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Simulation of Jetting in Injection Molding Using a Finite Volume Method

机译:使用有限体积法模拟注塑成型中的喷射

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In order to predict the jetting and the subsequent buckling flow more accurately, a three dimensional melt flow model was established on a viscous, incompressible, and non-isothermal fluid, and a control volume-based finite volume method was employed to discretize the governing equations. A two-fold iterative method was proposed to decouple the dependence among pressure, velocity, and temperature so as to reduce the computation and improve the numerical stability. Based on the proposed theoretical model and numerical method, a program code was developed to simulate melt front progress and flow fields. The numerical simulations for different injection speeds, melt temperatures, and gate locations were carried out to explore the jetting mechanism. The results indicate the filling pattern depends on the competition between inertial and viscous forces. When inertial force exceeds the viscous force jetting occurs, then it changes to a buckling flow as the viscous force competes over the inertial force. Once the melt contacts with the mold wall, the melt filling switches to conventional sequential filling mode. Numerical results also indicate jetting length increases with injection speed but changes little with melt temperature. The reasonable agreements between simulated and experimental jetting length and buckling frequency imply the proposed method is valid for jetting simulation.
机译:为了更准确地预测喷射和随后的屈曲流动,在粘性,不可压缩和非等温流体上建立了三维熔体流动模型,采用了控制体积的有限体积法来离散控制方程。提出了一种双折叠方法,以将压力,速度和温度之间的依赖性分离,以减少计算并提高数值稳定性。基于所提出的理论模型和数值方法,开发了一种程序代码以模拟熔体前进进度和流场。进行了不同喷射速度,熔体温度和栅极位置的数值模拟以探索喷射机构。结果表明填充模式取决于惯性和粘性力之间的竞争。当惯性力超过粘性力喷射时,随着粘性力竞争惯性力,它变为屈曲流。一旦熔体与模具壁接触,熔体填充就会切换到传统的顺序填充模式。数值结果还指示喷射长度随注射速度增加,但熔体温度几乎变化。模拟和实验喷射长度和屈曲频率之间的合理协议意味着所提出的方法对于喷射仿真有效。

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