Etcheverry Mariana, Barbosa Silvia E
Planta Piloto de Ingeniería Química, PLAPIQUI (UNS-CONICET), Cno. La Carrindanga Km. 7, Bahía Blanca 8000, Argentina.
Materials (Basel). 2012 Jun 18;5(6):1084-1113. doi: 10.3390/ma5061084.
Glass fibers (GF) are the reinforcement agent most used in polypropylene (PP) based composites, as they have good balance between properties and costs. However, their final properties are mainly determined by the strength and stability of the polymer-fiber interphase. Fibers do not act as an effective reinforcing material when the adhesion is weak. Also, the adhesion between phases can be easily degraded in aggressive environmental conditions such as high temperatures and/or elevated moisture, and by the stress fields to which the material may be exposed. Many efforts have been done to improve polymer-glass fiber adhesion by compatibility enhancement. The most used techniques include modifications in glass surface, polymer matrix and/or both. However, the results obtained do not show a good costs/properties improvement relationship. The aim of this work is to perform an accurate analysis regarding methods for GF/PP adhesion improvement and to propose a new route based on PP in-situ polymerization onto fibers. This route involves the modification of fibers with an aluminum alkyl and hydroxy-α-olefin and from there to enable the growth of the PP chains using direct metallocenic copolymerization. The adhesion improvements were further proved by fragmentation test, as well as by mechanical properties measurements. The strength and toughness increases three times and the interfacial strength duplicates in PP/GF composites prepared with in-situ polymerized fibers.
玻璃纤维(GF)是聚丙烯(PP)基复合材料中使用最多的增强剂,因为它们在性能和成本之间具有良好的平衡。然而,它们的最终性能主要由聚合物-纤维界面的强度和稳定性决定。当粘合力较弱时,纤维不能作为有效的增强材料。此外,在高温和/或高湿度等恶劣环境条件下,以及材料可能暴露于其中的应力场作用下,相之间的粘合力很容易降低。人们已经做了很多努力通过增强相容性来改善聚合物-玻璃纤维的粘合力。最常用的技术包括对玻璃表面、聚合物基体和/或两者进行改性。然而,所获得的结果并没有显示出良好的成本/性能改善关系。这项工作的目的是对改善GF/PP粘合力的方法进行准确分析,并提出一种基于在纤维上进行PP原位聚合的新途径。这条途径包括用烷基铝和羟基-α-烯烃对纤维进行改性,然后通过直接茂金属共聚使PP链增长。通过碎片试验以及力学性能测量进一步证明了粘合力的提高。在用原位聚合纤维制备的PP/GF复合材料中,强度和韧性提高了三倍,界面强度增加了一倍。