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中国塑料 ›› 2020, Vol. 34 ›› Issue (12): 8-16.DOI: 10.19491/j.issn.1001-9278.2020.12.002
收稿日期:2020-05-25
出版日期:2020-12-26
发布日期:2020-12-26
基金资助:
Received:2020-05-25
Online:2020-12-26
Published:2020-12-26
Contact:
LI Xinxin
E-mail:xinxinli@ecust.edu.cn
摘要:
以钛酸钾晶须(PTW)、高岭土(Kaolin)和滑石粉(Talc)为成核剂,制备了无机成核剂改性聚酰胺6/碳纤维(PA6/CF/NA)三元复合材料。通过分析复合材料的力学性能、动态热力学性能、微观形貌、结晶行为、晶体结构、热性能等对其结构和性能进行了系统的研究。结果表明,加入Talc可以大幅提高PA6/CF复合材料的冲击性能,添加2%(质量分数,下同)的Talc时,复合材料的冲击强度提高了44.5%;Talc在挤出过程中能够充分解离成片层并均匀地分散在PA6基体中,PA6/CF/Talc复合材料中存在大量纤维拔出后形成的孔洞,片层与基体黏结较好;与PTW和Kaolin相比,Talc突出的异相成核作用可以显著提高PA6/CF复合材料的结晶温度,并促进PA6形成更为完善的晶体结构。
中图分类号:
丁剑峰, 王伟, 刘耀, 夏浙安, 李欣欣. 无机成核剂改性聚酰胺6/碳纤维复合材料的结构与性能[J]. 中国塑料, 2020, 34(12): 8-16.
DING Jianfeng, WANG Wei, LIU Yao, XIA Zhean, LI Xinxin∗. Structure and Properties of Polyamide 6/Carbon Fiber Composites Modified with Inorganic Nucleating Agents[J]. China Plastics, 2020, 34(12): 8-16.
| 样品名称 | 质量分数/% | ||||
|---|---|---|---|---|---|
| PA6 | SCF | PTW | Kaolin | Talc | |
| PA6/CF | 80 | 20 | - | - | - |
| PA6/CF/PTW | 78 | 20 | 2 | - | - |
| PA6/CF/Kaolin | 78 | 20 | - | 2 | - |
| PA6/CF/Talc | 78 | 20 | - | - | 2 |
| 样品名称 | 质量分数/% | ||||
|---|---|---|---|---|---|
| PA6 | SCF | PTW | Kaolin | Talc | |
| PA6/CF | 80 | 20 | - | - | - |
| PA6/CF/PTW | 78 | 20 | 2 | - | - |
| PA6/CF/Kaolin | 78 | 20 | - | 2 | - |
| PA6/CF/Talc | 78 | 20 | - | - | 2 |
| 样品名称 | 拉伸强度/MPa | 拉伸模量/MPa | 冲击强度/ kJ·m-2 |
|---|---|---|---|
| PA6/CF | 190.1±0.2 | 939.6±26.8 | 7.66±0.61 |
| PA6/CF/PTW | 175.9±1.0 | 904.2±31.1 | 7.10±0.28 |
| PA6/CF/Kaolin | 183.0±2.0 | 1 032.1±26.3 | 6.52±0.38 |
| PA6/CF/Talc | 187.0±2.3 | 989.6±21.0 | 11.07±1.44 |
| 样品名称 | 拉伸强度/MPa | 拉伸模量/MPa | 冲击强度/ kJ·m-2 |
|---|---|---|---|
| PA6/CF | 190.1±0.2 | 939.6±26.8 | 7.66±0.61 |
| PA6/CF/PTW | 175.9±1.0 | 904.2±31.1 | 7.10±0.28 |
| PA6/CF/Kaolin | 183.0±2.0 | 1 032.1±26.3 | 6.52±0.38 |
| PA6/CF/Talc | 187.0±2.3 | 989.6±21.0 | 11.07±1.44 |
| 样品名称 | Ф/ ℃·min-1 | Ton/℃ | Tp/℃ | (Ton-Tp)/ ℃ |
|---|---|---|---|---|
| PA6/CF | 5 | 194.1 | 191.2 | 2.9 |
| 10 | 190.0 | 186.8 | 3.2 | |
| 15 | 187.2 | 183.6 | 3.7 | |
| 20 | 184.9 | 181.0 | 3.9 | |
| PA6/CF/PTW | 5 | 193.9 | 191.0 | 2.9 |
| 10 | 189.7 | 186.4 | 3.3 | |
| 15 | 186.8 | 183.1 | 3.7 | |
| 20 | 184.6 | 180.6 | 4.1 | |
| PA6/CF/Kaolin | 5 | 194.6 | 191.8 | 2.8 |
| 10 | 190.4 | 187.4 | 3.0 | |
| 15 | 188.0 | 184.4 | 3.7 | |
| 20 | 185.6 | 182.0 | 3.6 | |
| PA6/CF/Talc | 5 | 199.8 | 195.7 | 4.1 |
| 10 | 196.1 | 191.6 | 4.5 | |
| 15 | 193.6 | 188.7 | 4.9 | |
| 20 | 191.5 | 186.4 | 5.1 |
| 样品名称 | Ф/ ℃·min-1 | Ton/℃ | Tp/℃ | (Ton-Tp)/ ℃ |
|---|---|---|---|---|
| PA6/CF | 5 | 194.1 | 191.2 | 2.9 |
| 10 | 190.0 | 186.8 | 3.2 | |
| 15 | 187.2 | 183.6 | 3.7 | |
| 20 | 184.9 | 181.0 | 3.9 | |
| PA6/CF/PTW | 5 | 193.9 | 191.0 | 2.9 |
| 10 | 189.7 | 186.4 | 3.3 | |
| 15 | 186.8 | 183.1 | 3.7 | |
| 20 | 184.6 | 180.6 | 4.1 | |
| PA6/CF/Kaolin | 5 | 194.6 | 191.8 | 2.8 |
| 10 | 190.4 | 187.4 | 3.0 | |
| 15 | 188.0 | 184.4 | 3.7 | |
| 20 | 185.6 | 182.0 | 3.6 | |
| PA6/CF/Talc | 5 | 199.8 | 195.7 | 4.1 |
| 10 | 196.1 | 191.6 | 4.5 | |
| 15 | 193.6 | 188.7 | 4.9 | |
| 20 | 191.5 | 186.4 | 5.1 |
| 样品名称 | Ф/ ℃·min-1 | Tm1/℃ | Tm2/℃ | ΔHm/ J·g-1 | Χc/% |
|---|---|---|---|---|---|
| PA6/CF | 5 | 215.4 | 218.0 | 42.1 | 21.9 |
| 10 | 213.7 | 219.8 | 41.6 | 21.7 | |
| 15 | 212.8 | 219.9 | 41.2 | 21.4 | |
| 20 | 211.6 | 220.0 | 41.1 | 21.4 | |
| PA6/CF/PTW | 5 | 214.8 | 218.5 | 36.4 | 19.4 |
| 10 | 212.8 | 219.6 | 31.3 | 16.7 | |
| 15 | 211.4 | 220.4 | 29.3 | 15.7 | |
| 20 | 210.7 | 220.4 | 30.8 | 16.4 | |
| PA6/CF/Kaolin | 5 | 215.1 | 218.5 | 41.3 | 22.1 |
| 10 | 212.9 | 219.5 | 40.4 | 21.6 | |
| 15 | 211.6 | 219.6 | 40.3 | 21.5 | |
| 20 | 210.8 | 219.6 | 40.9 | 21.9 | |
| PA6/CF/Talc | 5 | - | 217.8 | 42.9 | 22.9 |
| 10 | 216.6 | 216.6 | 41.4 | 22.1 | |
| 15 | 215.7 | 219.5 | 40.6 | 21.7 | |
| 20 | 214.7 | 219.5 | 40.4 | 21.6 |
| 样品名称 | Ф/ ℃·min-1 | Tm1/℃ | Tm2/℃ | ΔHm/ J·g-1 | Χc/% |
|---|---|---|---|---|---|
| PA6/CF | 5 | 215.4 | 218.0 | 42.1 | 21.9 |
| 10 | 213.7 | 219.8 | 41.6 | 21.7 | |
| 15 | 212.8 | 219.9 | 41.2 | 21.4 | |
| 20 | 211.6 | 220.0 | 41.1 | 21.4 | |
| PA6/CF/PTW | 5 | 214.8 | 218.5 | 36.4 | 19.4 |
| 10 | 212.8 | 219.6 | 31.3 | 16.7 | |
| 15 | 211.4 | 220.4 | 29.3 | 15.7 | |
| 20 | 210.7 | 220.4 | 30.8 | 16.4 | |
| PA6/CF/Kaolin | 5 | 215.1 | 218.5 | 41.3 | 22.1 |
| 10 | 212.9 | 219.5 | 40.4 | 21.6 | |
| 15 | 211.6 | 219.6 | 40.3 | 21.5 | |
| 20 | 210.8 | 219.6 | 40.9 | 21.9 | |
| PA6/CF/Talc | 5 | - | 217.8 | 42.9 | 22.9 |
| 10 | 216.6 | 216.6 | 41.4 | 22.1 | |
| 15 | 215.7 | 219.5 | 40.6 | 21.7 | |
| 20 | 214.7 | 219.5 | 40.4 | 21.6 |
| 样品名称 | T5 %/℃ | T25 %/℃ | T45 %/℃ | T75 %/℃ |
|---|---|---|---|---|
| PA6/CF | 367.0 | 433.5 | 449.4 | 470.4 |
| PA6/CF/PTW | 373.4 | 434.4 | 451.5 | 473.5 |
| PA6/CF/Kaolin | 370.2 | 435.4 | 452.9 | 477.9 |
| PA6/CF/Talc | 373.1 | 433.4 | 449.5 | 472.1 |
| 样品名称 | T5 %/℃ | T25 %/℃ | T45 %/℃ | T75 %/℃ |
|---|---|---|---|---|
| PA6/CF | 367.0 | 433.5 | 449.4 | 470.4 |
| PA6/CF/PTW | 373.4 | 434.4 | 451.5 | 473.5 |
| PA6/CF/Kaolin | 370.2 | 435.4 | 452.9 | 477.9 |
| PA6/CF/Talc | 373.1 | 433.4 | 449.5 | 472.1 |
| 1 | 张婷婷, 赵献峰. 尼龙6改性研究[J]. 山西化工, 2018, 38(4):132⁃134. |
| ZHANG T T, ZHAO X F. Study on Modification of Nylon 6[J]. Shanxi Chemical Industry, 2018, 38(4):132⁃134. | |
| 2 | 李宏福, 王淑范, 孙海霞, 等. 连续碳纤维/尼龙6热塑性复合材料的吸湿及力学性能[J]. 复合材料学报, 2019, 36(1):114⁃121. |
| LI H F, WANG S F, SUN H X, et al. Water Absorption and Mechanical Property of Continuous Carbon Fiber/Polyamide 6 Composites[J]. Acta Materiae Compositae Sinica, 2019, 36(1):114⁃121. | |
| 3 | BOTELHO E C, ŁFIGIEL, REZENDE M C, et al. Mechanical Behavior of Carbon Fiber Reinforced Polyamide Composites[J]. Composites Science and Technology, 2003, 63(13):1 843⁃1 855. |
| 4 | WU S H, WANG F Y, MA C C M, et al. Mechanical, Thermal and Morphological Properties of Glass Fiber and Carbon Fiber Reinforced Polyamide⁃6 and Polyamide⁃6/Clay Nanocomposites[J]. Materials Letters, 2001, 49(6):327⁃333. |
| 5 | LI J. Interfacial Studies on the O3 Modified Carbon Fiber⁃Reinforced Polyamide 6 Composites[J]. Applied Surface Science, 2008, 255(5):2 822⁃2 824. |
| 6 | 邱春亮, 沈春银, 张 杨, 等. 碳纤维毡增强聚丙烯复合材料的力学性能[J]. 华东理工大学学报(自然科学版), 2015, 41(6):729⁃735. |
| QIU C L, SHEN C Y, ZHANG Y, et al. Mechanical Properties of Carbon Fiber⁃Mat Reinforced Polypropylene Composites[J]. Journal of East China University of Science and Technology (Natural Science Edition), 2015, 41(6):729⁃735. | |
| 7 | KARSLI N G, AYTAC A. Tensile and Thermomechanical Properties of Short Carbon Fiber Reinforced Polyamide 6 Composites[J]. Composites Part B: Engineering, 2013, 51:270⁃275. |
| 8 | LIANG J C, XU Y Q, WEI Z Y, et al. Mechanical Properties, Crystallization and Melting Behaviors of Carbon Fiber⁃Reinforced PA6 Composites[J]. Journal of Thermal Analysis and Calorimetry, 2014, 115(1): 209⁃218. |
| 9 | 李姝喆, 王 伟, 夏浙安, 等. 增韧剂对聚酰胺6/碳纤维复合材料性能的影响[J]. 功能高分子学报, 2018, 31(6): 595⁃601. |
| LI S Z, WANG W, XIA Z A, et al. Influence of Flexibilizers on the Properties of Polyamide 6/Carbon Fiber Composites[J]. Journal of Functional Polymers, 2018, 31(6): 595⁃601. | |
| 10 | LI Y, XU J T, WEI Z Y, et al. Mechanical Properties and Nonisothermal Crystallization of Polyamide 6/Carbon Fiber Composites Toughened by Maleated Elastomers[J]. Polymer Composites, 2014, 35(11):2 170⁃2 179. |
| 12 | LEONG Y W, BABU BAKAR M, ISHAK Z A M, et al. Comparison of the Mechanical Properties and Interfacial Interactions between Talc, Kaolin, and Calcium Carbonate Filled Polypropylene Composites[J]. Journal of Applied Polymer Science, 2004, 91(5): 3 315⁃3 326. |
| 13 | KIM K J, WHITE J L. Particle Orientation in Talc⁃Filled Thermoplastics Extruded through Cylindrical, Rectangular and Annular Dies[J]. Journal of Non⁃Newtonian Fluid Mechanics, 1996, 66(2/3):257⁃270. |
| 14 | CASTILLO L A, BARBOSA S E, CAPIATI N J. Influence of Talc Genesis and Particle Surface on the Crystallization Kinetics of Polypropylene/Talc Composites[J]. Journal of Applied Polymer Science, 2012, 126(5): 1 763⁃1 772. |
| 15 | LEONG Y W, ISHAK Z A M, ARIFFIN A. Mechanical and Thermal Properties of Talc and Calcium Carbonate Filled Polypropylene Hybrid Composites[J]. Journal of Applied Polymer Science, 2004, 91(5): 3 327⁃3 336. |
| 16 | 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): 1 885⁃1 891. |
| 17 | PHANG I Y, MA J H, SHEN L, et al. Crystallization and Melting Behavior of Multi⁃Walled Carbon Nanotube⁃Reinforced Nylon⁃6 Composites[J]. Polymer International, 2006, 55(1): 71⁃79. |
| 18 | 于中振, 欧玉春, 陈金凤, 等. 高岭土填充聚酰胺6的结晶行为[J]. 高分子学报, 1994(3): 295⁃300. |
| YU Z Z, OU Y C, CHEN J F, et al. Crystallization of Kaolin Filled Nylon 6[J]. Acta Polymerica Sinica, 1994 (3): 295⁃300. | |
| 19 | WU B, GONG Y, YANG G. Non⁃Isothermal Crystallization of Polyamide 6 Matrix in All⁃Polyamide Composites: Crystallization Kinetic, Melting Behavior, and Crystal Morphology[J]. Journal of Materials Science, 2011, 46(15): 5 184⁃5 191. |
| 20 | ZHAO X Y, ZHANG B Z. The Effects of Annealing (Solid and Melt) on the Time Evolution of the Polymorphic Structure of Polyamide 6[J]. Journal of Applied Polymer Science, 2010, 115(3): 1 688⁃1 694. |
| 21 | 李宏林, 杨桂生, 吴玉程. 反应挤出纳米类水滑石/尼龙6复合材料的结构与性能[J]. 复合材料学报, 2015, 32(2):403⁃408. |
| LI H L, YANG G S, WU Y C. Structure and Properties of Nano Hydrotalcite/Nylon 6 Composites Prepared by Reactive Extrusion[J]. Acta Materiae Compositae Sinica, 2015, 32(2):403⁃408. | |
| 22 | BERNASCONI A, DAVOLI P, BASILE A, et al. Effect of Fibre Orientation on the Fatigue Behaviour of a Short Glass Fibre Reinforced Polyamide⁃6[J]. International Journal of Fatigue, 2007, 29(2):199⁃208. |
| 23 | LIU T X, PHANG I Y, SHEN L, et al. Morphology and Mechanical Properties of Multiwalled Carbon Nanotubes Reinforced Nylon⁃6 Composites[J]. Macromolecules, 2004, 37(19): 7 214⁃7 222. |
| 24 | LI T C, MA J, WANG M, et al. Effect of Clay Addition on the Morphology and Thermal Behavior of Polyamide 6[J]. Journal of Applied Polymer Science, 2007, 103(2): 1 191⁃1 199. |
| 25 | 冯 楠. 回收碳纤维增强尼龙6复合材料的制备及性能研究[D]. 北京: 北京化工大学, 2013. |
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