Numerical Simulation and Experimental Validation of Hybrid Injection Molded Short and Continuous Fiber-Reinforced Thermoplastic Composites

被引:11
作者
Hirsch, Patrick [1 ]
John, Marianne [1 ]
Leipold, Daniel [1 ]
Henkel, Andre [1 ]
Gipser, Sylvia [1 ]
Schlimper, Ralf [1 ]
Zscheyge, Matthias [1 ]
机构
[1] Fraunhofer Inst MicroStruct Mat & Syst IMWS, D-06120 Halle, Germany
关键词
numerical simulation; hybrid injection molding; continuous fiber-reinforced thermoplastics; MULTISCALE ANALYSIS; ORIENTATION; MODEL; HOMOGENIZATION; PARAMETERS; ANISOTROPY; MOLDINGS; BEHAVIOR; FLOW;
D O I
10.3390/polym13213846
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
In-situ thermoforming and overmolding of continuous fiber-reinforced thermoplastic composites by hybrid injection molding enables the mass production of thermoplastic lightweight structures with a complex geometry. In this study, the anisotropic mechanical behavior of such hybrid injection molded short and continuous fiber-reinforced thermoplastics and the numerical simulation of the resulting mechanical properties under flexural loading were investigated. For this, the influence of the volume flow rate between 25 and 100 cm(3)/s during injection molding of a PP/GF30 short fiber-reinforced overmolding material was studied and showed a strong effect on the fiber orientation but not on the fiber length, as investigated by computer tomography and fiber length analysis. Thus, the resulting anisotropies of the stiffness and strength as well as the strain hardening investigated by tensile testing were considered when the mechanical behavior of a hybrid test structure of short and continuous fiber-reinforced thermoplastic composites was predicted by numerical simulations. For this, a PP/GF60 and PP/GF30 hybrid injection molded test structure was investigated by a numerical workflow with implemented injection molding simulation data. In result, the prediction of the mechanical behavior of the hybrid test structure under flexural loading by numerical simulation was significantly improved, leading to a reduction of the deviation of the numerically predicted and experimentally measured flexural strength from 21% to 9% in comparison to the isotropic material model without the implementation of the injection molding data.
引用
收藏
页数:18
相关论文
共 48 条
[11]  
Burkhart A., 2006, JEC COMPOS MAG, V43/22, P41
[12]   Numerical forming of continuous fibre reinforced composite material: A review [J].
Bussetta, Philippe ;
Correia, Nuno .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2018, 113 :12-31
[13]   Mechanical Simulation of Thermoplastic Composite Fiber Variable-Angle Laminates [J].
Cao, Zhongliang ;
Guo, Dengke ;
Fu, Hongya ;
Han, Zhenyu .
MATERIALS, 2020, 13 (15) :1-17
[14]   Theories and finite elements for multilayered, anisotropic, composite plates and shells [J].
Carrera, E .
ARCHIVES OF COMPUTATIONAL METHODS IN ENGINEERING, 2002, 9 (02) :87-140
[15]   A Numerical Simulation Method for the One-Step Compression-Stamping Process of Continuous Fiber Reinforced Thermoplastic Composites [J].
Chen, Lu ;
Deng, Tianzhengxiong ;
Zhou, Helezi ;
Huang, Zhigao ;
Peng, Xiongqi ;
Zhou, Huamin .
POLYMERS, 2021, 13 (19)
[16]   Present State of the Art of Composite Fabric Forming: Geometrical and Mechanical Approaches [J].
Cherouat, Abel ;
Borouchaki, Houman .
MATERIALS, 2009, 2 (04) :1835-1857
[17]   ORTHOTROPIC CLOSURE APPROXIMATIONS FOR FLOW-INDUCED FIBER ORIENTATION [J].
CINTRA, JS ;
TUCKER, CL .
JOURNAL OF RHEOLOGY, 1995, 39 (06) :1095-1122
[18]   Experimental and numerical investigation of the flexural behavior of CFRP box girders [J].
Ding, Guoping ;
Zhang, Yixuan ;
Zhu, Yong .
ADVANCED COMPOSITES LETTERS, 2019, 28
[19]   Prediction of Fiber Orientation Distribution in Injection Molded Parts Using Moldex3D Simulation [J].
Foss, Peter H. ;
Tseng, Huan-Chang ;
Snawerdt, John ;
Chang, Yuan-Jung ;
Yang, Wen-Hsien ;
Hsu, Chia-Hsiang .
POLYMER COMPOSITES, 2014, 35 (04) :671-680
[20]   Reduced basis hybrid computational homogenization based on a mixed incremental formulation [J].
Fritzen, Felix ;
Leuschner, Matthias .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2013, 260 :143-154