Performance of Winter-Sown Cereal Catch Crops after Simulated Forage Crop Grazing in Southland, New Zealand
Abstract
:1. Introduction
2. Results and Discussion
2.1. Climate and Drainage
2.2. Crop Development, Nitrogen and Feed Quality
2.3. Soil Mineral Nitrogen
2.4. Net Nitrogen Supply
2.5. Practical Considerations
3. Materials and Methods
3.1. Site Information
3.2. Trial Design and Treatments
3.3. Measurements
3.4. Statistical Analysis
4. Conclusions
- In the cold climate of Southland, New Zealand, winter-sown catch crops of oats, ryecorn or triticale were shown to have potential to establish and remove residual SMN and water from the soil, reducing the risk of N leaching losses after simulated winter forage grazing. One of the challenges ahead for this practice in a working farm system is the ability to sow the catch crops into suitable seedbeds, considering the typically wet and/or pugged conditions that are often associated with winter grazing, particularly in Southland.
- Final green-chop silage maturity yields ranged from 6.6 to 14.6 t DM ha−1, presenting significant productivity opportunities for the use of catch crops in this context. Higher yields were achieved when crops were sown earlier in winter.
- Early sowing in winter was particularly important for capturing N during the high-risk drainage/leaching period, i.e., winter months until approximately mid-spring. Farmers should, therefore, aim to sow cereal catch crops as early as possible following winter forage crop grazing, in order to maximize both the environmental and productive benefits of catch crops.
- When sown in June, oats took up less N than ryecorn and triticale during early growth stages; however, delayed sowings until August resulted in non-significant differences between species.
- High N losses evidently occurred from this simulated winter grazing scenario. Between 19 September and 21 November, there were substantial losses of N within the soil profile (0–45 cm depth) across all treatments. This is unsurprising given the shallow, free-draining nature of the soil, the wet conditions and the large volumes of estimated drainage. The amount of N in the crop at harvest was insufficient to balance the N pools ((N uptake + Residual SMN) − (Initial N + N added)) and the difference was likely to have been a source for significant N loss via leaching.
- This information can be used to validate and improve modeling platforms (e.g., APSIM; https://www.apsim.info/) for future scenario testing to investigate a range of seasonal, soil type and management factors.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Month of Sowing | Catch Crop Species | CP | SSS | Crude Fat | Lignin | NDF | ADF | Hemi-Cellulose | DOMD | ME | Total ME Harvested |
---|---|---|---|---|---|---|---|---|---|---|---|
(%) | (%) | (%) | (%) | (%) | (%) | (%) | (%) | (MJ kg−1 DM) | (GJ ha−1) | ||
June | Oats | 11.8d | 21.5a | 2.25b | 2.20b | 51.8b | 29.5b | 22.3c | 67.1b | 10.73b | 156.4a |
Ryecorn | 13.7cd | 12.7d | 1.45c | 3.75a | 63.6a | 35.7a | 27.9a | 53.3d | 8.55d | 67.8c | |
Triticale | 13.0cd | 17.0c | 1.43c | 2.40b | 60.8a | 34.0a | 26.7a | 57.4c | 9.20c | 85.0c | |
August | Oats | 12.7cd | 22.3a | 2.55a | 2.03b | 48.0c | 27.5c | 20.5d | 72.1a | 11.53a | 155.2a |
Ryecorn | 16.2a | 17.1c | 2.28b | 2.03b | 53.8b | 29.5b | 24.3b | 66.7b | 10.55b | 108.2b | |
Triticale | 14.0bc | 18.8b | 2.25b | 2.38b | 51.7b | 29.3b | 22.4c | 65.8b | 10.53b | 69.6c | |
LSD (5%) | 2.2 | 2.4 | 0.22 | 0.49 | 3.1 | 1.8 | 1.6 | 2.7 | 0.44 | 17.3 | |
P value | 0.500 | 0.097 | 0.003 | <0.001 | 0.021 | 0.01 | 0.079 | 0.002 | 0.003 | <0.001 | |
Main effect means | |||||||||||
Sowing date: | |||||||||||
June | 12.8a | 17.1b | 1.71b | 2.78a | 58.7a | 33.1a | 25.7a | 59.3b | 9.49b | 103.1a | |
August | 14.3b | 19.4a | 2.36a | 2.14b | 51.2b | 28.8b | 22.4b | 68.0a | 10.88a | 111.0a | |
LSD (5%) | 1.3 | 1.4 | 0.13 | 0.28 | 1.8 | 1.0 | 0.9 | 1.5 | 0.25 | 10.0 | |
P value | 0.026 | 0.003 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 | 0.112 | |
Species: | |||||||||||
Oats | 12.2b | 21.9a | 2.40a | 2.11b | 49.9c | 28.5c | 21.4c | 69.6a | 11.13a | 155.8a | |
Ryecorn | 15.0a | 14.9c | 1.86b | 2.89a | 58.7a | 32.6a | 26.1a | 59.7c | 9.56b | 88.0b | |
Triticale | 13.5ab | 17.0b | 1.84b | 2.39b | 56.2b | 31.7b | 24.6b | 61.6b | 9.86b | 77.3b | |
LSD (5%) | 1.6 | 1.7 | 0.16 | 0.35 | 2.2 | 1.3 | 1.1 | 1.9 | 0.31 | 12.2 | |
P value | 0.007 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 | <0.001 |
Fertility Indicator | Average Site Value | Optimum Range 1 |
---|---|---|
pH | 5.7 | 5.7–6.2 |
Olsen P (mg L−1) | 22 | 20–30 |
Exchangeable K (QT) | 6 | 5–8 |
Exchangeable Ca (QT) | 8 | 4–10 |
Exchangeable Mg (QT) | 11 | ≥9 |
Exchangeable Na (QT) | 2 | 10–12 |
CEC (me 100 g−1) | 21 | 12–25 |
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Malcolm, B.; Maley, S.; Teixeira, E.; Johnstone, P.; de Ruiter, J.; Brown, H.; Armstrong, S.; Dellow, S.; George, M. Performance of Winter-Sown Cereal Catch Crops after Simulated Forage Crop Grazing in Southland, New Zealand. Plants 2021, 10, 108. https://doi.org/10.3390/plants10010108
Malcolm B, Maley S, Teixeira E, Johnstone P, de Ruiter J, Brown H, Armstrong S, Dellow S, George M. Performance of Winter-Sown Cereal Catch Crops after Simulated Forage Crop Grazing in Southland, New Zealand. Plants. 2021; 10(1):108. https://doi.org/10.3390/plants10010108
Chicago/Turabian StyleMalcolm, Brendon, Shane Maley, Edmar Teixeira, Paul Johnstone, John de Ruiter, Hamish Brown, Stewart Armstrong, Steven Dellow, and Mike George. 2021. "Performance of Winter-Sown Cereal Catch Crops after Simulated Forage Crop Grazing in Southland, New Zealand" Plants 10, no. 1: 108. https://doi.org/10.3390/plants10010108
APA StyleMalcolm, B., Maley, S., Teixeira, E., Johnstone, P., de Ruiter, J., Brown, H., Armstrong, S., Dellow, S., & George, M. (2021). Performance of Winter-Sown Cereal Catch Crops after Simulated Forage Crop Grazing in Southland, New Zealand. Plants, 10(1), 108. https://doi.org/10.3390/plants10010108