Hourly estimation of water reaching the ground surface in snow-covered regions of Japan using mesoscale meteorological data with the heat balance method

被引:0
作者
Matsunaga, Takamasa [1 ]
Katsura, Shin'ya [2 ,3 ]
机构
[1] Publ Works Res Inst, Eros & Sediment Control Res Grp, 1-6 Minamihara, Tsukuba 3058516, Japan
[2] Hokkaido Univ, Res Fac Agr, Sapporo, Japan
[3] Hokkaido Univ, Ctr Nat Hazards Res, Sapporo, Japan
关键词
Water reaching the ground surface; Snowmelt; Heat balance method; Mesoscale meteorological data; Snowmelt-induced landslides; PREFERENTIAL FLOW; CLIMATE-CHANGE; RIVER-BASIN; MODEL; LANDSLIDE; AVAILABILITY; DISPLACEMENT; INTERCEPTION; TEMPERATURE; MELTWATER;
D O I
10.1016/j.jhydrol.2024.131898
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
In snow-covered regions, landslides, including debris flows, frequently result from snowmelt and cause significant hazards. Because these snowmelt-induced landslides are triggered by increasing groundwater level and pore-water pressure acting on the slip surface due to infiltration of snowmelt, sometimes mixed with rainwater, accurate estimation of water reaching the ground surface (abbreviated MR in this study) on an hourly basis is essential for developing countermeasures such as an early warning system. This study introduces a model for estimating hourly MR, as well as snow water equivalent and snow depth, using mesoscale meteorological data provided by the Japan Meteorological Agency. The model considers four processes: precipitation, snow accumulation and densification, snowmelt, and infiltration. In the snowmelt process, snowmelt is estimated using the heat balance method. We applied the model to a snow observation station in Niigata Prefecture, central Japan, where MR, snow water equivalent, and snow depth were observed during the winter seasons of 2017-18 through 2020-21. Comparisons of observed and calculated values demonstrated that the model successfully reproduced the observations, regardless of the amount of snowfall in individual winter seasons. We propose that this model can estimate hourly MR, snow water equivalent, and snow depth at any location in snow-covered regions where on-site meteorological and snow observations are unavailable.
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页数:17
相关论文
共 82 条
  • [61] Saito M., 2017, Journal of Japan Society of Civil Engineers. Ser. B1, Hydraulic Engineering, V73, pI25, DOI [10.2208/jscejhe.73.I25, DOI 10.2208/JSCEJHE.73.I25]
  • [62] Projection of Future Climate Change in a Non-Hydrostatic Regional Climate Model Nested within an Atmospheric General Circulation Model
    Sasaki, Hidetaka
    Murata, Akihiko
    Hanafusa, Mizuki
    Oh'izumi, Mitsuo
    Kurihara, Kazuo
    [J]. SOLA, 2012, 8 : 53 - 56
  • [63] SNOWFALL INTERCEPTION ON BRANCHES OF 3 CONIFER SPECIES
    SCHMIDT, RA
    GLUNS, DR
    [J]. CANADIAN JOURNAL OF FOREST RESEARCH-REVUE CANADIENNE DE RECHERCHE FORESTIERE, 1991, 21 (08): : 1262 - 1269
  • [64] A review of the recent literature on rainfall thresholds for landslide occurrence
    Segoni, Samuele
    Piciullo, Luca
    Gariano, Stefano Luigi
    [J]. LANDSLIDES, 2018, 15 (08) : 1483 - 1501
  • [65] Shimpo A., 2001, TENKI, V48, P579
  • [66] Shishido Masaya, 2014, Quarterly Report of RTRI, V55, P157
  • [67] Differences in compaction behavior of three climate classes of snow
    Sturm, M
    Holmgren, J
    [J]. ANNALS OF GLACIOLOGY, VOL 26, 1998, 1998, 26 : 125 - 130
  • [68] Sugawara M., 1972, Hydrological lecture 7: Runoff analysis methods
  • [69] Taguchi B., 1994, Journal of the Japanese Society of Snow and Ice, V56, P11, DOI [10.5331/seppyo.56.11, DOI 10.5331/SEPPYO.56.11]
  • [70] Takeuchi Y., 2007, Seppyo, V69, P61, DOI [10.5331/seppyo.69.61, DOI 10.5331/SEPPYO.69.61]