|
- 2018
RTM玻璃纤维/E51环氧树脂复合材料孔隙含量对超声特征参数的影响
|
Abstract:
[1] | CHAMBERS A R, EARL J S, SQUIRES C A, et al. The effect of voids on the flexural fatigue performance of unidirectional carbon fibre composites developed for wind turbine applications[J]. International Journal of Fatigue, 2006, 28(10):1389-1398. |
[2] | KIM K B, HSU D K, BARNARD D J. Estimation of porosity content of composite materials by applying discrete wavelet transform to ultrasonic backscattered signal[J]. Ndt & E International, 2013, 56(11):10-16. |
[3] | 马雯, 刘福顺. 玻璃纤维复合材料孔隙率对超声衰减系数及力学性能的影响[J]. 复合材料学报, 2012, 29(5):69-75. MA Wen, LIU Fushun. Effect of porosity on the attenuation coefficient and mechanical properties of glass fiber reinforced composites[J]. Acta Materiae Compositae Sinica, 2012, 29(5):69-75(in Chinese). |
[4] | ISHⅡ Y, BIWA S, KURAISHI A. Influence of porosity on ultrasonic wave velocity, attenuation and interlaminar interface echoes in composite laminates:Finite element simulations and measurements[J]. Composite Structures, 2016, 152:645-653. |
[5] | 李钊. 碳纤维复合材料孔隙率超声检测与评价技术研究[D]. 杭州:浙江大学, 2014. LI Zhao. Research on ultrasonic detection and evaluatlion technique for porosity of carbon fiber composites[D]. Hangzhou:Zhejiang University, 2014(in Chinese). |
[6] | 张冬梅, 叶金蕊, 刘奎, 等. 孔隙微观特征影响CFRP力学性能的细观综述[J]. 复合材料学报, 2013(S1):118-123. ZHANG Dongmei, YE Jinrui, LIU Kui, et al. Effects of void micro-characteristics on the mechanical behavior of CFRP by micromechanical method[J]. Acta Materiae Compositae Sinica, 2013(S1):118-123(in Chinese). |
[7] | 郑晖, 林树青. 超声检测[M]. 北京:中国劳动社会保障出版社, 2008:50-53. ZHENG Hui, LIN Shuqing. Ultrasonic testing[M]. Beijing:China Labour & Social Security Publishing House, 2008:50-53(in Chinese). |
[8] | 朱颖. 纤维增韧陶瓷基复合材料超声检测关键问题研究[D]. 南昌:南昌航空大学, 2014. ZHU Ying. Investigation on key problems of ultrasonic detection for fiber-reinforced ceramic matrix composites[D]. Nanchang:Nanchang Hangkong University, 2014(in Chinese). |
[9] | 陆铭慧, 林娜. RTM/纺织复合材料孔隙率非线性超声方法研究[J]. 航空制造技术, 2013(5):89-93. LU Minghui, LIN Na. Research on non-linear ultrasonic testing of void content in RTM/textile composites[J]. Aeronautical Manufacturing Technology, 2013(5):89-93(in Chinese). |
[10] | TEN CATE J A. New nonlinear acoustic techniques for NDE[J]. AIP Conference Proceedings, 2001, 557(1):1229-1236. |
[11] | 陆铭慧, 李沛芮, 王旭. 复合材料孔隙含量超声多参量评价方法研究[J]. 玻璃钢/复合材料, 2016(3):55-59. LU Minghui, LI Peirui, WANG Xu. The study of composites voids content ultrasonic multi-parameter evaluation method[J]. Fiber Reinforced Plastics/Composites, 2016(3):55-59(in Chinese). |
[12] | 全国纤维增强塑料标准化技术委员会. 玻璃纤维增强塑料树脂含量试验方法:GB/T 2577-2005[S]. 北京:中国标准出版社, 2005. National Technical Committee on Fiber Reinforced Plastic of Standardization Administration of China. Test method for resin content of glass fiber reinforced plastics:GB/T 2577-2005[S]. Beijing:Standards Press of China, 2005(in Chinese). |
[13] | 全国纤维增强塑料标准化技术委员会. 纤维增强塑料简支梁式冲击韧性试验方法:GB/T 1451-2005[S]. 北京:中国标准出版社, 2005. National Technical Committee on Fiber Reinforced Plastic of Standardization Administration of China. Fiber-reinforced plastic composites-Determination of charpy impact properties:GB/T 1451-2005[S]. Beijing:Standards Press of China, 2005(in Chinese). |
[14] | 侯彩云, 常丽萍, 张荣秀, 等. 复合材料金相试验方法研究[J]. 兵器材料科学与工程, 2002, 25(5):60-63. HOU Caiyun, CHANG Liping, ZHANG Rongxiu, et al. Investigation on micro-structures of composites with metallo-graphic tests[J]. Ordnance Material Science and Engineering, 2002, 25(5):60-63(in Chinese). |
[15] | 邓洪. 玻璃纤维连续毡技术发展及产品应用前景[J]. 玻璃纤维, 2002(5):12-15. DENG Hong. Technology development and application prospect of glass fiber continuous felt[J]. Fiber Glass, 2002(5):12-15(in Chinese). |
[16] | JUDD N C W, WRIGHT W W. Voids and their effects on the mechanical properties of composites-An appraisal[J]. SAMPE Journal, 1978, 14(1):10-14. |
[17] | 何方成. 复合材料孔隙率的超声检测方法探讨[J]. 材料工程, 2009(S1):57-60. HE Fangcheng. Research on ultrasonic methods for porosity measurement[J]. Journal of Materials Engineering, 2009(S1):57-60(in Chinese). |
[18] | 刘玲, 路明坤, 张博明, 等. 孔隙率对碳纤维复合材料超声衰减系数和力学性能的影响[J]. 复合材料学报, 2004, 21(5):116-121. LIU Ling, LU Mingkun, ZHANG Boming, et al. Effects of porosity on the ultrasonic absorption coefficient and mechanical strength of carbon/epoxy composites[J]. Acta Materiae Compositae Sinica, 2004, 21(5):116-121(in Chinese). |
[19] | 罗明. 碳纤维增强树脂基复合材料孔隙率超声无损检测[D]. 大连:大连理工大学, 2007. LUO Ming. The ultrasonic non-destructive test on the porosity of the carbon fiber reinforced polymer matrix com-posite[D]. Dalian:Dalian University of Technology, 2007(in Chinese). |
[20] | 全国纤维增强塑料标准化技术委员会. 纤维增强塑料密度和相对密度试验方法:GB/T 1463-2005[S]. 北京:中国标准出版社, 2005. National Technical Committee on Fiber Reinforced Plastic of Standardization Administration of China. Test methods for density and relative density of fiber reinforced plastics:GB/T 1463-2005[S]. Beijing:Standards Press of China, 2005(in Chinese). |
[21] | 全国纤维增强塑料标准化技术委员会. 纤维增强塑料弯曲性能试验方法:GB/T 1449-2005[S]. 北京:中国标准出版社, 2005. National Technical Committee on Fiber Reinforced Plastic of Standardization Administration of China. Fiber-reinforced plastic composites-Determination of flexural properties:GB/T 1449-2005[S]. Beijing:Standards Press of China, 2005(in Chinese). |
[22] | STONE D E W, CLARKE B. Ultrasonic attenuation as a measure of void content in carbon-fibre reinforced plastics[J]. Non-Destructive Testing, 1975, 8(3):137-145. |
[23] | DUONG N T, DUCLOS J, BIZET L, et al. Relation between the ultrasonic attenuation and the porosity of a RTM composite plate[J]. Physics Procedia, 2015, 70:554-557. |
[24] | 周晓军, 游红武, 程耀东. 含孔隙碳纤维复合材料的超声衰减模型[J]. 复合材料学报, 1997, 14(3):99-106. ZHOU Xiaojun, YOU Hongwu, CHENG Yaodong. Ultrasonic attenuation model of void contained carbon-fibre reinforced plastics[J]. Acta Materiae Compositae Sinica, 1997, 14(3):99-106(in Chinese). |