【24h】

Fundamental Foaming Mechanisms Governing Volume Expansion of Extruded PP Foams

机译:发泡聚丙烯泡沫扩容的基本发泡机制

获取原文
获取原文并翻译 | 示例

摘要

This paper describes the fundamental foaming mechanisms that govern the volume expansion behavior of the extruded polypropylene foams. A careful analysis of extended experimental results indicates that the final volume expansion ratio of the extruded polypropylene foams blown with butane is governed by either loss of blowing agent or crystallization of polymer matrix. A CCD camera was installed at the die exit to carefully monitor the shape of the extruded polypropylene foam. The CCD images were analyzed to illustrate both these mechanisms of gas loss and crystallization during foaming at various temperatures, and it was observed that the maximum expansion ratio was achieved when the governing mechanism was changed from one to the other. In general, the gas loss mode was dominant at high temperatures whereas the crystallization mode was dominant at low temperatures. When the gas loss mode was dominant, the volume expansion ratio was increased by decreasing the temperature because of the reduced amount of gas lost. By contrast, when the crystallization mode was dominant, the expansion ratio was increased by increasing the temperature because of the delayed solidification of polymer. The processing window variation with the butane concentration, the change of the temperature ranges for the two governing modes, and the sensitivity of melt temperature variations to the volume expansion ratio are discussed in detail based on the obtained experimental results for both branched and linear polypropylene materials.
机译:本文介绍了控制发泡聚丙烯泡沫塑料体积膨胀行为的基本发泡机理。对扩展的实验结果的仔细分析表明,用丁烷吹塑的挤出聚丙烯泡沫的最终体积膨胀比取决于发泡剂的损失或聚合物基质的结晶。 CCD相机安装在模头出口处,以仔细监控挤出的聚丙烯泡沫的形状。分析CCD图像以说明在各种温度下发泡期间气体损失和结晶的这两种机理,并且观察到当控制机理从一种改变为另一种时达到了最大膨胀率。通常,气体损失模式在高温下是主要的,而结晶模式在低温下是主要的。当气体损失模式占优势时,由于气体损失减少,通过降低温度来增加体积膨胀率。相反,当结晶模式占主导时,由于聚合物的延迟固化,膨胀率通过升高温度而增加。根据获得的支化和线性聚丙烯材料的实验结果,详细讨论了随着丁烷浓度变化的加工窗口变化,两种控制模式的温度范围变化以及熔体温度变化对体积膨胀比的敏感性。 。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号