Manufacturing-Induced Imperfections in Composite Parts Manufactured via Automated Fiber Placement
暂无分享,去创建一个
[1] J.-B. Le Cam,et al. Modelling slit tape buckling during automated prepreg manufacturing: A local approach , 2011 .
[2] Christian Eitzinger,et al. A digital twin for composite parts manufacturing : Effects of defects analysis based on manufacturing data , 2018, 2018 IEEE 16th International Conference on Industrial Informatics (INDIN).
[3] Carroll Grant,et al. Automated processes for composite aircraft structure , 2006, Ind. Robot.
[4] Pierre Legay,et al. Experimental and numerical investigation on the open-hole compressive strength of AFP composites containing gaps and overlaps , 2017 .
[5] Kevin D Potter,et al. A concept for the in situ consolidation of thermoset matrix prepreg during automated lay-up , 2013 .
[6] Robert Hein,et al. Composite Process Chain Towards As-Built Design , 2013 .
[7] Nima Bakhshi,et al. An experimental and simulative study on the defects appeared during tow steering in automated fiber placement , 2018, Composites Part A: Applied Science and Manufacturing.
[8] David Maass,et al. Progress in automated ply inspection of AFP layups , 2015 .
[9] Douglas S. Cairns,et al. Response of automated tow placed laminates to stress concentrations , 1993 .
[10] F. Abdi,et al. EFFECT OF MANUFACTURING DEFECTS AND THEIR UNCERTAINTIES ON STRENGTH AND STABILITY OF STIFFENED PANELS , 2013 .
[11] N. Gascons,et al. Variable-stiffness composite panels: As-manufactured modeling and its influence on the failure behavior , 2014 .
[12] Richard Butler,et al. Modelling of as manufactured geometry for prediction of impact and compression after impact behaviour of variable angle tow laminates , 2015 .
[13] Arvind Tiwari,et al. A design algorithm to model fibre paths for manufacturing of structurally optimised composite laminates , 2018, Composite Structures.
[14] Z. Qureshi,et al. Limitations of processing carbon fibre reinforced plastic/polymer material using automated fibre placement technology , 2016 .
[15] Constantinos Soutis. Carbon fiber reinforced plastics in aircraft construction , 2005 .
[16] Tobias Wille,et al. ASSESSING THE STRUCTURAL RESPONSE OF AUTOMATED FIBRE PLACEMENT COMPOSITE STRUCTURES WITH GAPS AND OVERLAPS BY MEANS OF NUMERICAL APPROACHES , 2015 .
[17] LeRoy M. Fitzwater,et al. Structural Qualification of V-22 EMD Tow-Placed Aft Fuselage , 1995 .
[18] Andreas Hornig,et al. Experimental investigation of the effect of defects in Automated Fibre Placement produced composite laminates , 2018, Composite Structures.
[19] Wei Huang,et al. Layup quality evaluation of fiber trajectory based on prepreg tow deformability for automated fiber placement , 2016 .
[20] Ningbo Xie,et al. A numerical study on the influence of composite wrinkle defect geometry on compressive strength , 2018 .
[21] Mpf Sutcliffe,et al. Measurement of fibre waviness in industrial composite components , 2012 .
[22] August T. Noevere,et al. Mapping Manufacturing Data for Stress Analysis of Automated Fiber Placement Structures , 2018 .
[23] Xiangqian Li,et al. Modelling the effect of gaps and overlaps in automated fibre placement (AFP)-manufactured laminates , 2015 .
[24] Berend Denkena,et al. Thermal Image-based Monitoring for the Automated Fiber Placement Process , 2017 .
[25] Zafer Gürdal,et al. Thermomechanical Design Optimization of Variable Stiffness Composite Panels for Buckling , 2010 .
[26] Richard D. Hale,et al. Integrated Design and Analysis Tools for Reduced Weight, Affordable Fiber Steered Composites , 2004 .
[27] Damiano Pasini,et al. The role of shear deformation in laminated plates with curvilinear fiber paths and embedded defects , 2014 .
[28] Damiano Pasini,et al. Optimization of variable stiffness composites with embedded defects induced by Automated Fiber Placement , 2014 .
[29] Zafer Gürdal,et al. Tailoring for Strength of Steered-Fibre Composite Panels with Cutouts , 2010 .
[30] Mark A. Lamontia,et al. AUTOMATED FABRICATION PROCESSES FOR LARGE COMPOSITE AEROSPACE STRUCTURES : A TRADE STUDY , 2007 .
[31] Ranga Pitchumani,et al. Analysis of transport phenomena governing interfacial bonding and void dynamics during thermoplastic tow-placement , 1996 .
[32] Christophe Baley,et al. Influence of embedded gap and overlap fiber placement defects on the microstructure and shear and compression properties of carbon–epoxy laminates , 2016 .
[33] L. Lessard,et al. DESIGN AND MANUFACTURING OF OPTIMUM VARIABLE STIFFNESS LAMINATES , .
[34] N. Gascons,et al. Effect of tow-drop gaps on the damage resistance and tolerance of Variable-Stiffness Panels , 2014 .
[35] Berend Denkena,et al. Automated Fiber Placement Head for Manufacturing of Innovative Aerospace Stiffening Structures , 2016 .
[36] John W. Gillespie,et al. Influence of Ply Waviness on the Stiffness and Strength Reduction on Composite Laminates , 1992 .
[37] Isaac M Daniel,et al. EFFECT OF FIBER WAVINESS ON STIFFNESS AND STRENGTH REDUCTION OF UNIDIRECTIONAL COMPOSITES UNDER COMPRESSIVE LOADING , 1996 .
[38] C. Fagiano,et al. Computational Modeling of Tow-Placed Composite Laminates with Fabrication Features , 2010 .
[39] Andrew C. Long,et al. Understanding the buckling behaviour of steered tows in Automated Dry Fibre Placement (ADFP) , 2016 .
[40] Jerzy Warminski,et al. A review on the mechanical behaviour of curvilinear fibre composite laminated panels , 2014 .
[41] M. Bannister,et al. Challenges for composites into the next millennium : a reinforcement perspective , 2001 .
[42] Olben Falcó Salcines. Analysis of process-induced defects on steered-fiber panels for aeronautical applications , 2014 .
[43] Bijan Shirinzadeh,et al. Fabrication process of open surfaces by robotic fibre placement , 2004 .
[44] Olivier Le Roux,et al. Virtual testing of aircraft structures , 2011 .
[45] Suresh G. Advani,et al. A Non-Isothermal Process Model for Consolidation and Void Reduction during In-Situ Tow Placement of Thermoplastic Composites , 1995 .
[46] Catharine Marsden,et al. Design for Manufacturing - One-Piece, Fibre-Placed Composite Helicopter Tailboom , 2011, MSE 2011.
[47] Bijan Shirinzadeh,et al. Robotic fiber placement process analysis and optimization using response surface method , 2011 .
[48] C. S. Lopes,et al. Damage and Failure of Non-Conventional Composite Laminates , 2009 .
[49] Dirk Hans-Joachim Adrian Lukaszewicz. Optimisation of high-speed automated layup of thermoset carbon-fibre preimpregnates , 2011 .
[50] A. Long,et al. Uncertainty in the manufacturing of fibrous thermosetting composites: A review , 2014 .
[51] Stephen R Hallett,et al. Compressive failure of laminates containing an embedded wrinkle; experimental and numerical study , 2015 .
[52] N. Gascons,et al. Variable-stiffness composite panels: Defect tolerance under in-plane tensile loading , 2014 .
[53] Daniel O. Adams,et al. Compression strength reductions in composite laminates due to multiple-layer waviness , 1995 .
[54] Luis Izco,et al. High Speed Tow Placement System for Complex Surfaces with Cut / Clamp / & Restart Capabilities at 85 m/min (3350 IPM) , 2006 .
[55] A. Sawicki,et al. THE EFFECT OF INTRAPLY OVERLAPS AND GAPS UPON THE COMPRESSION STRENGTH OF COMPOSITE LAMINATES , 1998 .
[56] Won Jong Choi,et al. 3 Production Control Effect on Composite Material Quality and Stability for Aerospace Usage , 2017 .
[57] J. A. Mayugo,et al. Modelling and simulation of tow-drop effects arising from the manufacturing of steered-fibre composites , 2017 .
[58] Samuel T. IJsselmuiden. Optimal Design of Variable Stiffness Composite Structures using Lamination Parameters , 2011 .
[59] Christophe Baley,et al. Microstructure and tensile properties of carbon–epoxy laminates produced by automated fibre placement: Influence of a caul plate on the effects of gap and overlap embedded defects , 2015 .
[60] Janko Kreikemeier,et al. Manufacturing of CFRP specimens with controlled out-of-plane waviness , 2014 .
[61] Christian Krombholz,et al. GroFi: Large-scale fiber placement research facility , 2016 .
[62] Damiano Pasini,et al. Experimental study of the effect of automated fiber placement induced defects on performance of composite laminates , 2011 .
[63] Lockheed Martin,et al. Design and Manufacturing of Tow-Steered Composite Shells Using Fiber Placement , 2009 .
[64] Russell DeVlieg,et al. High-Speed Fiber Placement on Large Complex Structures , 2007 .
[65] Hans Peter Monner,et al. Avoiding defects in manufacturing processes , 2016 .
[66] Ralph P. Tatam,et al. AUTOMATED MANUFACTURE OF 3D REINFORCED AEROSPACE COMPOSITE STRUCTURES , 2012 .
[67] B. Tatting,et al. Analysis and design of variable stiffness composite cylinders , 1998 .
[68] K. Fayazbakhsh. The impact of gaps and overlaps on variable stiffness composites manufactured by Automated Fiber Placement , 2013 .
[69] Zafer Gürdal,et al. Progressive failure analysis of tow-placed, variable-stiffness composite panels , 2007 .
[70] J. Llorca,et al. Multiscale Modeling of Composites: Toward Virtual Testing … and Beyond , 2013 .
[71] Stephen R Hallett,et al. Understanding and predicting defect formation in automated fibre placement pre-preg laminates , 2017 .
[72] A. Yousefpour,et al. Effects of gaps and overlaps on the buckling behavior of an optimally designed variable-stiffness composite laminates – A numerical and experimental study , 2016 .
[73] Jens Hinrichsen,et al. The challenge of reducing both airframe weight and manufacturing cost , 2001 .
[74] Damiano Pasini,et al. Defect layer method to capture effect of gaps and overlaps in variable stiffness laminates made by Automated Fiber Placement , 2013 .
[75] J. Segurado,et al. Multiscale Modeling of Composite Materials: a Roadmap Towards Virtual Testing , 2011, Advanced materials.
[76] Z. Gürdal,et al. Variable-stiffness composite panels: Buckling and first-ply failure improvements over straight-fibre laminates , 2008 .
[77] Bijan Shirinzadeh,et al. Robotic fibre placement process planning and control , 2000 .
[78] Mohammad Rouhi,et al. Design, manufacturing, and testing of a variable stiffness composite cylinder , 2018 .
[79] Jürgen Thomas. The A380 programme — the big task for Europe's aerospace industry , 2001 .
[80] Kevin D Potter,et al. The internal structure and conformation of prepreg with respect to reliable automated processing , 2011 .
[81] K Hazra,et al. Experimental fabrication and characterization of out-of-plane fiber waviness in continuous fiber-reinforced composites , 2012 .
[82] Richard Degenhardt,et al. Investigations on imperfection sensitivity and deduction of improved knock-down factors for unstiffened CFRP cylindrical shells , 2010 .
[83] Simon Astwood,et al. A review on design for manufacture of variable stiffness composite laminates , 2016 .
[84] Rainer Glüge,et al. Comparison of spherical and cubical statistical volume elements with respect to convergence, anisotropy, and localization behavior , 2012 .
[85] Michael R Wisnom,et al. Variability, fibre waviness and misalignment in the determination of the properties of composite materials and structures , 2008 .
[86] Tobias Wille,et al. In-situ structural evaluation during the fibre deposition process of composite manufacturing , 2018 .
[87] J. Díaz,et al. Failure analysis of variable stiffness composite plates using continuum damage mechanics models , 2018 .
[88] Ralf Schledjewski,et al. Parametric study on processing parameters and resulting part quality through thermoplastic tape placement process , 2013 .
[89] Paul M. Weaver,et al. Limitations of fibre placement techniques for variable angle tow composites and their process-induced defects , 2011 .
[90] Frank Abdi,et al. Computational Approach Toward Advanced Composite Material Qualification and Structural Certification , 2009 .
[91] A. Blom,et al. Structural Performance of Fiber-Placed, Variable-Stiffness Composite Conical and Cylindrical Shells , 2010 .
[92] Srinivas Kodiyalam,et al. Optimization of tow fiber paths for composite design , 1995 .
[93] Dawn C. Jegley,et al. Automated Finite Element Analysis of Elastically-Tailored Plates , 2013 .
[94] Andrew Makeev,et al. Structures perspective for strength and fatigue prognosis in composites with manufacturing irregularities , 2014 .
[95] Anthony M. Waas,et al. A new lamination theory for layered textile composites that account for manufacturing induced effects , 2009 .
[96] Jerome T. Tzeng,et al. Strength prediction of multi-layer plain weave textile composites using the direct micromechanics method , 2007 .
[97] Stephen R Hallett,et al. Tensile failure of laminates containing an embedded wrinkle; numerical and experimental study , 2015 .
[98] K. Potter,et al. The engineering aspects of automated prepreg layup: History, present and future , 2012 .
[99] Berend Denkena,et al. Thermographic online monitoring system for Automated Fiber Placement processes , 2016 .
[100] Michael Sinapius,et al. A Novel Approach: Combination of Automated Fiber Placement (AFP) and Additive Layer Manufacturing (ALM) , 2018, Journal of Composites Science.
[101] Justin Nielson,et al. Improving AFP Cell Performance , 2014 .
[102] Kevin D Potter,et al. Through-thickness compression response of uncured prepreg during manufacture by automated layup , 2012 .
[103] John J. Craig,et al. Automated composite tape lay-up using robotic devices , 1993, [1993] Proceedings IEEE International Conference on Robotics and Automation.
[104] Ghodrat Karami,et al. Effective moduli and failure considerations for composites with periodic fiber waviness , 2005 .
[105] Zafer Gurdal,et al. A Theoretical Model to Study the Influence of Tow-drop Areas on the Stiffness and Strength of Variable-stiffness Laminates , 2009 .
[106] Norman J. Johnston,et al. Processing and Testing of Thermoplastic Composite Cylindrical Shells Fabricated by Automated Fiber Placement , 2001 .
[107] Suong V. Hoa,et al. Experimental and numerical investigation of the effect of gaps on fatigue behavior of unidirectional carbon/epoxy automated fiber placement laminates , 2017 .
[108] Hui Li,et al. First-principles study on the structural and electronic properties of clean and atomic oxygen adsorbed ZrC(001) surface , 2015 .
[109] Zafer Gürdal,et al. Progressive damage analysis of tow-steered composite panels in postbuckling , 2007 .
[110] David Bassir,et al. Stress analysis of multi-phase and multi-layer plain weave composite structure using global/local approach , 2010 .
[111] Luise Kärger,et al. AS-BUILT FE SIMULATION OF ADVANCED FIBRE PLACEMENT STRUCTURES BASED ON MANUFACTURING DATA , 2013 .
[112] George Marsh,et al. Automating aerospace composites production with fibre placement , 2011 .
[113] Ranga Pitchumani,et al. Design and Optimization of a Thermoplastic Tow-Placement Process with In-Situ Consolidation , 1997 .
[114] Dawn C. Jegley,et al. Tow-Steered Panels With Holes Subjected to Compression or Shear Loads , 2005 .
[115] Roland Hinterhölzl,et al. Simulation and experimental validation of gaps and bridging in the automated fiber placement process , 2015 .
[116] Shahrul Kamaruddin,et al. A review on the manufacturing defects of complex-shaped laminate in aircraft composite structures , 2017 .
[117] Hidetoshi Nakayasu,et al. A comparative study of failure criteria in probabilistic fields and stochastic failure envelopes of composite materials , 1997 .
[118] Francesco Caputo,et al. A review on analytical failure criteria for composite materials , 2017 .