期刊文献+
共找到2篇文章
< 1 >
每页显示 20 50 100
The deformation evolution and the formation pattern of hot regions of particle cloud with cavity under shock impact
1
作者 Shuai Li Yingming Si +2 位作者 baoqing meng Baolin Tian Wenjun Sun 《Acta Mechanica Sinica》 2025年第6期36-49,共14页
The formation of hotspots and ignition phenomena in cavitated explosive particle clouds under shock wave impacts have garnered widespread attention.However,at the mesoscale,under shock wave impact,there is a notable s... The formation of hotspots and ignition phenomena in cavitated explosive particle clouds under shock wave impacts have garnered widespread attention.However,at the mesoscale,under shock wave impact,there is a notable scarcity of research on the deformation,temperature rise patterns,and heat transfer mechanisms of particle clouds.Most studies focus on loading methods such as drop hammer and falling tests.In our study,we introduce a particle motion elastoplastic contact model based on the discrete element method,enabling precise analysis of particle motion and collision behavior.Furthermore,we consider bidirectional coupling between the particle and gas phases,optimizing momentum and energy equations for the particle phase.This approach allows for a detailed analysis of the dynamics and thermodynamics between particles,systematically considering the elastoplastic collision and shear history between particles.Friction,rolling resistance,plastic dissipation,inter-particle heat transfer,and heat transfer between particles and the fluid are regarded as source terms in the energy equation.In this investigation,the deformation behavior and temperature rise process of particle clouds under shock wave impacts are thoroughly discussed.The temporal evolution of particle cloud temperature under shock wave impacts represents a spatiotemporal correlation phenomenon,delineated into two stages:accelerated temperature rise and steady temperature rise,resulting in the formation of symmetric critical hightemperature regions near the cavity perpendicular to the incoming shock wave direction.Notably,during the accelerated temperature rise stage,plastic dissipation,and two-phase heat transfer jointly contribute,whereas during the steady temperature increase stage,heat is primarily provided by two-phase heat transfer.Sustained heat transfer from the high-temperature shock-impacted gas phase to the particle phase acts as the primary mechanism triggering the formation of wide-range high-temperature regions.The role of plastic dissipation is mainly evident in the plastic collisions of particles near the cavity in the early stages.Additionally,we analyze the influence of incoming shock wave Mach numbers on temperature evolution and hot region formation patterns:stronger shock waves lead to quicker completion of the impact process and higher stable average temperatures.Under shock wave impact,the spatiotemporal characteristics of particle clouds differ from the results of the falling process.Prolonged two-phase heat transfer and intense plastic contact among particles near the cavity in the initial stages are factors triggering critical high-temperature regions. 展开更多
关键词 Particle cloud Heat transfer Cavity collapse Temperature rise pattern Dissipation mechanism
原文传递
On the Nonlinear Growth of Multiphase Richtmyer-Meshkov Instability in Dilute Gas-Particles Flow 被引量:1
2
作者 Huan Zheng Qian Chen +2 位作者 baoqing meng Junsheng Zeng Baolin Tian 《Chinese Physics Letters》 SCIE CAS CSCD 2020年第1期24-28,共5页
We discuss evolutions of nonlinear features in Richtmyer-Meshkov instability(RMI)f which are known as spikes and bubbles.In single-phase RMI,the nonlinear growth has been extensively studied but the relevant investiga... We discuss evolutions of nonlinear features in Richtmyer-Meshkov instability(RMI)f which are known as spikes and bubbles.In single-phase RMI,the nonlinear growth has been extensively studied but the relevant investigation in multiphase RMI is insufficient.Therefore,we illustrate the dynamic coupling behaviors between gas phase and particle phase and then analyze the growth of the nonlinear features theoretically.A universal model is proposed to describe the nonlinear finger(spike and bubble)growth velocity qualitatively in multiphase RMI.Both the effects of gas and particles have been taken into consideration in this model.Further,we derive the analytical expressions of the nonlinear growth model in limit cases(equilibrium How and frozen How).A novel compressible multiphase particle-in-cell(CMP-PIC)method is used to validate the applicability of this model.Numerical finger growth velocity matches well with our model.The present study reveals that particle volume fraction,particle density and Stokes number are the three key factors,which dominate the interphase momentum exchange and further induce the unique property of multiphase RMI. 展开更多
关键词 MULTIPHASE NONLINEAR NONLINEAR
原文传递
上一页 1 下一页 到第
使用帮助 返回顶部