Tillage Practices Affected Yield and Water Use Efficiency of Maize (Zea mays L., Longdan No.8) by Regulating Soil Moisture and Temperature in Semi-Arid Environment
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Site
2.2. Experimental Design and Agronomic Management
2.3. Measurements and Calculation
2.3.1. Soil Water Content and Evapotranspiration
2.3.2. Soil Temperature
2.3.3. Biomass Yield, Grain Yield, and Yield Components
2.3.4. Water Use Efficiency (WUE) and Harvest Index (HI)
2.4. Statistical Analysis
3. Results
3.1. Effects of Different Tillage Practices on Soil Volumetric Water Content during Maize Growth Period
3.2. Effects of Different Tillage Practices on Soil Temperature during Maize Growth Period
3.3. Effects of Different Tillage Practices on Water Consumption Structure of Maize during the Growth Period
3.4. Effects of Different Tillage Practices on Yield and Water Use Efficiency of Maize
3.5. Correlation Analysis of Soil Water Content, Temperature and Yield, Yield Components and Harvest Index
3.6. Effects of Different Tillage Practices on Economic Benefits of Maize Planting
4. Discussion
4.1. Effects of Different Tillage Measures on Soil Volumetric Moisture Content and Soil Temperature
4.2. Effects of Different Tillage Practices on Water Consumption Structure and Water Use Efficiency of Maize
4.3. Effects of Different Tillage Practices on Maize Yield, Yield Composition, and Economic Benefits
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Tillage Practices | Abbreviations | Description |
---|---|---|
Conventional tillage with no straw | T | The straw was being moved out of the plot in early October, and the tillage was harrowed once before the maize was sown in early April of the next year, with a depth of about 30 cm; the maize sown date is mid to late April. |
Conventional tillage with straw incorporated | TS | The treatment was the same as T, except the straw was chopped into about 5 cm and returned to plots after the previous crop (maize) was harvested in early October. |
Subsoiling tillage with no straw | SST | The treatment included that the straw was moved out of the plot after harvest in early October, and deep ploughing and shallow rotary harrowing were performed once before the maize was sown in early April; the tillage depth was about 30 cm. |
Subsoiling tillage with straw incorporated | SSTS | The treatment was the same as SST, except all straws were retained in plots, chopped into about 5 cm after harvest in early October. |
No-till with no straw | NT | The treatment had all aboveground crop residues removed after harvest in early October, and no tillage operations throughout the trial period. |
No-till with straw cover | NTS | The treatment was the same as NT, except that all residues from the previous crop (maize) were retained, chopped into about 5 cm, after harvest in early October. |
Year | Tillage Practice b | SWSb (mm) | SWSh (mm) | Pc (mm) | ETc (mm) | Ec (mm) | Tc (mm) |
---|---|---|---|---|---|---|---|
2021 | T | 302.95 | 219.34 ab c | 330.7 | 414.31 ab | 70.40 a | 343.90 b |
TS | 302.95 | 213.33 ab | 330.7 | 420.32 ab | 57.41 b | 362.91 a | |
SST | 302.95 | 202.72 b | 330.7 | 430.93 a | 70.41 a | 360.51 a | |
SSTS | 302.95 | 216.77 ab | 330.7 | 416.88 ab | 53.72 b | 363.16 a | |
NT | 302.95 | 208.82 b | 330.7 | 424.83 a | 70.38 a | 354.45 ab | |
NTS | 302.95 | 226.65 a | 330.7 | 407.00 b | 59.15 b | 347.85 ab | |
2022 | T | 377.73 ab | 309.85 bc | 359.5 | 427.38 b | 265.04 a | 162.34 c |
TS | 370.19 b | 332.46 a | 359.5 | 397.22 c | 236.79 b | 160.43 c | |
SST | 392.43 a | 334.59 a | 359.5 | 417.34 bc | 230.70 b | 186.65 bc | |
SSTS | 394.26 a | 333.41 a | 359.5 | 420.35 bc | 210.76 c | 209.59 b | |
NT | 386.66 ab | 321.21 ab | 359.5 | 424.95 b | 239.10 b | 185.86 bc | |
NTS | 393.33 a | 297.12 c | 359.5 | 455.71 a | 197.98 d | 257.73 a | |
Source of variance | |||||||
Year (Y) | ** | ** | NS | ** | ** | ||
Tillage (T) | ** | NS | * | ** | ** | ||
Straw (S) | NS | NS | NS | ** | ** | ||
Y × T | ** | ** | ** | ** | ** | ||
Y × S | NS | NS | NS | ** | ** | ||
T × S | NS | NS | NS | NS | NS | ||
Y × T × S | NS | ** | ** | * | ** |
Year | Tillage Practice b | Ear No. per Area | Grain No. per Ear | HGW (g) | GY (kg ha−1) | WUE (kg ha−1 mm−1) | BY (kg ha−1) | HI (%) |
---|---|---|---|---|---|---|---|---|
2021 | T | 4697 ab c | 511 c | 45.06 ab | 6751.78 b | 16.30 b | 18,280.87 b | 0.37 a |
TS | 4914 a | 532 bc | 45.45 a | 6730.06 b | 16.01 b | 18,522.24 b | 0.36 a | |
SST | 4914 a | 543 ab | 43.20 b | 7078.93 a | 16.44 b | 24,148.36 a | 0.29 bc | |
SSTS | 4480 b | 564 a | 44.78 ab | 7169.64 a | 17.20 a | 25,804.02 a | 0.28 c | |
NT | 4698 ab | 459 d | 45.46 a | 5425.47 c | 12.77 c | 15,040.40 c | 0.36 a | |
NTS | 4480 b | 470 d | 39.58 c | 5042.37 d | 12.39 c | 14,960.90 c | 0.34 ab | |
2022 | T | 4311 ab | 475 c | 27.84 abc | 5764.16 c | 13.51 b | 14,551.12 c | 0.40 ab |
TS | 4353 ab | 526 b | 28.70 ab | 5820.82 c | 14.67 ab | 15,419.73 c | 0.38 b | |
SST | 4442 a | 554 b | 31.36 a | 6160.66 b | 14.78 a | 18,870.80 b | 0.33 c | |
SSTS | 4435 a | 660 a | 31.38 a | 6556.28 a | 15.59 a | 22,340.72 a | 0.29 d | |
NT | 4179 b | 383 d | 22.23 c | 3297.59 d | 7.78 c | 8820.93 d | 0.37 b | |
NTS | 4273 ab | 473 c | 23.78 bc | 3569.27 d | 7.83 c | 8754.10 d | 0.41 a | |
Source of variance | ||||||||
Year (Y) | ** | NS | ** | ** | ** | ** | ** | |
Tillage (T) | ** | ** | ** | ** | ** | ** | ** | |
Straw (S) | NS | ** | NS | NS | NS | * | NS | |
Y × T | NS | ** | ** | ** | ** | * | NS | |
Y × S | * | ** | NS | ** | NS | NS | NS | |
T × S | ** | NS | NS | NS | NS | * | NS | |
Y × T × S | ** | NS | NS | NS | NS | NS | NS |
Index b | Ear No. per Area | Grain No. per Ear | HGW | GY | BY | HI |
---|---|---|---|---|---|---|
SW1 | −0.262 | 0.249 | 0.133 | −0.042 | 0.133 | −0.241 |
SW2 | 0.310 | 0.310 | 0.706 ** | 0.633 ** | 0.434 | −0.064 |
SW3 | −0.013 | −0.057 | 0.037 | −0.194 | −0.095 | −0.068 |
SW4 | −0.162 | −0.026 | −0.290 | −0.141 | −0.212 | 0.310 |
ST1 | −0.188 | −0.379 | −0.533 * | −0.458 | −0.394 | 0.233 |
ST2 | −0.310 | −0.734 ** | −0.492 * | −0.644 ** | −0.634 ** | 0.448 |
Tillage Practices a | Type of Input (CNY/hm2) | Total Input | Type of Earnings (CNY/hm2) | Ratio of Output to Input | ||||||
---|---|---|---|---|---|---|---|---|---|---|
Year | Seeds | Fertilizer | Pesticide | Labor | Machinery | Grain Benefit | Net Benefit | |||
2021 | T | 1740 | 2971 | 150 | 4800 | 900 | 10,561 | 17,555 b b | 6994 b | 1.66 b |
TS | 1740 | 2971 | 150 | 4800 | 900 | 10,561 | 17,498 b | 6937 b | 1.66 b | |
SST | 1740 | 2971 | 150 | 4800 | 900 | 10,561 | 18,405 a | 7844 a | 1.74 a | |
SSTS | 1740 | 2971 | 150 | 4800 | 900 | 10,561 | 18,641 a | 8080 a | 1.77 a | |
NT | 1740 | 2971 | 150 | 4800 | 0 | 9661 | 14,106 c | 4445 c | 1.46 c | |
NTS | 1740 | 2971 | 150 | 4800 | 0 | 9661 | 13,110 d | 3449 d | 1.36 d | |
2022 | T | 1885 | 3075 | 150 | 4800 | 900 | 10,810 | 14,987 c | 4176 c | 1.39 c |
TS | 1885 | 3075 | 150 | 4800 | 900 | 10,810 | 15,134 c | 4324 c | 1.40 c | |
SST | 1885 | 3075 | 150 | 4800 | 900 | 10,810 | 16,018 b | 5208 b | 1.48 b | |
SSTS | 1885 | 3075 | 150 | 4800 | 900 | 10,810 | 17,046 a | 6236 a | 1.58 a | |
NT | 1885 | 3075 | 150 | 4800 | 0 | 9910 | 8574 d | −1336 d | 0.87 d | |
NTS | 1885 | 3075 | 150 | 4800 | 0 | 9910 | 9280 d | −630 d | 0.94 d |
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Peng, Z.; Yang, H.; Li, Q.; Cao, H.; Ma, J.; Ma, S.; Qiao, Y.; Jin, J.; Ren, P.; Song, Z.; et al. Tillage Practices Affected Yield and Water Use Efficiency of Maize (Zea mays L., Longdan No.8) by Regulating Soil Moisture and Temperature in Semi-Arid Environment. Water 2023, 15, 3243. https://doi.org/10.3390/w15183243
Peng Z, Yang H, Li Q, Cao H, Ma J, Ma S, Qiao Y, Jin J, Ren P, Song Z, et al. Tillage Practices Affected Yield and Water Use Efficiency of Maize (Zea mays L., Longdan No.8) by Regulating Soil Moisture and Temperature in Semi-Arid Environment. Water. 2023; 15(18):3243. https://doi.org/10.3390/w15183243
Chicago/Turabian StylePeng, Zhengkai, Hongwei Yang, Qian Li, Hong Cao, Jian Ma, Shengfa Ma, Yan Qiao, Jiaojiao Jin, Panrong Ren, Zhanshu Song, and et al. 2023. "Tillage Practices Affected Yield and Water Use Efficiency of Maize (Zea mays L., Longdan No.8) by Regulating Soil Moisture and Temperature in Semi-Arid Environment" Water 15, no. 18: 3243. https://doi.org/10.3390/w15183243
APA StylePeng, Z., Yang, H., Li, Q., Cao, H., Ma, J., Ma, S., Qiao, Y., Jin, J., Ren, P., Song, Z., & Liu, P. (2023). Tillage Practices Affected Yield and Water Use Efficiency of Maize (Zea mays L., Longdan No.8) by Regulating Soil Moisture and Temperature in Semi-Arid Environment. Water, 15(18), 3243. https://doi.org/10.3390/w15183243