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Integration of biogas production into organic arable farming systems: crop yield response and economic effects

机译:沼气生产融入有机耕种农业系统:作物产量反应和经济影响

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摘要

There are several important differences between organic and conventional biogas production. One difference concerns the biomass production system (e.g., legume-grass instead of maize), and another difference is the way in which biogas plants are integrated into nutrient cycles, which results in different effects on soil fertility, crop yields, and the environment. The focus of this study is an analysis of the yield response and economic impact of biogas plant integration into an organic arable farming system. We compare two organic farming systems: the reference system (an arable farming system without biogas production) and the biogas system (an arable farming system with biogas production). Both farming systems underwent the same crop rotation, and the cash crops produced in the biogas system were sold identically to those in the reference system. In the reference system, the grass–legume mixture of the green fallow was mulched and left as green manure on the fields. In the biogas system, the grass–legume mixture was used for biogas production; therefore, electricity, heat, and the biogas slurry for fertilization of the cash crops were produced. The comparisons are based on a long-term field experiment and additional modeling data. This research approach was chosen to achieve reliable results on the basis of measured yield effects under comparable site and management conditions. Within the investigated period (2010–2014), the cereal yields of the biogas system were significantly (27–47%) higher than those of the reference system (arable farming). Case studies and model calculations on the basis of the experimental data showed higher entrepreneurial profits from the biogas systems as a result of the yield effects. The entrepreneurial profit of the arable farming in the biogas system was approximately 300?€?ha_(?1)higher than that of the reference system. The higher revenues from the cash crops also compensated for the financial losses induced by the biogas plants. The dimensions of a biogas plant are important for improving the overall profit of a farm; the size must be adapted to the on-site supply of substrates and the need for biogas slurry. This study shows that suitable organic biogas production leads to synergistic effects between bioenergy and food production. The integration of a biogas plant into an organic farming system can ensure energy supply while increasing food output.
机译:有机和常规沼气生产之间存在几个重要差异。一个差异涉及生物质生产系统(例如,豆类草而不是玉米),另一个差异是将沼气植物整合到营养循环中的方式,这导致对土壤肥力,作物产量和环境的不同影响。本研究的重点是分析沼气植物整合到有机耕种系统中的产量反应和经济影响。我们比较两个有机农业系统:参考系统(没有沼气生产的耕种系统)和沼气系统(沼气系统的沼气系统)。两种农业系统都经历了同样的作物旋转,沼气系统中生产的现金作物与参考系统中的那些相同地销售。在参考系统中,绿色休耕的草豆类混合物被覆盖着,留在田地上的绿色粪便。在沼气系统中,基层混合物用于沼气生产;因此,生产了电力,热量和沼气浆料的肥料。比较基于长期现场实验和其他建模数据。选择该研究方法是根据可比性站点和管理条件下测量的产量效应来实现可靠的结果。在调查期内(2010-2014),沼气系统的谷物产量明显高于参考系统(耕作农业)的显着(27-47%)。基于实验数据的案例研究和模型计算显示出由于产量效应而从沼气系统中的创业利润较高。沼气系统中可耕种的企业利润约为300?€_(?1)高于参考系统的HA _(?1)。现金作物的较高收入也弥补了沼气植物诱导的金融损失。沼气厂的尺寸对于提高农场的整体利润很重要;尺寸必须适应现场供应基材和对沼气浆料的需要。本研究表明,合适的有机沼气生产导致生物能源和食品生产之间的协同效应。将沼气厂整合到有机农业系统中可以确保能源供应,同时增加食物输出。

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