| Literature DB >> 25147873 |
Hou Maomao1, Shao Xiaohou1, Zhai Yaming1.
Abstract
To identify effective regulatory methods scheduling with the compromise between the soil desalination and the improvement of tomato quality and yield, a 3-year field experiment was conducted to evaluate and compare the effect of straw mulching and soil structure conditioner and water-retaining agent on greenhouse saline soils, tomato quality, and yield. A higher salt removing rate of 80.72% in plough layer with straw mulching was obtained based on the observation of salt mass fraction in 0 ~ 20 cm soil layer before and after the experiment. Salts were also found to move gradually to the deeper soil layer with time. Straw mulching enhanced the content of soil organic matter significantly and was conductive to reserve soil available N, P, and K, while available P and K in soils of plough layer with soil structure conditioner decreased obviously; thus a greater usage of P fertilizer and K fertilizer was needed when applying soil structure conditioner. Considering the evaluation indexes including tomato quality, yield, and desalination effects of different regulatory methods, straw mulching was recommended as the main regulatory method to improve greenhouse saline soils in south China. Soil structure conditioner was the suboptimal method, which could be applied in concert with straw mulching.Entities:
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Year: 2014 PMID: 25147873 PMCID: PMC4122107 DOI: 10.1155/2014/953675
Source DB: PubMed Journal: ScientificWorldJournal ISSN: 1537-744X
Detailed irrigation amount and its distribution (mm).
| Date | 2011 | 2012 | 2013 |
|---|---|---|---|
| June 15 | 40.21 | 50.98 | 52.24 |
| June 29 | 36.92 | 65.54 | 61.18 |
| July 7 | 46.21 | ||
| July 16 | 42.28 | 65.33 | 64.33 |
| July 24 | 36.62 | ||
| August 5 | 40.99 | 78.64 | 76.54 |
| August 13 | 32.16 | ||
| August 19 | 48.72 | 72.12 | 74.98 |
| August 29 | 41.21 | 79.33 | 74.43 |
| September 7 | 40.95 | 69.21 | 72.12 |
| September 14 | 38.84 | 68.32 | 70.04 |
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| Total | 445.11 | 549.47 | 545.86 |
Weight coefficient and contribution rate of main ingredients.
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| 2011 |
| −0.961 | −0.997 | 0.962 | −0.670 | 0.977 | 0.953 | 5.152 | 85.862 | 85.862 |
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| 2012 |
| −0.690 | −0.997 | 0.792 | −0.070 | 0.573 | 0.886 | 3.215 | 53.582 | 53.582 |
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| −0.720 | −0.051 | 0.596 | −0.997 | 0.820 | 0.402 | 2.703 | 45.054 | 98.636 | |
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| 2013 |
| 0.096 | −0.912 | 0.369 | 0.916 | 0.932 | 0.555 | 2.995 | 49.911 | 49.911 |
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| −0.910 | −0.054 | 0.899 | 0.172 | 0.283 | 0.801 | 2.389 | 39.820 | 89.731 | |
Figure 1Soil electrical conductivity in 10 cm depth of plough layer with different regulatory methods.
Figure 2Mass fraction of soil salt in plough layer with regulatory methods.
Figure 3Profile distribution of soil salts in different experimental seasons.
Figure 4Changes of organic matter content in plough layer with different regulatory methods.
Changes of soil nutrient in plough layer with different regulatory methods. Columns with the same letter represent values that are not significantly different at the 0.05 level of probability according to Duncan's multiple range test. Each value is the mean ± SD (n = 3).
| Treatment | Available N (mg kg−1 ) | Available P (mg kg−1) | Available K (mg kg−1) | ||||||
|---|---|---|---|---|---|---|---|---|---|
| 2011 | 2012 | 2013 | 2011 | 2012 | 2013 | 2011 | 2012 | 2013 | |
| CK | 53.33 ± 2.50b
| 61.08 ± 3.26c | 65.43 ± 4.84c | 10.14 ± 0.39c | 9.84 ± 0.37bc | 8.61 ± 0.10b | 75.13 ± 3.96b | 72.35 ± 2.04b | 74.32 ± 4.21b |
| Straw mulching | 62.38 ± 5.56a | 78.28 ± 3.61a | 90.29 ± 6.53a | 12.91 ± 0.34a | 11.87 ± 0.24a | 9.34 ± 0.17a | 88.88 ± 2.27a | 100.49 ± 8.81a | 107.09 ± 5.58a |
| Soil structure conditioner | 53.63 ± 1.53b | 70.76 ± 1.71b | 80.44 ± 4.09b | 11.17 ± 0.25b | 9.63 ± 0.50c | 7.14 ± 0.32c | 71.85 ± 4.60b | 70.95 ± 3.19b | 61.61 ± 1.57c |
| Water-retaining agent | 52.34 ± 2.23b | 65.23 ± 2.62c | 74.14 ± 7.07bc | 10.64 ± 0.41bc | 10.38 ± 0.27b | 8.97 ± 0.09b | 77.76 ± 1.47b | 70.70 ± 3.57b | 77.91 ± 7.25b |
Main quality indexes of tomato fruit. Columns with the same letter represent values that are not significantly different at the 0.05 level of probability according to the Duncan's multiple range test.
| Year | Treatment | Density (g cm−3) | Volume (cm3) | Soluble solid (%) | Total acid (g 100 g−1) | Vitamin C (mg 100 g−1) | Sugar/acid ratio |
|---|---|---|---|---|---|---|---|
| 2011 | CK | 0.940a | 114.34b | 7.66a | 0.672b | 13.82a | 9.61a |
| Straw mulching | 0.957a | 138.98a | 6.95b | 0.598c | 11.80c | 8.79c | |
| Soil structure conditioner | 0.948a | 127.87ab | 7.12ab | 0.621c | 12.54b | 9.04b | |
| Water-retaining agent | 0.948a | 122.05b | 7.25ab | 0.746a | 13.55a | 9.11b | |
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| 2012 | CK | 0.937a | 110.48b | 7.58a | 0.666ab | 14.12a | 9.87a |
| Straw mulching | 0.949a | 130.66a | 7.02b | 0.613b | 11.89c | 9.01b | |
| Soil structure conditioner | 0.944a | 122.32ab | 7.28ab | 0.627b | 12.64b | 9.12b | |
| Water-retaining agent | 0.940a | 128.68a | 7.37a | 0.708a | 13.85a | 9.29b | |
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| 2013 | CK | 0.939a | 122.48a | 8.07a | 0.622b | 14.11a | 10.04a |
| Straw mulching | 0.948a | 124.93a | 7.14b | 0.646ab | 12.54b | 9.37b | |
| Soil structure conditioner | 0.941a | 125.28a | 7.11b | 0.699a | 12.19b | 9.25c | |
| Water-retaining agent | 0.945a | 121.15a | 7.08b | 0.638ab | 14.09a | 9.41b | |
Comprehensive quality index, soil salt content in plough layer, and tomato yield.
| Treatment | Comprehensive quality index | Salt in plough layer (g kg−1) | Tomato yield (t hm−2) | ||||||
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| 2011 | 2012 | 2013 | 2011 | 2012 | 2013 | 2011 | 2012 | 2013 | |
| CK | 3.014 | 2.872 | 2.617 | 1.47 | 1.46 | 1.27 | 103.84 | 108.68 | 112.47 |
| Straw mulching | 1.000 | 1.000 | 1.713 | 1.10 | 0.82 | 0.64 | 136.56 | 145.73 | 157.22 |
| Soil structure conditioner | 1.757 | 1.554 | 1.000 | 1.23 | 0.96 | 0.71 | 122.39 | 139.28 | 134.55 |
| Water-retaining agent | 2.339 | 1.830 | 1.956 | 1.55 | 1.39 | 1.13 | 128.96 | 135.47 | 145.71 |
Figure 5Value of entropy weight coefficient evaluation with different regulatory methods.