Anisotropy of the stiffness and strength of rigid low-density closed-cell polyisocyanurate foams

被引:58
作者
Andersons, J. [1 ,2 ]
Kirpluks, M. [1 ]
Stiebra, L. [1 ]
Cabulis, U. [1 ]
机构
[1] Latvian State Inst Wood Chem, Dzerbenes St 27, LV-1006 Riga, Latvia
[2] Univ Latvia, Inst Polymer Mech, Aizkraukles St 23, LV-1006 Riga, Latvia
关键词
Polymer foams; Anisotropy; Stiffness; Strength; MECHANICAL-PROPERTIES; POLYURETHANE FOAMS; COMPRESSIVE RESPONSE; ELASTIC PROPERTIES; POLYMERIC FOAMS; RAPESEED OIL; MODEL; MICROSTRUCTURE; TOMOGRAPHY; KELVIN;
D O I
10.1016/j.matdes.2015.12.122
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The cells of polymer foams are usually extended in the foam rise direction, causing a geometrical anisotropy, the degree of which, characterized by the cell aspect ratio R, depends on foam density and production method. Such elongated cell shape translates into anisotropy of the mechanical properties of foams. Rigid low-density closed cell polyisocyanurate foams of apparent density ranging from ca. 30 to 75 kg/m(3), containing polyols derived from renewable resources, have been produced and tested for the stiffness and strength in the foam rise and transverse directions in order to experimentally characterize their mechanical anisotropy. Analytical relations for foams with rectangular parallelepiped and tetrakaidecahedral (Kelvin) cells were considered for predicting the mechanical characteristics of the polyisocyanurate foams in terms of their apparent density, geometrical anisotropy, and characteristics of the base polymer. Open-cell models were found to produce conservative estimates of foam stiffness and strength, albeit very close for the former when a tapering strut geometry was allowed for in the Kelvin cell model. Extending the rectangular parallelepiped cell model to the closed-cell case allowed a reasonably good description of variations of both the stiffness and strength with foam density. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:836 / 845
页数:10
相关论文
共 43 条
[1]   Temperature and speed of testing influence on the densification and recovery of polyurethane foams [J].
Apostol, Dragos Alexandru ;
Constantinescu, Dan Mihai .
MECHANICS OF TIME-DEPENDENT MATERIALS, 2013, 17 (01) :111-136
[2]  
Billotto F., 2003, 2003010333 SAE
[3]   Rapeseed oil-based rigid polyisocyanurate foams modified with nanoparticles of various type [J].
Cabulis, Ugis ;
Sevastyanova, Irina ;
Andersons, Janis ;
Beverte, Ilze .
POLIMERY, 2014, 59 (03) :207-212
[4]   Effects of cell size and cell wall thickness variations on the stiffness of closed-cell foams [J].
Chen, Youming ;
Das, Raj ;
Battley, Mark .
INTERNATIONAL JOURNAL OF SOLIDS AND STRUCTURES, 2015, 52 :150-164
[5]   THE MICROSTRUCTURE OF RIGID POLYURETHANE FOAMS [J].
DAWSON, JR ;
SHORTALL, JB .
JOURNAL OF MATERIALS SCIENCE, 1982, 17 (01) :220-224
[6]  
Dement'ev A. G., 1970, Polymer Mechanics, V6, P744, DOI 10.1007/BF00856206
[7]   Development of Lignin and Nanocellulose Enhanced Bio PU Foams for Automotive Parts [J].
Faruk, Omar ;
Sain, Mohini ;
Farnood, Ramin ;
Pan, Yuanfeng ;
Xiao, Huining .
JOURNAL OF POLYMERS AND THE ENVIRONMENT, 2014, 22 (03) :279-288
[8]   Numerical Simulation of Mechanical Properties of Cellular Materials Using Computed Tomography Analysis [J].
Fischer, F. ;
Lim, G. T. ;
Handge, U. A. ;
Altstaedt, V. .
JOURNAL OF CELLULAR PLASTICS, 2009, 45 (05) :441-460
[9]   Modeling and testing of energy absorbing lightweight materials and structures for automotive applications [J].
Fremgen, C ;
Mkrtchyan, L ;
Huber, U ;
Maier, M .
SCIENCE AND TECHNOLOGY OF ADVANCED MATERIALS, 2005, 6 (08) :883-888
[10]  
Gibson L. J., 1988, Cellular Solids: Structure and Properties, DOI DOI 10.1017/CBO9781139878326