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Nitrogen yield advantage from grass-legume mixtures is robust over a wide range of legume proportions and environmental conditions

机译:草-豆科植物混合物的氮素生产优势在各种豆科植物比例和环境条件下均很稳定

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Current challenges to global food security require sustainable intensification of agriculture through initiatives that include more efficient use of nitrogen (N), increased protein self-sufficiency through homegrown crops, and reduced N losses to the environment. Such challenges were addressed in a continental-scale field experiment conducted over 3years, in which the amount of total nitrogen yield (N-tot) and the gain of N yield in mixtures as compared to grass monocultures (N-gainmix) was quantified from four-species grass-legume stands with greatly varying legume proportions. Stands consisted of monocultures and mixtures of two N-2-fixing legumes and two nonfixing grasses. The amount of N-tot of mixtures was significantly greater (P0.05) than that of grass monocultures at the majority of evaluated sites in all 3years. N-tot and thus N-gainmix increased with increasing legume proportion up to one-third of legumes. With higher legume percentages, N-tot and N-gainmix did not continue to increase. Thus, across sites and years, mixtures with one-third proportion of legumes attained similar to 95% of the maximum N-tot acquired by any stand and had 57% higher N-tot than grass monocultures. Realized legume proportion in stands and the relative N gain in mixture (N-gainmix/N-tot in mixture) were most severely impaired by minimum site temperature (R=0.70, P=0.003 for legume proportion; R=0.64, P=0.010 for N-gainmix/N-tot in mixture). Nevertheless, the relative N gain in mixture was not correlated to site productivity (P=0.500), suggesting that, within climatic restrictions, balanced grass-legume mixtures can benefit from comparable relative gains in N yield across largely differing productivity levels. We conclude that the use of grass-legume mixtures can substantially contribute to resource-efficient agricultural grassland systems over a wide range of productivity levels, implying important savings in N fertilizers and thus greenhouse gas emissions and a considerable potential for climate change mitigation.
机译:当前对全球粮食安全的挑战要求通过各种举措来实现农业的可持续集约化,这些举措包括更有效地利用氮(N),通过自产农作物增加蛋白质自给自足以及减少对环境的氮损失。在过去的三年中进行的一次大陆规模的田间试验中解决了这些挑战,其中从总的氮产量(N-tot)和混合物中的氮产量(与草单种栽培(N-gainmix)相比)中量化了四种-种豆科植物豆科植物的比例变化很大。林分由单一栽培种和两种N-2固定豆科植物和两种非固定草的混合物组成。在过去三年中,在大多数评估地点,混合物的N-tot量显着大于草单一栽培的量(P0.05)。 N-tot和N-gainmix随豆类比例的增加而增加,最高可达豆类的三分之一。随着豆类百分比的增加,N-tot和N-gainmix不会继续增加。因此,在不同地点和多年中,豆科植物中三分之一比例的混合物达到的氮含量接近任何林分所获得的最大N-tot的95%,并且比草木单一栽培的N-tto高出57%。最低位点温度(R = 0.70,P = 0.003,豆科植物的比例; R = 0.64,P = 0.010)会严重损害林分中已实现的豆类比例和混合物中的相对N增益(N-gainmix / N-tot)。混合使用N-gainmix / N-tot)。然而,混合物中的相对氮素增加与位点生产力无关(P = 0.500),这表明,在气候限制下,平衡范围不同的生产力水平下,平衡的豆科植物混合物可以从相当的氮素相对收益中受益。我们得出的结论是,在广泛的生产力水平上,使用草-豆混合物可大大促进资源节约型农业草地系统的发展,这意味着大量节省了氮肥,从而节省了温室气体排放,并具有缓解气候变化的巨大潜力。

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