摘要
为克服传统计算流体动力学-离散元法(CFD-DEM)中流体网格需为颗粒尺寸数倍的限制,该文综合考虑相间作用力和颗粒-湍流相互作用,建立了基于扩散平均算法的全耦合CFD-DEM密集颗粒水力输送模型。经实验验证,全耦合模型能很好地预测管内两相流动特性。研究了管道倾角对2 mm粗颗粒水力输送特性包括颗粒空间分布、两相轴向速度、流体湍动能和压降等的影响。结果表明:随着倾角增加,颗粒由偏向管道底部堆积的分布逐渐向近乎均匀的分布转变,流体轴向速度和湍动能分布先逐渐不对称后恢复对称,在60°时不对称程度最大;颗粒-颗粒和颗粒-壁面间碰撞次数均随倾角增加先略微增加后迅速减小;两相流压降随倾角增加先增加后减小,在60°时最大。为降低能耗,输送颗粒应避免使用60°倾斜管,尽量使用小角度或大角度倾斜管。
[Objective] This study proposed a fully coupled computational fluid dynamics-discrete element method(CFD-DEM) model based on a diffusion averaging algorithm for the hydraulic transport of dense particles,integrally considering particle--liquid interphase force and complex particle-turbulence interaction.The proposed model overcame the limitation that fluid mesh needs to be several times the size of the particles in the traditional CFD-DEM model.Moreover,experimental and numerical studies were conducted mainly on horizontal and vertical pipes,and few were conducted on inclined pipes.[Methods] Calculation of particle volume fraction was divided into two steps.First,each particle was randomly and uniformly divided into several feature points,and the initial value of the particle volume fraction was calculated based on the number of feature points occupied in each mesh.Subsequently,a diffusion-based averaging method was employed to solve the particle volume fraction with the initial field and no-flux condition on all physical boundaries in the computational domain.Furthermore,the source terms were added to the k-ε turbulence model to account for the modulation of the turbulence from particles,and the discrete random walk model was used to calculate the stochastic effect of turbulence on particle motion.A drag force considering porosity modification was applied to the two-phase flow through densely packed particle beds.Other particle-liquid forces and particle torques caused by the fluid were also included in the model.The fully coupled CFD-DEM model predicted the hydraulic conveying of dense particles in the pipeline system well.Moreover,this model was used to investigate the effects of pipe inclination on the hydraulic transport of coarse particles(2 mm),including the effects on the spatial distribution of particles,axial velocity of each phase,fluid turbulent kinetic energy,and pressure drop.[Results] The results are summarized as follows:1) The spatial distribution of particles gradually transformed from a relatively densely packed distribution at the bottom of the horizontal pipe to a nearly uniform distribution in the vertical pipe with increasing inclination angle.The distributions of axial liquid velocity and turbulent kinetic energy along the vertical direction were gradually asymmetric and then returned to symmetry,reaching the maximum degree of asymmetry at 60°.2) In the inclined pipes,the axial velocity of particles was lower and higher at the bottom and top of the pipe,respectively.Meanwhile,the axial velocity of the particles in the vertical pipe was parabolically distributed,with higher velocity at the center of the pipe and lower velocity near the wall.3) The number of collisions between particles and between particles and walls increased slightly and then decreased rapidly with increasing inclination angle.4) Moreover,pressure drop in the two-phase flow initially increased and then decreased with increasing inclination angle,reaching the maximum at 60°.[Conclusions] This study demonstrates that the inclination angle significantly affects the distributions of particles,the number of collisions between particles and between particles and walls,liquid turbulent kinetic energy,and pressure drop.A small or large inclined angle is suggested for the hydraulic transport of particles,and a 60° inclined pipe should be avoided to reduce energy consumption.
作者
周游
陈根发
陈明洪
陈鑫
何茜
ZHOU You;CHEN Gengfa;CHEN Minghong;CHEN Xin;HE Xi(College of Water Resources and Civil Engineering,China Agricultural University,Beijing 100083,China;Department of Water Resources Research,China Institute of Water Resources and Hydropower Research,Beijing 100044,China)
出处
《清华大学学报(自然科学版)》
EI
CAS
CSCD
北大核心
2024年第11期1987-1996,共10页
Journal of Tsinghua University(Science and Technology)
基金
国家自然科学基金国际合作与交流项目(41961144014)。
关键词
倾斜管
水力输送
计算流体动力学-离散元法(CFD-DEM)
压降
两相流
inclined pipe
hydraulic transport
computational fluid dynamics-discrete element method(CFD-DEM)
pressure drop
two-phaseflow