Fractal Characteristics of Natural Fiber-Reinforced Soil in Arid Climate Due to Cracking
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Sample Preparation and Test Methods
2.3. Digital Image Processing
2.4. Calculation of Crack Characteristic Parameters
2.5. Structural Characteristics Model of Soil Reinforced with Natural Fibers
3. Experimental Results
3.1. Effect of Natural Fibers on Soil Evaporation
3.2. Crack Morphology
3.3. Variations in Crack Characteristic Parameters
4. Discussion of Results
Mechanism of Reduction of Soil Evaporation and Cracking with Natural Fiber Additive
5. Summary and Conclusions
- At the end of the evaporation process, the residual water contents of the samples with 0%, 1%, 2%, and 4% fiber are 3.18%, 4.18%, 5.04%, and 6.42%, respectively. All of the samples with fiber content have a higher residual water content than the sample without fibers; they can retain 31.4%, 58.5%, and 101.9% more water, respectively.
- The surface morphology of the soil is composed of primary and secondary cracks which form a crack network. The sample with 1% fiber mainly inhibits the expansion of the secondary cracks and crack networks, but does not affect the expansion of the primary cracks. However, samples with 2% or 4% fiber can prevent the initiation of both primary and secondary cracks as well as crack networks.
- At the end of the cracking process, the final crack ratios of the samples with 0%, 1%, 2%, and 4% fiber are 28.31%, 26.03%, 21.49%, and 18.4%, respectively. Evidently, rice straw fibers used as additives can reduce the crack ratio of the samples with 1%, 2%, and 4% fiber by 8.05%, 24.09%, and 35.01%, respectively.
- The final fractal dimensions of the samples with 0%, 1%, 2%, and 4% fiber are 1.673, 1.664, 1.581, and 1.566, respectively. This shows that the addition of 1%, 2%, and 4% rice straw fiber reduces the fractal dimension by 0.54%, 5.50%, and 6.40%, respectively.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
- Qi, W.; Zhang, Z.; Wang, C. Desiccation and cracking behaviour of clay loam subjected to different irrigation methods during wetting–drying cycles. Eur. J. Soil Sci. 2020, 72, 793–809. [Google Scholar] [CrossRef]
- Kishné, A.S.; Morgan, C.L.; Ge, Y.F.; Miller, W.L. Antecedent soil moisture affecting surface cracking of a vertisol in field conditions. Geoderma 2010, 157, 109–117. [Google Scholar] [CrossRef]
- Chertkov, V.Y. Using surface crack spacing to predict crack network geometry in swelling soils. Soil Sci. Soc. Am. J. 2000, 64, 1918–1921. [Google Scholar] [CrossRef]
- Wang, C.; Zhang, Z.Y.; Fan, S.M.; Richwell, M.; Xie, M.X. Effects of straw incorporation on desiccation cracking patterns and horizontal flow in cracked clay loam. Soil Tillage Res. 2018, 182, 130–143. [Google Scholar] [CrossRef]
- Rayhani, M.H.; Yanful, E.K.; Fakher, A. Desiccation-induced cracking and its effect on the hydraulic conductivity of clayey soils from Iran. Can. Geotech. J. 2007, 44, 276–283. [Google Scholar] [CrossRef]
- Li, X.; You, Q.L.; Ren, G.Y.; Wang, S.Y.; Zhang, Y.Q.; Yang, J.L.; Zheng, G.F. Concurrent droughts and hot extremes in Northwest China from 1961 to 2017. Int. J. Climatol. 2018, 39, 2186–2196. [Google Scholar] [CrossRef]
- Costa, S.; Kodikara, J.; Barbour, S.L.; Fredlund, D.G. Theoretical analysis of desiccation crack spacing of a thin, long soil layer. Acta Geotech. 2018, 13, 39–49. [Google Scholar] [CrossRef]
- Wei, W.; Zhang, H.Y.; Zhou, J.J.; Zhou, L.; Xie, B.B.; Li, C.H. Drought monitoring in arid and semi-arid region based on multi-satellite datasets in northwest, China. Environ. Sci. Pollut. Res. 2021, 28, 51556–51574. [Google Scholar] [CrossRef] [PubMed]
- Sutanto, S.J.; Vitolo, C.; Napoli, C.D.; D’Andrea, M.; Van Lanen, H.A. Heatwaves, droughts, and fires: Exploring compound and cascading dry hazards at the pan-European scale. Environ. Int. 2020, 134, 105276. [Google Scholar] [CrossRef]
- Zhang, Q.; Zhang, J. Drought hazard assessment in typical corn cultivated areas of China at present and potential climate change. Nat. Hazards 2016, 81, 1323–1331. [Google Scholar] [CrossRef]
- Wang, A.; Lettenmaier, D.P.; Sheffield, J. Soil moisture drought in China, 1950–2006. J. Clim. 2011, 24, 3257–3271. [Google Scholar] [CrossRef]
- Yao, J.Q.; Zhao, Y.; Yu, X.J. Spatial-temporal variation and impacts of drought in Xinjiang (Northwest China) during 1961–2015. PeerJ 2018, 6, e4926. [Google Scholar] [CrossRef] [PubMed]
- Balugani, E.; Lubczynski, M.; van der Tol, C.; Metselaar, K. Testing three approaches to estimate soil evaporation through a dry soil layer in a semi-arid area. J. Hydrol. 2018, 567, 405–419. [Google Scholar] [CrossRef]
- Zhang, J.; Yang, J.; An, P.; Ren, W.; Pan, Z.; Dong, Z.; Han, G.; Pan, Y.; Pan, S.; Tian, H. Enhancing soil drought induced by climate change and agricultural practices: Observational and experimental evidence from the semiarid area of northern China. Agric. For. Meteorol. 2017, 243, 74–83. [Google Scholar] [CrossRef]
- Ciocca, F.; Lunati, I.; Parlange, M.B. Effects of the water retention curve on evaporation from arid soils. Geophys. Res. Lett. 2014, 41, 3110–3116. [Google Scholar] [CrossRef]
- Katata, G.; Nagai, H.; Ueda, H.; Agam, N.; Berliner, P.R. Development of a land surface model including evaporation and adsorption processes in the soil for the land air exchange in arid regions. J. Hydrometeorol. 2007, 8, 1307–1324. [Google Scholar] [CrossRef]
- Qiu, G.Y.; Li, C.; Yan, C.H. Characteristics of soil evaporation, plant transpiration and water budget of nitraria dune in the arid Northwest China. Agric. For. Meteorol 2015, 203, 107–117. [Google Scholar] [CrossRef]
- Gong, C.C.; Wang, W.K.; Zhang, Z.Y.; Wang, H.; Luo, J.; Brunner, P. Comparison of field methods for estimating evaporation from bare soil using lysimeters in a semi-arid area. J. Hydrol. 2020, 590, 125334. [Google Scholar] [CrossRef]
- Zribi, M.; Chahbi, A.; Shabou, M.; Lili-Chabaane, Z.; Duchemin, B.; Baghdadi, N.; Amri, R.; Chehbouni, A. Soil surface moisture estimation over a semi-arid region using envisat asar radar data for soil evaporation evaluation. Hydrol. Earth Syst. Sci. 2011, 15, 345–358. [Google Scholar] [CrossRef]
- Cordero, J.A.; Useche, G.; Prat, P.C.; Ledesma, A.; Santamarina, J.C. Soil desiccation cracks as a suction–contraction process. Géotech. Lett. 2017, 7, 272–278. [Google Scholar] [CrossRef]
- Li, J.H.; Lu, Z.; Guo, L.B.; Zhang, L.M. Experimental study on soil-water characteristic curve for silty clay with desiccation cracks. Eng. Geol. 2017, 218, 70–76. [Google Scholar] [CrossRef]
- Stewart, R.D.; Abou Najm, M.R. Field Measurements of Soil Cracks. Soil Sci. Soc. Am. J. 2020, 84, 1462–1476. [Google Scholar] [CrossRef]
- Wang, Y.; Feng, D.; Ng, C.W. Modeling the 3D crack network and anisotropic permeability of saturated cracked soil. Comput. Geotech. 2013, 52, 63–70. [Google Scholar] [CrossRef]
- Trabelsi, H.; Jamei, M.; Zenzri, H.; Olivella, S. Crack patterns in clayey soils: Experiments and modeling. Int. J. Numer. Anal. Methods Geomech. 2012, 36, 1410–1433. [Google Scholar] [CrossRef]
- Yesiller, N.; Miller, C.J.; Inci, G.; Yaldo, K. Desiccation and cracking behavior of three compacted landfill liner soils. Eng. Geol. 2000, 57, 105–121. [Google Scholar] [CrossRef]
- Luo, Y.; Zhang, J.M.; Zhou, Z.; Shen, Z.J.; Chong, L.; Victor, C. Investigation and prediction of water infiltration process in cracked soils based on a full-scale model test. Geoderma 2021, 400, 115111. [Google Scholar] [CrossRef]
- Peron, H.; Delenne, J.Y.; Laloui, L.; Youssoufi, M.S. Discrete element modelling of drying shrinkage and cracking of soils. Comput. Geotech. 2009, 36, 61–69. [Google Scholar] [CrossRef]
- Gui, Y.L.; Zhao, Z.Y.; Kodikara, J.; Bui, H.H.; Yang, S.Q. Numerical modelling of laboratory soil desiccation cracking using UDEC with a mix-mode cohesive fracture model. Eng. Geol. 2016, 202, 14–23. [Google Scholar] [CrossRef]
- Gui, Y.; Zhao, G.F. Modelling of laboratory soil desiccation cracking using DLSM with a two-phase bond model. Comput. Geotech. 2015, 69, 578–587. [Google Scholar] [CrossRef]
- Julina, M.; Thyagaraj, Y. Quantification of desiccation cracks using X-ray tomography for tracing shrinkage path of compacted expansive soil. Acta Geotech. 2018, 14, 35–56. [Google Scholar] [CrossRef]
- Auvray, R.; Rosin-Paumier, S.; Abdallah, A.; Masrouri, F. Quantification of soft soil cracking during suction cycles by image processing. Eur. J. Environ. Civ. Eng. 2014, 18, 11–32. [Google Scholar] [CrossRef]
- Hejazi, S.M.; Sheikhzadeh, M.; Abtahi, S.M.; Zadhoush, A. A simple review of soil reinforcement by using natural and synthetic fibers. Constr. Build. Mater. 2012, 30, 100–116. [Google Scholar] [CrossRef]
- Chaduvula, U.; Viswanadham, B.; Kodikara, J. A study on desiccation cracking behavior of polyester fiber-reinforced expansive clay. Appl. Clay Sci. 2017, 142, 163–172. [Google Scholar] [CrossRef]
- Zhou, B.; Zhong, H.; Yang, K.; Yang, X.; Cai, C.; Xiao Liu, Y.; Yuan, B. A Study on the Factors Influencing High Backfill Slope Reinforced with Anti-Slide Piles under Static Load Based on Numerical Simulation. Buildings 2024, 14, 799. [Google Scholar] [CrossRef]
- Tang, C.S.; Shi, B.; Cui, Y.J.; Liu, C.; Gu, K. Desiccation cracking behaviour of polypropylene fiber-reinforced clayey soil. Can. Geotech. J. 2012, 49, 1088–1101. [Google Scholar] [CrossRef]
- Basso, A.S.; Miguez, F.E.; Laird, D.A.; Horton, R.; Westgate, M. Assessing potential of biochar for increasing water-holding capacity of sandy soils. GCB Bioenergy 2013, 5, 132–143. [Google Scholar] [CrossRef]
- Farzi, R.; Gholami, M.; Baninasab, B.; Gheysari, M. Evaluation of different mulch materials for reducing soil surface evaporation in semi-arid region. Soil Use Manag. 2017, 33, 120–128. [Google Scholar] [CrossRef]
- Cabangon, R.J.; Tuong, T.P. Management of cracked soils for water saving during land preparation for rice cultivation. Soil Tillage Res. 2000, 56, 105–116. [Google Scholar] [CrossRef]
- Nyabwisho, K.A.; Diels, J.; Kahimba, F.C.; Griensven, A.V. Measuring soil evaporation from a cropped land in the semi-arid Makanya catchment, Northern Tanzania: Methods and Challenges. Phys. Chem. Earth 2020, 118–119, 102884. [Google Scholar] [CrossRef]
- Mellouli, H.J.; Wesemael, B.V.; Poesen, J.; Hartmann, R. Evaporation losses from bare soils as influenced by cultivation techniques in semi-arid regions. Agric. Water Manag. 2000, 42, 355–369. [Google Scholar] [CrossRef]
- Bordoloi, S.; Hussain, R.; Garg, A.; Sreedeep, S.; Zhou, W.H. Infiltration characteristics of natural fiber reinforced soil. Transp. Geotech. 2017, 12, 37–44. [Google Scholar] [CrossRef]
- Savastano, H., Jr.; Warden, P.G.; Coutts, R.S.P. Brazilian waste fibres as reinforcement for cement-based composites. Cem. Concr. Compos. 2000, 22, 379–384. [Google Scholar] [CrossRef]
- Zakikhani, P.; Zahari, R.; Sultan, M.T.H.; Majid, D.L. Extraction and preparation of bamboo fibre-reinforced composites. Mater. Des. 2014, 63, 820–828. [Google Scholar] [CrossRef]
- Tran, K.Q.; Satomi, T.; Takahashi, H. Tensile behaviors of natural fiber and cement reinforced soil subjected to direct tensile test. J. Build. Eng. 2019, 24, 100748. [Google Scholar] [CrossRef]
- Sharma, V.; Vinayak, H.K.; Marwaha, B.M. Enhancing compressive strength of soil using natural fibers. Constr. Build. Mater. 2015, 93, 943–949. [Google Scholar] [CrossRef]
- Greeshma, P.G.; Joseph, M. Rice Straw Reinforcement for Improvement in Kuttanad Clay. In Proceedings of the Indian Geotechnical Conference, Kochi, India, 15–17 December 2011. (Paper No. H222). [Google Scholar]
- Zhao, L.S.; Zhou, W.H.; Su, L.J.; Grag, A.; Yuen, K.V. Selection of Physical and Chemical Properties of Natural Fibers for Predicting Soil Reinforcement. Am. Soc. Civ. Eng. 2019, 31, 04019212. [Google Scholar] [CrossRef]
- Panigrahy, C.; Seal, A.; Mahato, N.K.; Bhattacharjee, D. Differential box counting methods for estimating fractal dimension of grayscale-scale images: A survey. Chaos Solitons Fractals 2019, 126, 178–202. [Google Scholar] [CrossRef]
Moisture Content | Specific Gravity | Liquid Limit (%) | Plastic Limit (%) | Clay (<0.002 mm) | Silt (0.002–0.075 mm) | Silt (>0.075 mm) |
---|---|---|---|---|---|---|
22.8 | 2.74 | 36.8 | 18.6 | 12.65 | 8.42 | 78.93 |
Length (cm) | Width (cm) | Cellulose (%) | Hemicellulose (%) | Ash Content (%) | Water Content (%) | Tensile Strength (MPa) | Bending Strength (MPa) |
---|---|---|---|---|---|---|---|
0.5–1 | 0.2 | 40.5 | 17.8 | 7.25 | 9.2 | 39.6 | 11.6 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Yang, B.; Jin, L. Fractal Characteristics of Natural Fiber-Reinforced Soil in Arid Climate Due to Cracking. Fractal Fract. 2024, 8, 209. https://doi.org/10.3390/fractalfract8040209
Yang B, Jin L. Fractal Characteristics of Natural Fiber-Reinforced Soil in Arid Climate Due to Cracking. Fractal and Fractional. 2024; 8(4):209. https://doi.org/10.3390/fractalfract8040209
Chicago/Turabian StyleYang, Binbin, and Lichuang Jin. 2024. "Fractal Characteristics of Natural Fiber-Reinforced Soil in Arid Climate Due to Cracking" Fractal and Fractional 8, no. 4: 209. https://doi.org/10.3390/fractalfract8040209
APA StyleYang, B., & Jin, L. (2024). Fractal Characteristics of Natural Fiber-Reinforced Soil in Arid Climate Due to Cracking. Fractal and Fractional, 8(4), 209. https://doi.org/10.3390/fractalfract8040209