TY - JOUR
T1 - Polyurethane rigid foams formed from different soy-based polyols by the ring opening of epoxidised soybean oil with methanol, phenol, and cyclohexanol
AU - Ji, Dong
AU - Fang, Zheng
AU - He, Wei
AU - Luo, Zhenyang
AU - Jiang, Xiubo
AU - Wang, Tingwei
AU - Guo, Kai
N1 - Publisher Copyright:
© 2015 Elsevier B.V.
PY - 2015/11/5
Y1 - 2015/11/5
N2 - Three polyols (Polyol-M, Polyol-P, and Polyol-C) were synthesised from epoxidised soybean oil by oxirane ring opening with methanol, phenol, and cyclohexanol, and their corresponding polyurethane rigid foams (PU-M, PU-P, and PU-C) were prepared by mixing the soy-based polyol with petroleum-based polyether polyols. At identical soy-based polyol content, PU-P had the greatest density, the smallest cell size, and the highest thermal conductivity. At 25. wt% of soy-based polyol content, the introduction of phenol resulted in the improvement of the compression strength, the thermal stability, and the glass-transition temperature of the bio-foam. However, when the soy-based polyol content was increased to 50. wt%, the poor performance of PU-P was due to the low crosslink density caused by high steric hindrance of excessive benzene rings. The introduction of cyclohexanol failed to improve the properties of the bio-foam. The aliphatic six-membered ring acted as a plasticiser and could not alleviate the drawbacks created by the dangling chains.
AB - Three polyols (Polyol-M, Polyol-P, and Polyol-C) were synthesised from epoxidised soybean oil by oxirane ring opening with methanol, phenol, and cyclohexanol, and their corresponding polyurethane rigid foams (PU-M, PU-P, and PU-C) were prepared by mixing the soy-based polyol with petroleum-based polyether polyols. At identical soy-based polyol content, PU-P had the greatest density, the smallest cell size, and the highest thermal conductivity. At 25. wt% of soy-based polyol content, the introduction of phenol resulted in the improvement of the compression strength, the thermal stability, and the glass-transition temperature of the bio-foam. However, when the soy-based polyol content was increased to 50. wt%, the poor performance of PU-P was due to the low crosslink density caused by high steric hindrance of excessive benzene rings. The introduction of cyclohexanol failed to improve the properties of the bio-foam. The aliphatic six-membered ring acted as a plasticiser and could not alleviate the drawbacks created by the dangling chains.
KW - Cyclohexanol
KW - Dangling chain
KW - Phenol
KW - Polyurethane foam
KW - Soy-based polyol
UR - http://www.scopus.com/inward/record.url?scp=84929603211&partnerID=8YFLogxK
U2 - 10.1016/j.indcrop.2015.04.041
DO - 10.1016/j.indcrop.2015.04.041
M3 - 文章
AN - SCOPUS:84929603211
SN - 0926-6690
VL - 74
SP - 76
EP - 82
JO - Industrial Crops and Products
JF - Industrial Crops and Products
ER -