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首页> 外文期刊>The International Journal of Advanced Manufacturing Technology >Impact performance prediction of injection-molded talc-filled polypropylene through thermomechanical environment assessment
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Impact performance prediction of injection-molded talc-filled polypropylene through thermomechanical environment assessment

机译:通过热机械环境评估预测注塑滑石填充聚丙烯的冲击性能

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Due to the fact that different injection molding conditions tailor the mechanical response of the thermoplastic material, such effect must be considered earlier in the product development process. The existing approaches implemented in different commercial software solutions are very limited in their capabilities to estimate the influence of processing conditions on the mechanical properties. Thus, the accuracy of predictive simulations could be improved. In this study, we demonstrate how to establish straightforward processing-impact property relationships of talc-filled injection-molded polypropylene disc-shaped parts by assessing the thermomechanical environment (TME). To investigate the relationship between impact properties and the key operative variables (flow rate, melt and mold temperature, and holding pressure), the design of experiments approach was applied to systematically vary the TME of molded samples. The TME is characterized on computer flow simulation outputs and defined by two thermomechanical indices (TMI): the cooling index (CI; associated to the core features) and the thermo-stress index (TSI; related to the skin features). The TMI methodology coupled to an integrated simulation program has been developed as a tool to predict the impact response. The dynamic impact properties (peak force, peak energy, and puncture energy) were evaluated using instrumented falling weight impact tests and were all found to be similarly affected by the imposed TME. The most important molding parameters affecting the impact properties were found to be the processing temperatures (melt and mold). CI revealed greater importance for the impact response than TSI. The developed integrative tool provided truthful predictions for the envisaged impact properties.
机译:由于不同的注塑条件会影响热塑性材料的机械响应,因此必须在产品开发过程中尽早考虑这种影响。在不同的商业软件解决方案中实现的现有方法在估计处理条件对机械性能的影响方面的能力非常有限。因此,可以提高预测模拟的准确性。在这项研究中,我们演示了如何通过评估热机械环境(TME)来建立滑石填充的聚丙烯聚丙烯圆盘形零件的直接加工冲击特性关系。为了研究冲击性能与关键操作变量(流速,熔体和模具温度以及保压压力)之间的关系,采用实验方法的设计来系统地改变成型样品的TME。 TME在计算机流量模拟输出上进行表征,并由两个热机械指标(TMI)定义:冷却指数(CI;与核心特征相关联)和热应力指数(TSI;与皮肤特征相关联)。 TMI方法与集成的模拟程序相结合已被开发为预测冲击响应的工具。动态的冲击特性(峰值力,峰值能量和穿刺能量)使用仪器仪表进行的落锤冲击测试进行了评估,并且均受到施加的TME的类似影响。发现影响冲击性能的最重要的成型参数是加工温度(熔体和模具)。与TSI相比,CI显示出对于冲击响应的重要性更高。开发的集成工具为设想的冲击特性提供了真实的预测。

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