropping patterns resulting in reduced soil submergence and increased duration of soil aeration. Soil aeration alters soil biogeochemical processes, which can lead to loss of SOM, reduced supply of plant-available N and P, and reduced zinc and iron availability on high-pH soils. Soil aeration favors the formation of nitrate, which can be lost via demtrification upon soil submergence for rice cultivation. Soil drying and wetting favor increased emission of nitrous oxide and reduced emission of methane. The productivity of paddy soils, which has been sustained with ample water resources, must in the future be sustained with management interventions that more effectively use water and provide enhanced crop diversification and income generation.
机译:大多数大米(Oryza sativa L.)在土壤中产生,延长淹没的潜水。土壤淹没有助于维持连续稻米生产系统的生产率。它有助于维持土壤有机物(SOM),益于N次通过生物学氮固定的输入,并增强土壤p的可用性。米饭将在较少供应水中的政治和经济环境中越来越多地生产,以及从替代作物中的更多收入机会。这将导致水管理,水稻栽培实践和种植模式的变化导致土壤淹没降低和土壤曝气持续时间增加。土壤曝气改变了土壤生物地球织化学过程,这可能导致SOM的损失,减少植物可用N和P的供应,并降低了高pH土壤的锌和铁可用性。土壤曝气融合了硝酸盐的形成,可通过对水稻培养的土壤淹没而丧失衰减。土壤干燥和润湿有利于增加氧化氮的发射和降低甲烷排放。稻田土壤的生产率,已经持续充足的水资源,必须在未来与管理干预措施维持,更有效地使用水并提供增强的作物多样化和收入生成。

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