Elasticity, plasticity and fracture toughness at ambient and cryogenic temperatures of epoxy systems used for the impregnation of high-field superconducting magnets

被引:27
作者
Brem, Andre [1 ]
Gold, Barbara J. [1 ]
Auchmann, Bernhard [2 ]
Tommasini, Davide [2 ]
Tervoort, Theo A. [2 ]
机构
[1] Swiss Fed Inst Technol, Dept Mat, Zurich, Switzerland
[2] CERN TE MPE, Geneva, Switzerland
关键词
Epoxies; Elasticity; Plasticity; Fracture toughness; Cryogenic;
D O I
10.1016/j.cryogenics.2021.103260
中图分类号
O414.1 [热力学];
学科分类号
摘要
This study evaluates the thermal expansion coefficient, as well as the elastic-, plastic- and fracture behaviour, at ambient and cryogenic (liquid nitrogen) temperatures, of four different epoxy systems that are used in high-field superconducting magnets, with the emphasis on rate-dependent plasticity as measured by uniaxial compression testing. As expected, both the elastic and plastic behaviour of the epoxy systems at room temperature depend strongly on their distance to the glass transition temperature, but become similar at cryogenic temperature. The rate dependency of the yield stress at room temperature of the four epoxy systems was similar and is well described by the Eyring model. At cryogenic temperatures the rate dependency disappears and the yield stress of all four epoxy systems approach a similar athermal value. The fracture toughness remained equal or even increased upon cooling to cryogenic temperatures for each of the four epoxies. However, the fracture toughness values of the four epoxies tested were quite different from each other, suggesting that fracture toughness not only depends on the van der Waals interactions between the segments but is also determined by other molecular characteristics, such as the network structure.
引用
收藏
页数:11
相关论文
共 33 条
[1]   Effect of a heterogeneous network on glass transition dynamics and solvent crack behavior of epoxy resins [J].
Aoki, Mika ;
Shundo, Atsuomi ;
Yamamoto, Satoru ;
Tanaka, Keiji .
SOFT MATTER, 2020, 16 (32) :7470-7478
[2]   THEORY FOR LOW-TEMPERATURE PLASTIC-DEFORMATION OF GLASSY POLYMERS [J].
ARGON, AS .
PHILOSOPHICAL MAGAZINE, 1973, 28 (04) :839-865
[3]  
Auchmann B, 2019, CRYOG MAT C HARTF
[4]   EXPERIMENTAL AND THEORETICAL INVESTIGATION OF MECHANICAL DISTURBANCES IN EPOXY-IMPREGNATED SUPERCONDUCTING COILS .2. SHEAR-STRESS-INDUCED EPOXY FRACTURE AS THE PRINCIPAL SOURCE OF PREMATURE QUENCHES AND TRAINING-THEORETICAL ANALYSIS [J].
BOBROV, ES ;
WILLIAMS, JEC ;
IWASA, Y .
CRYOGENICS, 1985, 25 (06) :307-316
[5]   THERMOMECHANICAL PROPERTIES OF A TOUGHENED EPOXY FOR IMPREGNATING SUPERCONDUCTING MAGNETS [J].
BRENNAN, AB ;
MILLER, TM ;
ARNOLD, JJ ;
HUANG, KV ;
GEPHART, NL ;
MARKEWICZ, WD .
CRYOGENICS, 1995, 35 (11) :783-785
[6]   BULK MODULUS AND GRUNEISEN PARAMETERS FOR LINEAR POLYMERS [J].
BROADHURST, MG ;
MOPSIK, FI .
JOURNAL OF CHEMICAL PHYSICS, 1970, 52 (07) :3634-+
[7]   Simultaneously increasing cryogenic strength, ductility and impact resistance of epoxy resins modified by n-butyl glycidyl ether [J].
Chen, Zhen-Kun ;
Yang, Guo ;
Yang, Jiao-Ping ;
Fu, Shao-Yun ;
Ye, Lin ;
Huang, Yong-Gang .
POLYMER, 2009, 50 (05) :1316-1323
[8]  
Evans D., 1972, Epoxy resins for superconducting magnet encapsulation
[9]   Viscosity, plasticity, and diffusion as examples of absolute reaction rates [J].
Eyring, H .
JOURNAL OF CHEMICAL PHYSICS, 1936, 4 (04) :283-291
[10]  
Fabian PE, 2002, AIP CONF PROC, V614, P295, DOI 10.1063/1.1472555