首页> 外文期刊>Nutrient Cycling in Agroecosystems >Influence of different manuring systems with and without biogas digestion on soil organic matter and nitrogen inputs, flows and budgets in organic cropping systems
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Influence of different manuring systems with and without biogas digestion on soil organic matter and nitrogen inputs, flows and budgets in organic cropping systems

机译:有和没有沼气消化的不同肥料系统对有机作物系统中土壤有机质和氮输入,流量和预算的影响

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Nitrogen (N) and carbon (C) cycles are closely linked in organic farming systems. Use of residues for biogas digestion may reduce N-losses and lead to higher farmland productivity. However, digestion is connected to large losses of organic C. It is the purpose of this paper (1) to compare farming systems based on liquid slurry and solid farmyard manure regarding the N, C and organic dry matter (ODM) inputs and flows, (2) to analyse the effect of digestion on soil N, C and ODM inputs and flows within the cropping system, (3) to assess the effects of organic manure management on biological N2 fixation (BNF), and (4) to assess the effect of biogas digestion on the sustainability of the cropping systems in terms of N and C budgets. The BNF by clover/grass-leys was the most important single N input, followed by the BNF supplied by legume cover cropping. Growth of crops in organic farming systems is very often N limited, and not limited by the soil C inputs. However, balances of N inputs showed that the implemented organic farming systems have the potential to supply high amounts of N to meet crop N demand. The level of plant available N to non-legume main crops was much lower, in comparison to the total N inputs. Reasons were the non-synchronized timing of N mineralization and crop N demand, the high unproductive gaseous N losses and an unfocussed allocation in space and time of the circulating N within the crop rotation (e.g. allocation of immobile manures to legumes or of mobile manures to cover crops). Simultaneously, organic cropping systems very often showed large C surpluses, which may be potentially increased the N shortage due to the immobilization of N. Soil organic matter supply and soil humus balance (a balance sheet calculated from factors describing the cultivation effects on humus increasing and humus depleting crops, and organic manure application) were higher in cropping systems based on liquid slurry than in those based on solid farmyard manure (+19%). Simultaneously, soil N surplus was higher due to lower gaseous N losses (+14%). Biogas digestion of slurry had only a very slight effect on both the soil N and the soil C budget. The effect on the N budget was also slight if the liquid slurry was stored in closed repositories. Digestion of residues like slurry, crop residues and cover crops reduced in a mixed farming system the soil C supply unilaterally (approximately −33%), and increased the amounts of readily available N (approximately +70–75%). The long-term challenge for organic farming systems is to find instruments that reduce N losses to a minimum, to keep the most limiting fraction of N (ammonia-N) within the system, and to enhance the direct manuring effect of the available manures to non-legume main crops.
机译:氮(N)和碳(C)循环在有机耕作系统中紧密相连。使用残留物进行沼气消化可以减少氮损失,并提高农田生产率。然而,消化与有机碳的大量流失有关。本文的目的(1)是比较基于液态浆液和固态农家肥的耕作制度,研究其氮,碳和有机干物质(ODM)的输入和流量, (2)分析消化对种植系统中土壤N,C和ODM的输入和流量的影响,(3)评估有机肥管理对生物N2 固定(BNF)的影响,以及(4) )根据氮和碳预算评估沼气消化对作物系统可持续性的影响。三叶草/草类的BNF是最重要的单氮输入,其次是豆科植物覆盖作物提供的BNF。有机耕作系统中农作物的生长通常受到氮的限制,而不受土壤碳输入的限制。但是,氮投入的平衡表明,已实施的有机耕作制度有潜力供应大量氮以满足作物对氮的需求。与总氮投入相比,非豆类主季作物可利用的氮水平要低得多。原因是氮矿化和作物氮需求的时间不同步,非生产性气态氮的大量流失以及作物轮作中循环氮的空间和时间分配不集中(例如,将固定肥料分配给豆类,或将固定肥料分配给豆类)。覆盖农作物)。同时,有机耕作系统经常表现出大量的碳过剩,这可能由于氮的固定化而增加了氮的缺乏。土壤有机质的供应和土壤腐殖质的平衡(资产负债表是根据描述耕种对腐殖质的增加和腐殖质耗竭作物和有机肥料的施用)在基于液体浆液的耕作系统中要比基于固体农家肥料的耕作系统高(+ 19%)。同时,由于较低的气态氮损失(+ 14%),土壤剩余氮更高。沼液的沼气消化对土壤氮和土壤碳收支只产生很小的影响。如果液体浆液存储在封闭的储存库中,则对氮预算的影响也很小。在混合耕作系统中,诸如泥浆,农作物残留物和农作物的残留物的消化减少了土壤C的单方面供应(大约-33%),并且增加了速效氮的含量(大约+ 70-75%)。有机耕作系统的长期挑战是找到能够将氮损失降低到最低限度的仪器,以在系统中保留最大量的氮(氨氮),并提高可用肥料的直接肥料效果。非豆类主要农作物。

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