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首页> 外文期刊>International Polymer Processing: The Journal of the Polymer Processing Society >Verifying the Melting Behavior in Single-Screw Plasticization Units Using a Novel Simulation Model and Experimental Method
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Verifying the Melting Behavior in Single-Screw Plasticization Units Using a Novel Simulation Model and Experimental Method

机译:使用新型仿真模型和实验方法验证单螺杆塑化单元中的熔融行为

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摘要

We report on the development of a novel non-invasive ultrasonic measurement system for determining the melting behavior in a single-screw plasticization unit (35/22D) and on a modified drag-induced melt removal model that builds upon that by Tadmor and Gogos (2006). The solid bed to melt pool ratio is quantified using a non-invasive ultrasonic system based on reflection measurements. Automated analysis of the reflected pulses - measured at different axial positions along the barrel - allows the melting process to be monitored online. Our analysis of the delay section incorporates viscous dissipation into Tadmor's drag-induced melt removal model. We link temperature profile and melt film thickness via differential equations and consider viscous dissipation. By segmenting the delay section in the axial direction, the temperature dependency of the thermo-physical material properties is also considered. Using the melting behavior measured for different materials, we verified the mathematical model. Additionally, the effect of reduced screw length on the plasticization process, important for the injection molding process, was investigated.
机译:我们报告了一种新型无创超声测量系统的开发情况,该系统可用于确定单螺杆塑化单元(35 / 22D)中的熔融行为,并基于以Tadmor和Gogos( 2006)。使用基于反射测量的非侵入性超声系统对固体床与熔池的比率进行定量。在沿着枪管的不同轴向位置测量的反射脉冲的自动分析,可以在线监控熔化过程。我们对延迟段的分析将粘性耗散纳入了Tadmor的阻力诱导的熔体去除模型中。我们通过微分方程将温度曲线和熔融膜厚度联系起来,并考虑粘性耗散。通过在轴向上分割延迟部分,还考虑了热物理材料特性的温度依赖性。使用针对不同材料测得的熔融行为,我们验证了数学模型。此外,还研究了缩短螺杆长度对塑化工艺的影响,这对于注塑工艺很重要。

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