Understanding the Compressive Behavior of Linear and Cross-linked Poly(vinyl chloride) Foams

被引:29
|
作者
Lim, G. T. [1 ]
Altstaedt, V. [1 ]
Ramsteiner, F. [2 ]
机构
[1] Univ Bayreuth, Dept Polymer Engn, D-95447 Bayreuth, Germany
[2] BASF AG, D-67056 Ludwigshafen, Germany
关键词
PVC foam; cross-linking; compression; predictive model; POLYMERIC FOAMS; MORPHOLOGY;
D O I
10.1177/0021955X09105372
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
The work reported in this article was initiated by the IUPAC Subcommittee 'Structure and Properties of Commercial Polymers' to study the 'Structure and properties of linear and cross-linked structural poly(vinyl chloride) (PVC) foams', and intends in particular to give a good understanding of the compressive response of these PVC foams with various foam densities. From a careful review of chemical reactions of polymeric methylene diphenyl diisocyanate [a mixture of 4,4'-methylene-bis(phenyl-isocyanate) and oligomeric isocyanates] with water or phthalic acid, it is known from the material supplier that a semi-interpenetrating polymer network of polyureas and/or polyamides is formed by cross-linking. The amide groups in these polymers are hydrophilic and can affect the overall mechanical response of PVC foams, especially under water. Scanning electron microscopy is used to study the morphology of linear and cross-linked foams and their heterogeneous foam deformation. Compression testing of these PVC foams is conducted in air and water, and illustrates the influence of foam density and cross-linking. Correlation of compressive testing of foams with the corresponding cross-linked PVC bulk materials suggests that elastic collapse of cells during compression may be linked to strain-softening of the corresponding bulk material. Finally, new predictive models are adopted for the PVC foams to give reasonable estimates of their compressive modulus and yield strength.
引用
收藏
页码:419 / 439
页数:21
相关论文
共 50 条
  • [31] Structure and swelling of cross-linked nanocellulose foams
    Hossain, Laila
    Raghuwanshi, Vikram Singh
    Tanner, Joanne
    Wu, Chun-Ming
    Kleinerman, Olga
    Cohen, Yachin
    Garnier, Gil
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2020, 568 : 234 - 244
  • [32] Study on utilization of cross-linked polyethylene foams
    Szulc, Ryszard
    Kudla, Stanislaw
    Barton, Joanna
    PRZEMYSL CHEMICZNY, 2013, 92 (10): : 1802 - 1807
  • [33] BEHAVIOR OF POROUS CROSS-LINKED POLY(ETHYLENE DIMETHACRYLATE ESTERS)
    VLAD, CD
    POINESCU, IC
    BARBU, M
    EUROPEAN POLYMER JOURNAL, 1994, 30 (08) : 863 - 868
  • [34] Elution of polymers from physically cross-linked poly(vinyl alcohol) gels
    Otsuka, Emiko
    Sasaki, Saori
    Koizumi, Kenta
    Hirashima, Yumiko
    Suzuki, Atsushi
    SOFT MATTER, 2010, 6 (24) : 6155 - 6159
  • [35] IONIC INTERACTIONS IN CROSS-LINKED POLY(VINYL ALCOHOL) HYDROGEL BLENDED WITH STARCH
    Ul Abdeen, Zain
    Saeed, Rehana
    REVUE ROUMAINE DE CHIMIE, 2019, 64 (03) : 233 - 240
  • [36] SELECTIVE SORPTION OF FERRIC ION ONTO CROSS-LINKED POLY(VINYL BENZALDOXIME)
    CHANDA, M
    REMPEL, GL
    REACTIVE POLYMERS, 1993, 19 (03): : 201 - 212
  • [37] Evaluations of poly(vinyl alcohol) hydrogels cross-linked under γ-ray irradiation
    Nho, YC
    Moon, SW
    Lee, KH
    Park, CW
    Suh, TS
    Jung, YA
    Ahn, WS
    Chun, HJ
    JOURNAL OF INDUSTRIAL AND ENGINEERING CHEMISTRY, 2005, 11 (01) : 159 - 164
  • [38] Microrheology of poly(vinyl alcohol) aqueous solutions and chemically cross-linked gels
    Narita, T
    Knaebel, A
    Munch, JP
    Candau, SJ
    MACROMOLECULES, 2001, 34 (23) : 8224 - 8231
  • [39] Facile preparation of cross-linked porous poly(vinyl alcohol) nanofibers by electrospinning
    Liu, Jun
    Chang, Meng-Jie
    Du, Hui-Ling
    MATERIALS LETTERS, 2016, 183 : 318 - 321
  • [40] Synthesis of spherical porous cross-linked glutaraldehyde/poly(vinyl alcohol) hydrogels
    Araki, Sadao
    Shirakura, Yuko
    Suzuki, Harufumi
    Yamamoto, Hideki
    JOURNAL OF POLYMER ENGINEERING, 2016, 36 (09) : 891 - 898