中国塑料 ›› 2017, Vol. 31 ›› Issue (4): 45-50 .DOI: 10.19491/j.issn.1001-9278.2017.04.009

• 材料与性能 • 上一篇    下一篇

金属粉末注射成型用催化脱脂黏结剂POM/PP共混物非等温结晶动力学研究

马赞赞,吴盾,刘春林,曹峥;陆颖,周安   

  1. 常州大学
  • 收稿日期:2016-11-14 修回日期:2016-12-19 出版日期:2017-04-26 发布日期:2017-04-26

Study on Non-isothermal Crystallization Kinetics of Polyoxymethylene/Polypropylene Blends Used for Catalytic Skim Binder of Metal Powder Injection Molding

  • Received:2016-11-14 Revised:2016-12-19 Online:2017-04-26 Published:2017-04-26

摘要: 利用聚甲醛(POM)在酸性气氛下发生快速降解、聚丙烯(PP)耐腐蚀性优良的特点,采用POM/PP共混物作为金属粉末注射成型用催化脱脂黏结剂的主要组分。通过差示扫描量热法研究了POM和POM/PP共混物的非等温结晶过程及不同冷却速率对POM/PP(90/10)共混物结晶行为的影响。分别采用Jeziorny法、Ozawa法和Mo法进行处理。结果表明,随着冷却速率的增大,POM及其共混物的结晶峰变宽,结晶峰值温度(Tc)逐渐降低;在相同冷却速率下,共混物的Tc较纯POM有所降低;Jeziorny法和Mo法处理非等温结晶过程比较理想,而由于次级结晶的存在Ozawa法并不适用;Jeziorny法和Mo法处理所得的数据表明,PP的加入能够降低POM的结晶速率,延长半结晶时间(t1/2),并导致POM的结晶成核和生长发生了改变,减缓POM的结晶。

关键词: 聚甲醛, 聚丙烯, 非等温结晶, 冷却速率

Abstract: By utilizing the rapid degradation reaction characteristics of polyoxymethylene (POM) under an acidic atmosphere and the corrosion resistance of polypropylene (PP), POM/PP blends were employed as a major component of catalytic skim binder for metal powder injection molding. Crystallization behavior of POM/PP blends was investigated by DSC under the non-isothermal process, and their crystallization kinetics was studied by Jeziorny, Ozawa and Mo methods. The results indicated that the width of crystallization peak became broad and the crystallization peak temperature (Tc) decreased gradually with an increase of cooling rate. Tc of the blends was lower than that of pure POM at the same cooling rate. Jeziorny and Mo methods could well describe the non-isothermal crystallization of POM/PP blending system. However, Ozawa method is not applicable due to the occurrence of secondary crystallization. Moreover, the introduction of PP led to a decrease in crystallization rate but an increase in half crystallization time. This also resulted in a change in the nucleating and growing mechanism of POM domain, thus retarding its crystallization.

Key words: polyoxymethylene, polypropylene, non-isothermal crystallization, cooling rate