...
首页> 外文期刊>Advances in Polymer Technology >Variable Mold Temperature to Improve Surface Quality of Microcellular Injection Molded Parts Using Induction Heating Technology
【24h】

Variable Mold Temperature to Improve Surface Quality of Microcellular Injection Molded Parts Using Induction Heating Technology

机译:使用感应加热技术,可变的模具温度可改善微孔注射成型零件的表面质量

获取原文
获取原文并翻译 | 示例
   

获取外文期刊封面封底 >>

       

摘要

Microcellular foam injection molding provides many advantages over conventional foams and their unfoamed counterparts, but its applications are limited by visible surface quality problems such as silver streaks and swirl marks. In this study, we propose a variable mold temperature method to improve the surface quality of molded parts. Electromagnetic induction heating is used in combination with water cooling to achieve rapid mold surface temperature control during the microcellular foam injection molding process. The effect of processing parameters, such as mold temperature, melt temperature, and injection velocity on the part surface quality, was investigated using surface roughness measurements and visual inspection of the molded parts. The results show that using induction heating to increase the mold surface temperature from 100°C to 160°C can decrease surface roughness of polycarbonate moldings from 25 μm to 6.5 μm. It was also found that the flow marks formed by gas bubbles on the part surface can be removed completely at a mold temperature of 160°C. Further increases in the mold temperature show slight improvements in the surface roughness up to 180°C, at which point the surface roughness starts to level off at 5 μm. This surface roughness value reflects an 80% improvement without a significant increase in cycle time over parts molded at a mold temperature of 60°C using water heating. Higher melt temperature and faster injection speed will also improve the surface quality of microcellular injection molded parts but not as significantly. The usefulness of a variable mold temperature in improving part surface quality during microcellular foam injection molding has been successfully demonstrated.
机译:与常规泡沫及其未发泡的泡沫相比,微孔泡沫注射成型具有许多优势,但其应用受到可见的表面质量问题(例如银条纹和漩涡痕迹)的限制。在这项研究中,我们提出了一种可变模具温度的方法来改善模制零件的表面质量。电磁感应加热与水冷却结合使用,可在微孔泡沫塑料注塑过程中实现快速的模具表面温度控制。使用表面粗糙度测量和目视检查成型零件来研究加工参数(例如模具温度,熔融温度和注射速度)对零件表面质量的影响。结果表明,使用感应加热将模具表面温度从100°C升高到160°C可以将聚碳酸酯成型品的表面粗糙度从25μm降低到6.5μm。还发现由模具表面上的气泡形成的流痕可以在模具温度为160°C时完全去除。模具温度的进一步提高表明,在高达180°C的温度下,表面粗糙度略有改善,此时表面粗糙度在5μm处开始趋于稳定。与使用水加热在60°C的模具温度下成型的零件相比,该表面粗糙度值反映出80%的改善,而循环时间却没有显着增加。更高的熔体温度和更快的注射速度也会改善微孔注射成型零件的表面质量,但效果却不那么明显。已经成功地证明了可变模具温度在微孔泡沫塑料注射成型过程中改善零件表面质量的有用性。

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