全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
-  2018 

航空发动机复合材料叶片用3D机织预制体研究进展
Review of 3D woven preforms for the composite blades of aero engine

DOI: 10.13801/j.cnki.fhclxb.20180329.001

Keywords: 三维预制体,航空发动机,复合材料叶片,机织,变形
3-dimensional preforms
,aero-engine,composite blade,weaving,deformation

Full-Text   Cite this paper   Add to My Lib

Abstract:

三维机织复合材料(3DWCs)因其高比强度、低密度、低热膨胀系数和良好的成型性等优点受到越来越多的青睐,已经成功运用到飞机和汽车工程等领域。随着航空发动机研发力度的加大,3DWCs也在飞机发动机零部件上有所应用。综述了航空发动机复合材料叶片用三维机织预制体(3DWPs)的研究进展及现状;对比了异形高厚度3DWPs的几种织造方法;基于试验测试和仿真模拟,介绍了国内外3DWPs变形性能的研究进展;分析了3DWPs结构对其复合材料性能的影响;最后,展望了3DWPs的发展方向,为航空发动机复合材料叶片的发展提供了参考依据。 The composites made from 3D woven preforms(3DWCs) have attracted far more attentions due to their very high specific-strength, low density, low thermal expansion and excellent formability, which have been successfully employed in aircraft and automobile engineering. With the research and development of aero engine are increasing, 3DWCs have also been applied to engine parts. The current research progress and current situation of 3D woven preforms(3DWPs)for the composite blades of aero engine were summarized; A contrastive analysis of several weaving methods of special-shaped high thickness 3DWPs was carried out; The research progress of deformation performance of 3DWPs was recommended based on experimentation and simulation; The effect of 3DWPs structure on the properties of the composites was also introduced; Furthermore, the challenges and outlook of the 3DWPs were outlined, thus it provided some reference gist for the deeper research on the development of composite blades of aero engine. 天津市科技支撑计划重点项目(15ZCZDGX00340)

References

[1]  杨彩云, 李嘉禄. 三维机织复合材料力学向异性[J].复合材料学报, 2006, 23(2):59-64. YANG Caiyun, LI Jialu. Mechanical anisotropy of three dimensional woven composites[J].Acta Materiae Compositae Sinica, 2006, 23(2):59-64(in Chinese).
[2]  焦亚男, 祈小芬, 吴宁, 等. 上浆量对碳纤维的立体织造损伤及其复合材料拉伸性能的影响[J].复合材料学报, 2015, 32(5):1496-1502. JIAO Y N, QI X F, WU N. et al. Effects of sizing amount on carbon fiber three-dimensional weaving damage and tensile properties ofits composites[J]. Acta Materiae Compositae Sinica, 2015, 32(5):1496-1502(in Chinese).
[3]  AMANDA J L, DAVID J R, KEITH W S, et al. Automated methods for the quantification of 3D woven architectures[J].Materials Characterization, 2017, 124:241-249.
[4]  DE LUYCKER E, MORESTIN F, BOISSE P, et al. Simulation of 3D interlock composite preforming[J]. Composite Structures, 2009, 88(4):615-623.
[5]  CHAMPENOIS, DAVID, INIZAN, et al. Turbomachine blade made of composite material:United States Patent, 5672417[P]. 1997-09-30.
[6]  DAMBRINE B, MOLINARI O, COUPE D, et al. Turbomachine blade in particular a fan blade, and its method of Manufacture:United States Patent, US 7101154B2[P]. 2006-09-05.
[7]  MADEO A, BARBAGALLO G, D'AGOSTINO M V, et al. Continuum and discrete models for unbalanced woven fabrics[J]. International Journal of Solids and Structures, 2016, s94-95(1):263-284.
[8]  BARBAGALLO G, MADEO A, AZENAF I, et al. Bias extension test on an unbalanced woven composite reinforcement:Experiments and modeling via a second-gradient continuum approach[J].Journal of Composite Materials, 2017, 51(2):153-170.
[9]  赵渠森. 先进复合材料手册[M].北京:机械工业出版社, 2003, 1141-1162. ZHAO Qusen. Advanced composite material handbook[M]. China Machine Press, 2003, 1141-1162(in Chinese).
[10]  阮见, 梁素兰, 胡方田.一种用于2.5D结构立体织物成型的开口装置:中国, 201410757804.6[P]. 2014-12-10. RUAN Jian, LIANG Sulan, HU Fangtian. An opening device for the molding of 2.5D structure three-dimensional fabrics:China, 201410757804.6[P]. 2014-12-10(in Chinese).
[11]  马小莉, 袁树信.一种多层三维立体织物的织造方法:中国, 201410119683.2[P].2014-03-27. MA Xiaoli, YUAN Shuxin. A method of weaving multi-layer three-dimensional fabrics:China, 201410119683.2[P]. 2014-03-27(in Chinese).
[12]  朱建勋, 朱梦蝶, 张立泉, 等. 一种2.5D非同步异向异型立体织物的制造方法:中国, 201410709880.X[P]. 2014-11-27. ZHU Jianxun, ZHU Mengdie, ZHANG Liquan, et al. A method of manufacturing 2.5D non synchronous heterotypic stereoscopic fabrics:China, 201410709880.X[P]. 2014-11-27(in Chinese).
[13]  GROSBERG P, PARK B J. The mechanical properties of woven fabrics, Part V:The initial modulus and the frictional restraint in shearing of plain weave fabrics[J]. Textile Research Journal, 1966, 36(5):420-431.
[14]  GROSBERG P, LEAF G A V, PARK B J. The mechanical properties of woven fabrics, Part VI:The elastic shear modulus of plain weave fabrics[J]. Textile Research Journal, 1968, 38(11):1085-1100.
[15]  SPIVAK S M, TRELOAR L R G. The behavior of fabrics in shear:Part Ⅲ:The relation between bias-extension and simple shear[J]. Textile Research Journal, 1968, 38(9):963-971.
[16]  SKELTON J. Fundamental of fabric shear[J]. Textile Research Journal, 1976, 12(46):862-869.
[17]  姜亚明, 张剑寒, 邱冠雄. 画框式剪切测试装置的运动规律、缺陷及改进[J]. 东华大学学报, 2002, 28(2):25-30. JIANG Yaming, ZHANG Jianhan, QIU Guanxiong. A study on the motion law, defect and improvement of picture-frame shear device[J]. Journal of Donghua University, 2002, 28(2):25-30.
[18]  张剑寒, 姜亚明, 邱冠雄. 画框式织物剪切试验装置的运动规律研究[J].纺织学报, 2003, 24(2):121-123. ZHANG Jianhan, JIANG Yaming, QIU Guanxiong. A study on the motion law of picture-frame shear device[J]. Journal of Textile Research, 2003, 24(2):121-123.
[19]  CAO J, AKKERMAN R, BOISSE P, et al. Characterization of mechanical behavior of woven fabrics:Experimental methods and benchmark results[J]. Composites. Part A:Applied Science and Manufacturing, 2008, 39(6):1037-1053.
[20]  LAUNAY J, HIVET G, DUONG A V, et al. Experimental analysis of the influence of tensions on in plane shear behaviour of woven composite reinforcements[J]. Composites Science and Technology, 2008, 68(2):506-515.
[21]  PRODROMOU A G, CHEN J.On the relationship between shear angle and wrinkling of textile composite preforms[J]. Composites Part A:Applied Science and Manufacturing, 1997, 28(5):491-503.
[22]  NGUYEN M, HERSZBERG I, PATON R. The shear properties of woven carbon fabric[J]. Composite Structures, 1999, 47(4):767-779.
[23]  王燕洁, 张一帆, 潘宁, 等. 三维织物剪切变形的试验研究[J]. 天津工业大学学报, 2013, 32(4):33-36. WANG Yanjie, ZHANG Yifan, PAN Ning, et al. Experimental study on shear deformation of 3D orthogonal woven fabric.[J]. Journal of Tianjin Polytechnic University, 2013, 32(4):33-36(in Chinese).
[24]  BOISSE P, HAMILA N, GUZMAN-MALDONADO E, et al. The bias-extension test for the analysis of in-plane shear properties of textile composite reinforcements and prepregs:A review[J]. International Journal of Material Forming, 2017, 10(4):473-492.
[25]  CUOMO M, DELL'ISOLA F, GRECO L. Simplified analysis of a generalized bias test for fabrics with two families of inextensible fibres[J]. Zeitschrift für Angewandte Mathematik und Physik, 2016, 67(3):1-23.
[26]  MANUEL F, ANGELA M, FRANCESCO D, et al. Modeling the onset of shear boundary layers in fibrous composite reinforcements by second-gradient theory[J]. Zeitschrift Für Angewandte Mathematik und Physik, 2013, (6):1-26.
[27]  BARBAGALLO G, MADEO A, AZEHAF I, et al. Bias extension test on an unbalanced woven composite reinforcement:Experiments and modeling via a second-gradient continuum approach[J]. Journal of Composite Materials, 2016, (5):1-21.
[28]  BARBAGALLO G, MADEO A, MORESTIN F, et al. Modelling the deep drawing of a 3D woven fabric with a second gradient model[J]. Mathematics and Mechanics of Solids, 2017, 22(11):2165-2179.
[29]  MATHIEU S, HAMILA N, BOUILLON F, et al. Enhanced modeling of 3D composite preform deformations taking into account local fiber bending stiffness[J]. Composites Science and Technology, 2015, 117(29):322-333.
[30]  陈志明.三维角联锁织物基本力学性能及其变形行为分析[D].哈尔滨:哈尔滨工业大学, 2015. CHEN Zhiming. Analysis on the basic mechanical properties and deformation behavior of three-dimension angle interlock fabric[D]. Harbin:Harbin Institute of Technology, 2015(in Chinese).
[31]  焦亚男, 仇普霞, 纪高宁, 等. 经纬向纤维体积比例对2.5D机织复合材料力学性能的影响[J]. 天津工业大学学报, 2015, 34(3):1-5. JIAO Ya'nan, QIU Puxia, JI gaoning, et al. Mechanical properties of 2.5D woven composites with different volume rates in warp and weft directions[J]. Journal of Tianjin Polytechnic University, 2015, 34(3):1-5(in Chinese).
[32]  梁仕飞, 矫桂琼, 王波. 三维机织C/C SiC复合材料弹性性能预测[J].复合材料学报, 2011, 28(1):138-142. LIANG Shifei, JIAO Guiqiong, WANG Bo. Prediction of elastic properties of three dimensional woven C/C SiC composite[J]. Acta Materiae Compo-sitae Sinica, 2011, 28(1):138-142(in Chinese).
[33]  许承海, 孟松鹤, 齐菲, 等. 三维机织碳/碳复合材料双轴压缩载荷下的力学行为[J].复合材料学报, 2012, 29(2):206-211. XU Chenghai, MENG Songhe, QI Fei, et al. Mechanical behaviors of the three-dimensional woven carbon/carbon composite materials under biaxial compression[J]. Acta Materiae Compositae Sinica, 2012, 29(2):206-211(in Chinese).
[34]  冯古雨, 曹海建, 王新月, 等. 三维角联锁机织复合材料剪切性能有限元分析[J]. 宇航材料工艺, 2017, 47(2):14-17. FENG Guyu, CAO Haijian, WANG Xinyue, et al. Finite element analysis of 3d angle interlock woven composites on shear property[J]. Aerospace Materials & Technology, 2017, 47(2):14-17.
[35]  朱永新, 崔海涛, 温卫东. 2.5维机织复合材料经向拉伸弹性模量预测与试验验证[J].复合材料报, 2013, 30(3):198-204. ZHU Yongxin, CUI Haitao, WEN Weidong. Elastic property prediction and experimental verification in the warp direction of 2.5D woven composites[J]. Acta Materiae Compositae Sinica, 2013, 30(3):198-204(in Chinese).
[36]  ZHAO Yufen, SONG Leilei, LI Jialu, et al. Multi-scale finite element analyses of thermal conductivities of three dimensional woven composites[J]. Applied Composite Materials, 2017, 24(6):1525-1542.
[37]  ZHAO Yufen, JIAO Yanan, SONG Leilei, et al. Influence of fabric architecture and weaving parameter on the thermal conductivities of 3D woven composites[J]. Journal of Composite Materials, 2017, 51(21):3041-3051.
[38]  廖焕文. 复材叶片在民用航空发动机中的应用和发展[J]. 科技创新与应用, 2016(21):122. LIAO Huanwen. Application and development of compound blade in civil aero engine[J]. Technological Innovation and Application, 2016(21):122(in Chinese).
[39]  张衡, 严飙, 龚友坤, 等. 机织碳纤维增强热塑性复合材料热冲压叠层模型[J]. 复合材料学报, 2017, 34(12):2741-2746. ZHANG Heng, YAN Biao, GONG Youkun, et al. A lamination model for thermos stamping of carbon woven fabric reinforced thermoplastic composites[J]. Acta Materiae Compositae Sinica, 2017, 34(12):2741-2746(in Chinese).
[40]  马立敏, 张嘉振, 岳广全, 等. 复合材料在新一代大型民用飞机中的应用[J]. 复合材料学报, 2015, 32(2):317-322. MA Limin, ZHANG Jjiazhen, YUE Guangquan, et al. Application of composites in new generation of large civil aircraftrt[J]. Acta Materiae Compositae Sinica, 2015, 32(2):317-322(in Chinese).
[41]  杜善义. 先进复合材料与航空航天[J]. 复合材料学报, 2007, 24(1):1-12. DU Shanyi. Advanced composite materials and aerospace engineering[J]. Acta Materiae Compositae Sinica, 2007, 24(1):1-12(in Chinese).
[42]  杜善义, 关志东. 我国大型客机先进复合材料技术应对策略思考[J]. 复合材料学报, 2008, 25(1):1-10. DU Shanyi, GUAN Zhidong. Strategic considerations for development of advanced composite technology for large commercial air-craft in China[J]. Acta Materiae Compositae Sinica, 2008, 25(1):1-10(in Chinese).
[43]  陈利, 孙绯, 焦亚男, 等. 一种斜交法向增强2.5D织物及其织造方法:中国, 201310637912.5[P]. 2013-11-29. CHEN Li, SUN Fei, JIAO Ya'nan, et al. A skew direction reinforced 2.5D fabric and its weaving method:China, 201310637912.5[P]. 2013-11-29(in Chinese).
[44]  王鹏. 变厚度三维机织物的制备与结构分析[D]. 上海:东华大学, 2012. WANG Peng. Production and structural analysis of variable thickness 3D woven fabrics[D]. Shanghai:Donghua University, 2012(in Chinese).
[45]  曾文敏. 连续变厚度平板状三维机织物的研制[D]. 上海:东华大学, 2014. ZENG Wenmin.Research and development of continuous variable thickness 3D woven fabric[D]. Shanghai:Donghua University, 2014(in Chinese).
[46]  LONG A C, RUDD C D, BLAGDON M, et al. Characterizing the processing and performance of aligned reinforcements during preform manufacture[J]. Composites Part A:Applied Science and Manufacturing, 1996, 27(4):247-253.
[47]  HAANAPPEL S P, THIJE R H W, SACHS U, et al. Formability analyses of uni-directional and textile reinforced thermos plastics[J]. Composites Part A:Applied Science and Manufacturing, 2014, 56(56):80-92.
[48]  SMITH J R, VAIDYA U K, JOHNSTONE J K. Analytical modeling of deformed plain woven thermoplastic composites[J]. International Journal of Material Forming, 2014, 7(4):379-393.
[49]  LIU Y, STRAUMIT I, VASIUKOV D, et al. Prediction of linear and non-linear behavior of 3D woven composite using mesoscopic voxel models reconstructed from X-ray micro-tomography[J]. Composite Structures, 2017, 179:568-579.
[50]  NAOUAR N, VIDAL S E, SCHNEIDER J. 3D composite reinforcement meso F.E. analyses based on X-ray computed tomography[J]. Composite Structures, 2015, 132:1094-1104.
[51]  WENDLING A, DANIEL J L, HIVET G, et al. Meshing preprocessor for the mesoscopic 3D finite element simulation of 2D and interlock fabric deformation[J]. Applied Composite Materials, 2015, 22(6):869-886.
[52]  WENDLING A, HIVET G, et al. Consistent geometrical modelling of interlock fabrics[J]. Finite Elements in Analysis and Design, 2014, (90):93-105.
[53]  杨连贺, 李姜. 三维机织复合材料纱线束截面变形研究[J]. 复合材料学报, 2008, 25(4):198-204. YANG Lianhe, LI Jiang. Study on tow cross-section deformation in three-dimensional woven composites[J]. Acta Materiae Compositae Sinica, 2008, 25(4):198-204(in Chinese).
[54]  赵玉芬, 宋磊磊, 李嘉禄, 等. 三维机织碳纤维/环氧树脂复合材料在两种测量方法下的热响应机理对比[J].复合材料学报, 2018, 35(1):103-109. ZHAO Yufen, SONG Leilei, LI Jialu, et al. Comparison of thermal response mechanisms for three dimensional woven carbon fiber/epoxy resin composites under two measurement methods[J]. Acta Materiae Compositae Sinica, 2018, 35(1):103-109(in Chinese).
[55]  兰海青. 赛峰集团将采取措施降低Leap发动机供应商成本[J].航空发动机, 2017, 43(1):2. LAN Haiqing. Safran will take measures to reduce the cost of Leap engine supplier[J]. Aero Engine, 2017, 43(1):2(in Chinese).
[56]  杨彩云, 李嘉禄.基于纱线真实形态的三维机织复合材料细观结构及厚度计算[J].复合材料学报, 2005, 22(6):178-182. YANG Caiyun, LI Jialu. Microstructure and thickness equation of 3D woven composites based on yarn's true configuration[J].Acta Materiae Compositae Sinica, 2005, 22(6):178-182(in Chinese).
[57]  胡雨, 裴鹏英, 龚小舟. 角联锁三维机织物在多综眼织机上的织造设计[J]. 纺织导报, 2017(12):35-39. HU Yu, PEI Pengying, GONG Xiaozhou. Weaving of angle-interlock fabric on multi-eyelet loom[J]. China Textile Leader, 2017(12):35-39(in Chinese).
[58]  陈英立. 三维立体增强机织物预制件的开发与研究[D]. 西安:西安工程大学, 2015. CHEN Yingli. The exploitation and manufacture of 3D reinforced woven fabric preform[D]. Xi'an:Xi'an Polytechnic University, 2015(in Chinese).
[59]  蒋家松, 周罗庆. 叠经式多层间隔结构整体机织预制体的实现[J].棉纺织技术, 2010, 38(12):24-27. JIANG Jiasong, ZHOU Luoqing. Manufacture of overlapping warp multi-layer distance integrated woven preform[J].Cotton Textile Technology, 2010, 38(12):24-27(in Chinese).
[60]  蒋家松. 叠经中空结构机制复合材料的结构设计及力学性能研究[D]. 无锡:江南大学, 2013. JIANG Jiasong. Development and mechanical bebavior of a overlapping warp 3D woven composites[D]. Wuxi:Jiangnan University, 2013(in Chinese).
[61]  郭洪伟, 张立泉, 朱梦蝶, 等. 高性能复合材料用机织2.5D织物的结构设计与织造工艺[J]. 玻璃纤维, 2017(3):1-5. GUO Hongwei, ZHANG Liquan, ZHU Mengdie, et al. Structural design and weaving process of 2.5D woven fabrics used for high performance composites[J].Fiber Glass, 2017(3):1-5(in Chinese).
[62]  MOHAMMED U, LEKAKOU C, DONG L, et al. Shear deformation and micromechanics of woven fabrics[J]. Composites Part A:Applied Science and Manufacturing, 2000, 31(4):299-308.
[63]  张一帆, 陈利, 孙绯, 等. 预定型机织物剪切变形实验研究[J]. 复合材料学报, 2009, 26(3):29-34. ZHANG Yifan, CHEN Li, SUN Fei, et al. Experimental research on shear deformation of tackified woven fabrics[J].Acta Materiae Compositae Sinica, 2009, 26(3):29-34(in Chinese).
[64]  ZHANG Y F, CHEN L, SUN F, et al. Experimental study on mechanical properties of 3D woven fabrics[J]. Proceedings of the 3rd World Conference on 3D Fabrics and Their Applications, 2011:102-106.
[65]  张一帆, 陈利, 李金超, 等. 机织结构预成型体本构关系和剪切性能[J].宇航材料工艺, 2010(4):16-22. ZHANG Yifan, CHEN Li, LI Jinchao, et al. Constitutive relationships and shear properties of woven preforms[J]. Aerospace Materials and Technology, 2010(4):16-22(in Chinese).
[66]  陈利, 张一帆, 等.预定型平纹织物的剪切模型[J].复合材料学报, 2010, 27(2):154-160. CHEN Li, ZHANG Yifan, et al. Shear model of tackified plain fabrics[J]. Acta Materiae Compositae Sinica, 2010, 27(2):154-160(in Chinese).
[67]  ZHANG Y F, CHEN L, SUN F. Research on shear performance of tackified woven fabrics[J]. Proceedings of the Fiber Society 2009 Spring Conference, 2009(Ⅰ, Ⅱ):57-60.
[68]  ZHANG Yifan, SUN Fei, WANG Yanjie, et al. Study on intra/inter-ply shear deformation of three dimensional woven preforms for composite materials[J]. Materials and Design, 2013, 49:151-159.
[69]  张一帆. 三维整体结构纤维预成型体的变形机理及本构研究[D]. 天津:天津工业大学, 2013. ZHANG Yifan. Deformation mechanism and constitutive of 3D integral structure fiber preform[D]. Tianjin:Tianjin Polytechnic University, 2013(in Chinese).
[70]  邓金海, 陈利, 孙绯, 等. 石英纤维缎纹织物的剪切变形实验研究[J]. 天津工业大学学报, 2013, 32(6):19-22. DENG Haijin, CHEN Li, SUN Fei, et al. Experimental research on shear deformation of quartz fiber satin fabrics[J].Journal of Tianjin Polytechnic University, 2013, 32(6):19-22(in Chinese).
[71]  李姗姗, 陈利, 焦亚男. 2.5维机织物剪切性能实验研究[J]. 材料工程, 2009(s2):56-59. LI Shanshan, CHEN Li, JIAO Ya'nan. Experimental research on shear characteristics of 2.5D woven fabrics[J]. Journal of Materials Engineering, 2009(s2):56-59(in Chinese).
[72]  WANG P, HAMILA N, PINEAU P, et al. Thermom-echanical analysis of thermoplastic composite prepregs using bias-extension test[J]. Journal of Thermoplastic Composite Materials, 2014, 27(5):679-698.
[73]  GHERISSI A, ABBASSⅡ F, AMMAR A, et al. Numerical and experimental investigations on deep drawing of G1151 carbon fiber woven composites[J]. Applied Composite Materials, 2016, 23(3):461-476.
[74]  WANG J, PAGE J R, PATON R. Experimental investigation of the draping properties of reinforcement fabrics[J]. Composites Science and Technology, 1998, 58(2):229-237.
[75]  PEIRCE F T. The geometry of cloth structure[J]. Journal of the Textile Institute Transactions, 1937, 28(3):45-97.
[76]  HEARLE J W S, et al. Structural mechanics of fibers, yarns and fabrics[J]. Structural Mechanics of Fibers Yarns and Fabrics, 1969.
[77]  LEAF G A V. Model of the plain-knitted loop[J]. Journal of the Textile Institute Transactions, 1960, 51(2):49-58.
[78]  LEAF G A V. Geometry of a plain-knitted loop[J]. Journal of the Textile Institute Proceedings & Abstracts, 1955, 46:587-605.
[79]  LEAF G A V. The initial load-extension behavior of plain-woven fabrics[J]. Journal of the Textile Institute Proceedings & Abstracts, 1980, 71:1-7.
[80]  余育苗, 王肖钧, 李永池, 等. 三维正交机织复合材料的单胞模型及应用[J].复合材料学报, 2009, 36(4):181-185. YU Yumiao, WANG Xiaojun, LI Yongchi, et al.Cell model of 3D orthogonal woven composite and its application[J]. Acta Materiae Compositae Sinica, 2009, 36(4):181-185(in Chinese).
[81]  丁辛, 易洪雷. 三维机织结构的几何模型[J]. 复合材料学报, 2003, 20(5):108-113. DING Xin, YI Honglei.A geometric model of three dimensional woven structures[J]. Acta Materiae Compositae Sinica, 2003, 20(5):108-113(in Chinese).
[82]  张艳红, 钱坤, 曹海建. 基于最小势能原理的2.5D机织物的结构模型[J]. 玻璃钢/复合材料, 2008(3):18-20. ZHANG Yanhong, QIAN Kun, CAO Haijian. Geometric model of 2.5D woven fabric structures based on the principle of minimum potential energy[J]. Fiber Reinforced Plastics/Composites, 2008(3):18-20(in Chinese).
[83]  PANKOW M, WAAS A, YEN C. Modeling the response of 3D textile composites under compressive loads to predict compressive strength[J]. Computers, Materials and Continua, 2012, 32(2):81-106.
[84]  STRAUMIT I, LOMOV S V, WEVERS M. Quantification of the internal structure andautomatic generation of voxel models of textile composites from X-raycomputed tomography data[J]. Compos Part A:Applied Science and Manufacturing, 2014, 69:150-158.
[85]  BARBURSKI M, STRAUMIT I, ZHANG X, et al. Micro-CT analysis of internal structure of sheared textile composite reinforcement[J]. Composites Part A:Applied Science and Manufacturing, 2015, 73:45-54.
[86]  TOPAL S, BAIOCCHI L, ANDREW D A, et al. Late-stage fatigue damage in a 3D orthogonal non-crimp woven composite:An experimental and numerical study[J]. Composites Part A:Applied Science and Manufacturing, 2015, 79:155-163.
[87]  杨连贺, 李姜, 陈利. 三维机织复合材料结构表征与实体造型[J]. 复合材料学报, 2009, 26(4):169-175. YANG Lianhe, LI Jiang, CHEN Li. Architecture description and solid modeling of 3D woven composite[J]. Acta Materiae Compositae Sinica, 2009, 26(4):169-175(in Chinese).
[88]  杨连贺, 陈利, 王善利. 应用经纬互规法建立3D机织复合材料的几何模型[J]. 复合材料学报, 2012, 29(3):208-213. YANG Lianhe, CHEN Li, WANG Shanli. Geometric modeling of 3D woven composite with warp and fill mutual imitation[J]. Acta Materiae Compositae Sinica, 2012, 29(3):208-213(in Chinese).
[89]  黄林. 2.5维织物及其复合件的基本力学性能分析[D]. 哈尔滨:哈尔滨工业大学, 2015. HUANG Lin. Analysis on the basic mechanical properties of 2.5D fabric and composite object[D]. Harbin:Harbin Institute of Technology, 2015(in Chinese).
[90]  PAGE J, WANG J. Prediction of shear force and an analysis of yarn slippage[J]. Composites Science and Technology, 2000, 60(7):977-986.
[91]  BEL S, BOISSE P, DUMONT F. Analyses of the deformation mechanisms of non-crimp fabric composite reinforcement during preforming[J]. Applied Composite Materials, 2012, 19(3-4):513-528.
[92]  罗锡林, 谭惠丰, 武国军, 等.国产F-12芳纶织物面内剪切性能的实验研究[J]. 复合材料学报, 2018, 35, doi:10.13801/j.cnki.fhclxb.20170601.003 LUO Xilin, TAN Huifeng, WU Guojun. Experimental investigation of in-plane shear performance for F-12 aramid fabric[J]. Acta Materiae Compositae Sinica, 2018, 35, doi:10.13801/j.cnki.fhclxb.20170601.003(in Chinese).
[93]  YU B, BLANC R, SOUTIS C, et al. Evolution of damage during the fatigue of 3D woven glass-fiber reinforced compo-sites subjected to tension-tension loading observed by time-lapse X-ray tomography[J]. Composites Part A:Applied Science and Manufacturing, 2016, 82:279-290.
[94]  LUYCKER E D E, ORLIAC J G, MORESTIN F, et al. Experimental and numerical analysesof 3D interlock composite preforming[J].International Journal of Material Forming, 2010(S3):719-722.
[95]  丁纺纺, 彭雄奇. 复合材料用机织物非正交本构模型的半球形冲压成型验证[J]. 复合材料学报, 2011, 28(1):156-160. DING Fangfang, PENG Xiongqi.Validation of a non-orthogonal constitutive model for woven composite fabricsvia hemispherical stamping simulation[J]. Acta Materiae Compositae Sinica, 2011, 28(1):156-160(in Chinese).
[96]  谭僖, 刘伟, 曹腊梅, 等.不同纤维预制体结构对SiCf/PyC/SiBCN复合材料力学性能的影响[J]. 航空材料学报, 2017, 34(4):45-51. TAN Xi, LIU Wei, CAO Lamei, et al. Effect of fabric preform structure on mechanical properties of sicf/pyc/sibcn composites[J]. Journal of Aeronautical Materials, 2017, 34(4):45-51(in Chinese).
[97]  卢子兴, 周原, 冯志海, 等. 2.5D机织复合材料压缩性能实验与数值模拟[J]. 复合材料学报, 2015, 32(1):150-159. LU Zixing, ZHOU Yuan, FENG Zhihai, et al. Experiment and numerical simulation on compressive properties of 2.5D woven fabric composites[J].Acta Materiae Compositae Sinica, 2015, 32(1):150-159(in Chinese).
[98]  郭兴峰. 三维机织物[M].北京:中国纺织出版社, 2015:5-6. GUO Xingfeng. Three dimensional woven fabric[M].Beijing:China Textile Press, 2015:5-6(in Chinese).
[99]  刘强, 赵龙, 黄峰. 商用大涵道比发动机复合材料风扇叶片应用现状与展望[J]. 航空制造技术, 2014, 459(15):58-62. LIU Qiang, ZHAO Long, HUANG Feng. Present conditions and development of composite fan blades of high bypass ratio commercial jet engines[J]. Aeronautical Manufacturing Technology, 2014, 459(15):58-62(in Chinese).
[100]  董红坤, 贺辛亥, 钟鹏, 等. 三维机织物织边造型工艺设计[J]. 纺织学报, 2017, 38(4):50-54. DONG Hongkun, HE Xinhai, ZHONG Peng, et al. Design of 3D woven fabric selvage modeling process[J]. Journal of Textile Research, 2017, 38(4):50-54(in Chinese).
[101]  陈利, 孙绯, 焦亚男, 等. 一种法向增强2.5D织物及其织造方法:中国, 201010031344.0[P]. 2010-01-13. CHEN Li, SUN Fei, JIAO Ya'nan, et al. A normal reinforced 2.5D fabric and its weaving method:China, 201010031344.0[P]. 2010-01-13(in Chinese).
[102]  全亦锋, 林莉, 刘杰, 等. 一种2.5D异型织物的整体编织方法:中国, 201610641941.2[P]. 2016-08-08. QUAN Yifeng, LIN Li, LIU Jie, et al. A whole weaving method of 2.5D special-shaped fabric:China, 201610641941.2[P]. 2016-08-08(in Chinese).
[103]  祝成炎, 田伟, 申小宏. 纵向变截面立体机织结构与组织设计[J]. 浙江工程学院学报, 2003, 20(2):96-99. ZHU Chenyan, TAN Wei, SHEN Xiaohong. 3D woven structures with changing cross sections in longitudinal direction and their weave design[J]. Journal of Zhejiang Institute of Science and Technology, 2003, 20(2):96-99(in Chinese).
[104]  韦鑫, 沈兰萍, 雷蕾, 等. 纵向厚度渐变三维机织物经纱固结方式设计[J]. 现代纺织技术, 2017, 25(6):40-44. WEI Xin, SHEN Lanping, LEI Lei. Warp consolidation design of three-dimension woven fabric with longitudinal gradient thickness[J]. Advanced Textile Technology, 2017, 25(6):40-44(in Chinese).
[105]  郭军. 纵横双向变厚度三维机织物的研制[D]. 上海:东华大学, 2016. GUO Jun. Development of 3d woven fabric with gradual thickness change[D]. Shanghai:Donghua University, 2016(in Chinese).
[106]  谢位, 马颜雪, 胡吉永. 叶片预型件榫头部分的结构设计[J].国际纺织导报, 2017(9):38-42. XIE Wei, MA Yanxue, HU Jiyong. Structure design of blade preform joint parts[J].China textile leader, 2017(9):38-42(in Chinese).

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133