Study on Fractal Characteristics of Mineral Particles in Undisturbed Loess and Lime-Treated Loess
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sampling
2.2. Sample Image Processing
2.3. Distribution Characteristics of Mineral Particle Size
3. Fractal Theory
3.1. Single Multifractal Calculation
3.2. Multifractal Calculation
4. Results and Analysis
4.1. Mineral Particle Size Comparison
4.2. Single Fractal of Mineral Particle Distribution
4.3. Multifractal of Mineral Particle Distribution
4.3.1. Generalized Dimension Spectrum Curve
4.3.2. Singular Spectrum Analysis
5. Conclusions
- The skeleton particles of undisturbed loess were obvious and the soil structure was loose, whereas the skeleton particles of lime-treated loess decreased, fine particles were connected with each other, and the soil structure changed from loose to dense. The particle size of each mineral particle in lime-treated loess decreased, and the distribution of carbonate mineral particles was the most non-uniform.
- Mineral particles in undisturbed loess and lime-treated loess did not conform to the single fractal distribution characteristics, whereas the overall particle distribution had fractal characteristics.
- The distribution of mineral particles in lime-treated loess was obviously asymmetric, indicating that the percentage of mineral particles in the soil varies greatly with particle size.
- The non-uniform degree of mineral particles in the two soils was as follows: carbonate minerals in lime-treated loess > carbonate minerals in undisturbed loess > quartz minerals in lime-treated loess > feldspar minerals in lime-treated loess > feldspar minerals in undisturbed loess > quartz minerals in undisturbed loess.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Multifractal Parameters | Undisturbed Loess | Lime-Treated Loess | ||||
---|---|---|---|---|---|---|
Quartz Minerals | Carbonate Minerals | Feldspar Minerals | Quartz Minerals | Carbonate Minerals | Feldspar Minerals | |
1 | 1 | 1 | 1 | 1 | 1 | |
0.9331 | 0.8832 | 0.8826 | 0.8632 | 0.8821 | 0.8734 | |
0.9072 | 0.8411 | 0.8411 | 0.8585 | 0.8688 | 0.8621 | |
0.8872 | 0.7842 | 0.7842 | 0.8578 | 0.8611 | 0.8595 | |
1.3645 | 1.8331 | 1.4025 | 1.6714 | 1.8612 | 1.4750 | |
0.4773 | 1.0488 | 0.6183 | 0.8136 | 1.0001 | 0.6155 | |
0.9331 | 0.8832 | 0.8826 | 0.8632 | 0.8821 | 0.8734 | |
Spectral width | 0.5311 | 1.1175 | 0.6883 | 0.9289 | 1.1183 | 0.7026 |
Degree of symmetry | 0 | 0.5127 | −0.2269 | −0.0568 | 0.1152 | −0.0617 |
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Song, J.; Ma, J.; Li, F.; Chai, L.; Chen, W.; Dong, S.; Li, X. Study on Fractal Characteristics of Mineral Particles in Undisturbed Loess and Lime-Treated Loess. Materials 2021, 14, 6549. https://doi.org/10.3390/ma14216549
Song J, Ma J, Li F, Chai L, Chen W, Dong S, Li X. Study on Fractal Characteristics of Mineral Particles in Undisturbed Loess and Lime-Treated Loess. Materials. 2021; 14(21):6549. https://doi.org/10.3390/ma14216549
Chicago/Turabian StyleSong, Jian, Jiaxin Ma, Fengyan Li, Lina Chai, Wenfu Chen, Shi Dong, and Xiaojun Li. 2021. "Study on Fractal Characteristics of Mineral Particles in Undisturbed Loess and Lime-Treated Loess" Materials 14, no. 21: 6549. https://doi.org/10.3390/ma14216549
APA StyleSong, J., Ma, J., Li, F., Chai, L., Chen, W., Dong, S., & Li, X. (2021). Study on Fractal Characteristics of Mineral Particles in Undisturbed Loess and Lime-Treated Loess. Materials, 14(21), 6549. https://doi.org/10.3390/ma14216549