首页> 外文会议>Asia-Pacific Symposium on Engineering Plasticity and Its Applications >Development of 3-Dimensional Compression Device and Its Application to Clarification of Densification Behavior of Urethane-Foam
【24h】

Development of 3-Dimensional Compression Device and Its Application to Clarification of Densification Behavior of Urethane-Foam

机译:三维压缩装置的研制及其在氨基甲酸酯 - 泡沫致密性行为的应用中的应用

获取原文

摘要

This paper deals with the results of three dimensional compression tests carried out for high stiffness urethane foams (Penguin-foam, Sunstar Engineering Ltd.), and also deals with the constitutive modelling base on Shima-Oyane's consolidation condition for the tested foamed urethane. Three kinds of urethane foams, relative densities of which were 0.1, 0.2 and 0.33, were employed in the experiments. Like metallic porous materials, the tested urethane foams show the strong plastic-compressibility. On the other hand, in modelling, unlike metallic porous materials, the identified material constants for different density foams do not take the same (or unified) values but take the different values when Shima-Oyane's constitutive model is assumed. Furthermore, the experimentally derived stress-relative density curves could not be satisfactorily described by Shima-Oyane's original constitutive model; the experimental stress-relative density curves show stronger work hardening as compared with the simulated ones especially in the large deformation stage. To avoid those inconvenience, in this paper, a modified Shima-Oyane type constitutive equation was also proposed, and it was shown that the proposed model could well express both the low work hardening area of the stress-relative density curves at the initial deformation stage and the strong work hardening area at the final deformation stage by supposing the stress restriction at initial deformation stage due to the buckling of cell walls of each foam, and the rapid stress increase at the large deformation stage caused by the successive contact and the friction between the bent cellular walls, respectively.
机译:本文涉及为高刚度聚氨酯泡沫(企鹅 - 泡沫,SUNSTAR工程有限公司)进行三维压缩试验的结果,还涉及Shima-Oyane的固结条件的本构模拟基础,用于测试泡沫聚氨酯。在实验中使用三种聚氨酯泡沫,其相对密度为0.1,0.2和0.33。与金属多孔材料一样,测试的聚氨酯泡沫显示出强烈的塑料压缩性。另一方面,在模拟中,与金属多孔材料不同,不同密度泡沫的鉴定的材料常数不采用相同(或统一的)值,而是当假设ShiMa-Oyane的本构模型时采用不同的值。此外,Shima-Oyane原始组成型模型不能令人满意地描述实验衍生的应力相对密度曲线;与尤其在大变形阶段的模拟阶段相比,实验应力相对密度曲线显示出更强的工作硬化。为了避免那些不便,还提出了一种改进的Shima-Oyane型本构式方程,并显示了所提出的模型可以在初始变形阶段表达应力相对密度曲线的低工作硬化区域并且由于每个泡沫的细胞壁弯曲,在最终变形阶段的应力限制,并且由于每个泡沫的细胞壁弯曲,并且在连续接触引起的大变形阶段的快速应力增加和摩擦之间的初始变形阶段的应力限制分别弯曲的细胞壁。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号