Extrusion of polystyrene nanocomposite foams with supercritical CO2

被引:194
作者
Han, XM [1 ]
Zeng, CC [1 ]
Lee, LJ [1 ]
Koelling, KW [1 ]
Tomasko, DL [1 ]
机构
[1] Ohio State Univ, Dept Chem Engn, Koffolt Lab, Columbus, OH 43210 USA
关键词
D O I
10.1002/pen.10107
中图分类号
TQ [化学工业];
学科分类号
0817 ;
摘要
Intercalated and exfoliated polystyrene/nano-clay composites were prepared by mechanical blending and in situ polymerization respectively. The composites were then foamed by using CO2 as the foaming agent in an extrusion foaming process. The resulting foam structure is compared with that of pure polystyrene and polystyrene/talc composite. At a screw rotation speed of 10 rpm and a die temperature of 200degreesC, the addition of a small amount (i.e., 5 wt%) of intercalated nano-clay greatly reduces cell size from 25.3 to 11.1 mum and increases cell density from 2.7 x 10(7) to 2.8 x 10(8) cells/cm(3). Once exfoliated. the nanocomposite exhibits the highest cell density (1.5 x 10(9) cells/cm(3)) and smallest cell size (4.9 mum) at the same particle concentration. Compared with polystyrene foams, the nanocomposite foams exhibit higher tensile modulus, improved fire retardance, and better barrier property. Combining nanocomposites and the extrusion foaming process provides a new technique for the design and control of cell structure in microcellular foams.
引用
收藏
页码:1261 / 1275
页数:15
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共 60 条
[1]   Modeling the interactions between polymers and clay surfaces through self-consistent field theory [J].
Balazs, AC ;
Singh, C ;
Zhulina, E .
MACROMOLECULES, 1998, 31 (23) :8370-8381
[2]   APPLICATION OF COMPRESSED CARBON-DIOXIDE IN THE INCORPORATION OF ADDITIVES INTO POLYMERS [J].
BERENS, AR ;
HUVARD, GS ;
KORSMEYER, RW ;
KUNIG, FW .
JOURNAL OF APPLIED POLYMER SCIENCE, 1992, 46 (02) :231-242
[3]  
Cha S. W., 1992, Patent No. [5,158,986, 5158986]
[4]  
Chen L., 2001, SPE ANTEC, P1732
[5]   TENSILE TOUGHNESS OF MICROCELLULAR FOAMS OF POLYSTYRENE, STYRENE-ACRYLONITRILE COPOLYMER, AND POLYCARBONATE, AND THE EFFECT OF DISSOLVED-GAS ON THE TENSILE TOUGHNESS OF THE SAME POLYMER MATRICES AND MICROCELLULAR FOAMS [J].
COLLIAS, DI ;
BAIRD, DG .
POLYMER ENGINEERING AND SCIENCE, 1995, 35 (14) :1167-1177
[6]   IMPACT BEHAVIOR OF MICROCELLULAR FOAMS OF POLYSTYRENE AND STYRENE-ACRYLONITRILE COPOLYMER, AND SINGLE-EDGE-NOTCHED TENSILE TOUGHNESS OF MICROCELLULAR FOAMS OF POLYSTYRENE, STYRENE-ACRYLONITRILE COPOLYMER, AND POLYCARBONATE [J].
COLLIAS, DI ;
BAIRD, DG .
POLYMER ENGINEERING AND SCIENCE, 1995, 35 (14) :1178-1183
[7]   NUCLEATION OF MICROCELLULAR FOAM - THEORY AND PRACTICE [J].
COLTON, JS ;
SUH, NP .
POLYMER ENGINEERING AND SCIENCE, 1987, 27 (07) :500-503
[8]   THE NUCLEATION OF MICROCELLULAR THERMOPLASTIC FOAM WITH ADDITIVES .1. THEORETICAL CONSIDERATIONS [J].
COLTON, JS ;
SUH, NP .
POLYMER ENGINEERING AND SCIENCE, 1987, 27 (07) :485-492
[9]   THE NUCLEATION OF MICROCELLULAR THERMOPLASTIC FOAM WITH ADDITIVES .2. EXPERIMENTAL RESULTS AND DISCUSSION [J].
COLTON, JS ;
SUH, NP .
POLYMER ENGINEERING AND SCIENCE, 1987, 27 (07) :493-499
[10]   Polymer synthesis and processing using supercritical carbon dioxide [J].
Cooper, AI .
JOURNAL OF MATERIALS CHEMISTRY, 2000, 10 (02) :207-234