[1] Jang T S , Oh D S , Kim J K , et al. Development of multi-functional composite structures with embedded electronics for space application[J]. Acta Astronautica, 2011, 68(1-2): 240-252. [2] 周杰, 曹国荣, 王巍, 等. DSC法研究不饱和聚酯树脂的固化反应动力学及其固化过程[J]. 玻璃纤维, 2011(5): 16-20. [3] Ma L, Zhang J, Yue G, et al. Application of composites in new generation of large civil aircraft[J]. Acta Materiae Compositae Sinica, 2015, 32(2): 317-322. [4] 李想, 谢宗蕻, 王绥安, 等. 阶梯形修理复合材料层合板拉伸性能研究[J]. 哈尔滨工业大学学报, 2018, 50(5): 75-82. [5] 丁林. 挖补复合材料层合板的静强度和损伤机理分析[D]. 南昌: 南京航空航天大学, 2017. [6] Baldan A. Adhesion phenomena in bonded joints[J]. International Journal of Adhesion and Adhesives, 2012, 38: 95-116. [7] Baldan A. Adhesively-bonded joints and repairs in metallic alloys, polymers and composite materials: Adhesives, adhesion theories and surface pretreatment.[J]. Journal of Materials Science, 2004, 39(1): 1-49. [8] 纪朝辉, 刘阔, 李娜, 等. 挖补修理对复合材料层合板拉伸性能的影响[J]. 中国民航大学学报, 2013, 31(3): 50-53. [9] Kumar S B, Sridhar I, Sivashanker S, et al. Tensile failure of adhesively bonded CFRP composite scarf joints[J]. Materials Science & Engineering B, 2006, 132(1): 113-120. [10] 李长青, 许艺, 任攀, 等. 碳纤维/环氧树脂复合材料表面激光选择性消融预处理[J]. 中国表面工程, 2016, 29(1): 118-124. [11] 吴瑶, 孔海娟, 丁小马, 等. 激光处理对CFRP与铝胶接性能的研究[J]. 玻璃钢/复合材料, 2018(4): 56-61. [12] Cheng P, Gong X J, Aivazzadeh S, et al. Experimental observation of tensile behavior of patch repaired composites[J]. Polymer Testing, 2014, 34: 146-154. [13] 李长青, 董怀斌, 邹育根, 等. 低温空气等离子体处理对铝合金表面粘接性能的影响[J]. 中国表面工程, 2017, 30(6): 34-42. [14] Amano R S, Rohatgi P K. Laser engineered net shaping process for SAE 4140 low alloy steel[J]. Materials Science & Engineering A, 2011, 528(22): 6680-6693. [15] 钦兰云. 钛合金激光沉积修复关键技术研究[D]. 沈阳: 沈阳工业大学, 2014. [16] 张敏. 碳纤维增强树脂基复合材料界面结合强度关键影响因素研究[D]. 青岛: 山东大学, 2010. |