MECHANICAL BEHAVIOUR OF CYANATE ESTER∕EPOXY BLENDS AFTER REACTOR IRRADIATION TO HIGH NEUTRON FLUENCES
Author(s) -
R. Prokopec,
K. Humer,
H. Fillunger,
R. Maix,
H.W. Weber,
U. Balachandran,
Kathleen Amm,
David Evans,
E. Gregory,
Peter J. Lee,
M. S. Osofsky,
Sastry Pamidi,
Chan Park,
Judy Wu,
M.D. Sumption
Publication year - 2008
Publication title -
aip conference proceedings
Language(s) - English
Resource type - Conference proceedings
SCImago Journal Rank - 0.177
H-Index - 75
eISSN - 1551-7616
pISSN - 0094-243X
DOI - 10.1063/1.2900343
Subject(s) - cyanate ester , materials science , fluence , irradiation , composite material , neutron flux , epoxy , ultimate tensile strength , neutron , triga , research reactor , nuclear physics , physics
The mechanical strength of conventional epoxy resins drops dramatically after irradiation to a fast neutron fluence of 1×1022 m−2 (E>0.1 MeV). Recent results demonstrated that cyanate ester/epoxy blends were not affected at this fluence level. The aim of this study is to investigate the performance potential of these blends at higher fluence levels without significant degradation of their mechanical properties. Short‐beam shear as well as static tensile tests were carried out at 77 K prior to and after irradiation to fast neutron fluences of up to 4×1022 m−2 (E>0.1 MeV) in the TRIGA reactor at ambient temperature (340 K). In addition, load controlled tension‐tension fatigue measurements were performed, in order to simulate the pulsed operation conditions of a tokamak. Initial results show that only a small reduction of the mechanical strength under static and dynamic load is observed at a fast neutron fluence of 2×1022 m−2 (E>0.1 MeV). After exposure to 4×1022 m−2 (E>0.1 MeV) the interlaminar shear streng...
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