个人信息Personal Information
教师拼音名称:subin
出生日期:1995-03-27
电子邮箱:
入职时间:2023-07-03
所在单位:土木工程学院
职务:助理实验师
学历:研究生(硕士)毕业
办公地点:中南大学铁道学院第二综合实验楼
性别:男
联系方式:subin95@csu.edu.cn
学位:硕士学位
在职信息:在职
毕业院校:中南大学
学科:土木工程
Modeling the progressive entrainment of bed sediment by viscous debris flows using the three-dimensional SC-HBP-SPH method
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发表刊物:Water Research
刊物所在地:英国
关键字:Debris flow; Bed-sediment entrainment; SPH simulation; Surface cell-based algorithm; Integrated method
摘要:Recent reports and experimental data closely indicate that bed-sediment entrainment by debris flows strongly impacts the evolution of the topographic signature of a valley. However, it is difficult to constrain the physics of the entrainment process in numerical models. The challenge is deeply embedded in the shape of the velocity profile, whose knowledge is fundamental for estimating debris-flow basal shear stress exerting on bed sediment. Most two-dimensional models are restricted because the depthintegrated shallow water assumption is problematic in this aspect. One alternative is to combine a threedimensional, particle-based numerical model with a progressive entrainment law. In this paper, we propose a three-dimensional, surface cell (SC)-based smooth particle hydrodynamics (SPH) model for simulating bed-sediment entrainment by viscous debris flows. The dynamic behavior of a debris flow is simulated by the open-source DualSPHysics scheme, into which the Herschel-Bulkley-Papanastasiou (HBP) rheology model is incorporated. Subsequently, the bed surface is meshed, over which the particles belonging to a certain cell at each time step are identified to represent the basal velocity and flow depth using a novel SC-based algorithm. With the extracted velocities of these basal particles, the sediment entrainment rate of each cell can be estimated using the optimized progressive entrainment law. The proposed SC-HBP-SPH method is tested by means of a full-scale flume experiment carried out in a previous study. The results show that the proposed model can adequately describe and reproduce the complex dynamic process of bed-sediment entrainment by overriding debris flows.
备注:中科院一区、TOP期刊,全球82种Nature Index期刊之一, Environmental Science大类学科期刊排名第1.
第一作者:(中科院一区、TOP期刊,全球82种Nature Index期刊之一,Environmental Science大类学科期刊排名第1.)Han Zheng, Su Bin, Li Yange (Corresponding author), Dou Jie, Wang Weidong, Zhao Lianheng
论文类型:期刊论文
论文编号:116031
期号:182
是否译文:否
发表时间:2020-06-13
收录刊物:SCI