Carry-Over Effects of Faba Bean Tillage–Sowing Systems on Yield Formation and Subsequent Wheat Under Contrasting Weather Conditions
Abstract
1. Introduction
2. Materials and Methods
2.1. Field Experiment
2.2. Plant and Seed Assessment
- Number of pods per plant,
- Number of seeds per plant,
- Number of seeds per pod.
2.3. Statistical Analysis
3. Results
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Kalembasa, D.; Szukała, J.; Symanowicz, B.; Kalembasa, S.; Faligowska, A.; Becher, M. Amount of biologically fixed nitrogen by faba bean and its uptake by winter wheat determined by 15N ID method. Arch. Agron. Soil Sci. 2020, 67, 1875–1888. [Google Scholar] [CrossRef]
- Jensen, E.S.; Peoples, M.B.; Boddey, R.M.; Gresshoff, P.M.; Hauggaard-Nielsen, H.; Alves, B.J.R.; Morrison, M.J. Legumes for mitigation of climate change and the provision of feedstock for biofuels and biorefineries. Agron. Sustain. Dev. 2012, 32, 329–364. [Google Scholar] [CrossRef]
- Peoples, M.B.; Brockwell, J.; Herridge, D.F.; Rochester, I.J.; Alves, B.J.R.; Urquiaga, S.; Boddey, R.M.; Dakora, F.D.; Bhattarai, S.; Maskey, S.L.; et al. The contributions of nitrogen-fixing crop legumes to the productivity of agricultural systems. Symbiosis 2009, 48, 1–17. [Google Scholar] [CrossRef]
- Balko, C.; Torres, A.M.; Gutierrez, N. Variability in drought stress response in a panel of 100 faba bean genotypes. Front. Plant Sci. 2023, 14, 1236147. [Google Scholar] [CrossRef]
- Neal, J.R.; McVetty, P.B.E. Yield structure of faba beans (Vicia faba L.) grown in Manitoba. Field Crops Res. 1984, 8, 349–360. [Google Scholar] [CrossRef]
- Vicente-Serrano, S.M.; Beguería, S.; López-Moreno, J.I. A multiscalar drought index sensitive to global warming: The standardized precipitation evapotranspiration index. J. Clim. 2010, 23, 1696–1718. [Google Scholar] [CrossRef]
- Köpke, U.; Nemecek, T. Ecological services of faba bean. Field Crops Res. 2010, 115, 217–233. [Google Scholar] [CrossRef]
- Haddaway, N.R.; Hedlund, K.; Jackson, L.E.; Kätterer, T.; Lugato, E.; Thomsen, I.K.; Jørgensen, H.B.; Isberg, P.-E. How does tillage intensity affect soil organic carbon? A systematic review. Environ. Evid. 2017, 6, 30. [Google Scholar] [CrossRef]
- Lai, H.; Gao, F.; Su, H.; Zheng, P.; Li, Y.; Yao, H. Nitrogen distribution and soil microbial community characteristics in a legume–cereal intercropping system: A review. Agronomy 2022, 12, 1900. [Google Scholar] [CrossRef]
- Małecka, I.; Blecharczyk, A.; Sawińska, Z.; Dobrzeniecki, T. The Effect of Various Long-Term Tillage Systems on Soil Properties and Spring Barley Yield. Turk. J. Agric. For. 2012, 36, 217–226. [Google Scholar] [CrossRef]
- Blecharczyk, A.; Małecka, I.; Sierpowski, J. Wpływ wieloletniego oddziaływania systemów uprawy roli na fizyko-chemiczne właściwości gleby. Fragm. Agron. 2007, 24, 7–13. [Google Scholar]
- Małecka-Jankowiak, I.; Blecharczyk, A.; Sawińska, Z.; Piechota, T.; Idziak, R. The Effect of Sustainable Tillage Systems on Faba Bean Yield in a Long-Term Experiment in Poland. Sustainability 2025, 17, 4293. [Google Scholar] [CrossRef]
- Barłóg, P.; Łukowiak, R. Potassium and Elemental Sulfur as Factors Determining Nitrogen Management Indices of Soil and Faba Bean (Vicia faba L.). Agronomy 2021, 11, 1137. [Google Scholar] [CrossRef]
- Barłóg, P.; Grzebisz, W.; Łukowiak, R. Faba Bean Yield and Growth Dynamics in Response to Soil Potassium Availability and Sulfur Application. Field Crops Res. 2018, 219, 87–97. [Google Scholar] [CrossRef]
- Juszczak, R.; Sakowska, K.; Ziemblińska, K.; Uździcka, B.; Strożecki, M.; Polmańska, D.; Chojnicki, B.; Urbaniak, M.; Augustin, J.; Nęcki, J.; et al. The Full GHG Balance of Croplands under Seven-Year Rotation Scheme and Conventional Tillage Practices in Poland. In Proceedings of the EGU General Assembly 2014, Vienna, Austria, 27 April–2 May 2014; Available online: http://hdl.handle.net/10449/24468 (accessed on 28 May 2026).
- Majchrzak, L.; Skrzypczak, G. The Influence of Tillage System on Physical Soil Properties and Yielding of Spring Wheat. Agron. Sci. 2010, 65, 1–9. [Google Scholar] [CrossRef]
- Dwivedi, P.; Ramawat, N.; Raju, D.; Dhawan, G.; Gopala Krishnan, S.; Chinnusamy, V.; Bhowmick, P.K.; Vinod, K.K.; Pal, M.; Nagarajan, M.; et al. Drought tolerant near isogenic lines of Pusa 44 pyramided with qDTY2.1 and qDTY3.1 show accelerated recovery response. Front. Plant Sci. 2022, 12, 752730. [Google Scholar] [CrossRef]
- AOAC. Official Methods of Analysis, 18th ed.; AOAC International: Gaithersburg, MD, USA, 2011. [Google Scholar]
- Van Soest, P.J. Use of detergents in the analysis of fibrous feeds. II. A rapid method for determination of fibre and lignin. J. AOAC 1963, 46, 829–835. [Google Scholar]
- Blum, A. Drought resistance—Is it really a complex trait? Funct. Plant Biol. 2011, 38, 753–757. [Google Scholar] [CrossRef]
- Romaneckas, K.; Kimbirauskienė, R.; Adamavičienė, A.; Buragiene, S.; Sinkevičienė, A.; Sarauskis, E.; Jasinskas, A.; Minajeva, A. Impact of sustainable tillage on biophysical properties of Planosol and on faba bean yield. Agric. Food Sci. 2019, 28, 101–111. [Google Scholar] [CrossRef][Green Version]
- Faligowska, A.; Panasiewicz, K.; Szymańska, G.; Ratajczak, K. Optimizing soybean productivity: A comparative analysis of tillage and sowing methods. Agriculture 2025, 15, 626. [Google Scholar] [CrossRef]
- Długosz, J.; Dębska, B.; Piotrowska-Długosz, A. The effect of soil tillage systems on soil microbial and enzymatic properties under soybean cultivation—Implications for sustainable soil management. Sustainability 2024, 16, 11140. [Google Scholar] [CrossRef]
- Hobbs, P.R.; Sayre, K.; Gupta, R. The role of conservation agriculture in sustainable agriculture. Philos. Trans. R. Soc. B 2008, 363, 543–555. [Google Scholar] [CrossRef] [PubMed]
- Etemadi, F.; Hashemi, M.; Barker, A.V.; Zandvakili, O.R.; Liu, X. Agronomy, nutritional value, and medicinal application of faba bean (Vicia faba L.). Hortic. Plant J. 2019, 5, 170–182. [Google Scholar] [CrossRef]
- Singh, A.K.; Bharati, R.C.; Manibhushan, N.C.; Pedpati, A. An assessment of faba bean (Vicia faba L.) current status and future prospect. Afr. J. Agric. Res. 2013, 8, 6634–6641. [Google Scholar]
- Preissel, S.; Reckling, M.; Schläfke, N.; Zander, P. Magnitude and farm-economic value of grain pre-crop benefits in Europe: A review. Field Crops Res. 2015, 175, 64–79. [Google Scholar] [CrossRef]
- Montemurro, F. Different nitrogen fertilization sources, soil tillage, and crop rotations in winter wheat: Effect on yield, quality, and nitrogen utilization. J. Plant Nutr. 2009, 32, 1–18. [Google Scholar] [CrossRef]
- Karkanis, A.; Ntatsi, G.; Lepse, L.; Fernández, J.A.; Vågen, I.M.; Rewald, B.; Alsiņa, I.; Kronberga, A.; Balliu, A.; Olle, M.; et al. Faba bean cultivation—Revealing novel managing practices for more sustainable European cropping systems. Front. Plant Sci. 2018, 9, 1115. [Google Scholar] [CrossRef]
- Ntatsi, G.; Karkanis, A.; Yfantopoulos, D.; Olle, M.; Travlos, I.; Thanopoulos, R.; Bilalis, D.; Bebeli, P.; Savvas, D. Impact of variety and farming practices on growth, yield, weed flora and symbiotic nitrogen fixation in faba bean. Acta Agric. Scand. B Soil Plant Sci. 2018, 68, 619–630. [Google Scholar] [CrossRef]
- Govaerts, B.; Verhulst, N.; Castellanos-Navarrete, A.; Sayre, K.D.; Dixon, J.; Dendooven, L. Conservation agriculture and soil carbon sequestration: Between myth and farmer reality. Crit. Rev. Plant Sci. 2009, 28, 97–122. [Google Scholar] [CrossRef]
- Lal, R.A. System Approach to Conservation Agriculture. J. Soil Water Conserv. 2015, 70, 82A–88A. [Google Scholar] [CrossRef]
- Kassam, A.; Friedrich, T.; Derpsch, R. Global Spread of Conservation Agriculture. Int. J. Environ. Stud. 2019, 76, 29–51. [Google Scholar] [CrossRef]
- Lampurlanés, J.; Plaza-Bonilla, D.; Álvaro-Fuentes, J.; Cantero-Martínez, C. Long-Term Analysis of Soil Water Conservation and Crop Yield under Different Tillage Systems in Mediterranean Rainfed Conditions. Field Crops Res. 2016, 189, 59–67. [Google Scholar] [CrossRef]







| Property | Value |
|---|---|
| Mg (available mg kg−1) | 39.9 |
| K (available mg kg−1) | 102 |
| P (available mg kg−1) | 126 |
| N (g kg−1) | 0.76 |
| C (g kg−1) | 7.91 |
| Year | Mean Monthly Air Temperature (°C) | ||||||
|---|---|---|---|---|---|---|---|
| Apr | May | Jun | Jul | Aug | Sep | Mean | |
| 2017 | 7.7 | 14.0 | 17.7 | 18.4 | 18.9 | 13.6 | 15.0 |
| 2018 | 12.9 | 17.1 | 19.1 | 20.7 | 21.4 | 15.9 | 17.8 |
| 2019 | 10.4 | 12.0 | 22.3 | 19.3 | 20.7 | 14.3 | 16.5 |
| 2020 | 9.4 | 12.0 | 18.2 | 18.9 | 20.7 | 15.4 | 15.8 |
| 2021 | 8.9 | 12.2 | 18.8 | 19.9 | 20.5 | 15.3 | 15.7 |
| Long-term mean | 8.2 | 13.3 | 16.7 | 18.3 | 17.7 | 13.5 | 14.6 |
| Year | Monthly Rainfall Totals (mm) | ||||||
|---|---|---|---|---|---|---|---|
| Apr | May | Jun | Jul | Aug | Sep | Total | |
| 2017 | 25.7 | 49.2 | 106.0 | 160.8 | 150.6 | 54.8 | 547.1 |
| 2018 | 65.3 | 19.2 | 31.5 | 134.9 | 20.0 | 60.7 | 331.6 |
| 2019 | 11.9 | 77.8 | 8.4 | 63.3 | 28.2 | 63.8 | 253.4 |
| 2020 | 6.4 | 46.9 | 44.7 | 57.7 | 116.2 | 40.9 | 312.8 |
| 2021 | 7.5 | 50.2 | 34.1 | 71.6 | 71.9 | 47.8 | 283.1 |
| Long-term mean | 37.7 | 56.4 | 64.8 | 84.1 | 66.9 | 48.3 | 358.2 |
| Specification | Year | Tillage–Sowing Systems | Year × Tillage–Sowing Systems |
|---|---|---|---|
| Plants (no. m−2) | ** | ** | ns |
| Total root mass (g) | ** | ns | ns |
| Share of nodules (%) | ** | ns | * |
| LAI | ** | ** | * |
| SPAD | * | ns | ns |
| Pods/Plant (no.) | ** | ** | * |
| Seeds/Plant (no.) | ** | * | * |
| Seeds/Pod (no.) | * | ns | ns |
| 1000 seeds mass (g) | ** | ns | ns |
| Seed yield (t ha−1) | ** | * | * |
| Protein yield (kg ha−1) | ** | * | * |
| Specification | Year | ||
|---|---|---|---|
| 2017 | 2018 | 2019 | |
| Plants (no. m−2) | 41.2 b | 53.7 a | 57.8 a |
| Total root mass (g) | 3.0 a | 2.7 b | 1.9 c |
| Share of nodules (%) | 15.2 a | 7.2 b | 3.9 b |
| LAI | 3.6 a | 1.5 c | 1.8 b |
| SPAD | 533.9 b | 602.0 a | 590.2 a |
| Pods/Plant (no.) | 10.7 a | 5.8 b | 4.1 c |
| Seeds/Plant (no.) | 31.6 a | 14.4 b | 7.2 b |
| Seeds/Pod (no.) | 2.9 a | 2.5 b | 1.7 c |
| 1000 seeds mass (g) | 510.8 a | 460.1 b | 366.2 c |
| Specification | Tillage–Sowing System | |||
|---|---|---|---|---|
| CRS | SD-C | SD-R | SD-Z | |
| Plants (no. m−2) | 55.8 a | 46.6 b | 47.2 b | 54.0 a |
| Total root mass (g) | 2.6 a | 2.6 a | 2.4 a | 2.6 a |
| Share of nodules (%) | 8.1 a | 7.2 a | 8.4 a | 11.5 a |
| LAI | 2.5 a | 2.6 a | 2.3 b | 1.9 c |
| SPAD | 566.5 a | 557.0 a | 582.6 a | 595.4 a |
| Pods/Plant (no.) | 6.7 b | 6.2 c | 7.5 a | 7.2 a |
| Seeds/Plant (no.) | 17.0 b | 15.6 c | 20.1 a | 18.3 ab |
| Seeds/Pod (no.) | 2.5 a | 2.5 a | 2.7 a | 2.6 a |
| 1000 seeds mass (g) | 436.4 a | 456.4 a | 444.7 a | 445.5 a |
| Seed yield (t ha−1) | 3.1 b | 3.7 a | 3.6 a | 3.6 a |
| Crude protein content (g kg−1) | 319.9 a | 323.7 a | 327.4 a | 321.1 a |
| Protein yield (kg ha−1) | 839.5 b | 1030.4 a | 1015.5 a | 969.4 ab |
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Faligowska, A.; Panasiewicz, K.; Szymańska, G.; Ratajczak, K.; Kolanoś, A. Carry-Over Effects of Faba Bean Tillage–Sowing Systems on Yield Formation and Subsequent Wheat Under Contrasting Weather Conditions. Agriculture 2026, 16, 1279. https://doi.org/10.3390/agriculture16121279
Faligowska A, Panasiewicz K, Szymańska G, Ratajczak K, Kolanoś A. Carry-Over Effects of Faba Bean Tillage–Sowing Systems on Yield Formation and Subsequent Wheat Under Contrasting Weather Conditions. Agriculture. 2026; 16(12):1279. https://doi.org/10.3390/agriculture16121279
Chicago/Turabian StyleFaligowska, Agnieszka, Katarzyna Panasiewicz, Grażyna Szymańska, Karolina Ratajczak, and Anna Kolanoś. 2026. "Carry-Over Effects of Faba Bean Tillage–Sowing Systems on Yield Formation and Subsequent Wheat Under Contrasting Weather Conditions" Agriculture 16, no. 12: 1279. https://doi.org/10.3390/agriculture16121279
APA StyleFaligowska, A., Panasiewicz, K., Szymańska, G., Ratajczak, K., & Kolanoś, A. (2026). Carry-Over Effects of Faba Bean Tillage–Sowing Systems on Yield Formation and Subsequent Wheat Under Contrasting Weather Conditions. Agriculture, 16(12), 1279. https://doi.org/10.3390/agriculture16121279

