• CN:11-2187/TH
  • ISSN:0577-6686

›› 2004, Vol. 40 ›› Issue (9): 16-22,2.

• 论文 • 上一篇    下一篇

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聚合物全三维非稳态非等温多相分层流动成型过程的理论模型和数值模拟

周国发;孙懋   

  1. 南昌大学环境科学与工程学院
  • 发布日期:2004-09-15

3D-DIMENSIONAL UNSTEADY NON-ISOTHERMAL THEORETICAL MODEL AND SIMULATION OF POLYMER MULTIPHASE-MULTILAYER FLOW MOLDING

Zhou Guofa;Sun Mao   

  1. College of Environment Science & Engineering, Nanchang University
  • Published:2004-09-15

摘要: 基于聚合物多组分成型技术的工程背景,建立了全三维非稳态非等温多相分层充模流动的理论模型。在综合分析了该理论模型产生数值解的不稳定及发散的主要原因基础上,提出了求解理论模型的稳定快速收敛的数值算法。采用罚函数法,以及速度场分析、温度场分析和流体体积分数分析相分离等方法来降低对计算机的CPU和存储能力的需求,而通过SUPG法、罚函数法和 三维单元实现有限元数值分析的稳定性。并基于罚函数法和SUPG法,推导出求解N-S方程、能量方程和全三维多相分层流动成型移动前沿界面和分层界面追踪方程的有限元数值模型,并探讨了全三维非稳态非等温多相分层流动移动前沿界面和分层界面重构技术。最后揭示了粘性包围和界面不稳定的产生机理。

关键词: 多相分层流动, 多组分成型技术, 界面不稳定, 数值模拟, 粘性包围

Abstract: On the basis of the engineering background of advanced polymer multi-component molding techniques, the fully three-dimensional unsteady non-isothermal theoretical model of multiphase-multilayer cavity filling flow is established. Con-sidering the main reasons of numerical unsteady and diffusion in solution of the theoretical model,the corresponding Stabled numerical algorithm with fast convergence is put forward. The numerical algorithm decreases the needs of the computer CPU and memory capacity by means of penalty function method and uncoupling solution of velocity field, temperature field and fraction of fluid volume. A stabled finite element analysis is implemented by SUPG method (Streamline upwind /Petrov- Galerkin method), penalty function method and P1+/P1 three-dimensional finite element etc. On the base of penalty function method and SUPG method, the fully three-dimension finite element numerical model of solving N-S equation, energy equation and the tracing equation of moving front interface and stratified interface is deduced, and reconstruction technique of moving front interface and stratified interface is discussed in fully three-dimensional unsteady non-isotherma multiphase-mu-ltilayer flow. The initiating mechanisms of viscous encapsulation and interface instability are finally disclosured by numerical modeling technology.

Key words: Interface instability, Multi-component molding, Multiphase-multilayer flow, Numerical simulation, Viscous encapsulation

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