中国塑料 ›› 2017, Vol. 31 ›› Issue (2): 88-93 .DOI: 10.19491/j.issn.1001-9278.2017.02.015

• 加工与应用 • 上一篇    下一篇

正交设计与响应面法在空气滤清器盖注塑工艺优化中的应用和比较

蔡厚道   

  1. 江西科技学院
  • 收稿日期:2016-08-25 修回日期:2016-09-16 出版日期:2017-02-26 发布日期:2017-02-26

Comparative Investigation on Orthogonal Design and Response Surface Method for Injection Molding Process Optimization of Air Filter Covers

  • Received:2016-08-25 Revised:2016-09-16 Online:2017-02-26 Published:2017-02-26

摘要: 以空气滤清器盖的体积收缩率为评价指标,采用正交试验法和响应面法对影响装配尺寸的关键因素:熔体温度、模具温度、流动速率、保压时间和保压压力进行注塑工艺的优化。结果表明,正交试验法所得最优注塑工艺为:熔体温度210 ℃、模具温度50 ℃、流动速率80 cm3/s、保压时间12 s和保压压力100 MPa,此时塑件的体积收缩率为5.988 %;响应面法所得最优注塑工艺为: 熔体温度214.91 ℃、模具温度59.46 ℃、流动速率80 cm3/s、保压时间12 s和保压压力109.94 MPa,此时塑件的体积收缩率为5.520 %;响应面法最优工艺条件下得到的体积收缩率低于正交试验法,并且该方法所得的最优工艺能够生产出满足装配尺寸精度要求的零件。

关键词: 正交设计, 响应面法, 空气滤清器盖, 注塑模, 工艺优化

Abstract: Taking the volume shrinkage as an evaluation index for an air filter cover, a series of injection molding process parameters including melt temperature, mold temperature, flow rate, packing time and packing pressure on assembly dimension were optimized by means of orthogonal experiment and response surface method (RSM). The results indicated that, on the basis of orthogonal experiment, the injection molding conditions were optimized for a melt temperature of 210 ℃, a mold temperature of 50 ℃, a flow rate of 80 cm3/s, packing time of 12 s and packing pressure of 100 MPa, which resulted in a volume shrinkage of 5.988 %. On the other hand, the process conditions optimized by RSM were determined as a melt temperature of 214.91 ℃, a mold temperature of 59.46 ℃, a flow rate of 80 cm3/s, packing time of 12 s and packing pressure of 109.94 MPa, which resulted in a volume shrinkage of 5.520 %. The results also demonstrated that the volume shrinkage rate derived from RSM was lower than that from orthogonal design, indicating that the processing conditions optimized by RSM is more suitable for the injectionmolded parts with much higher precision.

Key words: orthogonal design, response surface methodology, air filter cover, injection mold, process optimization