Onion Response to Added N in Histosols of Contrasting C and N Contents — Oak Academic Publishing
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Onion Response to Added N in Histosols of Contrasting C and N Contents
Département des sols et de génie agroalimentaire, Université Laval, Québec, Canada
,
Ministère de l’Agriculture, des Pêcheries et de l’Alimentation du Québec, Direction de l’agroenvironnement et du développement durable, Saint-Jean-sur-Richelieu, Québec, Canada
,
Département des sols et de génie agroalimentaire, Université Laval, Québec, Canada
1 Département des sols et de génie agroalimentaire, Université Laval, Québec, Canada
2 Ministère de l’Agriculture, des Pêcheries et de l’Alimentation du Québec, Direction de l’agroenvironnement et du développement durable, Saint-Jean-sur-Richelieu, Québec, Canada
3 Département des sols et de génie agroalimentaire, Université Laval, Québec, Canada
Adjusting the N fertilization to soil potentially mineralizable N in Histosols is required to secure high vegetable yields while mitigating nitrate contamination of surface waters. However, there is still no soil test N (STN) relating the response of Histosol-grown onion ( Allium cepa L.) to added N. Compositional data analysis can integrate soil C and N composition into a STN index computed as Mahalanobis distance (M 2 ) across isometric log ratios ( ilr ) of diagnosed and reference soil C and N compositions. Our objective was to calibrate onion response to added N against a compositional STN index for Histosols. Reference compositions were computed from high N-mineralizing Histosols reported in the literature. Soil analyses were total C and N, and a residual soil mass ( F v ) was computed as 100%-%C-%N to close the compositional vector to 100%. The C, N, and F v proportions were synthesized into two ilrs . We conducted thirteen onion N fertilization trials in Histosols of south-western Quebec showing contrasting C, N, and F v proportions. Each crop received four N rates broadcast before seeding or split-applied. We derived two STN classes separating weakly to highly responsive crops about the M 2 value of 5.5. Onion crops grown on soils showing M 2 values >5.5 required more N and yielded less in control treatments compared with soils showing M 2 values <5.5. Onions grown in low-(M 2 < 5.5) and high-(M 2 > 5.5) soils responded significantly (P < 0.10) to 60 and 180 kg N ha -1 , respectively. Using literature data and the results of this study, we elaborated a provisory N requirement model for Histosol-grown onions in Quebec.
KeywordsCompositional Data AnalysisMeta-AnalysisOnionC/N RatioSoil Test N
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