China Plastics ›› 2022, Vol. 36 ›› Issue (5): 29-35.DOI: 10.19491/j.issn.1001-9278.2022.05.006

• Materials and Properties • Previous Articles     Next Articles

Influence of fused deposition process parameters on static and dynamic mechanical properties of thermoplastic polyurethane elastomer

LEI Jingfa1,2, SHEN Qiang1, LIU Tao1,2(), SUN Hong1,2, YIN Zhiqiang1   

  1. 1.School of Mechanical and Electrical Engineering,Anhui Jianzhu University,Hefei 230601,China
    2.Anhui Key Laboratory of Intelligent Manufacturing of Construction Machinery,Hefei 230601,China
  • Received:2022-02-07 Online:2022-05-26 Published:2022-05-26

Abstract:

To explore the static and dynamic mechanical properties of thermoplastic polyurethane elastomer prepared through the fused deposition modeling process as well as the influence of process parameters on the mechanical properties, the mechanical properties of thermoplastic polyurethane elastomer under a quasi?static loading of 0.01 s-1 and a dynamic loading of 1 000 s-1 were evaluated at three printing speeds of 10, 40 and 70 mm/s and three nozzle temperatures of 200, 220, and 240 °C using a universal material testing machine and a split Hopkinson pressure bar (SHPB) experimental apparatus. The process parameters were also optimized. Furthermore, the stress?strain sample space data were further obtained in a wide strain?rate range of 0.001~2 500 s-1. The results indicated that a nozzle temperature of 220 °C and a printing speed of 40 mm/s were the optimal process parameters under the quasi?static and dynamic loadings. The specimens had a strain?rate effect under both the quasi?static and the dynamic conditions, exhibiting significant hyper?elastic characteristics under the quasi?static condition. Using a viscoelastic constitutive model of the material combined with the ZWT (Zhu?Wang?Tang) equation under the dynamic condition, the fitted curves of the model were in good agreement with the experimental curves. The specimens showed an obvious "micro?phase separation" under the optimal process parameters.

Key words: thermoplastic polyurethane elastomer, fused deposition modeling, split Hopkinson pressure bar, strain rate

CLC Number: