Study of the Mechanics and Micro-Structure of Wheat Straw Returned to Soil in Relation to Different Tillage Methods
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Site and Sampling Time
2.2. Experimental Equipment’s
2.3. Methods and Order
2.3.1. Method
2.3.2. Experimental Order
- Harvest: Wheat was harvested, and straw was collected and cut to lengths of 5–15 cm, while the rest was not cut for manual recovery.
- Field and straw treatments: For non-returning subfields, the straw and stubbles were removed first then plowed and later dry rotary tilled. Furthermore, after plowing, the paddy field was soaked for more than 48 h and then wet rotary tilled. The plow depths of the three tillage methods were 20.05, 13.8, and 19.61 cm, respectively. For the straw: straw was collected artificially and cut to lengths of 5–30 cm in increments of 5 cm with an error of <0.5 cm. It was then packed into net bags to be buried underground with a fresh weight of 200 g.
- Mesh bags: Nylon mesh bags containing straw were buried underground at a depth of 5 cm below the soil and each subfield had six bags.
- Samplings: Initially, wheat straw samples were collected directly after wheat harvested, and further after the rice was transplanted, the straw samples were collected, cleaned, soaked in clear water 50 times or rinsed for 3 min, and oven dried at 80 °C to a constant weight. The samples were then cooled to room temperature for dry quality measurement. Straw samples with a length of 10 cm, no nodes, and relatively complete size were intercepted for the examination of the mechanical properties and microscopic morphology. Finally, the straw was crushed through 100 mesh sieve and packaged in self-sealing bags for component detection [28].
2.4. Experimental Parameters, Measurement, and Analysis Method
3. Results
3.1. Changes in the Wheat Straw Decomposition Rate over Time with Different Tillage
3.2. Changes in the Wheat Straw Shear Strength over Time with Different Tillages
3.3. Changes in the Wheat Straw Bending Strength over Time with Different Tillages
3.4. Changes in the Wheat Straw Compressive Strength over Time with Different Tillages
3.5. One Way ANOVA of the Wheat Straw over Time
3.6. Two Way ANVOA of the Wheat Straw under Different Tillage and Time
3.7. Microstructural Changes of the Stalk with Different Tillage and Time
3.7.1. Original Micro-Structure of Wheat Stalk
3.7.2. Micro-Structure of the Wheat Stalk over Time with Plowing Tillage
3.7.3. Micro-Structure of the Wheat Stalk over Time with Dry Rotary Tillage
3.7.4. Micro-Structure of the Wheat Stalk over Time with Wet Rotary Tillage
4. Discussion
4.1. Analysis of the Straw Decomposing Rate over Time in Different Tillages
4.2. Analysis of the Straw Mechanical Properties over Time in Different Tillages
4.3. Analysis of the Reasonable Data of Decomposing and Mechanical Properties Based on the Mesh Bag Method
4.4. Analysis of One-Way and Two-Way ANOVA
4.5. Analysis of Micro-Structure
5. Conclusions
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Tillage | Field | Decomposition Rate | Shear Strength | Bending Strength | Compressive Strength | ||||
---|---|---|---|---|---|---|---|---|---|
F | P | F | P | F | P | F | P | ||
Plowing | 1 | 4.46 | * | 10.96 | * | 3.75 | * | 7.35 | * |
3 | 6.65 | * | 11.60 | * | 3.62 | * | 2.75 | ns | |
Dry rotary | 5 | 10.07 | * | 9.67 | * | 4.71 | * | 1.25 | ns |
7 | 3.80 | * | 11.25 | * | 4.63 | * | 1.29 | ns | |
Wet rotary | 9 | 10.43 | * | 9.86 | * | 9.80 | * | 2.30 | ns |
Field | Interactive | Decomposition Rate | Shear Strength | Bending Strength | Compressive Strength | ||||
---|---|---|---|---|---|---|---|---|---|
F | P | F | P | F | P | F | P | ||
Subfield 1, 5 | Time | 10.86 | * | 20.34 | * | 7.80 | * | 4.36 | * |
Tillage | 2.84 | ns | 0.29 | ns | 3.88 | ns | 0.12 | ns | |
Time × Tillage | 1.99 | ns | 0.27 | ns | 0.76 | ns | 0.94 | ns | |
Subfield 3, 7, 9 | Time | 15.29 | * | 27.39 | * | 10.03 | * | 4.84 | * |
Tillage | 8.48 | * | 0.49 | ns | 2.22 | ns | 0.73 | ns | |
Time × Tillage | 2.24 | * | 0.44 | ns | 1.00 | ns | 0.69 | ns |
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Wang, Y.; Abbas, A.; Wang, X.; Yang, S.; Odhiambo, M.R.O.; Ding, Q.; Sun, G.; Shi, Y. Study of the Mechanics and Micro-Structure of Wheat Straw Returned to Soil in Relation to Different Tillage Methods. Agronomy 2020, 10, 894. https://doi.org/10.3390/agronomy10060894
Wang Y, Abbas A, Wang X, Yang S, Odhiambo MRO, Ding Q, Sun G, Shi Y. Study of the Mechanics and Micro-Structure of Wheat Straw Returned to Soil in Relation to Different Tillage Methods. Agronomy. 2020; 10(6):894. https://doi.org/10.3390/agronomy10060894
Chicago/Turabian StyleWang, Yanpeng, Adnan Abbas, Xiaochan Wang, Sijun Yang, Morice R. O. Odhiambo, Qishuo Ding, Guoxiang Sun, and Yinyan Shi. 2020. "Study of the Mechanics and Micro-Structure of Wheat Straw Returned to Soil in Relation to Different Tillage Methods" Agronomy 10, no. 6: 894. https://doi.org/10.3390/agronomy10060894
APA StyleWang, Y., Abbas, A., Wang, X., Yang, S., Odhiambo, M. R. O., Ding, Q., Sun, G., & Shi, Y. (2020). Study of the Mechanics and Micro-Structure of Wheat Straw Returned to Soil in Relation to Different Tillage Methods. Agronomy, 10(6), 894. https://doi.org/10.3390/agronomy10060894