Analytical-modified method for determining soil water diffusivity based on horizontal imbibition

被引:0
作者
Shuai J. [1 ]
Long P. [1 ,2 ]
Hu S. [1 ]
Wang G. [1 ,2 ]
Yang Y. [1 ]
Luo S. [2 ]
机构
[1] School of Civil and Surveying Engineering, Jiangxi University of Science and Technology, Ganzhou
[2] Jiangxi Provincial Key Laboratory of Environmental Geotechnical and Engineering Disaster Control, Jiangxi University of Science and Technology, Ganzhou
来源
Nongye Gongcheng Xuebao/Transactions of the Chinese Society of Agricultural Engineering | 2022年 / 38卷 / 02期
关键词
Features; Horizontal imbibition; Soil water diffusivity; Soils; Test;
D O I
10.11975/j.issn.1002-6819.2022.02.008
中图分类号
学科分类号
摘要
Soil water diffusivity is one of the most important hydraulic properties during water transport in soil. It is very necessary to accurately estimate the key parameter in agricultural production. In this study, an analytical-correction approach was constructed to improve the accuracy of the soil water diffusivity using the horizontal imbibition, particularly considering the boundary effect. Assuming that the one-dimensional horizontal imbibition (Richards's equation) was similar to the analytical solution of the linearized equation under the first types of boundary conditions, the approximate analytical solution was deduced using the constant variation. Hence, two parts were divided for the time-dependent change of the water content at the measuring point in the finite-length soil column, i.e., with/without the boundary effect. Firstly, two parameters were determined to approximate the analytical solution without the boundary. Secondly, the experimental data were corrected by the analytical solution considering the boundary effect. Finally, the soil water diffusivity was determined to analyze the corrected data using the horizontal imbibition. As such, an analytical-correction approach was established to estimate the soil water diffusivity, further to verify the numerical and physical laboratory experiments. A Hydrus-1D software was used to simulate the migration process of water in six soil textures, including the loam sand, sandy loam, sandy clay loam, loam, silt clay, and silt. An indoor horizontal imbibition test was also carried out to verify the analytical solutions and analytical-correction model. The types of test soil were taken from the topsoil of ionic rare earth mines in Xinfeng County, Jiangxi Province, Xunwu County, Jiangxi Province, and Pingnan County, Fujian Province. The volumetric water content with time and coordinates were real-time monitored at the two measuring points (p1 and p2,) using the FDS-100 water sensor. The results show that the analytical-correction approach can be widely expected to accurately correct the data caused by the boundary effect, where the closer to the water inlet was, the larger the corrected water content range was. Both the laboratory test and Hydrus-1D simulation demonstrated that the determination coefficients of the soil water diffusivity were all above 0.900 using the new analytical-correction, which was much higher than that of the horizontal imbibition only (below 0.600), although the time-varying data of water content was susceptible to the boundary effects. Furthermore, the coefficients of determination were all greater than 0.950 for the test at the different measuring points in the indoor test. Consequently, the new analysis-correction can be expected to accurately estimate the soil water diffusivity, particularly combining with the horizontal imbibition. © 2022, Editorial Department of the Transactions of the Chinese Society of Agricultural Engineering. All right reserved.
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页码:67 / 75
页数:8
相关论文
共 27 条
  • [1] Diao Wanying, Liu Gang, Si Bingcheng, Transient stochastic analysis on influence of hydraulic heterogeneity on drainage in soils, Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 32, 24, pp. 107-113, (2016)
  • [2] Su L J, Wang J, Qin X Q, Et al., Approximate solution of a one-dimensional soil water infiltration equation based on the Brooks-Corey model, Geoderma, 297, pp. 28-37, (2017)
  • [3] Hu Chuanwang, Wang Hui, Lu Jiayu, Et al., Response of soil hydraulic property to sodium salt solution concentration in subtropical zone, Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 36, 3, pp. 86-91, (2020)
  • [4] Simunek J, van Genuchten M T., Estimating unsaturated soil hydraulic properties from tension disc infiltrometer data by numerical inversion, Water Resources Research, 32, 9, pp. 2683-2696, (1996)
  • [5] Toorman A F, Wierenga P J, Hills R G., Parameter estimation of hydraulic properties from one-step outflow data, Water Resources Research, 28, 11, pp. 3021-3028, (1992)
  • [6] Vrugt J A, Bouten W, Weerts A H., Information content of data for identifying soil hydraulic parameters from outflow experiments, Soil Science Society of America Journal, 65, 1, pp. 19-27, (2001)
  • [7] Zhang Jun, Xu Shaohui, Liu Jianli, Et al., Parameter estimation analysis of soil hydraulic properties, Journal of Hydraulic Engineering, 36, 4, pp. 445-451, (2005)
  • [8] Bruce R R, Klute A., The measurement of soil moisture diffusivity, Soil Science Society of America Journal, 20, 4, pp. 458-462, (1956)
  • [9] Gan Yongde, Hu Shunjun, Chen Xiulong, Influence of soil salt content on soil water diffusivity, Bulletin of Soil and Water Conservation, 30, 6, pp. 56-59, (2010)
  • [10] Guo Quanen, Nan Lili, Li Baoguo, Et al., Effect of salt ion composition of irrigation water on parameters of soil water and salt movement, Transactions of the Chinese Society of Agricultural Engineering (Transactions of the CSAE), 33, 23, pp. 123-128, (2017)