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中国塑料 ›› 2022, Vol. 36 ›› Issue (7): 165-173.DOI: 10.19491/j.issn.1001-9278.2022.07.023
冯冰涛, 王晓珂, 张信, 孙国华, 汪殿龙, 侯连龙, 马劲松()
收稿日期:
2022-02-07
出版日期:
2022-07-26
发布日期:
2022-07-20
通讯作者:
马劲松(1973—),男,实验师,主要从事绿色高分子材料等研究工作,majinsong1973@163.com基金资助:
FENG Bingtao, WANG Xiaoke, ZHANG Xin, SUN Guohua, WANG Dianlong, HOU Lianlong, MA Jinsong()
Received:
2022-02-07
Online:
2022-07-26
Published:
2022-07-20
Contact:
MA Jinsong
E-mail:majinsong1973@163.com
摘要:
综述了国内外连续碳纤维增强热塑性复合材料(CCFRP)的制备和应用的研究进展,主要对CCFRP的界面改性方法、浸渍工艺和成型工艺进行了介绍,同时也介绍了其应用的状况,对CCFRP的发展前景进行了展望。
中图分类号:
冯冰涛, 王晓珂, 张信, 孙国华, 汪殿龙, 侯连龙, 马劲松. 连续碳纤维增强热塑性复合材料制备与应用研究进展[J]. 中国塑料, 2022, 36(7): 165-173.
FENG Bingtao, WANG Xiaoke, ZHANG Xin, SUN Guohua, WANG Dianlong, HOU Lianlong, MA Jinsong. Preparation and application of continuous carbon⁃fiber⁃reinforced thermoplastic composites[J]. China Plastics, 2022, 36(7): 165-173.
1 | 李奇辉,刘向阳,房晓斌. 碳纤维复合材料的应用现状及我国碳纤维工业的发展方向[J]. 价值工程,2016,35(17):113⁃115. |
LI Q H, LIU X Y, FANG X B. Application status of carbon fiber composites and the development trend of carbon fiber industry in China [J]. Value Engineering,2016,35(17):113⁃115. | |
2 | 张豫坤, 牛宏校, 邓晨兴. 碳纤维增强热塑性树脂基复合材料的力学性能研究[J]. 当代化工研究, 2017(6):2. |
ZHANG Y K, NIU H X, DENG C X. Study of the enhancement of thermoplastic resin matrix composites mechanical property under the function of carbon fiber [J]. Chenmical Intermediate, 2017(6):2. | |
3 | 李三平,杨 正. 连续碳纤维增强热塑性复合材料的性能优势及应用举例[J]. 中国新技术新产品,2019(20):2. |
LI S P, YANG Z. Performance advantages and application examples of continuous carbon fiber reinforced thermoplastic composites[J]. China New Technologies and New Products, 2019(20):2. | |
4 | CHAND S. Review carbon fibers for composites[J]. Journal of Materials Science, 2000, 35(6): 1 303⁃1 313. |
5 | NEWCOMB B A. Processing, structure, and properties of carbon fibers[J]. Composites Part A: Applied Science and Manufacturing, 2016, 91: 262⁃282. |
6 | JIANG B, ZHANG T, ZHAO L, et al. Interfacially reinforced carbon fiber composites by grafting modified methylsilicone resin[J]. Composites Science and Technology, 2017, 140: 39⁃45. |
7 | KARGER⁃KOCSIS J, MAHMOOD H, Pegoretti A. All⁃carbon multi⁃scale and hierarchical fibers and related structural composites: a review[J]. Composites Science and Technology, 2020, 186: 107932. |
8 | 邢 开,徐海兵,颜 春,等. 碳纤维增强高性能热塑性复合材料界面改性的研究进展[J]. 玻璃钢/复合材料,2019(5):110⁃115. |
XING K, XU H B, YAN C, et al. Research progress on interface properties of carbon fiber reinforced high performance thermoplastic composites [J]. FRP/CM, 2019(5):110⁃115. | |
9 | HASSAN E A M, GE D, YANG L, et al. Highly boosting the interlaminar shear strength of CF/PEEK composites via introduction of PEKK onto activated CF[J]. Compo⁃sites Part A: Applied Science and Manufacturing, 2018, 112: 155⁃160. |
10 | 朱 姝,何帅龙,高家蕊,等. 基于氧化石墨烯修饰活化碳纤维的聚醚醚酮基复合材料[J]. 高分子材料科学与工程, 2019, 35(8):8. |
ZHU S, HE S L, GAO J R, et al. Polyetheretherketone matrix composites based on graphene oxide modified activated carbon fibers[J]. Polymer Materials Science & Engineering, 2019, 35(8):8. | |
11 | ZHUODA J. Effects of plasma treatment of carbon fibers on interfacial properties of bmi resin composites[J]. Surface and Interface Analysis, 2019, 51(4): 458⁃464. |
12 | LU C, QIU S, LU X, et al. Enhancing the interfacial strength of carbon fiber/poly (ether ether ketone) hybrid composites by plasma treatments[J]. Polymers, 2019, 11(5): 753. |
13 | Cho B G, Hwang S H, Park M, et al. The effects of plasma surface treatment on the mechanical properties of polycarbonate/carbon nanotube/carbon fiber composites[J]. Composites Part B: Engineering, 2019, 160: 436⁃445. |
14 | 乔允允, 李俊峰, 姜 燕,等. 表面处理对碳纤维/聚苯硫醚复合材料性能的影响[J]. 合成纤维工业, 2017, 40(5):5. |
QIAO Y Y, LI J F, JIANG Y, et al. Effect of surface treatment on properties of carbon fiber/polyphenylene sulfide composites[J]. China Synthetic Fiber Industry, 2017, 40(5):5. | |
15 | 董广雨, 丁玉梅, 杨卫民,等. 超声波⁃双氧水联合氧化处理连续碳纤维表面的研究[J]. 北京化工大学学报(自然科学版), 2017, 44(6):45⁃49. |
DONG G Y, DING Y M, YANG W M, et al. Combined ultrasonic⁃hydrogen peroxide oxidation treatment of continuous carbon fiber surfaces[J]. Journal of Beijing University of Chemical Technology(Natural Science), 2017, 44(6):45⁃49. | |
16 | Chen J, Zhang T, Wang K, et al. Multiscale enhancement behavior of nano⁃silica modified CF/PEEK composites prepared by wet powder impregnation[J]. Polymer Composites, 2019, 40(3): 1 187⁃1 197. |
17 | SU Y, ZHANG S, ZHANG X, et al. Preparation and properties of carbon nanotubes/carbon fiber/poly (ether ether ketone) multiscale composites[J]. Composites Part A: Applied Science and Manufacturing, 2018, 108: 89⁃98. |
18 | 王国超. 纳米Al2O3改性树脂基复合材料及体育应用性能[J]. 化学与粘合, 2022, 44(1):5. |
WANG G C. Nano⁃ Al2O3 modified resin matrix composites and its application in sports[J]. Chemistry and Adhesion, 2022, 44(1):5. | |
19 | BATISTA N L, OLIVIER P, BERNHART G, et al. Correlation between degree of crystallinity, morphology and mechanical properties of PPS/Carbon fiber laminates[J]. Materials Research, 2016, 19: 195⁃201. |
20 | 曹 硕,黄鑫林,朱 姝,等. 碳纤维增强聚苯硫醚(CF/PPS)航空复合材料的结晶行为及力学性能[J].材料科学与工程学报, 2019,37(4):571⁃577. |
CAO S, HUANG X L, ZHU S, et al. Crystallization behavior and mechanical properties of carbon fiber reinforced polyphenylene sulfide (CF/PPS) aeronautical composites [J]. Journal of Materials Science & Engineering, 2019,37(4):571⁃577. | |
21 | 郭兵兵, 王连玉, 周春华,等. 连续碳纤维增强聚苯硫醚(PPS)复合管材的缠绕成型及性能表征[J]. 玻璃钢/复合材料, 2014(4):5. |
GUO B B, WANG L Y, ZHOU C H, et al. Characterization of continuous carbon fiber reinforced polyphenylene sulfide (PPS) pipes by filament winding process[J]. FRP/CM, 2014(4):5. | |
22 | ZHAO L, HUANG Z, XIONG S, et al. Polyphenylene sulfide composite laminate from flexible nonwovens and carbon fiber fabrics prepared by thermal lamination and thermal treatment[J]. Polymer Bulletin, 2019, 76(11): 5 633⁃5 648. |
23 | ZHANG Y, TAO W, ZHANG Y, et al. Continuous carbon fiber/crosslinkable poly (ether ether ketone) laminated composites with outstanding mechanical properties, robust solvent resistance and excellent thermal stability[J]. Composites Science and Technology, 2018, 165: 148⁃153. |
24 | YAO T T, LIU Y T, ZHU H, et al. Controlling of resin impregnation and interfacial adhesion in carbon fiber/polycarbonate composites by a spray⁃coating of polymer on carbon fibers[J]. Composites Science and Technology, 2019, 182: 107763. |
25 | CHUKOV D, NEMATULLOEV S, TOROKHOV V, et al. Effect of carbon fiber surface modification on their interfacial interaction with polysulfone[J]. Results in Physics, 2019, 15: 102634. |
26 | WU Y, DHAMODHARAN D, WANG Z, et al. Effect of electrophoretic deposition followed by solution pre⁃impregnated surface modified carbon fiber⁃carbon nanotubes on the mechanical properties of carbon fiber reinforced polycarbonate composites[J]. Composites Part B: Engineering, 2020, 195: 108093. |
27 | UŞUN A, GÜMRÜK R. The mechanical performance of the 3D printed composites produced with continuous carbon fiber reinforced filaments obtained via melt impregnation[J]. Additive Manufacturing, 2021,46: 102112. |
28 | 马晓敏,邢立学,谭洪生,等. 连续碳纤维增强PA66复合材料的结晶与力学性能[J]. 中国塑料, 2019, 33(2):8. |
MA X M, XING L X, TAN H S, et al. Study on crystallization and mechanical properties of continuous carbon⁃fiber⁃reinforced PA66 composites[J]. China Plastics, 2019, 33(2):8. | |
29 | 田小永,张亚园,刘腾飞,等. 连续碳纤维增强尼龙复合材料预浸丝制备与3D打印性能研究[J]. 航空制造技术,2021,64(15):24⁃33. |
TIAN X Y, ZHANG Y Y, LIU T F, et al. Prepreg preparation and 3D printing of continuous carbon fiber reinforced nylon composite[J]. Aviation Manufacturing Technology, 2021,64(15):24⁃33. | |
30 | ZHU K, TAN H, WANG Y, et al. Crystallization and mechanical properties of continuous carbon fiber reinforced polyether⁃ether⁃ketone composites[J]. Fibers and Polymers, 2019, 20(4): 839⁃846. |
31 | QIAO L, ZHU K, TAN H, et al. Effect of carbon nanotubes on the electrical, thermal, mechanical properties and crystallization behavior of continuous carbon fiber reinforced polyether⁃ether⁃ketone composites[J]. Materials Research Express, 2021, 8(4): 045312. |
32 | 郑利杭,刘 洋,谭洪生,等. 连续碳纤维增强聚醚醚酮板材的研究[J]. 塑料工业, 2020, 48(7):6. |
ZHENG L H, LIU Y, TAN H S, et al. Research on continuous carbon⁃fiber⁃reinforced peek plate [J]. China Plastics Industry, 2020, 48(7):6. | |
33 | XU Z, ZHANG M, GAO S H, et al. Study on mechanical properties of unidirectional continuous carbon fiber⁃reinforced PEEK composites fabricated by the wrapped yarn method[J]. Polymer Composites, 2017, 40(1): 56⁃69. |
34 | BAEK Y M, SHIN P S, KIM J H, et al. Interfacial and mechanical properties of carbon fiber reinforced polycarbonate (PC) film and PC fiber impregnated composites[J]. Fibers and Polymers, 2019, 20(11): 2 400⁃2 406. |
35 | ONO M, YAMANE M, TANOUE S, et al. Mechanical properties of thermoplastic composites made of commingled carbon fiber/nylon fiber[J]. Polymers, 2021, 13(19): 3 206. |
36 | 周佳慧,李金焕,肖 军,等. 碳纤维增强尼龙6复合材料的阴离子聚合反应注射成型工艺[J].复合材料学报,2021,38(12):4 172⁃4 179. |
ZHOU J H, LI J H, XIAO J, et al. Anionic polymerization reaction injection molding process of carbon fiber reinforced nylon 6 composite[J]. Journal of Composite Materials, 2021,38(12):4 172⁃4 179. | |
37 | 胡斌斌,王少飞,蔡超迁,等. 碳纤维表面处理对液体成型碳纤维增强MC尼龙复合材料力学性能的影响[J].复合材料科学与工程,2021(10):83⁃88,95. |
HU B B, WANG S F, CAI C Q, et al. Effect of carbon fiber surface treatment on the mechanical properties of liquid⁃formed carbon fiber reinforced MC nylon composite[J]. Composite Materials Science and Engineering,2021(10):83⁃88,95. | |
38 | NAKAMURA H, TANAKA Y, NAKAI A, et al. Interfacial properties of carbon fiber reinforced thermoplastic composites[C]//Proceedings of the 10th International Conference on Flow Processes in Composite Materials, Ascona, Switzerland, 2020: 11⁃15. |
39 | MA Y, JIN S, YOKOZEKI T, et al. Effect of hot water on the mechanical performance of unidirectional carbon fiber⁃reinforced nylon 6 composites[J]. Composites Science and Technology, 2020, 200: 108426. |
40 | 张 照,曹 硕,朱 姝,等. 纺织结构碳纤维增强聚醚醚酮基复合材料的制备及界面改性[J]. 高分子材料科学与工程, 2017, 33(10):8. |
ZHANG Z, CAO S, ZHU S, et al. Preparations and interface modifications for carbon fiber fabrics reinforced polyetheretherketone composites[J]. Polymer Materials Science & Engineering, 2017, 33(10):8. | |
41 | 李雪芹, 郭双喜, 李斌太. 连续纤维增强树脂基复合材料的高通量制备技术平台设计[J]. 复合材料科学与工程, 2020(2):6. |
LI X Q, GUO S X, LI B T. Design of high throughput preparation technology platform for continuous fiber reinforced composites[J]. Composite Materials Science and Engineering, 2020(2):6. | |
42 | BUDIYANTORO C, ROCHARDJO H S B, NUGROHO G. Effects of processing variables of extrusion–pultrusion method on the impregnation quality of thermoplastic composite filaments[J]. Polymers, 2020, 12(12): 2 833. |
43 | GABRION X, PLACET V, TRIVAUDEY F, et al. About the thermomechanical behaviour of a carbon fibre reinforced high⁃temperature thermoplastic composite[J]. Composites Part B: Engineering, 2016, 95: 386⁃394. |
44 | 单 毫,陈 宇,李俊杰,等. 红外加热缠绕成型工艺参数对CF/PEEK复合材料层间剪切性能的影响[J]. 复合材料科学与工程,2020(1):39⁃46. |
DAN H, CHEN Y, LI J J, et al. Effect of infrared heating winding forming process parameters on interlaminar shear properties of CF/PEEK composites[J]. Composite Materials Science and Engineering,2020(1):39⁃46. | |
45 | MARTÍN M I, RODRÍGUEZ⁃LENCE F, GÜEMES A, et al. On the determination of thermal degradation effects and detection techniques for thermoplastic compo⁃sites obtained by automatic lamination[J]. Composites Part A: Applied Science and Manufacturing, 2018, 111: 23⁃32. |
46 | SEBAEY T A, BOUHRARA M, O’DOWD N. Fibre alignment and void assessment in thermoplastic carbon fibre reinforced polymers manufactured by automated tape placement[J]. Polymers, 2021, 13(3): 473. |
47 | 杨 洋,徐 捷,原崇新,等. 连续纤维增强聚苯硫醚预浸料自动铺丝工艺与热塑性复合材料性能研究[J]. 纤维复合材料,2020,37(1):3⁃9. |
YANG Y, XU J, YUAN C X, et al. Study on automatic fiber placement technology with continuous carbon fiber reinforced polyphenylene sulfide prepreg and characterization of the thermoplastic composites[J]. Fiber Composites,2020,37(1):3⁃9. | |
48 | UEDA M, KISHIMOTO S, YAMAWAKI M, et al. 3D compaction printing of a continuous carbon fiber reinforced thermoplastic[J]. Composites Part A: Applied Science and Manufacturing, 2020, 137: 105985. |
49 | ZHANG H, CHEN J, YANG D. Fibre misalignment and breakage in 3D printing of continuous carbon fibre reinforced thermoplastic composites[J]. Additive Manufacturing, 2021, 38: 101775. |
50 | 胡家荣. 3D打印连续碳纤维增强热塑性复合材料弯曲性能研究[J]. 塑料科技, 2019, 47(11):4. |
HU J R. Study on bending properties of 3D printing continuous carbon fiber reinforced thermoplastic composites[J]. Plastic Technology, 2019, 47(11):4. | |
51 | Friedrich K. Carbon fiber reinforced thermoplastic composites for future automotive applications[C]//AIP Conference Proceedings. AIP Publishing LLC, 2016, 1736(1): 020001. |
52 | 钱伯章. 日本研发出世界首个碳纤维增强热塑性复合材料汽车底盘[J].合成纤维, 2017, 46(11):1. |
QIAN B Z. Japan has developed the world's first carbon fiber reinforced thermoplastic composite automobile chassis[J]. Synthetic Fiber in China, 2017, 46(11):1. | |
53 | 谢海洋,黄风美. 热塑性复合材料在航空航天中的应用[J].中国化工贸易,2019, 11(29):158. |
XIE H Y, HUANG F M. Application of thermoplastic composites in aerospace[J]. China Chemical Trade, 2019, 11(29):158. | |
54 | 王兴刚,于 洋,李树茂,等. 先进热塑性树脂基复合材料在航天航空上的应用[J].纤维复合材料,2011,28(2):44⁃47. |
WANG X G, YU Y, LI S M, et al. The research on fiber reinforced thermoplastic composite[J]. Fiber Compo⁃sites, 2011,28 (2): 44⁃47. | |
55 | 边彬辉,尹高喜,张赛军,等. 碳纤维复合材料在笔记本电脑外壳上的应用[J]. 模具工业,2011,37(1):68⁃72. |
BIAN B H, YIN G X, ZHANG S J, et al. Application of carbon fiber composite in forming notebook computer case[J]. Mold Industry, 2011,37 (1): 68⁃72. | |
56 | 刘立群,吴玉萍,刘军峰,等. 复合材料在风力机叶片上的应用[J]. 能源技术,2010,31(6):331⁃333,337. |
LIU L Q, WU Y P, LIU J F, et al. The application of composite on the blade of wind turbine[J]. Energy Technology, 2010,31(6): 331⁃333,337. |
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