Influence of Cell Size on Re-Entrant Transformation of Negative Poisson's Ratio Reticulated Polyurethane Foams

被引:0
|
作者
Wang, Yun-Che
Lakes, Roderic
Butenhoff, Amanda
机构
[1] Dept. Eng. Phys., Eng. Mechanics A., University of Wisconsin-Madison, 147 Engineering Research Building, 1500 Engineering Drive, Madison, WI 53706-1687, United States
[2] Department of Biomedical Engineering, University of Wisconsin-Madison, 147 Engineering Research Building, 1500 Engineering Drive, Madison, WI 53706-1687, United States
[3] Department of Chemistry, Drake University, 2507 University Avenue, Des Moines, IA 50311, United States
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Several foams of different cell-size, including Scott Industrial polyurethane foam with large cells (20 pores per inch, ppi, or 1.2 mm per pore, black), medium cells (65 ppi, or 0.4 mm per pore, green), and near-microcellular (100 ppi, 0.25 mm per pore, white), were processed over various time and temperature regimes to ascertain the role of cell size in transformation to negative Poisson's ratio materials. These foams were transformed successfully, and exhibited negative Poisson's ratio behavior. Poisson's ratio was measured using a new laser based setup. For all as-received (unprocessed) foams with different cell sizes, Poisson's ratio decreased with compressive axial strain and increased with tensile strain up to a maximum. The maximum Poisson's ratio in tension decreased as cell size increases. The strain at which maximum Poisson's ratio occurs, increased with cell size. In negative Poisson's ratio foams, minimum Poisson's ratios of -0.8, -0.5, and -0.4 for 20 ppi, 65 ppi, and 100 ppi foams, respectively were observed. Furthermore, the cell size effects on transformation parameters were also found.
引用
收藏
页码:373 / 385
相关论文
共 50 条
  • [1] Influence of cell size on re-entrant transformation of negative Poisson's ratio reticulated polyurethane foams
    Wang, YC
    Lakes, R
    Butenhoff, A
    CELLULAR POLYMERS, 2001, 20 (06) : 373 - 385
  • [2] Analysis of elastic modulus of conventional foams and of re-entrant form materials with a negative poisson's ratio
    Choi, J.B.
    Lakes, R.S.
    International Journal of Mechanical Sciences, 1995, 37 (01):
  • [3] Strong re-entrant cellular structures with negative Poisson's ratio
    Li, Dong
    Yin, Jianhua
    Dong, Liang
    Lakes, Roderic S.
    JOURNAL OF MATERIALS SCIENCE, 2018, 53 (05) : 3493 - 3499
  • [4] Strong re-entrant cellular structures with negative Poisson’s ratio
    Dong Li
    Jianhua Yin
    Liang Dong
    Roderic S. Lakes
    Journal of Materials Science, 2018, 53 : 3493 - 3499
  • [5] Negative Poisson's Ratio Lattice Structure with Chiral and Re-Entrant Properties
    Luo, Yifei
    Dai, Fulun
    Shen, Jing
    Wang, Aiqiu
    Jiang, Xiongzhi
    Li, Yangbo
    APPLIED SCIENCES-BASEL, 2023, 13 (24):
  • [6] Indentation resistance of the re-entrant hexagonal honeycombs with negative poisson's ratio
    Hu, L. L.
    Deng, H.
    MATERIALS RESEARCH INNOVATIONS, 2015, 19 : S442 - S445
  • [7] The Vibration Isolation Design of a Re-Entrant Negative Poisson's Ratio Metamaterial
    Gao, Xu
    Wei, Jiyuan
    Huo, Jiajing
    Wan, Zhishuai
    Li, Ying
    APPLIED SCIENCES-BASEL, 2023, 13 (16):
  • [8] Re-entrant transformation methods in closed cell foams
    Martz, EO
    Lee, T
    Lakes, RS
    Goel, VK
    Park, JB
    CELLULAR POLYMERS, 1996, 15 (04) : 229 - 249
  • [9] Dynamic response characteristics of re-entrant circular honeycombs with negative Poisson's ratio
    Shen Z.
    Zhang X.
    Bai J.
    Wu H.
    Zhendong yu Chongji/Journal of Vibration and Shock, 2020, 39 (18): : 89 - 95and117
  • [10] Impact resistance of a double re-entrant negative poisson's ratio honeycomb structure
    Hai, Hong
    Chen, Chenfeng
    Wang, Wei
    Xu, Weikai
    PHYSICA SCRIPTA, 2024, 99 (02)