Water Requirement of Solar Greenhouse Tomatoes with Drip Irrigation under Mulch in the Southwest of the Taklimakan Desert
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Plot
2.2. Plant Material
2.3. Irrigation Treatment Design
2.4. Agronomic Management
2.5. Parameter Determinations
2.5.1. Meteorological Data
2.5.2. Irrigation Amount
2.5.3. Soil Moisture
2.5.4. Fruit Yield
2.5.5. Fruit Quality
2.6. Parameter Calculation
2.6.1. Reference Crop Evapotranspiration
2.6.2. Evapotranspiration
- (1)
- The instrument measurement error. Since the Diniver2000 was used for soil moisture monitoring in this study, in order to reduce the measurement error, the instrument was calibrated before the experiment started;
- (2)
- The layout of the access tubes: different from flood irrigation, drip irrigation is a localized irrigation technology, the layout of the access tubes will directly affect the accurate acquisition of soil moisture. A total of three access tubes were installed in the experiment (see Section 2.5.3), and the average value of soil moisture measurements of three access tubes at a certain depth were used as the soil water content at that depth;
- (3)
- Installation of the access tube: when the Diniver2000 is used to measure soil moisture, the contact between the side wall of an access tube and the soil will greatly affect the measurement results (when there are pores, the measured value is higher than the actual value). Therefore, after an access tube is buried, the gap between the side wall of the access tube and the soil is filled with mud to secure a close contact and then ensure the accuracy of soil moisture data;
- (4)
- The measurement of soil water content: due to the redistribution process of soil water after irrigation, it is important to measure the soil water content at an adequate time. If the measurement is carried out too early, the measured soil moisture change will be larger than the actual result because the soil water in the scheming wetted soil layer is still draining from the soil after the measurement, and. In this study, the soil moisture is usually measured 12 h after irrigation to ensure that the gravity water in the scheming wetted soil layer depth has been completely drained.
2.6.3. Crop Coefficient
2.6.4. Water Use Efficiency
2.7. Comprehensive Evaluation
2.7.1. Indicator Weight
2.7.2. Normalization of Evaluation Indicators
2.7.3. Ideal Solution (Zij+) and Negative Solution (Zij−)
2.7.4. Euclidean Distances (Di+ and Di−)
2.7.5. Relative Proximity Coefficient Ri
2.8. Statistical Analysis
3. Results
3.1. ET0 Variations in the Solar Greenhouse over the Two Seasons
3.2. Water Requirement
3.3. Crop Coefficient
3.4. Fruit Yield and WUE
3.5. Fruit Quality
3.6. Comprehensive Evaluation Based on TOPSIS Method
4. Discussion
5. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
D | Deep percolation below the root zone |
ET0 | Reference crop evapotranspiration |
ETc | Crop evapotranspiration |
Es | Saturation vapor pressure of air |
ea | Actual vapor pressure of air |
FC | Field capacity |
G | Soil heat flux at the soil surface |
H | Root depth |
I | Irrigation amount |
Ia | Medium irrigation quota |
K | Root zone water supplied by groundwater |
Kc | Crop coefficient |
p | In Equation (1) is the wetted percentage and in Equation (2) is precipitation |
R | Surface runoff |
Rn | Net radiation |
Rs | Average daily total radiation |
RH | Relative humidity |
SFW | Single fruit weight |
T | Air temperature |
TSS | Total soluble solids |
TTA | Total titratable acid |
WUE | Water use efficiency |
Vc | Vitamin C |
γ | Psychrometer constant |
Δ | Slope of the saturation vapor pressure versus temperature curve |
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Soil Depth cm | Dry Bulk Density | Soil Particle Size Composition (%) | Field Capacity cm3·cm−3 | Soil Texture | |||
---|---|---|---|---|---|---|---|
g·cm−3 | <0.002 mm | 0.002–0.02 mm | 0.02–2 mm | >2 mm | |||
0–30 | 1.59 | 2.62 | 7.58 | 89.80 | 0.00 | 0.19 | Sandy |
30–70 | 1.58 | 2.79 | 7.97 | 89.24 | 0.00 | 0.20 | Sandy |
70–100 | 1.57 | 2.95 | 7.81 | 89.24 | 0.00 | 0.21 | Sandy |
Season | Year | Beginning and Ending Date | ||
---|---|---|---|---|
Seedling Stage | Flowering and Fruiting Stage | Maturation Stage | ||
Autumn–winter | 2019 | 4 August–2 September | 3 September–24 October | 25 October–22 November |
Winter–spring | 2020 | 10 January–24 February | 25 February–23 April | 24 April–25 May |
Treatment | Irrigation | Autumn–Winter Season | Winter–Spring Season | ||||||
---|---|---|---|---|---|---|---|---|---|
Seedling Stage | Flowering and Fruiting Stage | Maturation Stage | Whole Growth Period | Seedling Stage | Flowering and Fruiting Stage | Maturation Stage | Whole Growth Period | ||
T1 | 60% Ia | 63.2 | 127.9 | 53.3 | 244.3 | 61.5 | 149.2 | 74.6 | 285.3 |
T2 | 80% Ia | 73.1 | 170.5 | 71.0 | 314.7 | 76.5 | 198.9 | 99.5 | 374.9 |
T3 | 100% Ia | 83.1 | 213.1 | 88.8 | 385.0 | 91.5 | 248.6 | 124.3 | 464.4 |
T4 | 120% Ia | 93.1 | 255.7 | 106.6 | 455.4 | 106.5 | 298.4 | 149.2 | 554.0 |
T5 | 140% Ia | 103.1 | 298.4 | 124.3 | 525.8 | 121.4 | 348.1 | 174.0 | 643.6 |
Treatment | Autumn–Winter Season | Winter–Spring Season | ||||
---|---|---|---|---|---|---|
ETc/mm | Yield/t·ha−1 | WUE/kg·m−3 | ETc/mm | Yield/t·ha−1 | WUE/kg·m−3 | |
T1 | 237.49 | 62.10d | 26.15a | 283.58 | 58.50d | 20.63a |
T2 | 280.98 | 71.84c | 25.57a | 349.23 | 67.20c | 19.24a |
T3 | 320.19 | 82.18bc | 25.67a | 395.06 | 77.38b | 19.59a |
T4 | 358.29 | 91.10a | 25.43a | 446.71 | 85.91a | 19.23a |
T5 | 397.12 | 86.28bc | 21.73b | 514.40 | 80.64b | 15.68b |
Season | Treatment | SFW /g | TSS /% | TTA /% | Vc /mg·(100 gFW)−1 |
---|---|---|---|---|---|
Autumn–winter season | T1 | 165.2c | 5.70a | 0.41c | 5.32a |
T2 | 171.5c | 5.30a | 0.49ab | 5.01a | |
T3 | 193.5b | 4.80b | 0.52a | 4.57b | |
T4 | 204.8a | 4.77b | 0.46b | 4.46bc | |
T5 | 208.0a | 4.21b | 0.42c | 4.31c | |
Winter–spring season | T1 | 159.4c | 6.10a | 0.43c | 4.93a |
T2 | 165.5c | 5.80a | 0.51ab | 4.76a | |
T3 | 187.5b | 5.31b | 0.56a | 4.32b | |
T4 | 197.6a | 4.76bc | 0.48b | 4.26b | |
T5 | 204.0a | 4.51c | 0.45c | 4.21b |
Season | Treatment/Weighting | Normalized Decision Matrix | Euclidean Distance | Relative Proximity Coefficient | Rank | ||||||
---|---|---|---|---|---|---|---|---|---|---|---|
Yield | WUE | SFW | TSS | TTA | Vc | Di+ | Di− | ||||
Autumn–winter season | T1 | 0.35 | 0.469 | 0.39 | 0.512 | 0.496 | 0.501 | 0.04 | 0.158 | 0.799 | 5 |
T2 | 0.405 | 0.458 | 0.405 | 0.476 | 0.415 | 0.472 | 0.031 | 0.159 | 0.836 | 4 | |
T3 | 0.463 | 0.460 | 0.457 | 0.431 | 0.391 | 0.430 | 0.025 | 0.159 | 0.865 | 2 | |
T4 | 0.513 | 0.456 | 0.484 | 0.428 | 0.442 | 0.42 | 0.019 | 0.159 | 0.895 | 1 | |
T5 | 0.486 | 0.389 | 0.491 | 0.378 | 0.484 | 0.406 | 0.027 | 0.159 | 0.853 | 3 | |
Weighting efficient | 0.233 | 0.189 | 0.161 | 0.114 | 0.146 | 0.167 | |||||
Winter–spring season | T1 | 0.351 | 0.487 | 0.388 | 0.512 | 0.499 | 0.489 | 0.039 | 0.157 | 0.799 | 5 |
T2 | 0.403 | 0.454 | 0.403 | 0.487 | 0.421 | 0.472 | 0.032 | 0.157 | 0.833 | 4 | |
T3 | 0.464 | 0.462 | 0.457 | 0.446 | 0.383 | 0.429 | 0.025 | 0.157 | 0.862 | 2 | |
T4 | 0.515 | 0.454 | 0.481 | 0.399 | 0.447 | 0.423 | 0.02 | 0.157 | 0.887 | 1 | |
T5 | 0.484 | 0.37 | 0.497 | 0.378 | 0.477 | 0.418 | 0.031 | 0.157 | 0.836 | 3 | |
Weighting efficient | 0.215 | 0.193 | 0.163 | 0.116 | 0.145 | 0.168 |
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Hong, M.; Zhang, Z.; Fu, Q.; Liu, Y. Water Requirement of Solar Greenhouse Tomatoes with Drip Irrigation under Mulch in the Southwest of the Taklimakan Desert. Water 2022, 14, 3050. https://doi.org/10.3390/w14193050
Hong M, Zhang Z, Fu Q, Liu Y. Water Requirement of Solar Greenhouse Tomatoes with Drip Irrigation under Mulch in the Southwest of the Taklimakan Desert. Water. 2022; 14(19):3050. https://doi.org/10.3390/w14193050
Chicago/Turabian StyleHong, Ming, Zhanyu Zhang, Qiuping Fu, and Yanping Liu. 2022. "Water Requirement of Solar Greenhouse Tomatoes with Drip Irrigation under Mulch in the Southwest of the Taklimakan Desert" Water 14, no. 19: 3050. https://doi.org/10.3390/w14193050
APA StyleHong, M., Zhang, Z., Fu, Q., & Liu, Y. (2022). Water Requirement of Solar Greenhouse Tomatoes with Drip Irrigation under Mulch in the Southwest of the Taklimakan Desert. Water, 14(19), 3050. https://doi.org/10.3390/w14193050