| Literature DB >> 30837513 |
Wenju Zhao1,2, Taohong Cao3,4, Pinxin Dou3,4, Jie Sheng3,4, Minqiang Luo3,4.
Abstract
Superabsorbent polymers (SAPs) are type of hydrogels capable to swell and absorb a large amount of water, but easily decomposed and oxidized by the air. We used electron-microscopic imaging in an indoor simulation with sand mulching to test the effects of various SAP concentrations on controlling evaporation and salt formation. The treatments were sand-mulched columns containing 0, 0.1, 0.2, 0.5 and 1.0% SAP. The soil particle pores were from dense to sparse and the corresponding fractal dimension decreased as SAP concentration increased. SAP concentration was correlated negatively with fractal dimension, clay-particle fraction and silt-volume fraction. And it showed a positive correlation with sand volume fraction. SAP concentration significantly affected the particle-size distribution. Water-storage capacity increased in each column layer (five 8-cm layers) at the same infiltration depth. Evaporation decreased the water content of each layer. Sand mulching combined with the SAP decreased evaporation in each layer relative to the control, which retained more water and decreased the accumulation of surface salt in the order 1.0% > 0.5% > 0.2% > 0.1% > 0. Salt migrated at 0-30 cm with sand mulching but 0-25 cm with sand mulching and SAP amendment. The decrease in salt accumulation was most effective at a SAP concentration of 0.2%.Entities:
Year: 2019 PMID: 30837513 PMCID: PMC6401125 DOI: 10.1038/s41598-019-39412-x
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Particle-size distributions of the experimental soil and sand mulch.
| soil Particle size (μm) | <1 | <10 | <50 | <1000 | <2000 |
|---|---|---|---|---|---|
| soil (%) | 10.06 | 23.13 | 80.26 | 99.46 | 100.00 |
| Sand composition (mm) | <0.63 | <1.25 | <2.50 | <5.00 | <10.00 |
| sand (%) | 34.62 | 59.70 | 79.58 | 94.51 | 100.00 |
Figure 1Soil column.
Figure 2Image and distribution of soil particle size. (a,a) particle size distribution of CK; (b,b) particle size distribution with SAP concentration of 0.1%; (c,c) particle size distribution with SAP concentration of 0.2%; (d,d) particle size distribution with SAP concentration of 0.5%; (e,e) particle size distribution with SAP concentration of 1.0%.
Relationship between different SAP concentration and soil particle size distribution with sand mulching.
| various SAP concentrations/% | Content of different particle sizes /% | SWC/% | fractal dimension D | the correlation coefficient/R2 | |||||
|---|---|---|---|---|---|---|---|---|---|
| clay | sily | sand | |||||||
| <2 μm | 2~5 μm | 5~20 μm | 20~50 μm | 50~500 μm | >500 μm | ||||
| 0 | 8.665 | 11.816 | 29.498 | 30.606 | 19.208 | 0.207 | 28.55 | 2.568 | 0.887 |
| 0.10 | 7.979 | 10.716 | 29.063 | 30.645 | 21.382 | 0.215 | 32.70 | 2.550 | 0.894 |
| 0.20 | 7.508 | 10.559 | 28.013 | 30.756 | 22.940 | 0.224 | 33.64 | 2.539 | 0.898 |
| 0.50 | 6.971 | 9.280 | 27.641 | 31.083 | 24.786 | 0.239 | 34.56 | 2.520 | 0.904 |
| 1.00 | 6.256 | 9.115 | 27.023 | 31.578 | 25.653 | 0.375 | 38.16 | 2.502 | 0.904 |
Correlation between soil particle size and fractal dimension.
| soil properties | D | the volume fraction of clay (%) | the volume fraction of sily (%) | the volume fraction of sand (%) | SAP concentrations (%) | SWC (%) |
|---|---|---|---|---|---|---|
| D | 1 | |||||
| the volume fraction of clay (%) | 0.998** | 1 | ||||
| the volume fraction of sily (%) | 0.973** | 0.973** | 1 | |||
| the volume fraction of sand (%) | −0.988** | −0.989** | −0.997** | 1 | ||
| SAP concentrations (%) | −0.95* | −0.949** | −0.865 | 0.899* | 1 | |
| SWC (%) | −0.968** | −0.977** | −0.937** | −0.957* | 0.911* | 1 |
Figure 3Correspondence between soil fractal dimension and SAP concentration.
The average water content at different sampling in different SAP concentrations.
| sampling points | CK | 0.10% | 0.20% | 0.50% | 1.00% | |
|---|---|---|---|---|---|---|
| 2 cm | before evaporation | 36.73 | 37.83 | 39.29 | 40.66 | 42.55 |
| day 10 of evaporation | 28.55 | 32.70 | 33.64 | 34.56 | 38.16 | |
| day 20 of evaporation | 27.97 | 29.41 | 31.57 | 32.08 | 34.64 | |
| day 30 of evaporation | 26.07 | 28.91 | 30.85 | 30.93 | 33.65 | |
| 18 cm | before evaporation | 34.33 | 36.07 | 37.52 | 37.84 | 38.81 |
| day 10 of evaporation | 30.84 | 30.93 | 32.67 | 33.83 | 34.85 | |
| day 20 of evaporation | 29.21 | 29.67 | 31.25 | 31.84 | 33.13 | |
| day 30 of evaporation | 28.21 | 29.35 | 30.34 | 31.53 | 33.76 | |
Figure 4Soil-water content with depth for the various SAP concentrations. (a) before the beginning of evaporation; (b) day 10 of evaporation; (c) day 20 of evaporation; (d) day 30 of evaporation.
The average salt content at different sampling in different SAP concentrations ms/cm.
| sampling points | CK | 0.10% | 0.20% | 0.50% | 1% | |
|---|---|---|---|---|---|---|
| 2 cm | before evaporation | 0.22 | 0.22 | 0.21 | 0.21 | 0.19 |
| day 10 of evaporation | 0.52 | 0.37 | 0.35 | 0.34 | 0.33 | |
| day 20 of evaporation | 0.61 | 0.49 | 0.46 | 0.44 | 0.43 | |
| day 30 of evaporation | 0.71 | 0.60 | 0.51 | 0.48 | 0.50 | |
| 18 cm | before evaporation | 0.33 | 0.31 | 0.33 | 0.30 | 0.32 |
| day 10 of evaporation | 0.59 | 0.57 | 0.54 | 0.54 | 0.56 | |
| day 20 of evaporation | 0.53 | 0.54 | 0.52 | 0.55 | 0.53 | |
| day 30 of evaporation | 0.46 | 0.49 | 0.54 | 0.57 | 0.52 | |
Figure 5Variation of soil-salt content with depth for the various concentrations of the SAP. (a) before the beginning of evaporation; (b) day 10 of evaporation; (c) day 20 of evaporation; (d) day 30 of evaporation.