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Integrating 1D and 2D hydrodynamic,sediment transport model for dam-break flow using finite volume method 被引量:3
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作者 ZHANG MingLiang XU YuanYuan +1 位作者 HAO ZiNing QIAO Yang 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS 2014年第4期774-783,共10页
The purpose of this study is to set up a dynamically linked 1D and 2D hydrodynamic and sediment transport models for dam break flow.The 1D-2D coupling model solves the generalized shallow water equations,the non-equil... The purpose of this study is to set up a dynamically linked 1D and 2D hydrodynamic and sediment transport models for dam break flow.The 1D-2D coupling model solves the generalized shallow water equations,the non-equilibrium sediment transport and bed change equations in a coupled fashion using an explicit finite volume method.It considers interactions among transient flow,strong sediment transport and rapid bed change by including bed change and variable flow density in the flow continuity and momentum equations.An unstructured Quadtree rectangular grid with local refinement is used in the 2D model.The intercell flux is computed by the HLL approximate Riemann solver with shock captured capability for computing the dry-to-wet interface for all models.The effects of pressure and gravity are included in source term in this coupling model which can simplify the computation and eliminate numerical imbalance between source and flux terms.The developed model has been tested against experimental and real-life case of dam-break flow over fix bed and movable bed.The results are compared with analytical solution and measured data with good agreement.The simulation results demonstrate that the coupling model is capable of calculating the flow,erosion and deposition for dam break flows in complicated natural domains. 展开更多
关键词 1d/2D coupling model finite volume method HLL approximate Riemann solver non-equilibrium sediment transport
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Effects of size and location of distal tear on hemodynamics and wave propagation in type B aortic dissection
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作者 Huimin CHEN Qingzhuo CHI +2 位作者 Ying HE Lizhong MU Yong LUAN 《Applied Mathematics and Mechanics(English Edition)》 SCIE EI CSCD 2022年第9期1449-1468,共20页
The type B aortic dissection(TBAD)is a perilous disease with high morbidity and mortality rates.The hemodynamics of TBAD in different scenarios has been widely studied by computational fluid dynamics(CFD)research.Howe... The type B aortic dissection(TBAD)is a perilous disease with high morbidity and mortality rates.The hemodynamics of TBAD in different scenarios has been widely studied by computational fluid dynamics(CFD)research.However,the flow pattern and wave propagation characteristics in the cardiovascular system with TBAD are not yet clear,and the effect of the distal tear is still unknown.In this work,a onedimensional(1D)cardiovascular system model coupling with a zero-dimensional(0D)lumped-parameter model is introduced to study the hemodynamics and wave propagation in the cardiovascular system.The results show that the proposed 0D-1D method well captures the oscillation and retrograde characteristics for the flow in the false lumen(FL),and the smaller distal tear damps the retrograde flow.Besides,the distal tear should also be paid attention to,and the wave intensity(WI)can be used as an access mark of the degree of the aortic dissection(AD). 展开更多
关键词 type B aorta dissection(TBAD) zero-dimensional(0D)-one-dimensional(1d)coupling model distal tear flow pattern wave intensity analysis(WIA)
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