Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilization
A single and uniform fertilizer application may lead to ineffective crop nutrient uptake and use. In order to enhance nutrient use efficiency the application should be adjusted according to the need of the cultivated crop. This task is challenging because weather is unknown and unpredictable over t...
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Scientific Agricultural Society of Finland
2014-06-01
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Series: | Agricultural and Food Science |
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doaj-da4427a1074f49f6bfb633b5a4abb0fe2020-11-24T22:32:54ZengScientific Agricultural Society of FinlandAgricultural and Food Science1459-60671795-18952014-06-01232 Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilizationMikko Hakojärvi0Mikko Hautala1Laura Alakukku2University of Helsinki, Department of Agricultural SciencesUniversity of Helsinki, Department of Agricultural SciencesUniversity of Helsinki, Department of Agricultural Sciences A single and uniform fertilizer application may lead to ineffective crop nutrient uptake and use. In order to enhance nutrient use efficiency the application should be adjusted according to the need of the cultivated crop. This task is challenging because weather is unknown and unpredictable over the upcoming growing season. One solution is site-specific fertilizer application in several separate events throughout the season. Such a precision fertilization method requires information on the current crop state (e.g. the availability of water and nutrients in the soil) and a crop growth model that aims to assess current crop growth and near future needs. A field experiment with varying radiation, precipitation and nutrient conditions was established to test our crop growth model performance. Spring wheat (Triticum aestivum L.) was grown using three fertilization rates with three precipitation and two radiation treatments within each fertilization treatment. The observed crop biomass accumulation in the highest fertilization treatment was considered as the highest possible in the prevailing conditions. The simulated (maximal) biomass accumulation was in agreement with the highest observed biomass yield. The results were found promising for further use of the model in crop growth evaluation during the growing season. https://journal.fi/afs/article/view/40938 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Mikko Hakojärvi Mikko Hautala Laura Alakukku |
spellingShingle |
Mikko Hakojärvi Mikko Hautala Laura Alakukku Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilization Agricultural and Food Science |
author_facet |
Mikko Hakojärvi Mikko Hautala Laura Alakukku |
author_sort |
Mikko Hakojärvi |
title |
Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilization |
title_short |
Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilization |
title_full |
Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilization |
title_fullStr |
Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilization |
title_full_unstemmed |
Testing the use of an analytical and mechanistic C3 - biomass accumulation model for precision fertilization |
title_sort |
testing the use of an analytical and mechanistic c3 - biomass accumulation model for precision fertilization |
publisher |
Scientific Agricultural Society of Finland |
series |
Agricultural and Food Science |
issn |
1459-6067 1795-1895 |
publishDate |
2014-06-01 |
description |
A single and uniform fertilizer application may lead to ineffective crop nutrient uptake and use. In order to enhance nutrient use efficiency the application should be adjusted according to the need of the cultivated crop. This task is challenging because weather is unknown and unpredictable over the upcoming growing season. One solution is site-specific fertilizer application in several separate events throughout the season. Such a precision fertilization method requires information on the current crop state (e.g. the availability of water and nutrients in the soil) and a crop growth model that aims to assess current crop growth and near future needs. A field experiment with varying radiation, precipitation and nutrient conditions was established to test our crop growth model performance. Spring wheat (Triticum aestivum L.) was grown using three fertilization rates with three precipitation and two radiation treatments within each fertilization treatment. The observed crop biomass accumulation in the highest fertilization treatment was considered as the highest possible in the prevailing conditions. The simulated (maximal) biomass accumulation was in agreement with the highest observed biomass yield. The results were found promising for further use of the model in crop growth evaluation during the growing season.
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url |
https://journal.fi/afs/article/view/40938 |
work_keys_str_mv |
AT mikkohakojarvi testingtheuseofananalyticalandmechanisticc3biomassaccumulationmodelforprecisionfertilization AT mikkohautala testingtheuseofananalyticalandmechanisticc3biomassaccumulationmodelforprecisionfertilization AT lauraalakukku testingtheuseofananalyticalandmechanisticc3biomassaccumulationmodelforprecisionfertilization |
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1725731756051529728 |