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Simulation of dynamic gas penetrations on fingering behaviors during gas-assisted injection molding

机译:气体辅助注射成型过程中动态气体渗透对指指行为的模拟

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The gas-assisted injection molding (GAIM) process is often adopted to compensate for shrinkage and improve part quality. However, gas penetrations consisting of primary and secondary penetrations will usually induce "fingering" behaviors, in which gas penetrates unevenly inside the parts and may lead to significant reductions in part stiffness. Due to the dynamic instability and complex material properties of fingering behaviors, it is desirable to be able to predict the behaviors with the help of simulation tools. In order to simulate the fingering behaviors, it is necessary to calculate the gas penetrations with a sharp interface between melt and gas, and to incorporate the compressibility of materials with high accuracy. In this study, we present a three-dimensional finite volume method that considers the non-Newtonian compressible flow with a high-resolution interface scheme for simulating the fingering behaviors during the GAIM process. A thin plate case is done to validate the accuracy and the capability of our proposed method to predict the sharp interface for primary and secondary gas penetrations. Then, we present a fish-bone plate with branches to investigate the gas penetrations on fingering behaviors through the dynamic simulation results and the specific volume changes on a pressure-volume-temperature diagram.
机译:通常采用气体辅助注射成型(GAIM)工艺来补偿收缩并提高零件质量。但是,由一次渗透和二次渗透组成的气体渗透通常会引起“指状”行为,其中气体会不均匀地渗透到零件内部,并可能导致零件刚度大大降低。由于指法行为的动态不稳定性和复杂的材料特性,希望能够借助模拟工具来预测行为。为了模拟指弹行为,必须计算出熔体与气体之间具有清晰界面的气体渗透率,并以高精度结合材料的可压缩性。在这项研究中,我们提出了一种三维有限体积方法,该方法考虑了非牛顿可压缩流以及高分辨率接口方案,以模拟GAIM过程中的弹指行为。进行了薄板实验以验证我们提出的方法预测一次和二次气体渗透的尖锐界面的准确性和能力。然后,我们提出了一种带有分支的鱼骨板,通过动态模拟结果和压力-体积-温度图上的特定体积变化来研究气体对指指行为的渗透。

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