Time-temperature dependence of fracture toughness for bisphenol A epoxy resin

被引:13
作者
Araki, W
Adachi, T
Gamou, M
Yamaji, A
机构
[1] Tokyo Inst Technol, Dept Mech Sci & Engn, Meguro Ku, Tokyo 1528552, Japan
[2] TDK Corp, Chiba 2728558, Japan
关键词
fracture toughness; time-temperature dependence; epoxy resin; Angell's fragility parameter; glass transition temperature;
D O I
10.1243/146442002320139289
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The relationship between the curing conditions and the time-temperature dependence of fracture toughness was investigated for bisphenol A epoxy resin. The glass transition temperature and Angell's fragility parameter, which are obtained from thermoviscoelasticity measurements, were used to characterize epoxy resins cured under various conditions. Examination of the fracture toughness at various temperatures and displacement rates showed that it depends on both temperature and time, and that it follows the time-temperature equivalence principle. The time-temperature dependence of the fracture toughness was greatly affected by the fragility parameter. The fracture toughness of the resin with a smaller fragility parameter increased from lower temperatures to the brittle-ductile transition temperature than that of the resin with a larger fragility parameter when their glass transition temperatures were approximately 400 K. It was also found that the brittle-ductile transition temperature did not depend on the fragility parameter. This means that epoxy resin with a smaller fragility parameter has better fracture characteristics than epoxy resin with a larger fragility parameter if their glass transition temperatures are approximately 400 K.
引用
收藏
页码:79 / 84
页数:6
相关论文
共 50 条
[41]   PREDICTION OF FRACTURE TOUGHNESS TEMPERATURE DEPENDENCE APPLYING NEURAL NETWORK [J].
Dlouhy, Ivo ;
Hadraba, Hynek ;
Chlup, Zdenek ;
Smida, Tibor .
STRUCTURAL INTEGRITY AND LIFE-INTEGRITET I VEK KONSTRUKCIJA, 2011, 11 (01) :9-14
[42]   Experimental study of the CTBN effect on mechanical properties and mode I and II fracture toughness of a new epoxy resin [J].
Dadian, Alireza ;
Rahnama, Saeed ;
Zolfaghari, Abbas .
JOURNAL OF ADHESION SCIENCE AND TECHNOLOGY, 2020, 34 (22) :2389-2404
[43]   The Effect of Flame Retardant-Aluminum Trihydroxide on Mixed Mode I/II Fracture Toughness of Epoxy Resin [J].
Zielonka, Pawel ;
Duda, Szymon ;
Lesiuk, Grzegorz ;
Blazejewski, Wojciech ;
Wisniewska, Magdalena ;
Warycha, Joanna ;
Stabla, Pawel ;
Smolnicki, Michal ;
Babiarczuk, Bartosz .
POLYMERS, 2022, 14 (20)
[44]   Tailoring the toughness and CTE of high temperature bisphenol E cyanate ester (BECy) resin [J].
Thunga, M. ;
Akinc, M. ;
Kessler, M. R. .
EXPRESS POLYMER LETTERS, 2014, 8 (05) :336-344
[45]   Temperature dependence of fracture toughness of silica/epoxy composites: Related to microstructure of nano- and micro-particles packing [J].
Kwon, Soon-Chul ;
Adachi, Tadaharu ;
Araki, Wakako .
COMPOSITES PART B-ENGINEERING, 2008, 39 (05) :773-781
[46]   FRACTURE-TOUGHNESS AND FAILURE MECHANISMS IN SILICA-FILLED EPOXY-RESIN COMPOSITES - EFFECTS OF TEMPERATURE AND LOADING RATE [J].
KOH, SW ;
KIM, JK ;
MAI, YW .
POLYMER, 1993, 34 (16) :3446-3455
[47]   Dependence of the Fracture Toughness on the Sintering Time of Dense Hydroxyapatite Bioceramics [J].
Tolouei, Ranna ;
Singh, Ramesh ;
Sopyan, Iis ;
Yong, Tan Chou ;
Amiriyan, Mahdi ;
Dung, Teng Wan .
FRONTIER OF NANOSCIENCE AND TECHNOLOGY, 2011, 694 :391-+
[48]   Flame retardant epoxy resin based on bisphenol A epoxy resin modified by phosphoric acid [J].
Jiao, Chuanmei ;
Zhuo, Jinlong ;
Chen, Xilei ;
Li, Shaoxiang ;
Wang, Huajin .
JOURNAL OF THERMAL ANALYSIS AND CALORIMETRY, 2013, 114 (01) :253-259
[49]   Improving impact strength and fracture toughness of epoxy resin through oligoester-A byproduct derived from the unsaturated polyester resin manufacturing process [J].
Pham, Anh-Tuan ;
Duc, Pham Anh ;
Ha, Ha Thi ;
Mai, Quan-Doan ;
Tran, Dieu Vinh .
VIETNAM JOURNAL OF CHEMISTRY, 2025, 63 (02) :338-347
[50]   Flame retardant epoxy resin based on bisphenol A epoxy resin modified by phosphoric acid [J].
Chuanmei Jiao ;
Jinlong Zhuo ;
Xilei Chen ;
Shaoxiang Li ;
Huajin Wang .
Journal of Thermal Analysis and Calorimetry, 2013, 114 :253-259