Published November 1997 | Version v1
Journal article

Low cycle thermal fatigue testing of beryllium

  • 1. Sandia National Labs., Albuquerque, NM (United States)
  • 2. McDowell Wellman Engineering Co., Cleveland, OH (United States)
  • 3. Research Inst. of Electrophysical Apparatus, St. Petersburg (Russian Federation)
  • 4. Russian Inst. for Inorganic Materials, Moscow (Russian Federation)

Description

A novel technique has been used to test the relative low cycle thermal fatigue resistance of different grades of US and Russian beryllium, which is proposed as plasma facing armor for fusion reactor first wall, limiter and divertor components. The 30 kW electron beam test system at Sandia National Laboratories was used to sweep the beam spot along one direction at 1 Hz. This produces a localized temperature ''spike'' of 750 C for each pass of the beam. Large thermal stresses in excess of the yield strength are generated, due to very high spot heat flux, 25 MWm-2. Cyclic plastic strains on the order of 0.6% produced visible cracking on the heated surface in less than 3000 cycles. An in-vacuo fiber optic borescope was used to visually inspect the beryllium surfaces for crack initiation. Grades of US beryllium tested included: S-65C, S-65H, S-200F, S200F-H, SR-200, I-400, extruded high purity, HIP'd spherical powder, porous beryllium (94 and 98% dense), Be/30%, BeO, Be/60% BeO, and TiBe12. Russian grades included: TPG-56, TShGT, DShG-200, and TSHG-56. Both thenumber of cycles tocrack initiation and the depth of crack propagation, were measured. The most fatigue resistant grades were S-65C, DShG-200, TShGT and TShG-56. Rolled sheet Be (SR-200) showed excellent crack propagation resistance in the plane of rolling, despite early formation of delamination cracks. Only one sample showed no evidence of surface melting, Extruded (T). Metallographic and chemical analyses are provided. Good agreement was found between the measured depth of cracks and a 2-D elastic-plastic finite element stress analysis. (orig.)

Additional details

Publishing Information

Journal Title
Fusion Engineering and Design
Journal Volume
37
Journal Issue
4
Journal Page Range
p. 553-579.
ISSN
0920-3796
CODEN
FEDEEE

Optional Information

Notes
17 refs.