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Impact testing of polymeric foam using Hopkinson bars and digital image analysis

机译:使用Hopkinson棒和数字图像分析进行聚合物泡沫的冲击测试

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摘要

The present investigation aims at testing polymeric foam under impact loading using large diameter nylon Hopkinson bars and optical field measurements. Accurate average stressstrain relations can be obtained when soft large diameter polymeric pressure bars and the appropriate data processing are used. However, as there are generally no homogeneous strain and stress fields for polymeric foams, an optical field observation is needed. In contrast to quasi-static tests where the digital image correlation (DIC) measurement is commonly used, technical difficulties still remain for the reliable use of DIC under impact conditions. In this paper, an accurate synchronization method based on the displacement measurement of the end of pressure bars (calculated by a robust DIC algorithm) is preferred to conventional MCDL box time synchronization. Also, the bar end displacement measurement offers a complementary calibration method for the tension/strain conversion coefficient. Strain fields are obtained for tests on foam sample at impact velocities up to 20 m/s. The localized strain fields permit better understanding of the observed stress plateau from SHPB results. The relevance of the present method for establishing mechanical response of polymeric foam is then demonstrated.
机译:本研究旨在使用大直径尼龙Hopkinson棒和光学场测量法在冲击载荷下测试聚合物泡沫。当使用大直径软聚合物压力棒和适当的数据处理时,可以获得准确的平均应力-应变关系。然而,由于聚合物泡沫通常不存在均匀的应变场和应力场,因此需要进行光学场观察。与通常使用数字图像相关性(DIC)测量的准静态测试相反,在冲击条件下可靠使用DIC仍然存在技术难题。在本文中,基于压力棒末端位移测量的精确同步方法(通过鲁棒DIC算法计算)优于传统的MCDL盒式时间同步。同样,杆端位移测量为张力/应变转换系数提供了一种补充的校准方法。获得了在冲击速度高达20 m / s的泡沫样品上进行测试的应变场。局部应变场可以从SHPB结果更好地了解观察到的应力平稳状态。然后证明了用于建立聚合物泡沫的机械响应的本方法的相关性。

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