欢迎登录材料期刊网

材料期刊网

高级检索

应用改进的虚裂纹闭合技术对热、力载荷作用下多材料构件连接区界面进行断裂分析.首先,通过对含橡胶夹层的复合材料层合板单腿弯曲(SLB)试件断裂分析,研究了在不同温度载荷作用下,橡胶夹层对试件能量释放率及其各型分量的影响.其次,对具有热流边界下,典型复合材料-橡胶-金属组成的多材料圆柱壳体连接裙结构进行了热力耦合断裂分析,结果表明裂纹总能量释放率随温度升高而增大.最后,针对该连接裙结构讨论了裂纹位置和橡胶层厚度对裂纹能量释放率的影响,指出适当增加橡胶层厚度可以降低裂纹能量释放率,但橡胶厚层度与界面韧性之间存在尺寸效应.

参考文献

[1] 许金泉.界面力学[M].北京:科学出版社,2006:14-33.Xu Jinquan.The mechanics of interface[M].Beijing:Science Press,2006:14-33.
[2] Shin K C,Kim W S,Lee J J.Application of stress intensity to design of anisotropic/isotropic bi-materials with a wedge[J].International Journal of Solids and Structure,2007,44(24):7748-7766.
[3] Pidaparti R M V,Pontula G.Three-dimensional analysis of interface cracks in rubber materials[J].International Journal of Fracture,1995,68(4):315-332.
[4] Hocine N A,Abdelaziz M N,Ghfiri H,et al.Evaluation of the energy parameter J on rubber-like materials:Comparison between experimental and numerical results[J].Engineering Fracture Mechanics,1996,55(6):919-933.
[5] 白瑞祥,陈浩然.含面\芯开裂损伤复合材料夹层板考虑几何非线性的能量释放率数值分析[J].复合材料学报,2003,20(3):1-6.Bai Ruixiang,Chen Haoran.Numerical analysis of energy release rate for composite sandwich plate with an interfacial crack considering geometric nonlinearity[J].Acta Materiae Compositae Sinica,2003,20(3):1-6.
[6] 陈浩然,于瑾,白瑞祥.含分层损伤复合材料等三角形格栅加筋板的起裂和扩展过程研究[J].复合材料学报,2008,25(2):173-177.Chen Haoran,Yu Jin,Bai Ruixiang.Study on delamination onset and growth process for composite advanced isogrid stiffened structures (AGS)[J].Acta Materiae Compositae Sinica,2008,25(2):173-177.
[7] Krueger R.Virtual crack closure technique:History,approach,and applications[J].Applied Mechanics Reviews,2004,57(2):109-143.
[8] 鲁国富,刘勇,张呈林.基于虚拟裂纹闭合技术的应变能释放率分析[J].复合材料学报,2009,26(2):210-216.Lu Guofu,Liu Yong,Zhang Chenglin.Analysis of strain energy release rate based on virtual crack closure technique[J].Acta Materiae Compositae Sinica,2009,26 (2):210-216.
[9] 徐浩,陈浩然,任明法.多材料构件界面断裂分析[J].复合材料学报,2010,27(2):95-100.Xu Hao,Chen Haoran,Ren Mingfa.Interfacial fractural analysis for joint-structures with multi-material system[J].Acta Materiae Compositae Sinica,2010,27(2):95-100.
[10] Krueger R.Three dimensional finite element analysis of multidirectional composite DCB,SLB and ENF specimens,ISD-Report-1994-2[R].Syracuse:Syracuse University,1994:12-20.
[11] Krueger R,O'Brien T K.A shell/3D modeling technique for the analysis of delaminated composite laminates[J].Composites:Part A,2001,32(1):25-44.
[12] 朱艳峰,刘锋,黄小清,等.橡胶材料的本构模型[J].橡胶工业,2006,53(2):119-125.Zhu Yanfeng,Liu Feng,Huang Xiaoqing,et al.Constitutive model for rubber material[J].Rubber Industry,2006,53(2):119-125.
[13] 黄建龙,解广娟,刘正伟.基于Mooney-Rivlin模型和Yeoh模型的超弹性橡胶材料有限元分析[J].橡胶工业,2008,55(8):467-471.Huang Jianlong,Xie Guangjuan,Liu Zhengwei.FEA of hyperelastic rubber material based on Mooney Rivlin model and Yeoh model[J].Rubber Industry,2008,55(8):467-471.
[14] 方庆红,张凤鹏,黄宝宗.不同温度条件下硫化橡胶拉伸特性的研究[J].建筑材料学报,2005,8(4):383-386.Fang Qinghong,Zhang Fengpeng,Huang Baozong.Study on extension characteristics of vulcanized rubber at different temperatures[J].Journal of Building Materials,2005,8(4):383-386.
[15] 陈祥宝.聚合物基复合材料手册[M].北京:化学工业出版社,2004.Chen Xiangbao.Polymer matrix composite materials handbool[M].Beijing:Chemical Industry Press,2004.
[16] 邓可顺,纪峥.激光束照射下轴压圆柱薄壳热屈曲数直分析[J].强激光与粒子束,1998,10(2):212-216.Deng Keshun,Ji Zheng.Numerical modeling of thermal buckling of cylindrical shells with axial compression under laser irradiation[J].High Power Laser and Particle Beams.1998,10(2):212-216.
[17] 周贵斌,李庆领,黄敬东.橡胶比热特性的实验研究[J].世界橡胶工业,2006,33(3):20-22.Zhou Guibin,Li Qingling,Huang Jingdong.Experimental study for rubber's specific heat capacity[J].World Rubber Industry,2006,33(3):20-22.
上一张 下一张
上一张 下一张
计量
  • 下载量()
  • 访问量()
文章评分
  • 您的评分:
  • 1
    0%
  • 2
    0%
  • 3
    0%
  • 4
    0%
  • 5
    0%