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首页> 外文期刊>Journal of polymer engineering >Three-dimensional viscoelastic numerical analysis of the effects of gas flow on L-profiled polymers in gas-assisted coextrusion
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Three-dimensional viscoelastic numerical analysis of the effects of gas flow on L-profiled polymers in gas-assisted coextrusion

机译:气体辅助共挤出中气流对L型聚合物影响的三维粘弹性数值分析

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In this study, polymer gas-assisted coextrusion experiments were performed. The influence of a traditional coextrusion flow zone on the gas groove and the relationship between the gas pressure and the melt flow rate were studied. To determine the effects of the gas flow on gas-assisted coextrusion, a three-dimensional simulation was developed in which the gas layer was considered as an independent flow zone. The influence of the gas pressure, gas layer thickness and melt flow rate on the melts' profile and the deflection deformation degree (DDD) was studied, and the relationship between the gas pressure, gas layer thickness and melt flow rate was obtained. The numerical results indicated that a traditional coextrusion flow zone in front of a gas-assisted coextrusion flow zone could allow products to avoid a gas groove. The quality of the products could be improved by decreasing the gas pressure and gas layer thickness or increasing the melt flow rate. Additionally, the minimum gas pressure decreased as the gas layer thickness increased and increased as the melt flow rate increased. The numerical results were in good agreement with the experimental results, despite a slight quantitative error. Therefore, reasonably controlling the gas flow condition is key in practical applications of gas-assisted coextrusion, and the effects of the gas layer should be considered in gas-assisted coextrusion simulations.
机译:在这项研究中,进行了聚合物气体辅助共挤出实验。研究了传统共挤流动区对气槽的影响以及气体压力与熔体流动速率之间的关系。为了确定气流对气体辅助共挤出的影响,开发了三维模拟,其中将气体层视为独立的流动区域。研究了气体压力,气体层厚度和熔体流动速率对熔体轮廓和挠曲变形度(DDD)的影响,得到了气体压力,气体层厚度和熔体流动速率之间的关系。数值结果表明,在气体辅助共挤出流动区之前的传统共挤出流动区可以使产品避免产生气槽。降低气体压力和气体层厚度或增加熔体流动速率可以提高产品质量。另外,最小气体压力随着气体层厚度的增加而降低,并随着熔体流动速率的增加而增加。尽管存在轻微的定量误差,但数值结果与实验结果吻合良好。因此,在气体辅助共挤出的实际应用中,合理控制气体流动条件是关键,在气体辅助共挤出模拟中应考虑气体层的影响。

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