TY - JOUR
T1 - Expanding scales
T2 - Achieving prediction of van Genuchten model hydraulic parameters in deep profiles by incorporating broad in situ soil information in pedotransfer functions
AU - Tong, Yongping
AU - Wang, Yunqiang
AU - Zhou, Jingxiong
AU - Guo, Xiangyu
AU - Wang, Ting
AU - Xu, Yuting
AU - Sun, Hui
AU - Zhang, Pingping
AU - Li, Zimin
AU - Lauerwald, Ronny
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/8
Y1 - 2025/8
N2 - Soil hydraulic parameters (SHPs) are essential for evaluating soil ecosystem services. Yet direct measurements are costly, making pedotransfer functions (PTFs) a valuable alternative. Given the scale-dependent nature of soil hydrological processes and increasing importance of deep soil water cycling under global change, PTF research needs to be expanded both vertically and horizontally. Yellow River Basin (YRB) provides a representative region with its vast area (795,000 km2), strongly demanding accurate SHPs. Therefore, we conducted a field sampling at 475 sites up to 5 m depth across YRB, identifying the factors influencing deep SHPs, developing corresponding PTFs, and predicting SHP spatial distributions. Vertically, the heterogeneity of bulk density (BD), residual water content (θr), and shape parameter n of van Genuchten model increased generally, while that of shape parameter α decreased from 0 to 5 m. Horizontally, the order of variability was α > θr > θs > n > BD. Geostatistical analysis indicated moderate (BD, θs, and n) to strong (θr) spatial dependence above 1 m and strong dependence for all SHPs in deeper layers. Deep SHPs were primarily influenced by soil texture, organic carbon, depth, and topography. The new PTFs had higher accuracy than existing classical PTFs with R2 ranging from 0.32 to 0.64 (except for α). This study developed the first set of PTFs for deep SHPs in YRB. The new PTFs with extended soil information further support the expansion of deep soil hydrological research, serving the soil and hydrological process quantification and regulation in YRB and similar regions globally.
AB - Soil hydraulic parameters (SHPs) are essential for evaluating soil ecosystem services. Yet direct measurements are costly, making pedotransfer functions (PTFs) a valuable alternative. Given the scale-dependent nature of soil hydrological processes and increasing importance of deep soil water cycling under global change, PTF research needs to be expanded both vertically and horizontally. Yellow River Basin (YRB) provides a representative region with its vast area (795,000 km2), strongly demanding accurate SHPs. Therefore, we conducted a field sampling at 475 sites up to 5 m depth across YRB, identifying the factors influencing deep SHPs, developing corresponding PTFs, and predicting SHP spatial distributions. Vertically, the heterogeneity of bulk density (BD), residual water content (θr), and shape parameter n of van Genuchten model increased generally, while that of shape parameter α decreased from 0 to 5 m. Horizontally, the order of variability was α > θr > θs > n > BD. Geostatistical analysis indicated moderate (BD, θs, and n) to strong (θr) spatial dependence above 1 m and strong dependence for all SHPs in deeper layers. Deep SHPs were primarily influenced by soil texture, organic carbon, depth, and topography. The new PTFs had higher accuracy than existing classical PTFs with R2 ranging from 0.32 to 0.64 (except for α). This study developed the first set of PTFs for deep SHPs in YRB. The new PTFs with extended soil information further support the expansion of deep soil hydrological research, serving the soil and hydrological process quantification and regulation in YRB and similar regions globally.
KW - Deep soil profile
KW - Pedotransfer functions
KW - Soil hydraulic parameters
KW - Spatial dependence
KW - Yellow River Basin
UR - https://www.scopus.com/pages/publications/85219529542
U2 - 10.1016/j.jhydrol.2025.132912
DO - 10.1016/j.jhydrol.2025.132912
M3 - 文章
AN - SCOPUS:85219529542
SN - 0022-1694
VL - 656
JO - Journal of Hydrology
JF - Journal of Hydrology
M1 - 132912
ER -