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Optimising Cropping Techniques for Nutrient and Environmental Management in Organic Agriculture

机译:优化有机农业营养与环境管理的种植技术

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Depth and architecture of root systems play a prominent role in crop productivity under conditions of low water and nutrient availability. The subsoil contains high amounts of nutrients that may potentially serve for nutrient uptake by crops including finite resources such as phosphorus that have to be used in moderation to delay their exhaustion. Biopores are tubular shaped continuous soil pores formed by plant roots and earthworms. Taproot systems especially those of perennial legumes can make soil nutrients plant available from the solid phase and increase the density of vertical biopores in the subsoil thus making subsoil layers more accessible for succeeding crops. Density of larger sized biopores is further enhanced by increased abundance and activity of anecic earthworms resulting from soil rest and amount of provided feed. Nutrient rich drilospheres can provide a favorable environment for roots and nutrient uptake of subsequent crops. Future efficient nutrient management and crop rotation design in organic agriculture should entail these strategies of soil fertility building and biopore services in subsoil layers site specifically. Elements of these concepts are suggested to be used also in mainstream agriculture headlands, e.g. as ‘Ecological Focus Areas’, in order to improve soil structure as well as to establish a web of biodiversity while avoiding constraints for agricultural production.
机译:在水和养分利用率低的条件下,根系的深度和结构在作物生产力中起着重要作用。底土中含有大量的养分,这些养分可能会为作物吸收养分,包括有限的资源(如磷),必须适度使用以延缓其枯竭。生物孔是由植物根和earth形成的管状连续土壤孔。主根特别是多年生豆科植物的主根系可以使土壤养分从固相中获得,并增加了下层土壤中垂直生物孔的密度,从而使下层土壤更容易用于后续作物。由于土壤静止和提供的饲料量增加,导致an的丰度和活性增加,从而使更大尺寸的生物孔的密度进一步提高。营养丰富的小球体可以为后续作物的根和养分吸收提供良好的环境。未来有机农业中有效的养分管理和作物轮作设计应特别针对这些在土壤层下土壤肥力建设和生物孔服务的战略。建议将这些概念的要素也用于主流农业岬角,例如作为“生态重点领域”,以改善土壤结构并建立生物多样性网络,同时避免农业生产受到限制。

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