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Fifteen years of wheat yield, N uptake, and soil nitrate-N dynamics in a biosolids-amended agroecosystem

机译:在生物固体改良的农业生态系统中十五年的小麦产量,氮素吸收和土壤硝态氮动态

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Understanding N dynamics in biosolids-amended agroecosystems can help avoid over-application and the potential for environmental degradation. We investigated 15-years of biosolids application to dryland-wheat (Triticum aestivum L.) grown on Weld loam soils (fine, montmorillonitic, mesic Aridic Paleustolls) located about 25km east of Brighton, CO, USA, questioning what is the relationship between cumulative grain yield and N uptake (N removal) and biosolids or N fertilizer rates and how many times biosolids or N fertilizer are applied? How are wheat-grain production and N uptake intertwined with residual soil NO-N? We found that biosolids or N fertilizer rates plus the number of applications of each material produced planar-regression (3D) models with 15-years of grain yield and N uptake data (all R po >0.93). To evaluate how yield or N uptake impacted residual soil NO-N, we completed linear regressions on yield, N uptake, and soil NO-N. We then correlated the slopes where P <0.10 for the yield and soil NO-N and the N uptake and soil NO-N. A significant negative relationship was found for biosolids application for each of these comparisons while the N fertilizer results were inconsistent. For the biosolids treatments, as yield or N uptake increased, residual soil NO-N decreased. Our findings show that planar-regression models could aid biosolids beneficial-use management programs when considering agroecosystem N dynamics.
机译:了解经过生物固体修饰的农业生态系统中的氮动力学可以帮助避免过度施用和潜在的环境退化。我们调查了在美国科罗拉多州布莱顿市以东约25公里的Weld壤土(精细,蒙脱土,中性Aridic Paleustolls)上生长的旱地小麦(Triticum aestivum L.)上应用15年生物固体的情况,并询问累积量之间的关系是什么。谷物产量和氮吸收量(氮去除量),生物固体或氮肥的施用量以及施用生物固体或氮肥的次数?小麦籽粒产量和氮素吸收如何与残留土壤NO-N交织在一起?我们发现,生物固体或氮肥的施用量加上每种材料的施用次数产生了具有15年粮食产量和氮吸收数据的平面回归(3D)模型(所有R po> 0.93)。为了评估产量或氮素吸收如何影响残留土壤NO-N,我们完成了产量,N吸收量和土壤NO-N的线性回归。然后,我们将产量和土壤NO-N与氮素吸收和土壤NO-N的P <0.10的坡度关联起来。对于这些比较中的每一个,发现生物固体施用量均存在显着的负相关关系,而氮肥的结果不一致。对于生物固体处理,随着产量或氮素吸收的增加,残留土壤NO-N减少。我们的发现表明,当考虑农业生态系统N动力学时,平面回归模型可以帮助生物固体有益用途管理程序。

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