采用傅里德-克拉夫茨反应原理在芳纶纤维表面接枝环氧氯丙烷,用偶联剂二次改性,研究表面接枝对芳纶纤维结构与性能的影响,并测试了改性芳纶纤维/炭黑/天然橡胶的力学性能。结果表明:改性后芳纶纤维表面的含氧量增加,偶联剂成功引入到芳纶表面,明显增加了芳纶的表面粗糙度和表面活性,降低了芳纶纤维的结晶度,但是对芳纶纤维晶体结构的影响不大,接枝环氧氯丙烷-偶联剂改性的芳纶纤维/炭黑/天然橡胶复合材料相比于未改性芳纶纤维/炭黑/天然橡胶复合材料力学性能有明显提高,橡胶加工流变性能分析表明芳纶纤维接枝环氧氯丙烷-偶联剂二次改性增大了复合材料的储能模量和损耗模量,减小了损耗因子从而改善了芳纶纤维与橡胶基体的界面结合强度。
The epichlorohydrin was grafted on the surface of aramid fiber(AF)by principle of friedel-crafts reaction and secondary modification with coupling agent,and the effect of surface grafting on the structure and properties of AF was studied.The mechanical properties of modified AF/carbon black/natural rubber were tested.The results showed that the oxygen content of modified aramid fiber's surface was increased,and the coupling agent was successfully introduced into the surface of AF,which significantly increased the surface roughness and activity of AF,and reduced its crystallinity.The influence of fiber crystal structure was not great.The mechanics of the grafted epichlorohydrin-coupling agent modified AF/carbon black/natural rubber composites material was obviously increased compared with the unmodified composites.The rheological properties of rubber processing showed that the secondary modification of AF grafted epichlorohydrin-coupling agent increased the storage modulus and loss modulus of composites and reduced the loss factor.Thereby,the bonding strength of interface between AF and rubber matrix was improved.
[1] Katsiropoulos C V,Pantelakis S G,Meyer B C.Mechanical behavior of non-crimp fabric PEEK/C thermoplastic composites[J].Theoretical & Applied Fracture Mechanics,2009,52(2):122-129.
[2] Vishkaei M S,Salleh M A M,Yunus R,et al.Effect of short carbon fiber surface treatment on composite properties[J].Journal of Composite Materials,2011,45(18):1885-1891.
[3] An H J,Kim J S,Kim K Y,et al.Mechanical and thermal properties of long carbon fiber-reinforced polyamide 6 composites[J].Fibers and Polymers,2014,15(11):2355-2359.
[4] 严岩.芳纶纤维表面改性及其与橡胶粘合性能研究[D].北京:北京化工大学,2014.
[5] 戴骏,熊玉竹,崔凌峰,等.紫外辐照改性芳纶纤维的研究[J].人工晶体学报,2016,45(11):2705-2710.
[6] 严志云,石虹桥,刘安华,等.空气等离子体处理芳纶纤维及其与天然橡胶/乳聚丁苯橡胶的黏合性能[J].合成橡胶工业,2007,30(3):200-204.
[7] 彭程程,魏取福,朱亚楠,等.低温氧等离子体处理对芳纶纤维与橡胶粘附性能的影响[J].化工新型材料,2011,39(5):98-100.
[8] 浦丽莉,隋月梅.芳纶纤维等离子体接枝改性处理研究[J].化学与粘合,2011,33(4):17-19.
[9] 李源,萨日娜,严岩,等.对位芳纶纤维的多巴胺仿生修饰及硅烷偶联剂二次功能化[J].橡胶工业,2016,63(1):5-12.
[10] 董庆亮.多巴胺改性芳纶纤维及其复合材料界面性能研究[D].哈尔滨:哈尔滨工业大学,2014.
[11] 鲁学峰,郝智,罗筑,等.多巴胺处理芳纶对增强天然橡胶复合材料性能的影响[J].高分子材料科学与工程,2016,32(11):75-80.
[12] 闫智敬,马少华,付坤,等.芳纶表面改性及其与丁腈橡胶复合材料的性能研究[J].材料导报,2016,30(20):116-121.
[13] 陈小随,张胜,许国志,等.磷酸酯偶联剂改性芳纶纤维增强聚丙烯复合材料的性能研究[J].塑料科技,2011,39(4):64-68.
[14] 凌新龙,郭立富,林海涛.芳纶纤维的改性研究新进展[J].天津工业大学学报,2016,35(4):10-27.
[15] 彭程程.芳纶纤维的表面改性及其与橡胶复合性能的研究[D].无锡:江南大学,2011.
[16] 周俊,何永祝,邓康清.傅-克烷基化反应改性芳纶纤维对EPDM绝热层力学性能的影响[J].化学与粘合,2016,38(4):235-239.
[17] 周丰丰.傅-克反应对芳纶Ⅲ纤维表面改性的研究[D].武汉:武汉理工大学,2014.
[18] Liu T M,Zheng Y S,Hu J.Surface modification of aramid fibers with new chemical method for improving interfacial bonding strength with epoxy resin[J].Journal of Applied Polymer Science,2010,118(5):2541-2552.
[19] Mamedov M K.Synthesis of aromatic alcohols and their alkanoic acid esters[J].Russian Journal of Applied Chemistry,2006,79(3):408-410.
基金资助
国家自然科学基金(51663003);贵州大学研究生教育创新基地(CXJD[2014]008);黔科合支撑[2017]2301;贵大研ZDKC[2014]004