| Literature DB >> 34702918 |
Anna Sikorska1, Marek Gugała2, Krystyna Zarzecka2.
Abstract
The study was based on in 2016-2017, 2017-2018, 2018-2019 field experiment conducted at the University of Natural Sciences and Humanities in Siedlce (Zawady Agricultural Experimental Station), eastern Poland. The studied factors were: I. winter rape cultivars: Monolit-open pollinated cultivar; PT248-F1 hybrid cultivars with traditional growth type; PX115-F1 hybrid cultivars with a semi-dwarf growth type and types of foliar nutrition: (1) control variant without foliar nutrition and amino acids; (2) amino acid; (3) foliar fertilizer sulphur and boron; (4) foliar fertilizer sulphur with foliar fertilizer boron and amino acid. The aim of the study was to determine the effect of foliar application of sulphur, boron, amino acids on the use and feed value of seeds of three winter rape morphotypes. The highest content of crude fat in seeds of the studied morphotypes was found after foliar fertilization with sulphur and boron and amino acids, while the lowest under the influence of amino acids. The highest concentration of total protein was obtained after the application of amino acids, and regardless of the morphotype studied on this object, the same value of this trait was demonstrated. In restored morphotypes, the use of additional foliar fertilization S and B in combination with amino acids did not significantly increase this characteristic compared to the amino acid variant. As a result of the application of amino acids and foliar feeding of S and B, and amino acids, the largest increase in crude fibre content in rapeseeds was obtained, while the application of S and B did not significantly increase this characteristic compared to the control variant. The best feed and use value of seeds were noted in restored morphotypes, with the semi-dwarf variety having the highest fat and crude fibre content. Climatic conditions in the years of research significantly determined the value of seeds. The highest values of the examined traits were obtained in the last year of the study, and the lowest in the growing season 2016-2017.Entities:
Year: 2021 PMID: 34702918 PMCID: PMC8548322 DOI: 10.1038/s41598-021-00639-2
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Chemical composition of rapeseed depending on the types of foliar nutrition and varieties of foliar nutrition.
| Types of foliar feeding | Cultivars | Mean | |||
|---|---|---|---|---|---|
| Monolit | PT 248 | PX 115 | |||
| 1 | Control variant | 370.99 | 374.82 | 375.14 | 373.65 |
| 2 | Amino acid Aminoplant | 380.17 | 380.93 | 382.00 | 381.03 |
| 3 | Foliar fertilizer Siarkomag + foliar fertilizer Bormax | 373.20 | 376.33 | 378.99 | 376.17 |
| 4 | Foliar fertilizer Siarkomag + foliar fertilizer Bormax + amino acid Aminoplant | 375.48 | 379.78 | 381.88 | 379.04 |
| 374.96 | 377.97 | 379.50 | – | ||
| Cultivars | 1.59 | ||||
| Types of foliar feeding | 1.42 | ||||
| Interaction: cultivars × types of foliar feeding | 2.46 | ||||
| 1. Control variant | 454.60 | 467.30 | 469.03 | 463.64 | |
| 2. Amino acid Aminoplant | 456.89 | 468.18 | 472.22 | 465.76 | |
| 3. Foliar fertilizer Siarkomag + foliar fertilizer Bormax | 461.58 | 470.68 | 474.63 | 468.96 | |
| 4. Foliar fertilizer Siarkomag + foliar fertilizer Bormax + amino acid Aminoplant | 464.98 | 473.58 | 477.41 | 471.99 | |
| 459.51 | 469.93 | 473.33 | |||
| Cultivars | 1.09 | ||||
| Types of foliar feeding | 1.20 | ||||
| Interaction: cultivars × types of foliar feeding | 2.00 | ||||
| 1. Control variant | 81.64 | 81.26 | 82.91 | 81.94 | |
| 2. Amino acid Aminoplant | 82.90 | 82.42 | 84.68 | 83.33 | |
| 3. Foliar fertilizer Siarkomag + foliar fertilizer Bormax | 82.54 | 80.80 | 83.77 | 82.37 | |
| 4. Foliar fertilizer Siarkomag + foliar fertilizer Bormax + amino acid Aminoplant | 83.88 | 83.09 | 85.79 | 84.25 | |
| 82.74 | 81.89 | 84.29 | |||
| Cultivars | 0.57 | ||||
| Types of foliar feeding | 0.99 | ||||
| Interaction: cultivars x types of foliar feeding | n.s | ||||
d.m. dray matter, n.s. not significant.
Figure 1Monthly precipitation sums and average air temperature in given growing seasons RSD Zawady of many years (1996–2010).
Figure 2Monthly rainfall totals and average air temperature during the growing season 2016–2017 in RSD Zawady of many years of many years (1996–2010).
Figure 3Monthly rainfall totals and average air temperature during the growing season 2017–2018 in RSD Zawady of many years (1996–2010).
Figure 4Monthly rainfall totals and average air temperature during the growing season 2018–2019 in RSD Zawady of many years (1996–2010).
Characteristics of weather conditions in the years 2016–2019 (Zawady Meteorological Station, Poland).
| Years | Months | Mean | |||||||
|---|---|---|---|---|---|---|---|---|---|
| VIII | IX | X | III | IV | V | VI | VII | ||
| Sielianinovs hydrothermic coefficients* | |||||||||
| 2016–2017 | 0.61 | 0.28 | 3.02 | 1.79 | 3.19 | 1.52 | 1.06 | 0.47 | 1.49 |
| 2017–2018 | 1.00 | 1.92 | 2.36 | 2.97 | 0.99 | 0.59 | 0.61 | 1.12 | 1.44 |
| 2018–2019 | 0.40 | 0.71 | 0.94 | 1.16 | 0.20 | 1.37 | 0.63 | 0.56 | 0.75 |
*Index value[33]: extremely dry k ≤ 0.4. very dry 0.4 < k ≤ 0.7. dry 0.7 < k ≤ 1.0. rather dry 1.0 < k ≤ 1.3. optimal 1.3 < k ≤ 1.6. rather humid 1.6 < k ≤ 2.0. humid 2.0 < k ≤ 2.5. very humid 2.5 < k ≤ 3.0. extremely humid k > 3.0.
Chemical composition of rapeseed depending on the cultivars studied and climatic conditions in the years of the study.
| Years | Cultivars | Mean | ||
|---|---|---|---|---|
| Monolit | PT 248 | PX 115 | ||
| 2016–2017 | 351.75 | 353.26 | 367.00 | 357.34 |
| 2017–2018 | 371.68 | 373.12 | 370.15 | 371.65 |
| 2018–2019 | 401.45 | 407.53 | 401.36 | 403.44 |
| 374.96 | 377.97 | 379.50 | – | |
| Cultivars | 1.59 | |||
| Years | 1.59 | |||
| Interaction: cultivars × years | 2.76 | |||
| 2016–2017 | 448.38 | 465.09 | 467.27 | 460.24 |
| 2017–2018 | 457.77 | 469.73 | 470.32 | 465.94 |
| 2018–2019 | 472.39 | 474.98 | 482.39 | 476.59 |
| 459.51 | 469.93 | 473.33 | ||
| Cultivars | 1.09 | |||
| Years | 1.09 | |||
| Interaction: cultivars × years | 1.89 | |||
| 2016–2017 | 79.48 | 77.13 | 82.23 | 79.61 |
| 2017–2018 | 81.52 | 83.93 | 84.25 | 83.23 |
| 2018–2019 | 82.23 | 84.61 | 86.38 | 86.07 |
| 82.74 | 81.89 | 84.29 | − | |
| Cultivars | 0.57 | |||
| Years | 0.57 | |||
| Interaction: cultivars × years | 0.99 | |||
d.m. dray matter, n.s. not significant.
Chemical composition of rapeseed depending on climatic conditions in the years of the study and types of foliar nutrition.
| Types of foliar feeding | Years | Mean | ||
|---|---|---|---|---|
| 2016–2017 | 2017–2018 | 2018–2019 | ||
| 1. Control variant | 354.84 | 368.84 | 397.27 | 373.65 |
| 2. Amino acid Aminoplant | 359.66 | 375.21 | 408.23 | 381.03 |
| 3. Foliar fertilizer Siarkomag + foliar fertilizer Bormax | 356.43 | 371.00 | 401.09 | 376.17 |
| 4. Foliar fertilizer Siarkomag + foliar fertilizer Bormax + amino acid Aminoplant | 358.41 | 371.53 | 407.19 | 379.04 |
| 357.34 | 371.65 | 403.44 | − | |
| Years | 1.59 | |||
| Types of foliar feeding | 1.42 | |||
| Interaction: years × types of foliar feeding | 2.46 | |||
| 1. Control variant | 455.39 | 462.63 | 472.91 | 463.64 |
| 2. Amino acid Aminoplant | 458.40 | 464.61 | 474.28 | 465.76 |
| 3. Foliar fertilizer Siarkomag + foliar fertilizer Bormax | 462.08 | 466.94 | 477.87 | 468.96 |
| 4. Foliar fertilizer Siarkomag + foliar fertilizer Bormax + amino acid Aminoplant | 465.11 | 469.56 | 481.30 | 471.99 |
| 460.24 | 465.94 | 476.59 | ||
| Years | 1.09 | |||
| Types of foliar feeding | 1.42 | |||
| Interaction: years × types of foliar feeding | n.s | |||
| 1. Control variant | 79.34 | 81.78 | 84.69 | 81.94 |
| 2. Amino acid Aminoplant | 79.98 | 82.83 | 87.19 | 83.33 |
| 3. Foliar fertilizer Siarkomag + foliar fertilizer Bormax | 78.62 | 83.26 | 85.23 | 82.37 |
| 4. Foliar fertilizer Siarkomag + foliar fertilizer Bormax + amino acid Aminoplant | 80.51 | 85.07 | 87.18 | 84.25 |
| 79.61 | 83.23 | 86.07 | – | |
| Years | 0.57 | |||
| Types of foliar feeding | 0.99 | |||
| Interaction: years × types of foliar feeding | 1.60 | |||
d.m. dray matter, n.s. not significant.